Biochemistry

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The Invisible Alphabet: A Detective Story About Molecules

生化與分子 · 6 chapters · 440 past questions · key points in ~64 min

English edition. Practice questions are the original Taiwan board questions (in Chinese, with explanations). The chapter songs are sung in Mandarin.

01

The Code and Toolkit of the Double Helix

~11 min · 25 past questions

Every test point that looks scattered is really an extension of the same chemical fact: extension can only proceed from a 3'-OH.

Full text
Case

In the small hours, a graduate student watches the indicator light on the PCR machine blink red every thirty seconds, like a heartbeat. In the 0.2 mL tube in front of him, the target fragment starts as only a few hundred copies; after thirty cycles it will be amplified a billionfold. A thought strikes him — this machine can run without stopping only because, decades ago, someone fished a bacterium out of a hot spring in Yellowstone, and that bacterium's DNA polymerase can survive at 95°C.

The story of DNA is, at its core, a chain of reasoning about "why it is built this way." Behind the Chargaff numbers lies the chemistry of base pairing; the seemingly mundane chemical fact of the 3'-OH end turns out to explain the primer, AZT, ddNTPs, and the direction of proofreading, all at once; the division of labor among the four major repair systems is not something to memorize by system name, but something to understand by recognizing "which kind of damage has occurred." This chapter strings these codes together with the molecular biology toolkit that follows — you will discover that why PCR absolutely requires Taq, why a cDNA library must use reverse transcriptase, and why a YAC can hold the largest insert are all consequences of the very same 3'-OH logic, extended one step further.

Chargaff's Rules and the Three Conformations: Do Not Call B-DNA Left-Handed

⟶ Mechanism

Chargaff's rules are not an equation to memorize by force; they are a byproduct of chemical base pairing. Step one: A embraces T with two hydrogen bonds, and G embraces C with three. Step two: therefore, in double-stranded DNA, A must equal T, and G must equal C. Step three: the sum of purines (A+G) must equal the sum of pyrimidines (T+C) = 50%. Step four: given the percentage of one base, you can back-calculate the other three the way you divide candy — T=31% → A follows at 31% → together 62% → the remaining 38% is split evenly between G and C → C=G=19%. From chemical pairing to exam arithmetic, the entire chain of causation is only one step long.

★ Must-know
Chargaff's Rules and DNA Conformations
  • Double-stranded DNA: A=T, G=C; A+G (purines) = T+C (pyrimidines) = 50%.
  • Calculation formula: given T=31% → A=31%, the remaining 38% is split between G and C → C=G=19% (not 31%).
  • B-DNA = right-handed, 10 bp/turn, base-pair rise of 3.4 Å (the predominant physiological conformation).
  • A-DNA = right-handed, 11 bp/turn, 2.6 Å (dehydrated conditions, RNA-DNA hybrids).
  • Z-DNA = left-handed, 12 bp/turn, 3.7 Å (alternating GC sequences, transcriptionally active regions).
  • Traps: ① B-DNA listed as 3.6 Å (wrong — it is 3.4); ② B-DNA called left-handed (wrong — left-handed is Z); ③ T=31% leads you to write C as 31% too (wrong — it is 19%).
⚠ Trap
✗🦦T equals 31%, so C is also 31%, right? They're all bases anyway!
✓🐻‍❄️That is exactly the trap. Chargaff's rules give A=T and G=C, not "everything equal." T=31% is paired with A=31% first, totaling 62%; only the remaining 38% is split evenly between G and C, so C=G=19%. Think of this arithmetic as dividing candy, and you will never fall into the trap.
Full text

Conformation questions are a different kind of trap. B-DNA is the leading actor under physiological conditions — right-handed, 10 bases per turn, base-pair rise of 3.4 Å — and these three numbers function like an ID number: write 3.6 Å, or call it left-handed, and it is no longer B-DNA. Z-DNA is the left-handed oddball, fond of haunting alternating GC sequences and common in transcriptionally active regions; A-DNA is the conformation seen under dehydrating conditions or in RNA-DNA hybrids.

The 3'-OH Rule: One Chemical Fact Underpins All of Replication

⟶ Mechanism

DNA polymerase can only extend a tail, never start one — it can add a new nucleotide only onto an existing 3'-OH, always in the 5'→3' direction. This one rule generates five consequences in a row. Step one: without a 3'-OH, there can be no extension → primase must first synthesize a short RNA primer to provide a starting point, which is why the primer used in replication is RNA, not DNA. Step two: at the 3' position, AZT and ddNTPs carry an azido group or a bare hydrogen instead of an OH → once incorporated, no further nucleotide can be added → they become chain terminators. Step three: Sanger sequencing exploits ddNTPs to terminate the reaction randomly and read out fragment length. Step four: the two strands run in opposite directions, but the polymerase only works 5'→3' → the leading strand is synthesized continuously, while the lagging strand can only be made as a series of Okazaki fragments. Step five: proofreading and primer removal run in opposite directions → proofreading is a 3'→5' exonuclease, while primer removal uses a 5'→3' exonuclease.

⚠ Trap
✗🦦AZT is a nucleoside-analog drug, so surely it also hits our own DNA polymerase — shouldn't the side effects be huge?
✓🐻‍❄️That is exactly its elegance. AZT targets HIV reverse transcriptase, because reverse transcriptase's affinity for AZT-TP far exceeds that of host DNA pol α. So it locks down reverse transcription while sparing host replication, keeping side effects relatively manageable. Remember the target is reverse transcriptase — protease, RNase H, and host polymerase are all trap answers.
★ Must-know
Test Points Derived from the 3'-OH Rule
  • The primer in DNA replication is RNA (synthesized by primase, not DNA).
  • AZT mechanism = chain termination from the missing 3'-OH; target = HIV reverse transcriptase.
  • Proofreading activity = Pol III's 3'→5' exonuclease (Taq lacks this activity → low fidelity).
  • Primer removal = Pol I's 5'→3' exonuclease; sealing the nick = DNA ligase (not a polymerase).
  • The lagging strand is made of Okazaki fragments; once the primer is excised, the gap is filled in and sealed.
  • Traps: ① listing the AZT target as protease/RNase H/host polymerase (wrong — it is reverse transcriptase); ② listing nick-sealing as polymerase/helicase (wrong — it is ligase); ③ listing the proofreading direction as 5'→3' (wrong — it is 3'→5').
Full text

Following this rule, the processing of the lagging strand becomes easy to understand. The polymerase produces the lagging strand as a series of Okazaki fragments, each one preceded by a stretch of RNA primer. Next, DNA pol I removes the primer with its 5'→3' exonuclease and fills in DNA, leaving behind a nick, which DNA ligase then seals. So the role of "sealing the nick" belongs to ligase, not polymerase; the discontinuity of the lagging strand is not fundamentally about two different enzymes, but a compromise forced by directionality.

The target of AZT (zidovudine) is HIV reverse transcriptase, not the host's DNA pol α, protease, or RNase H — this direction must be firmly memorized. Although the drug acts on DNA synthesis, its selectivity comes from reverse transcriptase's affinity for AZT-TP being far higher than that of host enzymes. The ddNTPs used in Sanger sequencing, by contrast, target any DNA polymerase indiscriminately, since their job is simply to terminate the reaction randomly and read out the sequence.

The Four Repair Systems and the SOS Response: Which Kind of Damage Is It

⟶ Mechanism

The logic that sorts repair systems has only one rule: look at what the damage looks like. Step one: ask how large the lesion is. Step two: match it to the right tool. When a single base is damaged (deamination, oxidation, appearance of uracil), BER (base excision repair) takes over: DNA glycosylase excises the damaged base → AP endonuclease processes the resulting gap → a polymerase fills it in → ligase seals it. A UV-induced pyrimidine dimer is a "large distorting lesion" that BER cannot handle, so NER (nucleotide excision repair) steps in instead: in prokaryotes, UvrABC, and in eukaryotes, the XP protein family, together excise a stretch of nucleotides containing the lesion, which is then resynthesized. When a newly replicated strand incorporates the wrong base, that is a "mismatch," and MMR (mismatch repair) takes over: MutS recognizes the mismatch → MutL mediates → MutH nicks the "unmethylated" new strand (the old strand is already methylated and serves as the reference) → the new strand is resynthesized. Each of the three systems handles one kind of damage, and they must not be mixed up.

DNA glycosylase belongs to BER alone and plays no part in MMR — this trap appears on every sitting of the exam.
⚠ Trap
✗🦦In the SOS response, does RecA break down UvrA?
✓🐻‍❄️The direction is completely reversed. RecA is the catalyst and is never broken down itself; what gets cleaved is the repressor LexA, through autocleavage. Once LexA collapses, the repair genes it had been suppressing — including uvrA/B and recA itself — are derepressed and all begin transcription. Remember one line: LexA falls, repair rises.
★ Must-know
The Four Repair Systems
  • BER: DNA glycosylase excises the abnormal base (deamination, oxidation, uracil) → AP endonuclease.
  • NER: handles large distorting lesions such as UV pyrimidine dimers; deficiency = XP (xeroderma pigmentosum).
  • MMR: post-replication mismatches; MutS recognizes, MutH nicks the unmethylated new strand; deficiency = Lynch syndrome / HNPCC.
  • SOS: RecA activation → LexA autocleavage (the one being cleaved) → repair genes are derepressed.
  • Traps: ① listing DNA glycosylase under MMR (wrong — it belongs to BER alone); ② assigning UV dimers to BER (wrong — they need NER); ③ naming UvrA or RecA as the one broken down in SOS (wrong — it is LexA).
Full text
Case

A fair-skinned little boy breaks out in erythema and freckles after the briefest sun exposure and is diagnosed with skin cancer before the age of ten. He does not simply "burn easily" — he has xeroderma pigmentosum (XP): the enzyme system in his body that is specifically meant to recognize UV-induced pyrimidine dimers has failed.

As for the SOS response, it is the "emergency measure" triggered by massive damage, and its logic resembles a coup d'état. Step one: under normal conditions, the LexA repressor keeps the repair genes (uvrA/B, recA, and others) suppressed. Step two: damage exposes large stretches of single-stranded DNA (ssDNA). Step three: RecA is activated and becomes a co-protease. Step four: RecA promotes the autocleavage of LexA. Step five: once the repressor collapses, all the repair genes are derepressed and transcription begins. It is the repressor LexA that gets cleaved, not any repair-gene product — this is the pitfall the exam loves most to dig.

Why PCR Requires Taq: Heat Resistance Is the Key

⟶ Mechanism

The three steps of PCR (polymerase chain reaction) follow an inescapable logic. Step one: denaturation at 95°C separates the two strands. Step two: annealing at 50–65°C lets primers pair complementarily with the template. Step three: extension at 72°C has the polymerase add nucleotides. Step four: every cycle must return to that 95°C station → *E. coli* Pol I/Pol III are irreversibly inactivated at that temperature and would have to be replenished every single cycle, making the reaction unworkable. Step five: Taq polymerase, isolated from *Thermus aquaticus* found in a hot spring, is heat-resistant and therefore irreplaceable. Taq lacks 3'→5' exonuclease activity and indeed has relatively low fidelity, but that is a side effect, not the main reason *E. coli* Pol cannot be used.

⚠ Trap
✗🦦Taq lacks proofreading activity and has low fidelity — is that the main reason PCR can't use E. coli Pol?
✓🐻‍❄️Wrong direction. The main reason E. coli Pol cannot be used is that it becomes heat-inactivated at 95°C and would need to be replenished every cycle, making PCR unworkable. Taq's lack of proofreading is its own drawback, not the reason other enzymes fail. The main reason is heat resistance.
★ Must-know
Core Facts About PCR
  • Three steps: 95 / 50–65 / 72°C (denaturation / annealing / extension).
  • Main reason for using Taq = heat resistance (*E. coli* Pol is inactivated at 95°C); Taq's lack of proofreading is a side effect.
  • One primer pair → one specific segment; multiple sites require multiplex PCR.
  • Traps: ① listing the main reason as "Taq has high fidelity" (wrong — it is actually low); ② claiming one primer pair can amplify multiple regions (wrong — only one segment); ③ listing the polymerase used in PCR as *E. coli* Pol (wrong — it would be heat-inactivated).
Full text

Primer specificity also deserves careful thought. A single primer pair recognizes only one uniquely complementary sequence on the template, so one pair amplifies only one segment; to test multiple sites at once, you need multiplex PCR (multiple primer sets).

Libraries, Vectors, and the Three Blots: Reverse Transcriptase Is the Dividing Line

★ Must-know
Libraries, Vectors, and Blots
  • Genomic library = restriction enzyme + ligase (no reverse transcriptase needed; contains introns).
  • cDNA library = reverse transcriptase + ligase (no introns; allows eukaryotic protein expression in prokaryotes).
  • RFLP is used for paternity testing, linkage analysis, and DNA fingerprinting (not for building a cDNA library).
  • Largest vector = YAC (contains an origin of replication, telomere, and centromere).
  • Type II restriction enzymes recognize palindromic sequences; transformation = CaCl₂ + 42°C heat shock; site-directed mutagenesis needs no reverse transcriptase.
  • The three blots: Southern = DNA, Northern = RNA, Western = protein (using antibodies).
  • Traps: ① adding reverse transcriptase to a genomic library (wrong — not needed); ② using RFLP to build a cDNA library (wrong — unrelated); ③ describing transformation as "low-voltage electrophoresis" (wrong — it is heat shock or electroporation).
Full text · 1 table

To clone a gene, you must first decide what starting material to use and whether introns should be retained. A genomic library is made by fragmenting the entire genome and inserting the pieces into vectors — it contains introns and requires no reverse transcriptase. A cDNA library is made by reverse-transcribing mature mRNA into cDNA and then cloning it — it contains no introns and absolutely requires reverse transcriptase. The latter's greatest use is expressing eukaryotic genes in prokaryotic cells: because prokaryotes lack splicing machinery, expressing a eukaryotic protein requires reverse transcriptase to remove the introns beforehand. RFLP (restriction fragment length polymorphism) is an entirely different matter: it compares fragment lengths after restriction-enzyme digestion and is used in paternity testing, linkage analysis, and DNA fingerprinting — it has nothing to do with building a cDNA library.

VectorCapacityFeatures
Plasmid~10 kbSmallest, simplest
Phage λ~15–20 kb—
Cosmid~45 kb—
BAC~300 kbBacterial artificial chromosome
YAC100 kb – several MbLargest; contains a eukaryotic origin of replication + telomere + centromere

Swipe or scroll sideways to compare every column; keyboard: focus the table and use arrow keys.

The advantage of a YAC is that it holds the largest insert, not that it has the best transformation or expression efficiency — this is a frequently tested direction. A Type II restriction enzyme recognizes a 4–8 bp palindrome: the 5'→3' reading of the top strand matches the 5'→3' reading of the complementary strand, as in GAATTC↔CTTAAG; if the sequence read across the complementary strand is asymmetric, it is not a Type II target. The standard method for plasmid transformation is preparing competent cells with CaCl₂ plus a 42°C heat shock; another commonly used route is electroporation (a high-voltage pulse, not "low-voltage electrophoresis"). Site-directed mutagenesis is accomplished using a mutation-carrying primer together with a polymerase and requires no reverse transcriptase — this direction is also a favorite on the exam.

Distinguishing the three blots is a gimme question — just remember "what molecule is being detected": Southern blot detects DNA, Northern blot detects RNA (both use nucleic-acid probe hybridization), and Western blot detects protein (using antibodies). The mnemonic SNoW DRoP: S-D, N-R, W-P; only Western uses antibodies.

♪ Memory hook

The polymerase can only extend a tail, never start one, so everything revolves around the 3'-OH — without it there is no primer, no AZT, no Okazaki fragments.

Read-aloud version (copy the whole thing into any TTS)

In the small hours the lab's red indicator light blinks every thirty seconds; the graduate student watches the PCR machine as the target fragment in that 0.2 mL tube is amplified a billionfold over thirty cycles. A thought strikes him: this machine can run without stopping only because someone once fished a bacterium out of a hot spring in Yellowstone, and that bacterium's DNA polymerase can survive at ninety-five degrees Celsius. Every test point in this chapter that looks scattered actually grows out of the very same chemical fact — the rule that extension can only proceed from a 3'-OH.

Start by getting Chargaff straight. In double-stranded DNA, A equals T and G equals C simply because A embraces T with two hydrogen bonds and G embraces C with three — that is merely a byproduct of pairing, not a separate rule. So when a question gives you T at thirty-one percent and asks for C and G, the method is like dividing candy: pair A with T first to use up sixty-two, and split the remaining thirty-eight evenly between G and C, so C and G are both nineteen — never impulsively write C as thirty-one. The conformation questions are also just an ID-number game: B-DNA is right-handed, ten bases per turn, with a base-pair rise of three point four angstroms; writing it as three point six angstroms or as left-handed is always wrong. The left-handed one is Z-DNA, which likes to haunt alternating GC sequences in transcriptionally active regions, while A-DNA is the conformation seen under dehydration or in RNA-DNA hybrids.

Next comes the true star of the show: the 3'-OH rule. DNA polymerase can only add a new nucleotide onto an existing 3'-OH, always in the 5' to 3' direction. That sounds like a plain chemical fact, but it explains several things at once. First, why replication needs a primer: the polymerase cannot initiate from scratch, so something must first provide a short tail carrying a 3'-OH for it to extend, and that is why primase synthesizes a short RNA primer as a starting scaffold — the primer in DNA replication is therefore RNA, not DNA. Second, why AZT and dideoxynucleotide triphosphates are chain terminators: their 3' position carries an azido group or a bare hydrogen instead of an OH, so once incorporated, nothing further can be attached. Third, why Sanger sequencing works at all: it exploits dideoxynucleotides to stop the reaction randomly and then reads out fragment length. Fourth, why the leading strand is continuous while the lagging strand is not: the two strands run in opposite directions, but the polymerase only works 5' to 3', so the lagging strand can only be built in the reverse direction as a series of Okazaki fragments. Fifth, proofreading activity and primer-removal activity must be kept separate: proofreading is a 3' to 5' exonuclease, while primer removal is a 5' to 3' exonuclease, each running in the opposite direction to do its own job. Taq lacks proofreading activity and therefore has low fidelity, but that is a side effect, not the main reason PCR cannot use E. coli polymerase — that main reason is always heat resistance.

The gap left behind once Okazaki fragments are finished is sealed by DNA ligase; the exam often swaps this role for polymerase as a trap, but sealing the gap is always ligase's job. Do not misremember the target of AZT either: it locks onto HIV reverse transcriptase, not the host's DNA polymerase alpha, not protease, and not RNase H, because reverse transcriptase's affinity for AZT triphosphate far exceeds that of host enzymes, allowing it to selectively lock down the virus while sparing the host.

Repair systems are not something to memorize by name; what matters is recognizing what the damage looks like. When a single base is damaged — deamination, oxidation, the appearance of uracil — the job calls for base excision repair, in which DNA glycosylase excises the damaged base and hands it off for further processing. A UV-induced pyrimidine dimer is a large distorting lesion that base excision repair cannot handle, so nucleotide excision repair takes over instead, which is why patients with xeroderma pigmentosum have a nucleotide excision repair defect. When a newly replicated strand incorporates the wrong base, that is called a mismatch, and it calls for mismatch repair, in which MutS recognizes the mismatch, MutL mediates, and MutH nicks the unmethylated new strand, since the old strand is already methylated and can serve as the reference; Lynch syndrome is a mismatch repair defect. Remember that DNA glycosylase belongs to base excision repair alone — the exam loves to plant it inside mismatch repair as a trap. The SOS response is the emergency measure triggered by massive damage, and its logic resembles a coup d'état. Under normal conditions the LexA repressor suppresses the repair genes, including uvrA, uvrB, recA, and others; damage exposes large stretches of single-stranded DNA, RecA is activated into a co-protease, and it promotes the autocleavage of LexA — once the repressor collapses, all of these repair genes are derepressed and begin transcription. It is the repressor LexA that gets cleaved, not any repair-gene product, and not RecA itself; RecA is the catalyst, not the one broken down. Remember one line: LexA falls, repair rises.

Why PCR absolutely requires Taq is, in fact, simple. The three-step cycle denatures at ninety-five degrees, anneals at fifty to sixty-five degrees, and extends at seventy-two degrees, and every round must return to that ninety-five-degree station; E. coli polymerase is irreversibly inactivated at that temperature and would have to be replenished every cycle, making the reaction unworkable — which is exactly why the heat-tolerant Taq, fished out of a hot spring, is needed. Taq lacks 3' to 5' exonuclease activity and so has relatively low fidelity, but that is a side effect, not the reason other enzymes cannot be used; the main reason is, in two words, heat resistance. Primer specificity also deserves careful thought: a single primer pair recognizes only one uniquely complementary sequence on the template and therefore amplifies only one segment; testing multiple sites at once requires multiplex PCR.

Distinguishing the two types of library is a frequently tested comparison. A genomic library is made by fragmenting the entire genome and inserting the pieces into vectors, so it contains introns and requires no reverse transcriptase; a complementary DNA library is made by reverse-transcribing mature mRNA into cDNA and then cloning it, so it contains no introns and absolutely requires reverse transcriptase — which is also why a cDNA library must be used to express a eukaryotic gene in prokaryotic cells, since prokaryotes lack splicing machinery and the introns must be removed beforehand. RFLP is an entirely different matter: it compares fragment lengths after restriction-enzyme digestion for paternity testing, linkage analysis, and DNA fingerprinting, and has nothing to do with building a cDNA library — the exam loves to slip it in as a decoy.

Up the ladder of vectors, capacity keeps growing: a plasmid holds about ten kilobases, phage λ about fifteen to twenty, a cosmid about forty-five, a BAC about three hundred, and a YAC can reach anywhere from a hundred kilobases up to several megabases — the YAC is the one that holds the largest insert, because it carries a eukaryotic origin of replication, a telomere, and a centromere, letting it persist stably the way a eukaryotic chromosome does. Remember that its advantage is sheer capacity, not the best transformation efficiency. A Type II restriction enzyme recognizes a palindromic sequence, where the 5' to 3' reading of the top strand matches the 5' to 3' reading of the complementary strand; if the sequence read across the complementary strand is asymmetric, it is not that enzyme's target. The standard method for plasmid transformation is preparing competent cells with calcium chloride plus a forty-two-degree heat shock; another route is electroporation, not low-voltage electrophoresis. Site-directed mutagenesis can be accomplished simply with a mutation-carrying primer plus a polymerase, requiring no reverse transcriptase — this direction is also a favorite on the exam. Finally, for the three blotting techniques, just remember what molecule is being detected: Southern detects DNA, Northern detects RNA, both by nucleic-acid probe hybridization, while Western detects protein using antibodies; the mnemonic is "snow," and only Western uses antibodies. One rule about the 3'-OH, combined with one rule that the type of damage determines the repair system, brings the whole chapter's test points to life.

🧪 Practice on this topic: 86 questions Taiwan board past papers · in Chinese, with explanations
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🧪 Whole exam sections (question book, in Chinese)Replication Mechanisms and Enzymes 25
02

Switches, Batteries, and Packaging

~9 min · 32 past questions

The lac operon fires at full capacity only when there is no glucose to fall back on — no glucose, but lactose present.

Full text
Case

A lump of lactose is placed in a Petri dish of *E. coli*. Half an hour ago, these bacteria showed no response to lactose at all; now they have begun synthesizing large amounts of β-galactosidase to break it down. How did they "decide" to start working? The answer lies on a stretch of DNA called the lac operon — the first gene switch ever deciphered.

From the prokaryotic operon to the eukaryotic enhancer, and on to the epigenetic duet of DNA methylation and histone acetylation, gene regulation always asks the same question at its core: should this gene be read out "right now"? Having read the story of the switches, we turn next to metabolism's "batteries" — why NAD⁺ and NADP⁺, with almost identical structures, belong to two separate worlds: "breaking down for energy" and "building up with antioxidant protection." We finish with the packaging of the chromosome itself, the elegance of V(D)J recombination, the telomere, and the cell cycle: a gene must first be opened before it can be read; a cell must first guard its telomeres before it can divide.

lac and trp: Two Operons with Opposite Logic

⟶ Mechanism

The lac operon is "inducible": it stays off by default and turns on only when lactose appears. Step one: the repressor encoded by lacI normally sits on the operator, holding transcription down. Step two: when lactose appears, its metabolite allolactose is the true inducer — it pulls the repressor off → the operon turns on (negative regulation is lifted). Step three: a second, positive layer of regulation — low glucose → cAMP rises → CAP-cAMP activation (catabolite activation) → binds the promoter → strongly drives transcription. Step four: both conditions must hold at once → lacZYA is transcribed. So bacteria use glucose preferentially, and the lac operon only fires at full capacity when "glucose is scarce and lactose is present."

⚠ Trap
✗🦦The trp operon keeps transcribing when Trp is abundant, right? The body makes less of whatever it's short on!
✓🐻‍❄️The direction is reversed. Trp high → the ribosome runs fast → the mRNA folds into a terminator → transcription stops; Trp low → the ribosome stalls → it folds into an antiterminator → transcription continues. Remember one line: enough means stop, scarce means make it — that is the direction attenuation is meant to relieve.
★ Must-know
Operon Logic
  • lac = inducible: fully on only when no glucose (glucose low, cAMP↑, CAP-cAMP activation) and lactose is present (repressor released) → lacZYA is transcribed.
  • lacZ = β-gal, lacY = permease, lacA = transacetylase, lacI = repressor.
  • trp = repressible: Trp high → termination, Trp low → continuation; the mechanism is a switch in mRNA secondary structure (terminator vs. antiterminator), not the leader peptide acting directly on RNA pol.
  • Traps: ① assuming lactose alone turns it fully on (wrong — glucose must also be low); ② assuming Trp high leads to continuation (wrong — it leads to termination); ③ swapping lacZ/lacY (wrong — Z is β-gal).
Full text · 1 table

The trp operon works by exactly the opposite logic — it is "repressible": it stays on by default, making tryptophan, and shuts off only once tryptophan is plentiful. Its most elegant feature is attenuation: the leader sequence carries two adjacent Trp codons that act as a "tryptophan sensor." When Trp is abundant, the ribosome moves so fast that it fails to protect certain mRNA regions in time, so the mRNA folds into a terminator hairpin, RNA pol falls off, and transcription stops; when Trp is scarce, the ribosome stalls at the Trp codons waiting for the amino acid, the protected region shifts, the mRNA instead folds into an antiterminator, and transcription continues. So the direction is "Trp high → termination; Trp low → continuation" — this direction must never be reversed in memory, and the core mechanism is a switch in mRNA secondary structure, not a direct interaction between the leader peptide and RNA pol.

PairingCorrect answer
lacZβ-galactosidase (hydrolyzes lactose)
lacYpermease (lets lactose into the cell)
lacAtransacetylase
lacIrepressor (holds down the operon when lactose is absent)

Swipe or scroll sideways to compare every column; keyboard: focus the table and use arrow keys.

Eukaryotic Regulation: Promoter Strength and Enhancer Distance

★ Must-know
Eukaryotic Transcriptional Regulation
  • The main reason housekeeping-gene expression levels differ = the promoter's affinity for RNA pol (not degradation rate).
  • The direct binder of the enhancer = the activator (a transcription factor); the coactivator is a bridge, and TBP binds TATA.
  • Traps: ① attributing enhancer binding to coactivator/TBP (wrong — it is the activator); ② attributing expression-level differences to degradation rate (wrong — it is promoter strength).
Full text

In the eukaryotic world, housekeeping genes are not "expressed equally across the board" — their expression levels differ enormously, and the main reason is the promoter's affinity for RNA polymerase (promoter strength): a strong promoter drives frequent transcription, a weak one drives little. This direction is often wrongly answered as "degradation rate" or "inducing factor" — remember that the root cause lies in promoter strength.

The enhancer is a separate axis: it can sit far from the core promoter, lie upstream or downstream of the gene, or even sit inside an intron. What binds the enhancer directly is the transcriptional activator among the activators (transcription factors), which then uses DNA looping to pull the basal transcription machinery onto the promoter and drive RNA pol II initiation. The coactivator does not bind DNA directly; it is merely a bridge. TBP binds the TATA box and assembles with the other general transcription factors at the core promoter. The exam loves to swap these roles around — remember: it is the activator, not the coactivator and not TBP, that binds the enhancer.

Epigenetics and Structural Motifs: Methylation Closes, Acetylation Opens

⟶ Mechanism

The two mechanisms of epigenetics really share a single core idea: "the strength of electrostatic attraction determines how tightly DNA is packed." Step one: DNA carries a negative charge, and the lysines on histone tails carry a positive charge → the two naturally attract each other. Step two: HAT (histone acetyltransferase) adds an acetyl group to lysine → neutralizing the positive charge → chromatin loosens → transcription is activated. Step three: HDAC (histone deacetylase) does the reverse, removing the acetyl group → the positive charge is restored → chromatin condenses → transcription is repressed. Step four: DNA methyltransferase (DNMT) adds a methyl group to the cytosine of a CpG dinucleotide → this recruits repressor proteins → chromatin is compacted → gene silencing. So, in one line: methylation = off, acetylation = on, and HDAC is what "takes the acetyl away and shuts the gene back down."

DNA "methylation = off," histone "acetylation = on"; HDAC is what flips the switch back toward "off."
⚠ Trap
✗🦦It should be the zinc finger that mediates dimer formation, right? "Zinc" sounds like it would pinch things together!
✓🐻‍❄️That's being fooled by the name. The zinc finger is used mainly to bind DNA; it is the leucine zipper that mediates dimerization, because it has a Leu every seventh residue, and its hydrophobic residues interlock like a zipper to form a dimer. The β-barrel, meanwhile, is a membrane channel and does not count as a DNA-binding motif at all.
★ Must-know
Epigenetics and Motifs
  • DNA methylation: DNMT acts on CpG (not TATA / CAAT / telomere) → transcriptional repression.
  • HAT acetylation → loosens → activation; HDAC deacetylation → condenses → repression.
  • Mediates dimerization = leucine zipper; main DNA-binding motif = zinc finger; homeotic genes contain a homeodomain and, expressed late, determine "segment structure".
  • Traps: ① listing the methylation hotspot as TATA/CAAT/telomere (wrong — it is CpG); ② listing zinc finger or β-barrel as mediating the dimer (wrong — it is the leucine zipper); ③ pairing homeotic genes with "specific organs" (wrong — it is "body segments").
Full text

Of the four structural motifs in DNA-binding proteins, the one most often confused is which motif "mediates dimerization": the leucine zipper — two α-helices with a Leu every seventh residue, whose hydrophobic residues interlock like a zipper to form a dimer, with an adjacent basic domain then binding DNA. The zinc finger is used mainly for DNA binding, not primarily for dimerization; the homeodomain is a helical structure that binds DNA directly and is encoded by Hox/homeotic genes; the β-barrel is a membrane-protein channel and is not a DNA-binding motif. Homeotic genes are expressed late in embryonic development and determine what structure each body segment develops into (antenna, wing, leg); mutations cause segments to have their "identity" scrambled — a fly growing legs on its head is the classic example. They are not genes for "specific organs" (not the kind that determine eye color or wing color) — this direction is frequently confused.

NAD⁺ and NADP⁺: One Phosphate Decides Two Worlds

⟶ Mechanism

The division of labor between NAD⁺ and NADP⁺ reflects the body's wisdom about conserving resources. Step one: NAD⁺ is nicotinamide adenine dinucleotide — one side is adenine + ribose + phosphate (the AMP piece), the other is nicotinamide + ribose + phosphate, joined in the middle by a pyrophosphate bridge. Step two: the hydrogen-accepting site is C4 of the nicotinamide ring, which takes up one hydride (two electrons plus one H⁺) at a time → the reduced form is called NADH, not NADH₂. Step three: NADP⁺ and NAD⁺ are almost identical in structure; the only difference is an extra phosphate group on the 2'-OH of the ribose at the adenine end. Step four: it is precisely this "extra phosphate" that serves as a tag → letting different enzymes recognize it → sorting "burning energy" from "building proteins / antioxidant defense" into separate tracks. Step five: NADH is routed toward catabolism (glycolysis, the TCA cycle, β-oxidation) → handing electrons to the respiratory chain to make ATP; NADPH is routed toward reductive biosynthesis (fatty acids, cholesterol) and antioxidant defense (regenerating GSH, CYP450).

NADH goes to burn, NADPH goes to build — a single 2'-phosphate decides whether it heads toward energy production or toward biosynthesis.
⚠ Trap
✗🦦Does NAD⁺ take up 2 hydrogen atoms? So shouldn't the reduced form be written NADH₂?
✓🐻‍❄️What it takes up is a hydride (a hydride ion, containing 2 electrons plus 1 H⁺), so the reduced form is called NADH, not NADH₂; FADH₂ is the one that actually takes up 2 H atoms. And while we're at it: NAD comes from vitamin B3 niacin, FAD comes from vitamin B2 riboflavin — don't reverse these two vitamin assignments.
★ Must-know
Division of Labor Among Coenzymes
  • NAD⁺ structure: two nucleotides + a pyrophosphate bridge; the hydrogen-accepting site = nicotinamide C4, accepting a hydride; the reduced form is NADH.
  • NADP⁺ vs. NAD⁺: the only difference is one extra phosphate on the 2'-position of the ribose at the adenine end.
  • NADH is routed toward catabolism (energy production); NADPH is routed toward biosynthesis and antioxidant defense.
  • Vitamin sources: NAD/NADP ← B3 niacin; FAD/FMN ← B2 riboflavin.
  • Quick reference for other coenzymes: B1 = TPP (oxidative decarboxylation), B5 = CoA (acyl transfer), B6 = PLP (transamination/decarboxylation), B7 biotin = carboxylation (requires CO₂ + ATP), B9 = THF (one-carbon transfer), B12 = cobalamin (methyl transfer/isomerization).
  • Traps: ① writing NADH₂ (wrong — it is NADH; FADH₂ is the one with two H's); ② listing NAD as coming from B2 (wrong — it is B3); ③ routing NADPH toward catabolic energy production (wrong — it goes toward biosynthesis and antioxidant defense).
Full text

The vitamin sources are also a favorite reversal on the exam: NAD/NADP come from vitamin B3, niacin; FAD/FMN come from vitamin B2, riboflavin. FADH₂ carries 2e⁻ + 2H⁺ and is the tightly bound cofactor of succinate dehydrogenase and of β-oxidation; FMN is the entry point of Complex I in the respiratory chain. The trick for structure-recognition questions is to look at the ring: two nucleotides + a pyrophosphate bridge + one end a six-membered nitrogen-containing amide ring (nicotinamide) and the other end a bicyclic purine (adenine) — that is NAD⁺; if the ribose at the adenine end carries one extra phosphate, it is NADP⁺; and if you see that three-ring isoalloxazine system, that is FAD/FMN (derived from B2).

Packaging the Chromosome: Electrostatics Is the True Star

★ Must-know
Chromosome Packaging
  • Histones carry a positive charge (rich in Lys/Arg) → they grip the negatively charged DNA electrostatically (not covalently or hydrophobically).
  • Hierarchy: DNA → nucleosome (8 histones) → 30 nm fiber (with H1's help) → chromosome.
  • The protein-coding fraction of the human genome = about 1.5–2% (not >40%).
  • Traps: ① describing the histone-DNA interaction as covalent/hydrophobic (wrong — it is electrostatic); ② listing the coding fraction as 40% (wrong — it is 1.5–2%); ③ pairing the nucleosome with H1 (wrong — H1 assists in forming the 30 nm fiber).
Full text

The phosphate backbone of DNA carries a negative charge, and to be packed into the nucleus it needs positively charged proteins to neutralize it and wind it up. Histones are rich in Lys and Arg — these two basic amino acids carry a positive charge, allowing them to bind the DNA phosphate backbone electrostatically; this is neither a covalent bond nor a hydrophobic interaction. The packaging hierarchy: DNA winds around 8 histones (two each of H2A/H2B/H3/H4) → the nucleosome ("beads on a string") → H1 helps fold this into the 30 nm fiber → higher-order chromosome structure.

While we're at it, let's demolish a frequently tested numerical trap: the human genome is about 3 billion bp, but the protein-coding exons make up only about 1.5–2% of it — not 40%. The vast remainder consists of introns, regulatory sequences, repetitive sequences, and transposon remnants, which is also why the story of gene regulation always circles back to seemingly minor modifications like "which stretch is methylated, which stretch is acetylated."

♪ Memory hook

The lactose operon cooks only when there's no glucose, the tryptophan operon stops making once there's enough — methylation closes, acetylation opens, and HDAC shuts it back down again.

Read-aloud version (copy the whole thing into any TTS)

A lump of lactose is placed in a Petri dish of E. coli. Half an hour ago these bacteria showed no response to lactose at all; now they have already begun synthesizing large amounts of beta-galactosidase to break it down. How did they decide to start working? The answer lies in the first gene switch ever deciphered, the lactose operon. Starting from this switch, we will look at two prokaryotic operons, promoter strength in eukaryotes, the epigenetic tug-of-war of methylation closing and acetylation opening, the division of labor among coenzymes, and the packaging of the chromosome itself. The whole chapter really has just one theme: how a gene decides whether it should be read out right now, and how metabolism decides whether electrons should go toward burning energy or building proteins.

The lactose operon is inducible. Normally, the repressor encoded by lacI sits on the operator, holding transcription down; once lactose appears, its metabolite allolactose is the true inducer, pulling the repressor off so the operon opens. But that is only negative regulation — the second layer is positive regulation: when glucose is low, cyclic AMP rises, and CAP, bound to cyclic AMP, strongly promotes transcription from just upstream of the promoter. So bacteria use glucose preferentially, and the lactose operon fires at full capacity, transcribing the three genes lacZYA, only when glucose is scarce and lactose is present. Remember that lacZ encodes beta-galactosidase, which hydrolyzes lactose; lacY encodes permease, which lets lactose into the cell; lacA encodes transacetylase; and lacI encodes the repressor — do not swap Z and Y.

The tryptophan operon works by completely opposite logic — it is repressible, staying on by default to make tryptophan and shutting off only once tryptophan is sufficient. Its most elegant feature is attenuation: the leader sequence carries two adjacent tryptophan codons that act as a tryptophan sensor. When tryptophan is abundant, the ribosome moves so quickly that it fails to protect certain regions of the messenger RNA in time, so the mRNA folds into a terminator hairpin, RNA polymerase falls off, and transcription stops; when tryptophan is scarce, the ribosome stalls at the tryptophan codons waiting for the amino acid, the protected region shifts, and the messenger RNA instead folds into an antiterminator, so transcription continues. So the direction is that high tryptophan means termination and low tryptophan means continuation — this must never be reversed in memory — and the core mechanism is a switch in messenger RNA secondary structure, not the leader peptide interacting directly with RNA polymerase.

In the eukaryotic world, housekeeping genes are not expressed equally across the board — their expression levels differ enormously, and the main reason is the promoter's affinity for RNA polymerase. This direction is often wrongly answered as degradation rate or an inducing factor; remember that the root cause lies in promoter strength. The enhancer is a separate axis: it can sit far from the core promoter, lie upstream or downstream of the gene, or even sit inside an intron. What binds the enhancer directly is the activator, that is, a transcriptional activating factor, which then uses DNA looping to pull the basal transcription machinery onto the promoter and drive the initiation of RNA polymerase II. The coactivator does not bind DNA directly — it is merely a bridge — while the TATA-binding protein binds the TATA box and assembles with the other general transcription factors at the core promoter. The exam loves to swap these roles around; remember that it is the activator that binds the enhancer.

The two mechanisms of epigenetics really share a single core idea: the strength of electrostatic attraction determines how tightly DNA is packed. DNA carries a negative charge, and the lysines on histone tails carry a positive charge, so the two naturally attract each other; HAT adds an acetyl group to lysine, neutralizing the positive charge, loosening chromatin, and activating transcription; HDAC does the reverse, removing the acetyl group, restoring the positive charge, condensing chromatin, and repressing transcription. DNMT adds a methyl group to the cytosine of a CpG dinucleotide, recruiting repressor proteins that compact the chromatin, and the resulting transcriptional repression is called gene silencing. So, summed up in one line: methylation closes, acetylation opens, and HDAC shuts it back down again. CpG is the main methylation hotspot — not TATA, not the CAAT box, and certainly not the telomere — do not answer this direction incorrectly.

Of the four motifs in DNA-binding proteins, the one most often confused is which one mediates dimerization. The correct answer is the leucine zipper, because it has a Leu every seven residues, and its hydrophobic residues interlock like a zipper to form a dimer, with an adjacent basic domain then binding DNA. The zinc finger is used mainly to bind DNA, not to form dimers; the homeodomain is a helical structure that binds DNA directly and is encoded by Hox and homeotic genes; the beta-barrel is a membrane channel and does not count as a DNA-binding motif at all. Homeotic genes are expressed late in embryonic development and determine what structure each body segment develops into, things like antennae, wings, or legs; mutations scramble the identity of a segment, as in a fly growing legs on its head. They are not genes for specific organs, such as eye color or wing color — this direction is frequently confused.

NAD and NADP form another main thread within this same chapter. NAD is nicotinamide adenine dinucleotide: one side is adenine plus ribose plus phosphate, the AMP piece, and the other side is nicotinamide plus ribose plus phosphate, joined in the middle by a pyrophosphate bridge. The hydrogen-accepting site is C4 of the nicotinamide ring, which takes up one hydride ion — that is, two electrons plus one H-plus — at a time, so the reduced form is called NADH, not NADH-two; FADH-two is the one that actually takes up two hydrogens. NADP and NAD are almost identical in structure, and the only difference is one extra phosphate on the two-prime position of the ribose at the adenine end. It is precisely this extra phosphate that serves as a tag, letting different enzymes recognize and sort it, so NAD is routed toward catabolism to burn energy, while NADP is routed toward reductive biosynthesis and antioxidant defense, to build proteins or provide antioxidant protection. Fatty acid and cholesterol synthesis, glutathione regeneration, and cytochrome P450 reactions all use NADPH, while glycolysis, the citric acid cycle, and beta-oxidation all produce NADH, which is sent into the electron transport chain. The vitamin sources are also a favorite reversal on the exam: NAD and NADP come from vitamin B3 niacin, while FAD and FMN come from vitamin B2 riboflavin — do not get this direction wrong. The trick for structure-recognition questions is to look at the ring: two nucleotides plus a pyrophosphate bridge, with one end a six-membered nitrogen-containing amide ring, means NAD; if the ribose at the adenine end carries one extra phosphate, it is NADP; and if you see that three-ring isoalloxazine system, that is FAD or FMN.

Finally, do not forget the packaging of the chromosome itself. The phosphate backbone of DNA carries a negative charge, and packing it into the nucleus requires positively charged proteins to wind it up. Histones are rich in the two basic amino acids lysine and arginine, so they carry a positive charge and can bind DNA electrostatically — this is neither covalent nor hydrophobic. The packaging hierarchy has DNA wound around eight histones to form beads-on-a-string nucleosomes, which H1 then helps fold into the thirty-nanometer fiber, which forms higher-order chromosome structure. While we're at it, let's demolish a frequently tested numerical trap: the human genome is about three billion base pairs, but the protein-coding exons make up only about one and a half to two percent of it, not forty. The vast remainder consists of introns, regulatory sequences, repetitive sequences, and transposon remnants, which is also why the story of gene regulation always circles back to seemingly minor modifications like which stretch is methylated and which stretch is acetylated. Holding onto the two main threads of this chapter, switches and batteries, connects prokaryote to eukaryote, NAD to NADP, and electrostatics to packaging into a single chain of causation.

🧪 Practice on this topic: 19 questions Taiwan board past papers · in Chinese, with explanations
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★ High-yield points & traps from past exams (2 sections)
DNA Structure and Denaturation 8 questions
Exam pointCorrect answerCommon trap
Chargaff calculation (T=31%)C=G=19%Miscalculating C=31%
B-DNA parametersRight-handed, 10 bp/turn, 3.4 Å3.6 Å or left-handed (that is Z-DNA)
Nature of the replication primerRNA (synthesized by primase)Answering a DNA primer
AZT mechanism and targetLacks a 3'-OH → chain termination; target = reverse transcriptasePointing to protease/RNase H/host pol by mistake
Proofreading activity3'→5' exonuclease (Pol III)Confusing it with 5'→3' (primer removal)
Sealing nicks between DNA fragmentsDNA ligaseAnswering polymerase or helicase
Discontinuous fragments of the lagging strandOkazaki fragments (primers removed and gaps filled by Pol I)Thinking both strands are synthesized continuously
Repair of UV pyrimidine dimersNER; defect = XPAnswering BER
Postreplication mismatch repairMMR (MutS/L/H); defect = LynchAnswering NER
DNA glycosylase belongs toBERListing it as an MMR component by mistake
What is cleaved in the SOS responseLexA repressor (autocleavage)Answering that UvrA or RecA is degraded

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Regulation of Gene Expression 20 questions
Exam pointCorrect answerCommon trap
lac gene pairingZ = β-gal, Y = permease, A = transacetylaseSwapping Z/Y
Conditions for full lac operon expressionNo glucose + lactose present (CAP-cAMP↑)Thinking lactose alone turns it fully on
Direction of trp attenuationTrp high → termination; Trp low → continuationReversing the direction
Main reason expression levels differ among housekeeping genesPromoter affinity for RNA polAnswering degradation rate or inducers
What binds directly to an enhanceractivatorAnswering coactivator/TBP
Hotspot for DNA methylationCpG dinucleotidesAnswering TATA/CAAT box, telomeres
Effect of HDACDeacetylation → condensation → transcriptional repressionReversing it with HAT-mediated activation
Motif mediating dimerizationLeucine zipperAnswering zinc finger/β-barrel
Role of homeotic genesExpressed late; determine segmental structuresTreating them as genes for specific organs/traits (eye color/wings)

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03

Chromosomal Recombination, the Salvage Yard, and Fuel

~16 min · 108 past questions

V(D)J is "site-specific recombination," not homologous recombination — what it recognizes is the RSS, not a long stretch of homologous sequence.

Full text
Case

A Black boy suddenly clutches his chest in agony and breaks into a cold sweat after strenuous exercise; under the microscope his red cells are twisted into crescents — this is HbS polymerizing into fibers in its deoxygenated state, dragging the entire red cell into a sickle shape. A single-base point mutation, codon 6 of β-globin changing from GAG to GTG, Glu replaced by Val, rewrites an entire lifetime of disease. If the same blood smear also shows "target cells" and microcytic, hypochromic cells, the physician will suspect a different path — thalassemia: not the wrong amino acid substituted in, but simply too little of one chain being made.

From DNA recombination and chromosome packaging to a hemoglobinopathy triggered by a single point mutation; from nucleotide salvage and de novo synthesis to the central power plant of energy metabolism; and finally closing with the hormonal script of "feeding versus fasting" — this act strings together molecular biology's "structure and information" with biochemistry's "energy and matter." You will find that almost none of the test points are true islands; every one grows out of the roots of another.

Three Types of Recombination and V(D)J: The DNA Level vs. the RNA Level

⟶ Mechanism

DNA recombination comes in three types, and "whether homologous sequence is required" is the key that sorts them. Step one: homologous recombination requires a long stretch of homologous sequence as a template → used in meiotic crossing-over and the precise repair of double-strand breaks. Step two: site-specific recombination requires no homologous sequence, relying instead on enzymes that recognize specific signal sequences → V(D)J recombination is exactly this type: RAG1/RAG2 recognize the RSS (recombination signal sequence) → they cut and rejoin the V, D, and J segments of antibodies and the TCR → generating immune diversity. Step three: transposition/viral integration also requires no homology → the integrase of a retrovirus inserts the provirus into the host chromosome → both LTRs are retained → the LTR appears duplicated on either side of the insertion site, while gag/pol/env each occur only once.

⚠ Trap
✗🦦V(D)J recombination needs homologous sequence, right? "Recombination" sounds like it needs a similar copy to paste in!
✓🐻‍❄️That's only true for homologous recombination. V(D)J is site-specific recombination — RAG1/RAG2 recognize the RSS, not a long stretch of homology. While we're at it: V–J joining happens at the DNA level, while J–C is completed by RNA splicing; if a question says J–C is also DNA recombination, that is wrong.
★ Must-know
Recombination and V(D)J
  • Homologous recombination = requires homology (meiosis, double-strand break repair).
  • Site-specific recombination = requires no homology; V(D)J belongs here, RAG1/2 recognize the RSS.
  • Transposition/viral integration = requires no homology; after retroviral integration, the LTR is duplicated at both ends (gag/pol/env occur only once).
  • V–J occurs in DNA, J–C occurs via RNA splicing.
  • Traps: ① listing V(D)J as homologous recombination (wrong — it is site-specific); ② claiming gag/pol/env are also duplicated after integration (wrong — only the LTR is); ③ claiming J–C is also DNA recombination (wrong — it is RNA splicing).
Full text

There is another frequently tested directional detail regarding the diversity of antibody light chains: V–J joining is DNA-level recombination (RAG cuts and rejoins the genome); the J–C junction, by contrast, is accomplished by RNA splicing, not by another round of DNA recombination. The exam loves to claim "J–C is also DNA recombination" to trick you — remember one line: V to J happens in DNA, J to C happens in RNA.

Hemoglobinopathies, Telomeres, and the Cell Cycle: A Lifetime Decided by a Point Mutation

Sickle cell = one amino acid "substituted wrong" (qualitative); thalassemia = one chain "made in too small an amount" (quantitative).
⚠ Trap
✗🦦Is the telomere's single strand a three-stranded structure? It sounds like a three-strand braid!
✓🐻‍❄️It is the four-stranded G-quadruplex, not three-stranded, not five-stranded. Four guanines form a G-quartet through Hoogsteen hydrogen bonds, and multiple layers stack to build it. While we're at it, keep the direction for sickle cell versus thalassemia straight: sickle cell = one amino acid substituted wrong (qualitative); thalassemia = one chain made in too small an amount (quantitative).
★ Must-know
Hemoglobin, Telomeres, and the Cell Cycle
  • Sickle cell disease: β-globin Glu→Val point mutation (qualitative); β/α-thalassemia: reduced/absent chain synthesis (quantitative).
  • Telomere sequence = repeating TTAGGG; the single-stranded overhang forms a four-stranded G-quadruplex (not three- or five-stranded).
  • Telomerase shows high activity in stem/germ/cancer cells.
  • Terminally differentiated cells exit the cycle → G0 phase; the cycle = G1→S→G2→M.
  • Traps: ① describing sickle cell as "too little chain made" (wrong — it is a wrong substitution); ② listing the G-quadruplex as three- or five-stranded (wrong — it is four-stranded); ③ saying differentiated cells arrest in G1 (wrong — it is G0).
Full text · 1 table

Distinguishing the hemoglobinopathies comes down to the core contrast of "qualitative change vs. quantitative change":

DiseaseMolecular defectKey features
Sickle cell diseaseβ-globin codon 6 GAG→GTG (Glu→Val) point mutationOne amino acid substituted wrong (qualitative); deoxygenated HbS polymerizes into fibers → sickling; patients can survive to adulthood
β-thalassemiaβ-chain synthesis reduced/absent (usually splicing or promoter mutations)One chain is made in too small an amount (quantitative); compensatory γ-chain production (HbF↑)
α-thalassemiaα-chain gene deletionSevere forms: Hb Bart's, HbH

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The telomere is another corner the exam adores. Its sequence is repeating TTAGGG, with a G-rich single-stranded overhang at the 3' end; this single strand forms a G-quartet among four guanines through Hoogsteen hydrogen bonds, and multiple stacked layers form the G-quadruplex (a four-stranded structure) — not three-stranded, not five-stranded. It can suppress telomerase and block DNA-damage signaling, functioning as a stable structural feature. Every round of replication shortens the telomere, which also serves as the cell's aging clock; telomerase can re-lengthen telomeres and shows high activity in stem cells, germ cells, and cancer cells — this is one of the molecular bases of cancer cells' "immortality."

The sequence of the cell cycle is G1 → S (DNA replicated) → G2 → M (mitosis), and terminally differentiated cells (neurons, cardiomyocytes) exit the cycle and enter the G0 phase, which is why regenerative capacity is poor after myocardial infarction or central nervous system injury. This is also a frequently tested direction: do not answer "arrested in G1" or "still cycling."

Nucleotide Metabolism: Salvage, Synthesis, and Deamination Hotspots

⟶ Mechanism

Nucleotides can be obtained by two routes: de novo synthesis and nucleotide salvage. Salvage saves energy by attaching a ready-made purine onto PRPP (derived from the pentose phosphate pathway) to regenerate a nucleotide. Three key enzymes each handle a different base, and losing any one of them produces a distinct disease — and once this salvage route is broken, the causal chain runs as follows: step one, salvage is blocked → purines are pushed toward degradation → step two, they are oxidized by xanthine oxidase → step three, large amounts of uric acid are produced → step four, hyperuricemia, gout, or stones appear clinically. HGPRT deficiency (salvaging hypoxanthine and guanine) → Lesch-Nyhan syndrome: hyperuricemia, intellectual disability, and the classic self-mutilating hand-biting. APRT deficiency (salvaging adenine) → adenine is oxidized by XO into insoluble 2,8-dihydroxyadenine → kidney stones. Excessive PRPP synthetase activity → PRPP accumulates, de novo synthesis accelerates → uric acid↑ → gout.

Lesch-Nyhan is not de novo synthesis breaking down — it is salvage breaking down, which actually makes de novo synthesis accelerate instead.
⚠ Trap
✗🦦Is Lesch-Nyhan so short on purines — and so prone to self-mutilation — because de novo synthesis is broken too?
✓🐻‍❄️That's a common misunderstanding. De novo synthesis is completely normal — it actually accelerates because salvage has stalled; the problem is that the salvage route is broken, so hypoxanthine and guanine are all pushed toward degradation and oxidized by xanthine oxidase into a large amount of uric acid. So the core issue is uric acid excess, not purine deficiency.
★ Must-know
The Three Purine Salvage Enzymes
  • HGPRT deficiency = Lesch-Nyhan: salvage blocked, uric acid↑, intellectual disability, self-mutilation; de novo synthesis is intact and even accelerated.
  • APRT deficiency = adenine is oxidized by XO into 2,8-DHA → kidney stones.
  • Overactive PRPP synthetase = de novo synthesis↑ → uric acid↑ → gout.
  • Xanthine has no salvage enzyme and can only be oxidized by XO into uric acid.
  • Allopurinol/febuxostat inhibit XO; an acute flare is treated with NSAIDs/colchicine/steroids, never started with a urate-lowering drug.
  • Traps: ① describing Lesch-Nyhan as "de novo broken" (wrong — salvage is broken, and de novo actually accelerates); ② claiming xanthine can also be salvaged (wrong — no enzyme exists for it); ③ giving allopurinol first in acute gout (wrong — it would provoke a flare).
Purine breakdown gets stuck at poorly soluble uric acid (trouble follows); pyrimidine breakdown ends in small water-soluble molecules (clean and tidy).
⚠ Trap
✗🦦Supplementing thymine should fix orotic aciduria, right? They're both pyrimidines anyway!
✓🐻‍❄️Stepped right on that trap. Thymine is a deoxy sugar and cannot regenerate UTP/CTP, so it cannot bypass the UMP synthase defect. The only thing that works is uridine — it is already a nucleoside, sits downstream of the defect, can be phosphorylated into UMP, and simultaneously provides feedback to suppress orotic acid. Adenosine (a purine) and allopurinol (a gout treatment) are both trap answers.
★ Must-know
Pyrimidines, dTMP, Deamination, and End Products
  • Orotic aciduria (part of the same family of metabolic defects as galactosemia) = UMP synthase deficiency; supplementing uridine bypasses the defect and provides feedback to suppress orotic acid; it does not improve with folate/B12.
  • dUMP→dTMP is carried out by thymidylate synthase (methyl donor = 5,10-methylene-THF); 5-FU inhibits thymidylate synthase, methotrexate inhibits DHFR.
  • The difference between thymine and uracil = one extra methyl group at the 5-position.
  • 5-methylcytosine deaminates → thymine (mutational hotspot); cytosine→uracil; adenine→hypoxanthine; guanine→xanthine.
  • End products: purines → uric acid; pyrimidines → β-alanine / β-aminoisobutyric acid.
  • Traps: ① supplementing thymine or adenosine for orotic aciduria (wrong — it should be uridine); ② claiming 5-mC deaminates to uracil (wrong — it becomes thymine); ③ listing uric acid as a pyrimidine breakdown product (wrong — uric acid comes from purines).
Full text

Lesch-Nyhan carries a frequently tested directional trap: the de novo synthesis pathway is intact and still functions; if a question states "Lesch-Nyhan cannot synthesize guanine de novo," that is a false statement. In fact, once the salvage route is broken, PRPP accumulates and feedback inhibition of IMP/GMP weakens, so de novo synthesis actually accelerates — pushing uric acid even higher. Also remember why xanthine cannot be salvaged: it has no corresponding phosphoribosyltransferase, so it can only be oxidized by XO into uric acid and excreted.

The treatment connection is also a gimme: allopurinol/febuxostat inhibit xanthine oxidase, reducing uric acid production (allopurinol is metabolized in the body to oxypurinol, which then binds XO) → used for chronic gout and hyperuricemia; an acute gout flare, by contrast, is treated with NSAIDs/colchicine/steroids, never started with a urate-lowering drug (which would provoke a flare) — this direction is also a favorite on the exam.

On the pyrimidine side, the representative disease is orotic aciduria: the missing enzyme is UMP synthase (which carries two active sites, orotate phosphoribosyltransferase + OMP decarboxylase) — pyrimidine de novo synthesis is blocked, orotic acid accumulates (and is excreted in urine), UMP/UTP/CTP become insufficient, red cell maturation is affected, and megaloblastic anemia appears — and it does not improve with folate or B12. Treatment is supplementation with uridine: it is already a nucleoside, downstream of the UMP synthase defect, so the body phosphorylates it via uridine kinase into UMP, bypassing the defect, while UMP/UTP simultaneously provide negative feedback on CPS II, suppressing orotic acid. Supplementing with thymine (deoxy, cannot regenerate UTP), adenosine (a purine, the wrong pathway), or allopurinol (a gout treatment) is all ineffective — only uridine works.

The synthesis of dTMP is also a gimme: thymidylate synthase uses 5,10-methylene-THF as the methyl donor to methylate dUMP into dTMP — this is exactly why thymine has one extra 5-position methyl group compared with uracil. The clinical connection: 5-FU inhibits thymidylate synthase, and methotrexate inhibits DHFR (cutting off the THF supply); both prevent dTMP from being made, halting DNA synthesis, which is why they serve as anticancer/antimetabolite drugs.

Deamination reactions are another essential corner: cytosine deaminates to uracil; 5-methylcytosine deaminates to thymine — this one is the most dangerous, because the product is a "normal" base and the repair system simply cannot tell which side is wrong, making 5-mC a mutational hotspot in the genome. Adenine→hypoxanthine, guanine→xanthine. Finally, do not forget the direction of the end products: purine breakdown → uric acid (poorly soluble; excess crystallizes as gout/stones); pyrimidine breakdown → small water-soluble molecules (cytosine/uracil→β-alanine; thymine→β-aminoisobutyric acid).

PDH, the TCA Cycle, and the Electron Transport Chain: The Central Power Plant

⟶ Mechanism

The pyruvate dehydrogenase (PDH) complex is the checkpoint between glycolysis and the TCA cycle. Step one: it operates only under aerobic conditions, in the mitochondrial matrix. Step two: it is composed of 3 enzymes and 5 coenzymes — E1 (pyruvate dehydrogenase) requires TPP (B1); E2 (dihydrolipoyl transacetylase) requires lipoic acid + CoA (B5); E3 (dihydrolipoyl dehydrogenase) requires FAD (B2) + NAD⁺ (B3). Step three: the five coenzymes are TPP, lipoic acid, CoA, FAD, and NAD⁺ — biotin (B7) belongs to carboxylases, and CoQ belongs to the electron transport chain; neither is a PDH coenzyme. Step four: B1 deficiency → E1 fails → pyruvate/lactate accumulate → since neurons depend heavily on glucose oxidation, they are hit first, producing Wernicke-Korsakoff syndrome and beriberi clinically.

⟶ Mechanism

The Mitchell chemiosmotic hypothesis of the electron transport chain is the convergence point of the entire energy metabolism system. Step one: electrons flow from NADH → Complex I → CoQ → Complex III → Cyt c → Complex IV → O₂. Step two: Complexes I, III, and IV pump H⁺ from the matrix into the intermembrane space, establishing a transmembrane proton gradient. Step three: FADH₂ enters at Complex II, skipping one pumping station, so it yields less ATP. Step four: Complex IV (cytochrome c oxidase) is the only one that hands electrons directly to O₂, generating water. Step five: ATP synthase (Complex V) lets H⁺ flow back down its gradient, driving ATP synthesis. Current ATP yields: about 2.5 per NADH and about 1.5 per FADH₂ (the older values of 3/2 are no longer used).

⚠ Trap
✗🦦Cyanide poisoning should block Complex I, right? Either way it stops the electron transport chain!
✓🐻‍❄️Off by a step. CN⁻, CO, azide, and H₂S all block Complex IV (cytochrome c oxidase), so the electron transport chain reaches its very last station, the electrons cannot be handed off, and O₂ goes unused. While we're at it: rotenone blocks I, antimycin A blocks III, oligomycin blocks ATP synthase. 2,4-DNP is an uncoupler — oxygen consumption actually increases, heat production↑, ATP↓ — don't confuse its direction with that of the inhibitors.
★ Must-know
PDH, the TCA Cycle, the ETC, and ROS
  • PDH = 3 enzymes, 5 coenzymes (TPP, lipoic acid, CoA, FAD, NAD⁺); biotin/CoQ are neither. B1 deficiency → Wernicke-Korsakoff syndrome, beriberi.
  • One turn of the TCA cycle: 2 CO₂, 3 NADH, 1 FADH₂, 1 GTP; net OAA consumption = 0; rate-limiting enzyme = isocitrate DH.
  • Substrate-level phosphorylation = occurs in both the cytosol and the mitochondrion; oxidative phosphorylation = only at the inner mitochondrial membrane.
  • Electron pathway: I → CoQ → III → Cyt c → IV → O₂; the one that hands off directly to O₂ = Complex IV; FADH₂ enters at II.
  • Pumping H⁺: matrix → intermembrane space (I, III, IV); ATP yield = NADH 2.5 / FADH₂ 1.5.
  • Inhibitors (oxygen consumption↓): rotenone (I), antimycin A (III), CN⁻/CO/H₂S/azide (IV), oligomycin (V).
  • Uncouplers (oxygen consumption↑, heat production↑, ATP↓): 2,4-DNP, aspirin overdose, UCP1.
  • Clearing H₂O₂ = glutathione peroxidase; reductase uses NADPH to recharge GSH.
  • Acetyl-CoA: a high-energy thioester bond.
  • Traps: ① listing biotin or CoQ among the PDH coenzymes (wrong — neither is); ② claiming cyanide blocks Complex I (wrong — it is IV); ③ saying 2,4-DNP decreases oxygen consumption (wrong — it rises instead).
Full text

Think of all of energy metabolism as a power plant: glucose is broken down glycolytically in the cytosol into pyruvate → it enters the mitochondrion where PDH converts it into acetyl-CoA → it enters the TCA cycle and is burned into CO₂, producing NADH and FADH₂ → these electron carriers deliver their electrons into the electron transport chain, which pumps H⁺ across the membrane, and finally ATP synthase harvests it as ATP. Every station along the way is fair game for the exam.

PDH also carries a regulatory trap: acetyl-CoA, NADH, and ATP↑ (well-fed, energy-replete) → activate PDH kinase, which phosphorylates and shuts PDH off; pyruvate, ADP, Ca²⁺, and insulin → promote the phosphatase that switches PDH back on. This is also the connection point for how HIF-1 later suppresses PDH via PDK1 under hypoxia.

The product ledger for one turn of the TCA cycle is also a favorite: 2 CO₂, 3 NADH, 1 FADH₂, 1 GTP, with net consumption of oxaloacetate (OAA) equal to 0 — it works like a runway, with acetyl-CoA as the plane; once the runway has served its purpose, it is handed back. The rate-limiting enzyme of the TCA cycle is isocitrate dehydrogenase (the three irreversible steps being citrate synthase, isocitrate DH, and α-KG DH), all of which are inhibited by NADH/ATP and activated by ADP/Ca²⁺ — energy abundance hits the brakes, energy scarcity lets it proceed.

Do not confuse the two types of phosphorylation either: substrate-level phosphorylation occurs in both the cytosol and the mitochondrion — for example, PGK and pyruvate kinase in glycolysis, and succinyl-CoA synthetase in the TCA cycle (producing GTP); oxidative phosphorylation occurs only at the inner mitochondrial membrane, relying on the electron transport chain and ATP synthase.

Inhibitors and uncouplers run in opposite directions, and testing them together is the cruelest trick of all: inhibitors stop the ETC → oxygen consumption↓, ATP↓ (rotenone blocks I, antimycin A blocks III, CN⁻/CO/H₂S/azide block IV, oligomycin blocks V); uncouplers let H⁺ leak back → oxygen consumption still↑, even higher, ATP↓, heat production↑ (2,4-DNP, aspirin overdose, thermogenin/UCP1 in brown fat). The site of action of CN⁻ poisoning is Complex IV, not Complex I; the effect of 2,4-DNP is increased oxygen consumption, increased heat production, and decreased ATP, not inhibition of the ETC with decreased oxygen consumption — get these two directions reversed and you are finished.

ROS and antioxidant defense close out this station. Electrons leaking from the electron transport chain generate ROS, and three enzymes divide the labor: SOD (superoxide dismutase) converts O₂•⁻ into H₂O₂; glutathione peroxidase converts H₂O₂ into water (while oxidizing GSH into GSSG); glutathione reductase uses NADPH to reduce GSSG back into GSH (recharging it, not clearing H₂O₂ directly). The memory chain: SOD turns superoxide into hydrogen peroxide → GSH peroxidase turns hydrogen peroxide into water → reductase uses NADPH to recharge GSH. It is glutathione peroxidase, not SOD, that clears H₂O₂ — SOD handles only superoxide.

Feeding and Fasting, HIF-1, and Glycosylation: Scripts for Two States

⟶ Mechanism

The causal chain from a low-carbohydrate, high-protein diet → ketosis → acidosis is remarkably clean. Step one: little glucose → insulin low, glucagon high. Step two: fat is mobilized heavily → β-oxidation↑ → large amounts of acetyl-CoA. Step three: acetyl-CoA exceeds the TCA cycle's processing capacity (and OAA is being diverted to gluconeogenesis) → the liver converts it into ketone bodies (acetoacetate, β-hydroxybutyrate, acetone). Step four: acetoacetate and β-hydroxybutyrate are acids → blood ketones↑ → a high-anion-gap metabolic acidosis (not alkalosis). Step five: meanwhile, amino acids from protein are deaminated and excreted as urea → urea increases, and fat is being consumed rather than accumulated.

A low-carbohydrate, high-protein diet causes "acidosis," "increased urea," and "decreased fat" — reverse any of these three directions in memory, and you are guaranteed to lose points.
⚠ Trap
✗🦦The patient's urine ketones are negative, so this can't be DKA, right? I checked the test strip!
✓🐻‍❄️That's exactly the blind spot of the nitroprusside strip. β-hydroxybutyrate is usually the most abundant ketone body, but the strip only measures acetoacetate and acetone, not β-OHB, so urine ketones in early DKA can be a false negative. Never rule out DKA just because the strip is negative — check the blood gas, the anion gap, and blood ketones (β-OHB is the one that's measured directly).
★ Must-know
Feeding/Fasting, HIF-1, and Glycosylation
  • Fed = insulin-dominant (storage); fasting = glucagon-dominant (mobilization, lipolysis, ketogenesis).
  • Low-carbohydrate, high-protein → β-oxidation↑ → ketone bodies↑ → high-anion-gap metabolic acidosis (not alkalosis); urea↑; fat↓.
  • β-OHB is the most abundant; the nitroprusside strip cannot detect β-OHB (urine ketones may be falsely negative).
  • The liver makes but does not use ketone bodies (lacking SCOT/thiophorase); ketone bodies serve the brain, heart, and muscle.
  • HIF-1↑ → PDK1↑ → PDH↓ → glycolysis, ROS↓ (decreased) (one of the Warburg mechanisms).
  • N-glycosylation attaches to Asn (amide nitrogen), consensus Asn-X-Ser/Thr (X≠Pro), initiated by GlcNAc, in the ER; O-glycosylation attaches to Ser/Thr (hydroxyl), initiated by GalNAc, in the Golgi.
  • Cysteine is not a standard glycosylation site.
  • Traps: ① describing a low-carb, high-protein diet as causing alkalosis/decreased urea (wrong — it is acidosis/increased urea); ② ruling out DKA on a negative strip (wrong — β-OHB cannot be detected); ③ saying HIF-1 activation leaves ROS unchanged (wrong — it decreases).
Full text

The final station pulls all of metabolism back to the clinic. In the fed state, insulin dominates — glycolysis, glycogen and fat synthesis, tissue glucose uptake; in the fasting/starved state, glucagon dominates — glycogenolysis, gluconeogenesis, fat mobilization, β-oxidation, ketogenesis. Summed up in one line: insulin is the "storage hormone," glucagon is the "mobilization hormone."

Two high-frequency traps deserve special mention: β-hydroxybutyrate is usually the most abundant ketone body (especially when tissue is hypoxic or NADH is high), but the traditional nitroprusside test strip measures only acetoacetate/acetone and cannot detect β-OHB, so urine ketones in early DKA may appear falsely low — never rule out DKA just because urine ketones are negative. The other: the liver can "make" ketone bodies but cannot "use" them" — it lacks thiophorase (SCOT), so the ketone bodies it produces are meant for the brain, heart, and muscle to use; the liver does not burn them itself.

HIF-1 (hypoxia-inducible factor-1) is the master metabolic switch under hypoxia: under low oxygen, HIF-1 is stabilized and activated → upregulates PDK1 (pyruvate dehydrogenase kinase 1) → inhibits PDH → pyruvate no longer enters the TCA cycle and is instead routed through glycolysis to produce lactate. The consequence is that mitochondrial oxidative phosphorylation↓ → electron transport chain activity↓ → ROS production↓ (decreased, not unchanged — a frequently tested directional trap). This is one of the molecular bases of the Warburg effect in tumors (favoring glycolysis even in the presence of oxygen).

Finally, glycosylation: N-glycosylation attaches to the amide nitrogen of asparagine (Asn) — initiated with GlcNAc, occurring in the ER, with the consensus sequence Asn-X-Ser/Thr (X≠Pro), added co-translationally via the dolichol-P carrier; O-glycosylation attaches to the hydroxyl of serine (Ser) or threonine (Thr) — usually initiated with GalNAc, occurring in the Golgi apparatus. Cysteine has an –SH group available for other modifications, but is not a standard glycosylation site; glutamine, arginine, aspartate, and glutamate all lack a standard glycan-linkage mechanism. The mnemonic is simple: N attaches to "N" (the nitrogen of Asn); O attaches to "OH" (the hydroxyl of Ser/Thr).

♪ Memory hook

Sickle cell is one amino acid substituted wrong, thalassemia is one chain made too little; purine breakdown gets stuck at uric acid, pyrimidine breakdown stays clean.

Read-aloud version (copy the whole thing into any TTS)

A Black boy suddenly clutches his chest in agony and breaks into a cold sweat after strenuous exercise; under the microscope his red cells are twisted into crescents — this is deoxygenated HbS polymerizing and dragging the cells into a sickle shape. A single-base point mutation, codon six of beta-globin changing from GAG to GTG, glutamate replaced by valine, rewrites an entire lifetime of disease. If the same blood smear also shows target cells and microcytic, hypochromic cells, that points instead to thalassemia, which is not a wrong substitution but simply too little of one chain being made. One is a qualitative change, the other a quantitative change, and that contrast is a microcosm of this whole chapter, because this act has to string structural information and energetic matter into a single chain.

Let's keep the three types of recombination straight: homologous recombination requires a long stretch of homologous sequence and is used in meiotic crossing-over and the precise repair of double-strand breaks; site-specific recombination requires no homology and relies on enzymes that recognize specific signal sequences — V(D)J is exactly this type, with RAG1 and RAG2 recognizing the RSS and cutting and rejoining the V, D, and J segments of antibodies and T-cell receptors to generate immune diversity; transposition and viral integration likewise require no homology, and when a retrovirus's integrase inserts into the host, both LTRs are retained, so the LTR appears duplicated on either side of the insertion site while gag, pol, and env each occur only once. There is one more directional detail about antibody light chains: V to J happens at the DNA level, J to C happens by RNA splicing, and the exam loves to claim that J to C is also DNA recombination, which is wrong. The core contrast in the hemoglobinopathies is qualitative versus quantitative change: sickle cell disease comes from codon six of beta-globin changing from GAG to GTG, glutamate replaced by valine, one amino acid substituted wrong, and deoxygenated HbS polymerizes into fibers that pull the cell into a sickle shape, with patients able to survive into adulthood; beta-thalassemia comes from reduced or absent beta-chain synthesis, usually from splicing or promoter mutations, with the gamma chain compensating so fetal hemoglobin rises; alpha-thalassemia comes from deletion of the alpha-chain genes, with severe forms producing Hb Bart's or HbH. The telomere sequence is repeating TTAGGG, with a G-rich single-stranded overhang at the three-prime end; this strand forms a G-quartet among four guanines through Hoogsteen hydrogen bonds, and multiple stacked layers form the four-stranded G-quadruplex, not three-stranded and not five-stranded. Every round of replication shortens the telomere, serving as an aging clock; telomerase can re-lengthen it and shows high activity in stem cells, germ cells, and cancer cells, which is the molecular basis of cancer cell immortality. The cycle runs from G1 into S, then G2, then M, and terminally differentiated neurons and cardiomyocytes exit the cycle into G0, which is why damage to them is so hard to regenerate.

Nucleotides have two routes: making them from scratch, and salvage recovery. Salvage saves energy by attaching a ready-made purine onto PRPP to regenerate a nucleotide; three enzymes each handle a different base, and losing any one produces a distinct disease. HGPRT salvages hypoxanthine and guanine, and its deficiency is Lesch-Nyhan syndrome: once the salvage route is broken, purines are all pushed toward degradation and oxidized by xanthine oxidase into a large amount of uric acid, producing hyperuricemia, intellectual disability, and self-mutilating hand-biting clinically. One directional trap deserves special mention: de novo synthesis is intact and even accelerates because PRPP accumulates and feedback from IMP and GMP weakens, so the core issue is uric acid excess, not purine deficiency. APRT deficiency lets adenine be oxidized into insoluble 2,8-dihydroxyadenine, causing kidney stones; overactive PRPP synthetase lets PRPP accumulate, accelerating de novo synthesis and raising uric acid to produce gout. Xanthine has no corresponding phosphoribosyltransferase, so it cannot be salvaged and can only be oxidized into uric acid; for treatment, allopurinol and febuxostat inhibit xanthine oxidase to reduce uric acid production, while an acute flare is treated with NSAIDs and colchicine or steroids, never started with a urate-lowering drug, or it will provoke an attack. On the pyrimidine side, orotic aciduria lacks UMP synthase, so orotic acid accumulates and UMP, UTP, and CTP become insufficient, producing megaloblastic anemia that does not improve with folate or B12; the treatment is to supplement uridine, because it is already a nucleoside and, downstream of the defect, can be phosphorylated into UMP to bypass it while simultaneously providing feedback to suppress orotic acid — supplementing thymine, adenosine, or allopurinol is all ineffective. dUMP becomes dTMP through thymidylate synthase using 5,10-methylene-THF as the methyl donor, which is why thymine has one extra methyl group at the 5-position compared with uracil; 5-FU inhibits thymidylate synthase, and methotrexate inhibits DHFR, cutting off THF — both prevent dTMP from being made. Among the deamination reactions, 5-methylcytosine deaminating into thymine is the most dangerous, because the product is a normal base that the repair system cannot tell is wrong, which is why 5-methylcytosine is a mutational hotspot. Purine breakdown gets stuck at poorly soluble uric acid, so trouble follows; pyrimidine breakdown ends in the water-soluble beta-alanine and beta-aminoisobutyric acid, so it stays clean.

Energy metabolism is a power plant. Glucose is broken down glycolytically in the cytosol into pyruvate, which enters the mitochondrion where pyruvate dehydrogenase converts it into acetyl coenzyme A, which enters the citric acid cycle and is burned into carbon dioxide, producing NADH and FADH₂; the electrons are sent into the electron transport chain, which pumps hydrogen ions across the membrane, and finally ATP synthase harvests it as ATP. The pyruvate dehydrogenase complex operates only under aerobic conditions in the matrix; its three enzymes and five coenzymes are TPP, lipoic acid, coenzyme A, FAD, and NAD — biotin belongs to the carboxylases and coenzyme Q belongs to the electron transport chain, and neither is a pyruvate dehydrogenase coenzyme. B1 deficiency disables E1, and pyruvate and lactate accumulate, producing Wernicke encephalopathy and beriberi. One turn of the citric acid cycle yields two carbon dioxides, three NADH, one FADH₂, and one GTP, with net OAA consumption at zero, just like a runway that gets handed back once used; the rate-limiting enzyme is isocitrate dehydrogenase. Substrate-level phosphorylation occurs in both the cytosol and the mitochondrion, while oxidative phosphorylation occurs only at the inner mitochondrial membrane. The electron pathway has NADH entering Complex I and FADH₂ entering Complex II, passing through CoQ, Complex III, cytochrome c, and Complex IV, which hands the electrons to oxygen to form water; the ones that pump hydrogen are Complex I, Complex III, and Complex IV, from the matrix toward the intermembrane space; current ATP yield is about two point five per NADH and about one point five per FADH₂. Inhibitors stop the electron transport chain, lowering both oxygen consumption and ATP: rotenone blocks Complex I, antimycin A blocks Complex III, cyanide and carbon monoxide and hydrogen sulfide and azide block Complex IV, and oligomycin blocks Complex V; uncouplers let hydrogen ions leak back, so oxygen consumption actually rises while ATP falls and heat production rises — 2,4-dinitrophenol, aspirin overdose, and UCP1 are all examples, and the direction is opposite, so do not reverse it in memory. Antioxidant defense has superoxide dismutase turning superoxide into hydrogen peroxide, glutathione peroxidase turning hydrogen peroxide into water, and the reductase using NADPH to turn oxidized glutathione back into the reduced form to recharge it; it is glutathione peroxidase, not superoxide dismutase, that clears hydrogen peroxide. Acetyl coenzyme A carries a high-energy thioester bond. Finally come the scripts for the two states: in the fed state insulin dominates storage, and in the fasted state glucagon dominates mobilization; a low-carbohydrate, high-protein diet raises beta-oxidation and raises ketone bodies, producing a high-anion-gap metabolic acidosis, not alkalosis, along with increased urea and decreased fat. Beta-hydroxybutyrate is the most abundant ketone, but the nitroprusside strip cannot detect it, so urine ketones in early diabetic ketoacidosis may be falsely negative; the liver can make ketone bodies but cannot use them, because it lacks thiophorase, so ketone bodies serve the brain, heart, and muscle. Hypoxia-inducible factor 1, once stabilized under hypoxia, upregulates PDK1, which inhibits pyruvate dehydrogenase so that pyruvate no longer enters the citric acid cycle and instead goes through glycolysis to produce lactate; oxidative phosphorylation falls and reactive oxygen species decrease rather than staying unchanged, which is one of the molecular bases of the Warburg effect. Glycosylation has two routes: N-linked glycosylation attaches to the amide nitrogen of asparagine, with the consensus sequence Asn plus X plus Ser or Thr, where X cannot be Pro, initiated by N-acetylglucosamine in the endoplasmic reticulum; O-linked glycosylation attaches to the hydroxyl of serine or threonine, initiated by N-acetylgalactosamine in the Golgi apparatus; cysteine is not a standard glycosylation site. From a single point mutation to an entire power plant, every test point in this chapter grows on the same chain of causation.

🧪 Practice on this topic: 69 questions Taiwan board past papers · in Chinese, with explanations
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★ High-yield points & traps from past exams (3 sections)
Nucleotide Metabolism 16 questions
Exam pointCorrect answerCommon trap
Disease and mechanism of HGPRT deficiencyLesch-Nyhan: salvage blocked, uric acid↑, self-mutilationThinking de novo synthesis is also broken
Which base cannot be salvagedXanthine (no corresponding enzyme)Thinking all bases can be recycled
Treatment of orotic aciduriaGive uridine to bypass the defectChoosing thymine/adenosine/allopurinol by mistake
End products of purine vs pyrimidine catabolismPurines → uric acid; pyrimidines → β-alanine / β-aminoisobutyric acidSwapping the end products
Enzyme and cofactor for dUMP→dTMPthymidylate synthase + 5,10-methylene-THFOverlooking folate's role as the donor
Difference between thymine and uracilThymine has an extra 5-methyl groupAnswering a difference in the sugar or amino group
Deamination of 5-methylcytosineProduces thymine → mutation hotspotAnswering uracil
Overactive PRPP synthetasede novo synthesis↑ → uric acid↑ → goutConfusing it with APRT deficiency (2,8-DHA stones)

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Citric Acid Cycle and Oxidative Phosphorylation 37 questions
Exam pointCorrect answerCommon trap
Composition of the PDH complex3 enzymes, 5 coenzymes (TPP/lipoic acid/CoA/FAD/NAD⁺)Taking biotin or CoQ as a coenzyme
CO₂/FADH₂ produced per turn of the TCA cycle2 CO₂, 1 FADH₂, 3 NADH, 1 GTPMiscounting CO₂ or FADH₂
Net consumption of OAA in the TCA cycle0 (regenerated; acts in catalytic amounts)Thinking OAA is consumed
Where substrate-level phosphorylation occursBoth cytoplasm and mitochondriaThinking only in the cytoplasm
Location of oxidative phosphorylationInner mitochondrial membrane onlyConfusing it with substrate-level phosphorylation
Direction of H⁺ pumpingMatrix → intermembrane space (Complex I/III/IV)Writing the direction in reverse
What passes electrons directly to O₂Complex IV (cytochrome c oxidase)Choosing Cyt c or CoQ by mistake
Enzyme that removes H₂O₂glutathione peroxidaseChoosing SOD (handles only superoxide) by mistake
Bond in acetyl-CoAThioester bond (high-energy)Answering ester or amide bond
Rate-limiting enzyme of the TCA cycleisocitrate dehydrogenaseAnswering citrate synthase
ATP yield per NADH/FADH₂2.5 / 1.5 (current values)Still writing the old values 3/2
Site of action in cyanide (CN⁻) poisoningComplex IVAnswering Complex I
Action of 2,4-DNPUncoupling (O₂ consumption↑, heat↑, ATP↓)Thinking it inhibits the ETC and lowers O₂ consumption
Site of action of oligomycinATP synthase (Complex V)Answering Complex IV

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Nutrition and Integration of Metabolism 4 questions
Exam pointCorrect answerCommon trap
Metabolic outcome of a low-carbohydrate, high-protein dietβ-oxidation↑ → ketone bodies↑ → metabolic acidosis, urea↑Answering alkalosis, decreased urea, fat accumulation
Effect of HIF-1 activation on ROSDecreased (PDK1↑ inhibits PDH → oxidative phosphorylation↓)Thinking ROS are unaffected or increased
Metabolic effects of HIF-1Shift toward glycolysis (Warburg); pyruvate does not enter the TCA cycleOverlooking PDK1 as the mediator
Attachment site of N-glycosylationAsn (amide nitrogen), initiated with GlcNAcAnswering Ser/Thr
Attachment site of O-glycosylationSer or Thr (hydroxyl group)Answering cysteine or Asn
Dominant hormone in the fed vs fasting stateFed: insulin; fasting: glucagonReversing them
Ketone bodiesacetoacetate, β-hydroxybutyrate, acetoneMistaking lactate for a ketone body
Most abundant ketone body / dipstick blind spotβ-hydroxybutyrate is the most abundant; nitroprusside dipsticks do not detect β-OHBThinking a negative urine ketone test rules out DKA
The liver and ketone bodiesThe liver produces them but cannot use them (lacks SCOT)Thinking the liver also burns ketones
N-glycosylation consensus sequenceAsn-X-Ser/Thr (X≠Pro)Omitting X≠Pro

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04

Gas Pedal, Brakes, and Proofreader: The Dual Command of Cancer Genes and Vitamins

~10 min · 36 past questions

The essence of synthetic lethality: a BRCA-deficient tumor already has one leg of homologous recombination cut off; add a PARP inhibitor to cut off its last remaining single-strand-repair route — the tumor dies, and normal cells are unaffected.

Full text
Case

A 42-year-old woman's colonoscopy finds a single tumor in the right ascending colon — not a field of polyps, but "one lonely mass." Yet her family history is heavy: her mother developed endometrial cancer at 45, and her uncle died of colon cancer at 48. Immunohistochemistry comes back — MLH1 protein absent, MSI-high. That same week, in another bed, an infant is diagnosed with a retinoblastoma in each eye; the father mentions that he too had an eye removed as a child. The two stories look completely unrelated, yet they are really asking the same question: which of the parts controlling cell growth has actually failed?

The entire exam logic of cancer genetics falls into place once you fix one car metaphor in your mind. A gas pedal stuck to the floor is an oncogene; brakes that fail are a tumor suppressor; a proofreader who quits is a DNA repair gene. Three types of parts map onto three inheritance patterns — it looks like something to memorize by force, but it grows naturally on its own once you understand "why." In this chapter, we follow this car metaphor all the way through to the vitamin cofactor list, which looks scattered but is equally governed by logic — and by the end you will find that even why a B12 deficiency cannot be treated with folate alone traces back to the very same causal chain of "mechanism determines clinical presentation."

The Nature of the Three Parts: Why the Inheritance Patterns Differ

⟶ Mechanism

The sorting of cancer-gene inheritance patterns follows just one physical logic. Step one: a normal gene that promotes growth is called a proto-oncogene → a mutation that produces "gain-of-function" turns it into an oncogene → one damaged allele is enough (it takes only one foot to press the gas pedal) → at the cellular level this behaves as dominant. Step two: brakes work the opposite way → both brake pads must fail before the car can roll → a tumor suppressor is recessive at the cellular level → requiring Knudson's "two-hit" model. Step three: a DNA repair gene is the proofreader → its departure does not cause an immediate crash → but every part in the car starts failing faster → the mutation rate skyrockets → other cancer genes fail one after another → the phenotype resembles a "mutator," and most repair genes also follow the two-hit pattern.

⚠ Trap
✗🦦If tumor suppressors all need a two-hit, how can Li-Fraumeni carry just one bad TP53 and still develop a pile of cancers so early?
✓🐻‍❄️That's exactly the TP53 trap. p53 is only active as a tetramer, and the mutant copy "drags down" the normal copy along with it — that's called dominant-negative. So even with just one germline mutation, Li-Fraumeni syndrome already has most of its function wrecked. The rule is two-hit; TP53 is the exception.
★ Must-know
  • Oncogene: gain-of-function, dominant (one allele is enough for disease). Metaphor = gas pedal stuck to the floor.
  • Tumor suppressor: loss-of-function, recessive, two-hit (RB is the prototype; LOH achieves the second hit).
  • DNA repair gene: a mutator, usually also two-hit.
  • Exception: TP53's dominant-negative effect lets Li-Fraumeni show a clear cancer increase with a single germline mutation; some suppressors also show haploinsufficiency.
  • "The most commonly mutated tumor suppressor" = TP53, not RB.
  • Traps: ① listing oncogenes as recessive (wrong — they are dominant); ② claiming RB is also dominant-negative (wrong — that is TP53); ③ listing RB as the most commonly mutated (wrong — it is TP53).
Full text

Once you understand this causal chain, three things fall into place automatically. Why does hereditary retinoblastoma present bilaterally in early childhood? Because the child already carries one damaged RB allele inherited from a parent — the first hit is a germline mutation present from birth — so all it takes is any single retinal cell later acquiring a second hit (often through LOH, loss of heterozygosity) for a tumor to grow. In sporadic cases, both hits must happen to strike the very same cell after birth, which is far less likely, so the disease presents later and unilaterally. The RB gene is precisely the prototype of the two-hit hypothesis.

But there is a trap frequently laid here: "all tumor suppressors require a two-hit" is the general rule, not an absolute one. The mutant protein of TP53 drags the normal p53 down into an immobile tetramer — this is called dominant-negative — so Li-Fraumeni syndrome shows a clear increase in cancer risk with only a single germline mutation. This looks like it breaks the rule, but really the mutant protein is "dragging down" the normal copy along with it.

Lynch (HNPCC) and FAP: The Causal Divide Between Two Faces of Colon Cancer

⟶ Mechanism

Lynch syndrome traces a complete causal chain from gene mutation to drug efficacy. Step one: once an MMR gene (MLH1, MSH2, MSH6, PMS2) is damaged in the germline → every cell division leaves mismatched bases with no one to proofread them. Step two: slippage errors appear in microsatellite regions (repetitive sequences) → this is MSI-high. Step three: mutations accumulate rapidly → tumors emerge quickly → onset is often before age 50. Step four: because the errors accumulate "drop by drop" rather than as a field of polyps → Lynch tumors mostly grow "one at a time," completely unlike FAP. Step five: MSI-high tumors carry large numbers of neoantigens → the immune system ought to recognize them → but the tumor counters using PD-L1 → so once anti-PD-1 (pembrolizumab) releases that brake, the effect is especially good.

⚠ Trap
✗🦦The patient has only one tumor in the right colon, plus a family history — I'll go with FAP, they're both colon cancer family syndromes anyway!
✓🐻‍❄️Stepped right on that trap. FAP's signature is a field of polyps, with the entire colon looking paved with stones; Lynch, by contrast, has no abundance of polyps and favors the right-sided (proximal) colon plus endometrial cancer. Remember "Lynch = one, FAP = a field" and you won't go wrong. Lynch's causative genes are the MMR genes, not APC.
★ Must-know
  • Lynch (HNPCC) = MMR mutation (MLH1/MSH2/MSH6/PMS2) → MSI-high.
  • Favors the right colon + endometrial cancer; often <50 years old; does not arise through a large number of polyps.
  • FAP = APC (a suppressor), covered with polyps.
  • Screening uses the Amsterdam/Bethesda criteria; diagnosis relies on MSI testing + genetics.
  • MSI-high / dMMR → respond well to anti-PD-1 (pembrolizumab) (a frequent, newer test point).
  • Traps: ① listing Lynch as APC (wrong — it is MMR); ② describing Lynch as a field of polyps (wrong — that is FAP); ③ saying Lynch favors the left colon (wrong — it is the right).
Full text
Case

That 42-year-old woman's tumor was solitary, located in the right colon, with MMR protein loss and MSI-high status. The immunotherapy attending flips through her family history and says, "Let's give her anti-PD-1 — MSI-high tumors respond remarkably well to immune checkpoint inhibitors." Behind that single sentence lies an entire causal chain running from gene to drug.

FAP tells an entirely different story: the APC tumor suppressor is disabled in the germline → the Wnt pathway runs unchecked → the colon becomes covered with hundreds to thousands of adenomatous polyps → given enough accumulated mutations, one becomes malignant. The mnemonic is simple: Lynch = the proofreader (MMR) goes on strike, one tumor grows; FAP = the brakes (APC) fail, and polyps cover the field.

Driver Genes and Targeted Therapy: Pairings That Grow Out of Mechanism

★ Must-know
  • KRAS mutation → anti-EGFR ineffective (a frequent, high-stakes question).
  • BRCA1/2 → PARP inhibitor (synthetic lethality).
  • Burkitt = MYC t(8;14); CML = BCR-ABL t(9;22).
  • "The most commonly mutated tumor suppressor" = TP53.
  • Traps: ① giving cetuximab despite a KRAS mutation (wrong — it is ineffective); ② listing Burkitt as t(9;22) (wrong — it is t(8;14)); ③ pairing BRCA with an EGFR inhibitor (wrong — it pairs with a PARP inhibitor).
Full text · 1 table

Rather than memorizing a lookup table by force, remember "why each gene is paired with that particular drug." RAS is a small downstream switch that stays continuously activated as a GTPase; once a mutation locks it in the "on" position, an EGFR inhibitor (cetuximab) hitting upstream is useless — which is why KRAS-mutant colon cancer cannot be treated with anti-EGFR therapy. HER2/neu is an amplified receptor tyrosine kinase, common in breast and gastric cancer, and trastuzumab binds directly onto its extracellular domain. BCR-ABL is the persistently active tyrosine kinase produced by the t(9;22) Philadelphia chromosome, the hallmark of CML, and imatinib is its nemesis. MYC in Burkitt lymphoma is relocated under an Ig promoter by t(8;14) and never stops working.

GeneCategoryRepresentative cancerTarget / trap
KRASoncogenePancreas, colon, lungKRAS mutation → anti-EGFR ineffective
MYConcogeneBurkitt, t(8;14)—
HER2oncogeneBreast, gastrictrastuzumab
BCR-ABLoncogeneCML, t(9;22)imatinib
RBsuppressorRetinoblastoma, osteosarcomatwo-hit prototype
TP53suppressorWidespread; Li-Fraumenidominant-negative
APCsuppressorFAP, colon cancer—
BRCA1/2DNA repair (homologous recombination)Hereditary breast/ovarianPARP inhibitor (synthetic lethality)

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The Water-Soluble B Vitamins: Think of Coenzymes as the Wrench That Catalyzes a Reaction

⟶ Mechanism

Giving thiamine before glucose in a patient with alcohol use disorder is a matter of reaction kinetics. Step one: the active form of B1 (thiamine) is TPP, the coenzyme for PDH and α-KGDH. Step two: prolonged alcohol use depletes B1 → these two key decarboxylation reactions in the TCA cycle grind to a halt. Step three: if glucose is infused aggressively at this point → the sugar needs TPP to enter the TCA cycle, but none is available. Step four: this instead burns through whatever thiamine remains. Step five: Wernicke encephalopathy instantly deteriorates from subclinical to fully manifest. So the order is not superstition — it is simply keeping pace with reaction kinetics.

★ Must-know
  • B1 (TPP) → PDH, α-KGDH; deficiency = beriberi, Wernicke-Korsakoff syndrome. In patients with alcohol use disorder, give thiamine before glucose.
  • B3 (NAD/NADP): the 3 D's of pellagra; Hartnup disease / carcinoid / INH can all cause pellagra-like presentations.
  • B5 (CoA) comes from pantothenic acid, not folate (a frequent trap).
  • B6 (PLP): transamination, decarboxylation; coenzyme for ALA synthase → sideroblastic anemia; INH causes deficiency.
  • B7 (biotin): carboxylation; avidin in raw egg white binds biotin and causes deficiency.
  • Vitamin C: hydroxylates collagen (scurvy), reduces iron; it is not merely an antioxidant.
  • Traps: ① listing CoA as coming from folate (wrong — it is pantothenic acid, B5); ② claiming INH causes B12 deficiency (wrong — it is B6); ③ giving glucose before thiamine in alcohol use disorder (wrong — the order is reversed).
Full text
Case

A man with alcohol use disorder is brought in by family — his eyes will not move, he walks as if stepping on cotton, and he answers nothing that was asked. The on-call physician immediately hangs a bag of dextrose — but the patient's consciousness only worsens. The senior attending rushes in and shouts, "Thiamine first, then the glucose!" This is not pedantic ordering — it is a matter of life and death.

Almost every B vitamin is the coenzyme for some metabolic reaction, and its deficiency syndrome is simply the clinical manifestation of that reaction failing. Transamination needs PLP (B6), one-carbon transfer needs folate (B9), methylation needs B12, carboxylation needs biotin (B7) — this is not a pairing to memorize by rote, but a matter of asking "which wrench is the reaction itself missing." The active form of niacin (B3) is NAD/NADP, and deficiency causes the three D's of pellagra (dermatitis, diarrhea, dementia); but niacin can also be synthesized from tryptophan (which requires B6), so Hartnup disease (poor Trp absorption), carcinoid syndrome (Trp diverted into serotonin production), and INH (which depletes B6) can all produce pellagra-like presentations — this causal chain is also frequently tested.

B6 (PLP) is also the coenzyme for ALA synthase, and its deficiency causes sideroblastic anemia — which is exactly why B6 is co-administered with INH during tuberculosis treatment, to prevent it. Vitamin C plays two major roles: ① a cofactor for prolyl/lysyl hydroxylase, without which collagen cannot form a stable triple helix — this is scurvy (bleeding gums, poor wound healing); ② a reducing agent, converting intestinal Fe³⁺ into Fe²⁺ to promote absorption of non-heme iron.

The Fat-Soluble Vitamins A, D, E, K and the Two-Step Activation of Vitamin D

⟶ Mechanism

The metabolic difference between fat-soluble and water-soluble vitamins grows out of a single physical property. Step one: the fat-soluble vitamins (A, D, E, K) require bile for absorption and are stored in fat → high risk of chronic toxicity. Step two: excess water-soluble vitamins are excreted in urine → toxicity is rare (megadose B6 is the exception). Step three: vitamins A and D are fat-soluble and can enter the nucleus → they take the slow, long-lasting route of "entering the nucleus to act as a transcription factor." Step four: vitamin A's active form, retinoic acid, binds RAR/RXR; vitamin D's active form, calcitriol, binds VDR. Step five: vitamin E is a membrane-lipid antioxidant, and K carries out γ-carboxylation (of clotting factors II, VII, IX, X).

⚠ Trap
✗🦦The patient's 25-OH-D is low, so the "kidney" must not be activating it, right? I'll go with kidney.
✓🐻‍❄️Half right, half wrong. 25-OH-D is the product of the liver step; if it's low, that means the liver isn't doing its job, or there's too little sun exposure — the kidney's turn only comes at 1,25-(OH)₂D. Memorize the order cold: liver does the 25 first, kidney does the 1-alpha second. The clinical marker looks at 25-OH-D because it has a long half-life and is present in larger amounts.
Full text

The two-step activation of vitamin D is the most frequently tested part: cholesterol → skin 7-dehydrocholesterol → (UVB) → D3 → hepatic 25-hydroxylase (CYP2R1) produces 25-OH-D3 (calcidiol, the clinical monitoring marker) → renal 1α-hydroxylase (CYP27B1, stimulated by PTH) produces 1,25-(OH)₂D3 (calcitriol, the active form). The first step is in the liver, the second in the kidney — this is the directional question the exam most loves to dig a hole around; the precursor material is cholesterol, nothing else.

B12 and Pernicious Anemia: The Methyl Trap, MMA, and Why Folate Alone Won't Do

⟶ Mechanism

Both consequences of B12 deficiency grow directly out of its mechanism. Step one: pernicious anemia is an autoimmune destruction of gastric parietal cells → intrinsic factor (IF) deficiency → B12 can no longer be absorbed at the terminal ileum. Step two: methionine synthase hands the methyl group of N5-methyl-THF to homocysteine to form methionine, and this key reaction requires B12. Step three: once B12 is deficient → the methyl group gets stuck on N5-methyl-THF and cannot get out (the methyl trap) → dTMP for DNA synthesis has no raw material → megaloblastic anemia. Step four: simultaneously, methylmalonyl-CoA mutase fails → MMA accumulates → myelin is disrupted → subacute combined degeneration (of the posterior and lateral columns). Step five: folate deficiency only affects the first pathway → no rise in MMA → no neurological symptoms.

★ Must-know
  • B12 deficiency = MMA↑ + Hcy↑ + neurological deficit; folate deficiency = only Hcy↑, no neurological symptoms.
  • Folate alone must not be used: it corrects the anemia while worsening the neuropathy.
  • Pernicious anemia = autoimmune destruction of gastric parietal cells → IF deficiency → poor B12 absorption.
  • The structural metal of B12 = cobalt (Co); active forms = methyl-/adenosylcobalamin.
  • CoA comes from pantothenic acid (B5), not folate (a frequent, high-stakes question).
  • The zinc finger = Cys+His coordinating zinc; do not confuse it with the leucine zipper.
  • Traps: ① treating B12 deficiency with folate alone (wrong — it worsens the neuropathy); ② listing the B12 metal as iron or magnesium (wrong — it is cobalt); ③ claiming folate deficiency also raises MMA (wrong — only B12 deficiency does).
Full text
Case

A 70-year-old woman presents with anemia, an unsteady gait, and numbness in her hands and feet. Her CBC shows macrocytic anemia, which at first glance looks like folate deficiency; a colleague suggests "just try folate." The senior attending frowns: "Check B12 and MMA first — this patient has a neurological deficit, and giving folate would mask the anemia while making the nerve damage worse."

The key to distinguishing them in the lab is MMA: B12 deficiency → MMA↑ and Hcy↑; folate deficiency → only Hcy↑, MMA normal. Why can't you treat with folate alone? Because folate by itself can bypass the "methyl trap" and correct the appearance of anemia, but the MMA pathway depends solely on B12, so the nerve damage keeps progressing — this is the exam's favorite trap question. Also, the active forms in the body are methyl- and adenosylcobalamin; cyanocobalamin is merely the supplement form. The metal in B12 is cobalt (Co), not iron or magnesium (those belong to heme and chlorophyll).

♪ Memory hook

Stomp the gas with one foot and it lurches forward — that's a dominant oncogene; release both brakes before it rolls — that's a recessive tumor suppressor.

Read-aloud version (copy the whole thing into any TTS)

The entire exam logic of cancer genetics mostly falls into place once you fix the car metaphor in your mind. A normal gene that promotes growth is called a proto-oncogene; once a mutation makes it "too good at pressing," it becomes an oncogene, and at that point one damaged allele is enough, so at the cellular level it behaves as dominant, like the gas pedal stuck to the floor. Brakes work the opposite way: both brake pads must fail before the car can roll, so tumor suppressors are recessive at the cellular level and require two hits. The proofreader is the DNA repair gene; once the proofreader leaves, every part in the car starts failing faster, so it follows the mutator path, and most repair genes also require two hits.

Once you understand this causal chain, it becomes easy to see why retinoblastoma presents bilaterally in early childhood: the child inherits one damaged RB allele from a parent, meaning the first hit is present from birth, and any retinal cell later acquiring a second hit — often through loss of heterozygosity — will grow into a tumor; sporadic cases must wait for both hits to strike the same cell after birth, which is naturally later and unilateral. RB is precisely the prototype of the two-hit hypothesis. But the rule that all tumor suppressors need two hits is a generalization, not an absolute — TP53 is the big pitfall here. Its mutant protein drags the normal p53 down into an immobile tetramer, which is called dominant-negative, so Li-Fraumeni syndrome shows a clear increase in cancer with just a single germline mutation. This looks like it breaks the rule, but really the damaged copy drags the good copy down with it. That is also why, when the exam asks for "the most commonly mutated tumor suppressor," the answer is TP53, not RB.

Lynch and FAP represent the causal divide between two faces of colon cancer. The mismatch repair genes MLH1, MSH2, MSH6, and PMS2 are responsible for fixing pairing errors; once damaged in the germline, every division leaves errors with no one to proofread them, and slippage errors appear in microsatellite regions — this is high microsatellite instability. Mutations accumulate rapidly, tumors emerge quickly, and onset is often before age 50; and because the errors accumulate drop by drop rather than as a field of polyps, Lynch tumors mostly grow one at a time, favor the right colon, and in women often coexist with endometrial cancer. FAP, by contrast, comes from a disabled APC tumor suppressor in the germline, leaving the Wnt pathway unchecked, so the colon becomes covered with hundreds to thousands of adenomatous polyps. The exam loves to mix Lynch and FAP together in one question; remember "Lynch = one, FAP = a field" and you won't go wrong. Lynch also connects to a newer test point in recent years: tumors with high microsatellite instability carry large numbers of neoantigens that the immune system ought to see, but the tumor counters using PD-L1, so an anti-PD-1 agent like pembrolizumab is especially effective once it releases that brake. Driver genes and their targets do not need to be memorized as a lookup table — they come alive once you go back to mechanism. KRAS is a GTPase locked in the "on" position, so an EGFR inhibitor hitting upstream is useless, and cetuximab being ineffective in KRAS-mutant colon cancer is a high-stakes question. HER2 is an amplified receptor tyrosine kinase, and trastuzumab binds directly onto its extracellular portion. BCR-ABL is the persistently active kinase produced by the Philadelphia chromosome, the hallmark of chronic myeloid leukemia, and imatinib is its nemesis. In Burkitt lymphoma, MYC is relocated under the immunoglobulin promoter by t(8;14) and never stops working. BRCA1 and BRCA2 are repair genes for homologous recombination; in a deficient tumor, adding a PARP inhibitor cuts off single-strand repair as well — this is synthetic lethality, killing the tumor while leaving normal cells unharmed.

The whole roster of B-vitamin coenzymes likewise comes back to the reaction itself. The active form of B1 is TPP, the coenzyme for pyruvate dehydrogenase and alpha-ketoglutarate dehydrogenase. In a patient with alcohol use disorder, thiamine has long since been depleted and pyruvate dehydrogenase can no longer run; if glucose is then infused aggressively, the sugar needs TPP to enter the citric acid cycle but none is available, and what little thiamine remains gets burned up too, so Wernicke encephalopathy explodes instantly from subclinical to full-blown. So giving thiamine before glucose is not superstition — it is reaction kinetics. The other coenzyme pairings likewise come back to the reaction: transamination needs PLP; B6 is also the coenzyme for ALA synthase, so its deficiency causes sideroblastic anemia, and INH, which depletes B6, must be co-administered with it; one-carbon transfer needs folate; methylation needs B12; carboxylation needs biotin, and avidin in raw egg white binds biotin and causes deficiency; coenzyme A comes from pantothenic acid, B5, not folate — a frequent trap. The three D's of pellagra from niacin deficiency are dermatitis, diarrhea, and dementia, and because niacin can also be synthesized from tryptophan, which requires B6, Hartnup disease, carcinoid syndrome, and INH can all produce pellagra-like presentations. Vitamin C is not merely an antioxidant — it is the cofactor for prolyl and lysyl hydroxylase, and without it collagen cannot stabilize its triple helix, which is scurvy; it also reduces intestinal ferric iron to ferrous iron to aid absorption.

The fat-soluble vitamins A, D, E, and K follow a different route. A and D are fat-soluble and can enter the nucleus, acting through the slow, long-lasting route of entering the nucleus as a transcription factor; A binds RAR and RXR, D binds VDR. Vitamin D's two-step activation is the exam's favorite directional question: it starts with cholesterol, the skin makes D3 via ultraviolet light, the liver uses CYP2R1 to make 25-OH-D3, the clinical monitoring marker calcidiol, and the kidney then uses CYP27B1 to make 1,25-dihydroxyvitamin D, the active form calcitriol. The first step is in the liver, the second in the kidney — memorize that order cold. Finally comes B12 and pernicious anemia. Pernicious anemia comes from autoimmune destruction of gastric parietal cells, intrinsic factor deficiency, and failure to absorb B12 in the ileum. Both consequences of B12 deficiency grow out of its mechanism: methionine synthase hands the methyl group of N5-methyl-THF to homocysteine, and this requires B12; without that key, the methyl group stays trapped on THF and cannot get out, so DNA synthesis has no raw material, producing megaloblastic anemia; at the same time, methylmalonyl-CoA mutase fails, methylmalonic acid accumulates, and myelin is disrupted, producing the neuropathy of subacute combined degeneration. Folate deficiency affects only the first pathway, with no rise in methylmalonic acid and no neurological symptoms, so the lab distinguishes them by methylmalonic acid: B12 deficiency raises both methylmalonic acid and homocysteine, while folate deficiency raises only homocysteine. Why can't you treat with folate alone? Because folate can bypass the methyl trap and correct the appearance of anemia, but the methylmalonic acid pathway depends solely on B12, so the nerve damage keeps progressing — this is a high-stakes question. The metal in B12 is cobalt, not iron or magnesium, and the zinc finger coordinates zinc through cysteine and histidine, not leucine — don't lose points on these details either.

🧪 Practice on this topic: 29 questions Taiwan board past papers · in Chinese, with explanations
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🧪 Whole exam sections (question book, in Chinese)Chromosomes and Patterns of Inheritance 9Vitamins and Coenzymes 27
★ High-yield points & traps from past exams (2 sections)
Chromosomes and Patterns of Inheritance 9 questions
Exam pointCorrect answerCommon trap
Type of recombination in V(D)J recombinationSite-specific recombination (RAG1/2 recognize RSS; no homologous sequence required)Answering homologous recombination
Feature of an integrated retrovirusLTRs repeated at both endsThinking gag/pol/env are repeated
Molecular defect in sickle cell diseaseβ-globin Glu→Val point mutationConfusing it with β-thalassemia (reduced/absent chains, γ compensation)
Phase in which terminally differentiated cells arrestG0 phaseAnswering G1 or still cycling
Why histones bind DNARich in Lys/Arg → positively charged, electrostatically holding negatively charged DNAThinking covalent bonds or hydrophobic interactions
Structure of the telomeric single strandFour-stranded G-quadruplexAnswering three- or five-stranded
Proportion of the human genome that codes for proteinAbout 1.5–2%Answering >40%
Level at which antibody light-chain V–J and J–C joining occurV–J at the DNA level, J–C by RNA splicingThinking J–C is also DNA recombination

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Vitamins and Coenzymes 27 questions
Exam pointCorrect answerCommon trap
Site of the first activation step of vitamin DLiver (25-hydroxylase, CYP2R1)Answering kidney (that is the second step)
Starting material of vitamin DCholesterolOverlooking this precursor relationship
Vitamin source of CoAPantothenic acid (B5)Answering folate
Metal in the structure of B12Cobalt (Co)Answering iron or magnesium
Coordinating amino acids of zinc fingerscysteine / histidineApplying leucine (that is the leucine zipper)
Why raw egg white causes biotin deficiencyAvidin binds biotin and blocks its absorptionThinking it relates to B12
What is lacking in pernicious anemiaB12 + intrinsic factor (IF)Confusing it with folate deficiency
Distinguishing B12 vs folate deficiencyB12 deficiency has neurologic symptoms; folate deficiency does notConfusing them because both anemias are macrocytic
Action of the active form of vitamin ARetinoic acid regulates transcription via RAR/RXRThinking it relates only to vision
Antioxidant vitaminsE (membrane lipids), C (aqueous phase)Answering K
Laboratory distinction of B12 vs folate deficiencyB12 deficiency: MMA↑ + Hcy↑; folate deficiency: only Hcy↑Thinking MMA rises in both
Why folate must not be given aloneIt masks the anemia of B12 deficiency while the neuropathy worsensSimply giving folate and leaving it at that
Enzymatic roles of vitamin CCofactor for prolyl/lysyl hydroxylase; reduces Fe³⁺→Fe²⁺Remembering only its antioxidant role
Secondary causes of niacin deficiency/pellagraHartnup, carcinoid, INH (depletes B6)Thinking only of dietary deficiency
B6 and sideroblastic anemiaPLP is the coenzyme of ALA synthase; INH causes deficiencyMissing the drug association

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05

Handling Nitrogen, Storing Fat, Sending Signals: Three Axes of Metabolism and Signal Transduction

~10 min · 116 past questions

GSH is the tripeptide γ-Glu–Cys–Gly — a γ-amide bond, not an α; creatine is synthesized from glycine + arginine + methionine (SAM supplies the methyl group), and none of the three can be omitted.

Full text
Case

A three-month-old boy presents with recurrent vomiting, lethargy, and hypotonia. The labs come back: the ammonia level is frighteningly high, and urinary orotic acid is soaring. The attending neurologist glances at the chart and says, "OTC deficiency — the most common X-linked urea cycle defect. Carbamoyl phosphate spills over into pyrimidine synthesis, which is exactly why you see orotic aciduria." In the next bed, a middle-aged man admitted for "chest tightness" has a fasting triglyceride of 800, an HDL of 28, and a waist circumference of 102 — metabolic syndrome written all over him. In the bed beyond, a traveler just back from a cholera-endemic region is passing rice-water stools. These stories belong respectively to nitrogen metabolism, lipid metabolism, and signal transduction, yet they all run on the same biochemical logic: trace where the molecules flow, and the disease reveals itself.

The Three-Step Backbone of Nitrogen Metabolism and the Urea Cycle

⟶ Mechanism

Handling amino groups is a three-stage project of collection, release, and packaging. Step one: transamination collects the amino groups scattered across individual amino acids onto glutamate (requires PLP/B6 — both ALT and AST depend on it). Step two: oxidative deamination releases the amino group on glutamate as free NH₄⁺. Step three: the urea cycle packages free ammonia into urea for excretion. Step four: free ammonia is toxic → the blood mainly carries it in two nontoxic forms → glutamine (the principal detoxification form for the whole body and the brain; glutamine synthetase joins glutamate to NH₄⁺) and, for muscle, alanine (the Cahill cycle — muscle transaminates pyruvate into alanine and ships it to the liver). Step five: the brain's ammonia detoxification depends heavily on glutamine synthetase → hyperammonemia depletes α-KG and glutamate → glutamine rises, the brain swells → this is the core of hepatic encephalopathy.

⚠ Trap
✗🦦The final products of the urea cycle are urea plus oxaloacetate, right? I remember it feeds into the TCA cycle.
✓🐻‍❄️That is exactly the classic trap. It is urea plus fumarate. Fumarate is a TCA intermediate — it "enters the TCA cycle" and becomes malate, then oxaloacetate, but when the question asks for the "final product," the answer is fumarate, not the further-downstream OAA. OTC deficiency (the most common X-linked defect) → hyperammonemic encephalopathy plus orotic aciduria — remember that pairing too, it is a high-yield fact.
★ Must-know
  • Transamination → deamination → ammonia disposal; blood ammonia transport = glutamine (whole body/brain) + alanine (muscle, Cahill cycle).
  • The urea cycle's two nitrogen sources: free NH₄⁺ (via CPS-I) + aspartate.
  • Final products = urea + fumarate; fumarate enters the TCA cycle.
  • CPS-I is the rate-limiting enzyme, requiring activation by NAG; the first 2 steps occur in the mitochondrion, the last 3 in the cytosol.
  • OTC deficiency (X-linked, most common) → hyperammonemia + orotic aciduria.
  • Traps: ① calling the final products urea + OAA (wrong — it is fumarate); ② claiming both nitrogens come from NH₄⁺ (wrong — the second is aspartate); ③ claiming all six steps occur in the cytosol (wrong — the first two occur in the mitochondrion).
Full text

The six steps of the urea cycle are best memorized by location. The first two steps occur in the mitochondrion: ① CPS-I (the rate-limiting enzyme, requiring allosteric activation by N-acetylglutamate/NAG; a high-protein diet → NAG↑ → ammonia disposal↑) combines NH₄⁺ and CO₂ into carbamoyl phosphate — this is the first nitrogen source; ② OTC combines carbamoyl phosphate with ornithine to form citrulline, and citrulline exits the mitochondrion. The last three steps occur in the cytosol: ③ ASS combines citrulline with aspartate to form argininosuccinate — this is the second nitrogen source (aspartate); ④ ASL cleaves off arginine and fumarate — fumarate rejoins the TCA cycle (not oxaloacetate — a classic trap); ⑤ arginase cleaves off urea and ornithine (ornithine is recycled back into the mitochondrion).

Special Amino Acids and the One-Carbon/Methyl Cycle: PKU, Homocystinuria, and the Methyl Trap

⟶ Mechanism

In one-carbon metabolism, THF (folate) works like a small delivery truck, carrying one-carbon units to purine and dTMP synthesis. Step one: once it becomes N5-methyl-THF, the truck is "stuck holding a methyl group." Step two: only B12 (methionine synthase) can hand that methyl group off to homocysteine to regenerate methionine, freeing the truck for another run. Step three: B12 is therefore the key that "unlocks" folate. Step four: lose the key, and folate is completely stuck — this is the "methyl trap" mentioned in the previous chapter. Step five: consequently, B12 deficiency produces a functional folate deficiency → megaloblastic anemia.

★ Must-know
  • PKU: PAH or BH4 deficiency; Tyr becomes essential; avoid aspartame; the BH4 variant also disrupts neurotransmitters.
  • Homocystinuria: CBS (requires B6) deficiency; downward lens dislocation (Marfan: upward); some patients respond to high-dose B6.
  • MSUD: deficiency of branched-chain α-ketoacid dehydrogenase (requires B1).
  • Albinism = tyrosinase; alkaptonuria = homogentisate oxidase; PKU = PAH — do not confuse the three.
  • GSH = γ-Glu–Cys–Gly (γ bond); creatine = Gly + Arg + Met (SAM supplies the methyl group).
  • OI (osteogenesis imperfecta) = type I collagen mutation, usually a glycine substitution.
  • Traps: ① calling the PKU deficiency tyrosinase (wrong — that is albinism); ② homocystinuria dislocating the lens upward (wrong — it is downward; Marfan is upward); ③ GSH as α-Glu-Cys-Gly (wrong — it is a γ bond).
Full text

Homocystinuria runs in the opposite direction: deficiency of cystathionine β-synthase (CBS, requires B6) → homocysteine cannot be cleared and accumulates → thrombosis, downward lens dislocation (ectopia lentis), a Marfanoid habitus, and intellectual disability. Watch the trap: Marfan syndrome dislocates the lens upward, homocystinuria downward — get the direction backward and it is game over. Some patients respond to high-dose B6.

PKU (phenylketonuria): deficiency of phenylalanine hydroxylase (PAH) or its cofactor BH4 → Phe cannot be converted, and Tyr cannot be replenished. Tyr turns from a nonessential into an essential amino acid, and downstream precursors for melanin, catecholamines, and thyroid hormone are all affected — hence the fair hair, fair skin, and neurologic damage. Management is newborn screening, a low-Phe diet, Tyr supplementation, and avoiding aspartame (which contains Phe). BH4 is also the shared cofactor for PAH, tyrosine hydroxylase, and tryptophan hydroxylase, so the BH4-deficient variant also disrupts neurotransmitters — a Phe-restricted diet alone is not enough.

Related conditions: alkaptonuria (homogentisate oxidase deficiency) — urine darkens on standing, ochronosis; albinism (tyrosinase deficiency) — melanin deficiency; do not confuse either with PKU. Maple syrup urine disease: deficiency of branched-chain α-ketoacid dehydrogenase (requires B1/TPP), causing accumulation of Leu/Ile/Val and their ketoacids, a maple-syrup odor, and neurotoxicity.

Two Axes of Lipid Metabolism: ACC, HMG-CoA Reductase, and the B12 Link in Odd-Chain Fatty Acids

⟶ Mechanism

The opposition between fatty acid synthesis and oxidation is the backbone of the whole lipid metabolism chapter. Step one: synthesis occurs in the cytosol, β-oxidation in the mitochondrion. Step two: the two-carbon building block for synthesis is malonyl-CoA → ACC (acetyl-CoA carboxylase, requiring biotin plus ATP) produces it from acetyl-CoA plus CO₂ → this is the rate-limiting enzyme of fatty acid synthesis. Step three: the elegant part is that malonyl-CoA both supplies synthesis and inhibits CPT-I (the gate for fatty acids entering the mitochondrion) → when fed, oxidation simply shuts off. Step four: ACC is regulated on two tracks — allosterically activated by citrate and inhibited by long-chain acyl-CoA; covalently switched off by AMPK (which phosphorylates and inactivates it when energy is low) and switched on by insulin-mediated dephosphorylation. Step five: so during fasting or exercise, AMPK comes online, ACC shuts off, fat synthesis stops, CPT-I opens wide, and β-oxidation burns freely.

★ Must-know
  • Rate-limiting step of fatty acid synthesis = ACC (→ malonyl-CoA, requires biotin); rate-limiting step of cholesterol synthesis = HMG-CoA reductase.
  • Synthesis in the cytosol, oxidation in the mitochondrion; malonyl-CoA also inhibits CPT-I (the gate to β-oxidation).
  • Odd-chain fatty acid → propionyl-CoA → (B12) → succinyl-CoA; B12 deficiency → MMA↑.
  • COX substrate = arachidonate (C20:4), not a saturated fatty acid; aspirin does not affect cholesterol synthesis.
  • Cardiolipin is in the inner mitochondrial membrane; integral membrane proteins require detergent extraction; PAF = alkyl-ether, plasmalogen = vinyl-ether.
  • Lipoproteins: HDL performs reverse transport (esterification by LCAT); LDL travels via the LDL receptor (defective in FH).
  • Traps: ① aspirin lowering cholesterol (wrong — it acts on COX); ② naming palmitate as the COX substrate (wrong — it is arachidonate); ③ placing cardiolipin in the plasma membrane (wrong — it is in the inner mitochondrial membrane).
Full text

The rate-limiting enzyme of cholesterol synthesis is HMG-CoA reductase — the target of statins. Watch the trap: aspirin does not affect cholesterol synthesis; it acts on COX, unrelated to HMG-CoA reductase. Cholesterol is the precursor of bile acids, steroid hormones, and vitamin D.

The final round of β-oxidation of an odd-chain fatty acid yields the three-carbon propionyl-CoA, which proceeds through propionyl-CoA carboxylase (biotin) → methylmalonyl-CoA → methylmalonyl-CoA mutase (B12) → succinyl-CoA → the TCA cycle. This is one of the few pathways that renders a fatty acid glucogenic, and it is also the biochemical source of B12 deficiency → MMA accumulation.

The eicosanoid pathway: the substrate must be arachidonic acid (arachidonate, C20:4, ω-6) — the saturated palmitate, stearate, and acetyl-CoA are never COX substrates; this is a high-frequency trap. COX produces PGH₂ → PGs, TXA₂ (promotes platelet aggregation), and PGI₂ (inhibits aggregation); 5-LOX produces leukotrienes (inflammation, bronchoconstriction). Aspirin irreversibly acetylates COX, so a single dose's effect lasts until the platelet is naturally turned over.

A few exam-favorite details on membrane lipids and proteins: cardiolipin is almost exclusively confined to the inner mitochondrial membrane (roughly 20% of it), where it stabilizes the electron transport chain — not the plasma membrane; a GPI anchor sits in the outer leaflet of the membrane; integral membrane proteins can only be extracted with a detergent — high salt and chelating agents pull off only peripheral proteins; PAF is an ether glycerophospholipid with a C1 alkyl-ether, a C2 acetate, and a C3 phosphocholine, while plasmalogen has a C1 vinyl-ether — do not confuse the two.

Signal Transduction: The Great Fork Between Lipid- and Water-Soluble Signals, and the Two Toxins That "Lock" G Proteins

⟶ Mechanism

A hormone's signaling route first forks, then is traced downstream. Step one: the fork is lipid-soluble versus hydrophilic — lipid-soluble hormones (steroids, thyroid hormone, vitamin D, retinoic acid) enter the cell, their receptors sit in the cytosol or nucleus, they are themselves transcription factors, and their action is slow and long-lasting (hours). Step two: water-soluble hormones (peptides, catecholamines, cytokines) cannot get in; their receptors sit on the membrane, they rely on second messengers or kinase cascades, and their action is fast and brief (seconds to minutes). Step three: before ligand binding, Hsp90 sits bound to the nuclear receptor's "ligand-binding domain." Step four: once the ligand arrives → Hsp90 dissociates → the receptor exposes its DNA-binding domain → dimerization → it enters the nucleus, binds the HRE → and regulates transcription. Step five: trap questions love to claim Hsp90 binds the DNA-binding domain — that is not logical, because if the DNA-binding domain were covered, the receptor could not bind DNA the instant the ligand arrived.

⚠ Trap
✗🦦Both cholera and pertussis raise cAMP, so they must be modifying the same G protein, right?
✓🐻‍❄️Exactly the opposite direction. Cholera modifies Gsα and inhibits its GTPase, so Gs stays permanently on; pertussis modifies Giα so it cannot bind GTP, locking it off. One is locked on, the other locked off, yet both end in higher cAMP — because whether Gs is on or Gi is off, AC ends up making more cAMP either way.
★ Must-know
  • Lipid-soluble → receptor inside, slow and long-lasting; water-soluble → receptor on the membrane, fast and brief. Hsp90 binds the ligand-binding domain, not the DNA-binding domain.
  • Gs/Gi/Gq downstream: cAMP↑ / cAMP↓ / IP3 + DAG.
  • Cholera = locks Gsα on (inhibits GTPase); pertussis = locks Giα off (cannot bind GTP); both raise cAMP↑.
  • Insulin MAPK sequence: IRS-1 → Grb2-Sos → Ras → Raf → MEK → ERK.
  • ANP = membrane-bound GC → cGMP; JAK-STAT = IL, GH, EPO, leptin, IFN.
  • The β receptor does not directly activate Ras (Ras belongs to the RTK pathway).
  • Cyclin is the regulatory subunit and does not catalyze directly; CDK is the catalyst.
  • Traps: ① Hsp90 binding the DNA-binding domain (wrong — it is the ligand-binding domain); ② cholera and pertussis modifying the same G protein (wrong — Gs vs. Gi); ③ MEK downstream of ERK (wrong — it is upstream).
Full text
Case

A traveler back from a cholera-endemic region has unrelenting rice-water diarrhea and severe dehydration; in the next bed, an infant coughs until his face turns red and lets out a "whoop" — pertussis. Two wildly different clinical pictures, yet the toxin's mechanism is the identical move: ADP-ribosylate a G protein and lock its switch — just locked in opposite positions.

The GPCR system signals through the heterotrimeric G protein (α/β/γ): Gα bound to GTP = on, hydrolyzed to GDP = off. Gs → AC↑ → cAMP↑ → PKA; Gi → AC↓; Gq → PLC → IP3 (→Ca²⁺) + DAG (→PKC). The complete chain of epinephrine triggering glycogenolysis: epinephrine → β receptor → Gs → AC → cAMP → PKA → phosphorylates glycogen phosphorylase kinase → glycogen phosphorylase is activated → glycogenolysis — the β receptor does not directly activate Ras (that belongs to the RTK pathway).

Cholera toxin: ADP-ribosylates Gsα, inhibiting its GTPase activity → Gs stays permanently on → cAMP skyrockets → the intestinal mucosa secretes massive amounts of Cl⁻ and water → rice-water diarrhea. Pertussis toxin: ADP-ribosylates Giα, locking it off and unable to bind GTP → Gi is disabled → AC loses its inhibition → cAMP also rises. Cholera locks the switch on (Gs), pertussis locks it off (Gi), yet both ultimately raise cAMP.

Catalytic receptors (single-pass transmembrane, binding ligand outside and catalyzing inside) fall into three major classes: ① RTKs (insulin's MAPK pathway): insulin → receptor autophosphorylation → IRS-1 → Grb2-Sos → Sos (a GEF) activates Ras → Raf → MEK → ERK → enters the nucleus — MEK is upstream of ERK, and reversing the order is a classic way to lose points. ② Membrane-bound guanylate cyclase (the ANP receptor): the intracellular GC domain is activated → cGMP → PKG → natriuresis and vasodilation (NO instead uses "soluble" GC, a different class). ③ JAK-STAT (cytokines, IL, GH, EPO, leptin, IFN): the receptor itself has no kinase activity and binds JAK noncovalently; ligand-induced dimerization → JAK molecules transphosphorylate each other → STAT docks, is phosphorylated, dimerizes, and enters the nucleus to act as a transcription factor.

The cell cycle: cyclin is the regulator, CDK is the catalyst. CDK alone has no activity; cyclin concentration rises and falls cyclically; only when the two combine (plus CAK phosphorylation and removal of the inhibitory phosphate) do you get the active holoenzyme. Cyclin cannot catalyze phosphorylation on its own — this is the licensing exam's favorite conceptual question.

♪ Memory hook

Collected onto glutamate, released as NH₄⁺, packaged into urea — the first two steps in the mitochondrion, the last three in the cytosol.

Read-aloud version (copy the whole thing into any TTS)

Handling amino groups is a three-stage project of collection, release, and packaging. Transamination collects the amino groups scattered across individual amino acids onto glutamate, requiring PLP — that is, vitamin B6 — as its coenzyme, which is exactly why ALT and AST need it. Oxidative deamination releases the amino group on glutamate as free NH₄⁺. The urea cycle then packages this free ammonia into urea for excretion. Free ammonia is itself toxic, so the blood mainly transports it in two nontoxic forms: the whole body and the brain rely on glutamine, and muscle relies on alanine. The brain's ammonia detoxification depends heavily on glutamine synthetase, so hyperammonemia depletes α-ketoglutarate and glutamate, driving glutamine up and the brain to swell — this is the core of hepatic encephalopathy.

The six steps of the urea cycle are memorized by location. The first two steps occur in the mitochondrion: CPS-I is the rate-limiting enzyme, requiring allosteric activation by N-acetylglutamate — a high-protein diet raises N-acetylglutamate and speeds ammonia disposal; it combines NH₄⁺ with carbon dioxide to make carbamoyl phosphate, the first nitrogen source; OTC then combines this with ornithine to make citrulline, and citrulline exits the mitochondrion. The last three steps occur in the cytosol: ASS combines citrulline with aspartate to make argininosuccinate, the second nitrogen source; ASL cleaves off arginine and fumarate, and fumarate rejoins the TCA cycle — not oxaloacetate, a high-frequency trap; arginase finally cleaves off urea and ornithine, and ornithine is recycled into the mitochondrion. A deficiency of any one enzyme causes hyperammonemia; OTC deficiency is the most common X-linked defect, characterized by hyperammonemia plus orotic aciduria, because carbamoyl phosphate spills over into pyrimidine synthesis.

One-carbon metabolism and the methyl cycle form another main thread. Folate carries one-carbon units for purine and dTMP synthesis; N5-methyl-THF is the only form in which it can hand off a methyl group, and B12 takes this key and passes the methyl group to homocysteine to make methionine. Without B12, the methyl group stays stuck on THF and cannot get off — this is the methyl trap, producing a functional folate deficiency and megaloblastic anemia. At the same time, methylmalonyl-CoA mutase also fails, methylmalonic acid accumulates, and myelin is damaged — this is why B12 deficiency harms the nerves while folate deficiency does not. Homocystinuria is a deficiency of cystathionine β-synthase, which requires B6; homocysteine cannot be cleared and accumulates, causing thrombosis, intellectual disability, and downward lens dislocation — the exact opposite of Marfan syndrome's upward dislocation — and some patients respond to high-dose B6. Phenylketonuria is a deficiency of phenylalanine hydroxylase or its cofactor tetrahydrobiopterin; phenylalanine cannot be converted and tyrosine cannot be replenished, so tyrosine becomes essential, and downstream precursors for melanin, catecholamines, and thyroid hormone are all affected — management requires newborn screening, a low-phenylalanine diet with tyrosine supplementation, and avoiding aspartame; the tetrahydrobiopterin variant also disrupts neurotransmitters, so restricting phenylalanine alone is not enough. Alkaptonuria is a deficiency of homogentisate oxidase, with urine that darkens on standing; albinism is a deficiency of tyrosinase, a completely different pathway from phenylketonuria; maple syrup urine disease is a deficiency of branched-chain α-ketoacid dehydrogenase, which requires B1. Glutathione is the tripeptide γ-glutamyl-cysteinyl-glycine and carries a γ bond; creatine is synthesized from glycine, arginine, and methionine, with SAM supplying the methyl group; osteogenesis imperfecta is a type I collagen mutation, usually a glycine substitution.

The two axes of lipid metabolism come down to one sentence: synthesis occurs in the cytosol, oxidation in the mitochondrion, and malonyl-CoA stands at the fork, simultaneously supplying synthesis while shutting the gate to β-oxidation, carnitine palmitoyltransferase I. Acetyl-CoA carboxylase combines acetyl-CoA with carbon dioxide to make malonyl-CoA, requiring biotin and ATP — this is the rate-limiting step of fatty acid synthesis; the rate-limiting step of cholesterol synthesis is instead HMG-CoA reductase, the target of statins. Note that aspirin does not affect cholesterol synthesis; it acts on COX. Acetyl-CoA carboxylase is regulated on two tracks: allosteric activation by citrate and allosteric inhibition by long-chain acyl-CoA; on the covalent side, AMPK phosphorylates and inactivates it when energy is low, and insulin dephosphorylates and switches it on — so during fasting or exercise, AMPK comes online, acetyl-CoA carboxylase shuts off, fat synthesis stops, carnitine palmitoyltransferase I opens wide, and β-oxidation burns freely. The final round of β-oxidation of an odd-chain fatty acid produces propionyl-CoA, which is carboxylated by biotin into methylmalonyl-CoA and then converted by the B12-dependent mutase into succinyl-CoA, entering the TCA cycle — one of the few pathways by which a fatty acid can become glucogenic, and also the source of methylmalonic acid accumulation in B12 deficiency. The eicosanoid substrate must be arachidonic acid, C20:4 ω-6; the saturated palmitate, stearate, and acetyl-CoA are never COX substrates. COX produces prostaglandins and thromboxane A2, which promotes platelet aggregation, and prostacyclin, which inhibits it; 5-lipoxygenase produces the leukotrienes responsible for inflammation and bronchoconstriction. Aspirin irreversibly acetylates COX. Among membrane lipids, cardiolipin is almost exclusively confined to the inner mitochondrial membrane, not the plasma membrane; integral membrane proteins require a detergent for extraction; platelet-activating factor has a C1 alkyl-ether, and plasmalogen has a C1 vinyl-ether — do not mix up the two. High-density lipoprotein carries out reverse transport, esterified by LCAT.

The signaling axis first splits into lipid-soluble and water-soluble. Lipid-soluble hormones enter the cell, with receptors inside acting as transcription factors, slow and long-lasting; water-soluble hormones stay outside the membrane, relying on second messengers, fast and brief. Heat shock protein 90 binds the nuclear receptor's ligand-binding domain, not its DNA-binding domain. Among G-protein-coupled receptors, Gs raises cAMP, Gi lowers cAMP, and Gq proceeds through IP3 plus DAG. Epinephrine's glycogenolysis runs through the β receptor plus Gs plus adenylate cyclase plus cAMP plus protein kinase A plus glycogen phosphorylase kinase plus glycogen phosphorylase; the β receptor does not directly activate Ras. Cholera toxin ADP-ribosylates Gsα, inhibiting its GTPase and locking it on; pertussis toxin modifies Giα so it cannot bind GTP, locking it off; both ultimately raise cAMP, though locked in opposite positions. Insulin's MAPK sequence runs IRS-1 to Grb2 plus Sos to Ras to Raf to MEK to ERK — MEK is upstream of ERK, do not reverse it; atrial natriuretic peptide acts through membrane-bound guanylate cyclase to produce cGMP; JAK-STAT handles cytokines, growth hormone, EPO, leptin, and interferon. In the cell cycle, cyclin is the regulator and CDK is the catalyst — cyclin cannot phosphorylate anything on its own.

🧪 Practice on this topic: 140 questions Taiwan board past papers · in Chinese, with explanations
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★ High-yield points & traps from past exams (3 sections)
Urea Cycle and Ammonia Metabolism 17 questions
Exam pointCorrect answerCommon trap
Final products of the urea cycleurea + fumarateAnswering oxaloacetate
Fate of fumarateEnters the TCA cycleThinking it becomes glucose directly
The two nitrogen sources of the urea cycleFree NH₄⁺ + aspartateOmitting aspartate
Rate-limiting enzymeCPS-I (requires NAG activation)Answering arginase
LocationFirst 2 steps in the mitochondria, last 3 in the cytoplasmPlacing all of it in the cytoplasm
Most common urea cycle defectOTC deficiency (X-linked) → hyperammonemia + orotic aciduriaOverlooking the mode of inheritance
Pathway from amino acids to glucoseVia TCA intermediates → gluconeogenesisThinking they convert directly
Amino acid most likely to form a cis peptide bondprolineAnswering glycine
Composition of GSHγ-Glu–Cys–GlyWriting an α-linkage or the wrong order
Three precursors of creatineglycine, arginine, methionineOmitting methionine (SAM)
Defective protein in OIType I collagenAnswering fibronectin/keratin
Main cause of the methyl trapB12 deficiencyThinking it is folate deficiency itself
Main transport forms of ammonia in bloodglutamine (whole body/brain), alanine (muscle, Cahill cycle)Thinking free NH₃ is transported directly
Main enzyme for ammonia detoxification in the brainglutamine synthetaseAnswering glutaminase
Defective enzyme in PKUphenylalanine hydroxylase (or BH4)Answering tyrosinase (that is albinism)
Why Tyr becomes essential in PKUThe Phe→Tyr step is blockedOverlooking this cause and effect
Lens in homocystinuriaDownward dislocation; CBS (B6-dependent) deficiencyConfusing it with Marfan (upward)
Defect in maple syrup urine diseaseBranched-chain α-keto acid DH (requires B1)Missing the B1 link

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Membrane Lipids and Membrane Proteins 9 questions
Exam pointCorrect answerCommon trap
Rate-determining step of fatty acid synthesisACC (→ malonyl-CoA), requires biotinAnswering the FAS condensation step
Rate-determining enzyme of cholesterol synthesisHMG-CoA reductaseConfusing it with fatty acid synthesis
Site of fatty acid synthesis vs oxidationSynthesis in the cytoplasm / oxidation in the mitochondriaReversing the two
Fate of the end product of odd-chain β-oxidationpropionyl-CoA → succinyl-CoA (requires B12) → TCAMissing the B12 link
Substrate of COXarachidonate (C20:4)Answering saturated fatty acids/acetyl-CoA
Mechanism of aspirinIrreversibly acetylates COX, reducing TXA₂/PGThinking it "reduces cholesterol synthesis"
Distribution of cardiolipinInner mitochondrial membraneThinking it is in the plasma membrane
Extraction of integral membrane proteinsRequires a detergentUsing high salt/chelators (those are for peripheral proteins)
Structure of PAFC1 alkyl-ether + C2 acetate + C3 phosphocholineConfusing it with plasmalogen (vinyl-ether)
Function of HDLReverse cholesterol transport, esterification by LCATThinking it carries exogenous TG

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Nuclear Receptors and Steroid Hormones 9 questions
Exam pointCorrect answerCommon trap
Where Hsp90 binds nuclear receptorsLigand-binding domain (dissociates as soon as ligand arrives)Answering the DNA-binding domain
Role of cyclinsRegulatory subunit; no kinase activity of their ownThinking cyclins directly catalyze phosphorylation
Mechanism of cholera toxinADP-ribosylates Gsα, inhibiting its GTPase → cAMP↑Writing that it modifies Gi, or confusing it with pertussis toxin
Mechanism of pertussis toxinADP-ribosylates Giα, locking it in the off stateReversing the direction with cholera toxin
Type of ANP receptorMembrane-bound guanylyl cyclase (→cGMP)Treating it as a GPCR or cAMP pathway
Downstream of epinephrine β receptorsGs→AC→cAMP→PKAWriting "directly activates Ras"
Order of insulin MAPK signalingIRS-1→Grb2-Sos→Ras→Raf→MEK→ERKReversing MEK/ERK
RTK structureExtracellular ligand binding, intracellular catalytic domainPlacing the catalytic/substrate-binding domain outside the cell
Interleukin/cytokine receptorsJAK-STAT pathwayTreating them as the cAMP second-messenger pathway
Receptor location: lipid-soluble vs water-soluble hormonesLipid-soluble: intracellular/nuclear; water-soluble: on the membranePlacing the thyroid hormone receptor on the membrane

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06

Translation, Transcription, Enzymes: The Final Three Acts of Molecular Biology

~8 min · 123 past questions

Competitive: "excess substrate can rescue Vmax." Noncompetitive: "the drop in Vmax cannot be rescued." Uncompetitive: "Km and Vmax fall together, and the lines run parallel."

Full text
Case

A man who accidentally ate death cap mushrooms develops whole-body malaise 48 hours later, with liver enzymes skyrocketing and liver failure severe enough to require a transplant. Toxicology explains: α-amanitin has an extremely high affinity for RNA Pol II, and completely inhibits Pol II at vanishingly low concentrations → mRNA synthesis grinds to a halt → protein synthesis stops → hepatocytes die. Pol I is unaffected, and Pol III is only inhibited at high concentrations — the specificity of this toxin is, in itself, a gift question on the licensing exam.

Eukaryotic Transcription and mRNA Processing: Three Polymerases and Three Major Modifications

⟶ Mechanism

The division of labor among the three eukaryotic RNA polymerases can be memorized as "one big, two messenger, three small." Step one: Pol I works in the nucleolus, making the large rRNAs (18S, 28S, 5.8S). Step two: Pol II makes pre-mRNA and most snRNA. Step three: Pol III makes 5S rRNA, tRNA, and small RNAs. Step four: the order of sensitivity to α-amanitin is Pol II greater than Pol III greater than Pol I — Pol I is completely unaffected, while Pol II is fully inhibited at vanishingly low concentrations. Step five: watch the trap — mammalian nuclei have no Pol IV responsible for mRNA (Pol IV belongs to plant RNAi); prokaryotes have only a single RNA polymerase, which recognizes promoters via a σ factor.

⚠ Trap
✗🦦Group I and the spliceosome both cut out introns, don't they — so why are their nucleophiles so different?
✓🐻‍❄️The point is "who holds the blade." Group I uses an exogenous G — a free guanosine's 3′-OH comes in to cut; group II and the spliceosome both attack with the 2′-OH of the branch-point A inside the intron, coiling into a lariat. Remember "external G, internal A" and you will never get it wrong.
★ Must-know
  • Pol I → large rRNA / Pol II → pre-mRNA / Pol III → tRNA + 5S rRNA; α-amanitin: Pol II most sensitive, Pol I insensitive.
  • Prokaryotes have only one RNA polymerase; mammals have no Pol IV (a trap).
  • The three major mRNA modifications occur entirely in the nucleus, co-transcriptionally; 3′ processing = polyadenylation, not phosphorylation; signal = AAUAAA.
  • Group I = exogenous G 3′-OH; group II and the spliceosome = internal A 2′-OH (lariat).
  • The 3′ end of every tRNA = -CCA-OH.
  • Traps: ① Pol I being most sensitive to amanitin (wrong — it is Pol II); ② calling 3′ processing phosphorylation (wrong — it is poly(A)); ③ group I using an internal A (wrong — it uses an exogenous G).
Full text

The three major mRNA modifications are completed entirely inside the nucleus (not the ER or the Golgi — those are sites of protein modification), and they occur co-transcriptionally: 5′ capping (adding a 7-methylguanosine cap via a 5′-5′ triphosphate bond) is added as soon as 25–30 nt have been transcribed; the 3′ poly(A) tail is not phosphorylation — it is added after cleavage downstream of the AAUAAA signal; splicing is carried out by the spliceosome (snRNPs U1, U2, U4/U6, U5).

The key to distinguishing the three types of splicing is the "nucleophile": a group I intron uses the 3′-OH of an exogenous free guanosine as its blade; a group II intron and the eukaryotic spliceosome both use the 2′-OH of an internal adenosine as their blade, coiling into a lariat. So when a question offers ligase, snRNA, ATP, or NAD⁺ as options, all of these belong to the spliceosome/group II system, not group I. The 3′ end of every tRNA is -CCA-OH — the amino acid is esterified onto this 3′-OH by aminoacyl-tRNA synthetase, regardless of species or amino acid.

Translation: Initiation → Elongation → Termination, and Which Step Each Antibiotic Hits

⟶ Mechanism

The three stages of translation, using prokaryotes as the framework. Step one: initiation — IF1 occupies the A site, IF2 carries fMet-tRNA into the P site, and IF3 prevents the large subunit from joining prematurely. Step two: elongation — EF-Tu delivers aminoacyl-tRNA into the A site, a peptide bond forms, and EF-G carries out translocation. Step three: termination — a stop codon (UAA/UAG/UGA) is recognized by a release factor. Step four: peptide bond formation is catalyzed by the peptidyl transferase of the 23S rRNA → the ribosome is a ribozyme, and RNA — not a protein enzyme — is the catalytic core. Step five: the polypeptide is synthesized N→C; mRNA is read 5′→3′.

⟶ Mechanism

The iron-deficiency example of global regulation is itself a complete causal chain. Step one: iron deficiency → heme synthesis falls → free heme falls. Step two: HRI (heme-regulated inhibitor kinase) is activated. Step three: it phosphorylates Ser51 of eIF2α. Step four: phosphorylated eIF2 becomes a competitive inhibitor of eIF2B → eIF2-GTP cannot be recycled → the 43S initiation complex cannot assemble. Step five: global translation (especially of hemoglobin) is shut down. This is also the common final pathway of the integrated stress response (ISR) — PKR, PERK, and GCN2 all converge on it — as long as eIF2α is phosphorylated, initiation stops.

★ Must-know
  • Initiator tRNA: prokaryotes fMet, eukaryotes Met; the small subunit binds mRNA first, the large subunit last.
  • The SD sequence pairs with the 3′ end of 16S rRNA (prokaryotes); eukaryotes use cap → scanning.
  • Peptide bond catalysis = 23S rRNA (a ribozyme); polypeptide N→C, mRNA 5′→3′.
  • Ampicillin hits the cell wall, not the ribosome (a trap); 30S = aminoglycoside/tetracycline; 50S = chloramphenicol/macrolide.
  • Iron deficiency → HRI → eIF2α phosphorylation → global translation shutdown.
  • Calculation: (bp/3) − 1 = aa; aa × 110 ≈ Da.
  • Gly-Pro → β-turn; the disulfide bond belongs to tertiary structure, the α-helix relies on hydrogen bonds.
  • Codon-anticodon = hydrogen bonds, not covalent.
  • Traps: ① ampicillin hitting the ribosome (wrong — it hits the cell wall); ② eukaryotic initiation using fMet (wrong — it is Met); ③ the peptide bond being catalyzed by a protein enzyme (wrong — it is 23S rRNA).
Full text
Case

An ED patient with sepsis is started on ampicillin. The intern asks, "Does ampicillin inhibit protein synthesis?" The attending laughs: "No — it hits the transpeptidase of the cell wall, nothing to do with the ribosome. Exam questions love to use it as a distractor."

Prokaryotic initiation relies on complementary base pairing between the Shine-Dalgarno sequence (purine-rich, consensus AGGAGG) at the mRNA 5′ end and the 3′ end of 16S rRNA, positioning the ribosome precisely on the initiator AUG; eukaryotes have no SD sequence and instead use 5′ cap → scanning → the first AUG (Kozak sequence). The eukaryotic initiator tRNA is Met-tRNAi (unformylated); only prokaryotes use fMet — assigning the 80S ribosome to prokaryotes is a common reversal. The small subunit binds mRNA first, and the large subunit joins only at the end; mistakenly believing that "the complete ribosome assembles before mRNA binds" is a frequently tested trap.

Antibiotics split first into "inhibits the cell wall vs. inhibits protein synthesis": ampicillin/β-lactams hit the transpeptidase/PBP of the cell wall, unrelated to the ribosome. The latter group further splits by the prokaryotic ribosomal subunit: the 30S subunit is hit by aminoglycosides (misreading/blocking initiation) and tetracycline (blocking the A site); the 50S subunit is hit by chloramphenicol (inhibiting peptidyl transferase) and macrolides (blocking translocation).

Formula for calculation questions: number of amino acids ≈ (DNA bp ÷ 3) − 1 (subtracting the stop codon); molecular weight ≈ aa × 110 Da. Example: 900 bp → 300 codons − 1 stop = 299 aa → ≈ 32,900 Da (≈33 kDa).

Easily confused details in protein structural hierarchy: a Gly-Pro sequence tends to form a β-turn (Pro's rigid ring bend plus Gly's minimal side chain lending flexibility) — not an α-helix; the disulfide bond is the only covalent bond in tertiary structure, not a force maintaining the α-helix (the α-helix relies purely on backbone hydrogen bonds, between the i-th C=O and the (i+4)-th N-H). Codon-anticodon pairing is by hydrogen bonds, not covalent; the third position allows wobble.

Enzyme Kinetics and Protein Purification: Lineweaver-Burk Plots and Molecular Sieves

⟶ Mechanism

The core parameters of Michaelis-Menten kinetics form a single causal chain. Step one: Km is the substrate concentration at which [S] reaches ½ Vmax → a small Km means high affinity. Step two: Vmax is proportional to [E] → more enzyme means a higher Vmax. Step three: kcat is the number of substrate molecules each enzyme converts per second → it measures how "fast" the catalysis is. Step four: kcat/Km is the catalytic efficiency (the specificity constant) → its upper limit is roughly the diffusion rate, 10⁸–10⁹. Step five: when [S] ≪ Km, the reaction simplifies to v ≈ (Vmax/Km) × [S], behaving as first-order → the proportionality constant is kcat/Km (second-order rate constant; Vmax/Km = kcat/Km × [E]t), not kcat alone, and not 1/Km.

⚠ Trap
✗🦦To measure a protein's molecular weight in a patient's blood — I'll pick IEF, isoelectric focusing!
✓🐻‍❄️Wrong track entirely. IEF measures the isoelectric point, pI — not molecular weight; to measure molecular weight you need SDS-PAGE or molecular sieving. And SDS also confers a uniform negative charge and destroys activity, so do not ask in the same breath whether "SDS-PAGE can preserve activity" — it cannot.
★ Must-know
  • When [S] ≪ Km, the rate constant = kcat/Km (second-order rate constant; Vmax/Km = kcat/Km × [E]t), not kcat.
  • LB plots for the three inhibition types: competitive shares the y-intercept / noncompetitive shares the x-intercept / uncompetitive runs parallel; competitive: Km↑, Vmax unchanged; uncompetitive: Km↓, Vmax↓.
  • A280 = Trp > Tyr > Phe; non-aromatic residues do not absorb; A280 is for quantification only, not identification.
  • The disulfide bond belongs to tertiary structure, the only covalent bond; the α-helix relies purely on backbone hydrogen bonds (i↔i+4).
  • SDS-PAGE measures molecular weight and destroys activity; IEF measures pI; in gel filtration, large molecules elute first — it cannot identify a protein's identity.
  • Irreversible inhibition (aspirin acetylating COX, organophosphates inhibiting AChE) causes covalent inactivation, which kinetically resembles a drop in [E].
  • Traps: ① answering kcat when [S] ≪ Km (wrong — it is kcat/Km); ② Asn also absorbing at 280 (wrong — it has no aromatic ring); ③ using IEF to measure molecular weight (wrong — IEF measures pI).
Full text · 1 table
Case

A graduate student runs a Lineweaver-Burk plot: after adding the inhibitor, the double-reciprocal line shares the same y-intercept with the original line, but its slope is steeper. Her advisor asks, "Did Km and Vmax change?" She answers, "The y-intercept is the same, so 1/Vmax is unchanged — Vmax is unchanged. The x-intercept is closer to zero, so −1/Km is smaller — Km is larger." The advisor nods: "Classic competitive inhibition — a large excess of substrate can rescue Vmax."

The three types of reversible inhibition can be told apart at a glance with a Lineweaver-Burk plot (x-intercept = −1/Km, y-intercept = 1/Vmax, slope = Km/Vmax):

Inhibition typeBinding targetKm (apparent)VmaxLB plot
CompetitiveBinds only free E↑UnchangedShared y-intercept
NoncompetitiveBinds both E and ESUnchanged↓Shared x-intercept
UncompetitiveBinds only ES↓↓Parallel lines

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Protein quantification relies on A280: absorbance comes from the aromatic-ring-bearing Trp (strongest) > Tyr > Phe; the non-aromatic Asn, Gly, Ala do not absorb. A280 is strictly for quantification — it cannot identify a protein's identity or molecular weight.

Choosing the right protein separation technique depends on "what you are separating by": SDS-PAGE separates by molecular weight (SDS confers a uniform negative charge, denatures the protein, and destroys its activity); native PAGE preserves activity; IEF separates by isoelectric point; ion exchange separates by charge; gel filtration/molecular sieving separates by molecular size — large molecules elute first (they cannot enter the beads and take a shorter path); affinity chromatography separates by specific binding. The elegance of SDS: roughly one SDS molecule binds per two amino acids, conferring a uniform negative charge independent of the protein's intrinsic charge, so migration distance is determined by molecular weight alone. Watch the trap: molecular sieving cannot identify a protein's identity, only separate by size.

♪ Memory hook

One big, two messenger, three small — Pol II fears amanitin most, and initiation starts with the small subunit boarding the mRNA first.

Read-aloud version (copy the whole thing into any TTS)

The death cap mushroom patient's liver enzymes begin to skyrocket at forty-eight hours; α-amanitin has an extremely high affinity for RNA Pol II, and completely inhibits Pol II at vanishingly low concentrations, so mRNA synthesis grinds to a halt, protein synthesis stops, and hepatocytes die. Pol I is completely unaffected, and Pol III is only inhibited at high concentrations — this specificity is itself an exam question. The division of labor among the three eukaryotic RNA polymerases is remembered in one line as "one big, two messenger, three small": Pol I works in the nucleolus making the large rRNAs, Pol II makes pre-mRNA and most small nuclear RNA, and Pol III makes 5S rRNA, transfer RNA, and small RNAs. Mammalian nuclei have no Pol IV responsible for mRNA — that belongs to plant RNA interference; prokaryotes have only one RNA polymerase, which recognizes promoters via a σ factor.

The three major modifications of mRNA are completed entirely within the nucleus, co-transcriptionally, not in the endoplasmic reticulum or the Golgi apparatus. The 5′ cap — a 7-methylguanosine joined by a 5′-5′ triphosphate bond — is added as soon as just over twenty nucleotides have been transcribed; the 3′ end receives a poly(A) tail, not phosphorylation, with the core signal AAUAAA lying upstream of the cleavage site; splicing is carried out by the spliceosome's U1, U2, U4 plus U6, and U5. The key to the three types of splicing is who holds the blade. Group I introns use the 3′-OH of an exogenous free guanosine as the nucleophile; group II introns and the eukaryotic spliceosome both attack with the 2′-OH of the branch-point adenosine inside the intron, coiling into a lariat. Remember "external G, internal A" and you will never get it wrong. The 3′ end of every tRNA is CCA-OH, and the amino acid is esterified onto this 3′-OH by aminoacyl-tRNA synthetase, regardless of species or amino acid.

The three stages of translation use prokaryotes as the framework. In initiation, IF1 occupies the A site, IF2 carries fMet-tRNA into the P site, and IF3 prevents the large subunit from joining prematurely; in elongation, EF-Tu delivers aminoacyl-tRNA into the A site, a peptide bond forms, and EF-G carries out translocation; in termination, a release factor recognizes one of the three stop codons. Peptide bond formation is catalyzed by the peptidyl transferase of the 23S rRNA, so the ribosome is a ribozyme — RNA, not a protein enzyme, is the catalytic core. The polypeptide runs from N to C, and the mRNA from 5′ to 3′. Prokaryotic initiation relies on complementary pairing between the purine-rich Shine-Dalgarno sequence and the 3′ end of 16S rRNA to position the ribosome on the initiator AUG; eukaryotes have no SD sequence and instead start from the 5′ cap, scanning for the first AUG — the Kozak sequence. The eukaryotic initiator tRNA carries methionine, unformylated, while only prokaryotes use formylmethionine — assigning the 80S ribosome to prokaryotes is a common reversal. The small subunit binds mRNA first, and the large subunit joins only at the end; mistakenly believing that the complete ribosome assembles before mRNA binds is a frequently tested trap.

Antibiotics first split into those that inhibit the cell wall and those that inhibit protein synthesis. Ampicillin and the other β-lactams hit the transpeptidase and penicillin-binding proteins of the cell wall, unrelated to the ribosome — a frequent distractor option. The latter group further splits by ribosomal subunit: the 30S subunit is targeted by aminoglycosides and tetracycline, with aminoglycosides causing misreading and blocking initiation, and tetracycline blocking aminoacyl-tRNA from entering the A site; the 50S subunit is targeted by chloramphenicol, which inhibits peptidyl transferase, and macrolides, which block translocation. Global regulation runs through eIF2α: when iron is deficient, heme synthesis falls, free heme falls, HRI — the heme-regulated inhibitor kinase — is activated, and it phosphorylates serine 51 of eIF2α; phosphorylated eIF2 becomes a competitive inhibitor of eIF2B, eIF2-GTP cannot be recycled, the 43S initiation complex cannot assemble, and global translation — especially of hemoglobin — is shut down. This is also the common final pathway of the integrated stress response, one that PKR, PERK, and GCN2 all converge on; as long as eIF2α is phosphorylated, initiation stops. Formula for calculation questions: the number of amino acids is roughly the DNA base pairs divided by three, minus one stop codon; the molecular weight is roughly the number of amino acids multiplied by one hundred ten daltons. For example, nine hundred base pairs is three hundred codons, minus one is two hundred ninety-nine amino acids, multiplied by one hundred ten is roughly thirty-two thousand nine hundred daltons, roughly thirty-three kilodaltons. A few details of protein structure need to be clear: a glycine-proline sequence tends toward a β-turn, because proline's rigid ring bend plus glycine's minimal side chain lend flexibility — not an α-helix; the disulfide bond is the only covalent bond in tertiary structure, not a force that maintains the α-helix, since the α-helix relies purely on backbone hydrogen bonds, formed between the i-th carbon-oxygen double bond and the (i+4)-th nitrogen-hydrogen bond; codon and anticodon pairing is by hydrogen bonds, not covalent, and the third position allows wobble.

The core of enzyme kinetics lies in a handful of parameters from the Michaelis-Menten rate equation. Km is the substrate concentration at which the reaction reaches half of Vmax — a small Km means high affinity; Vmax is proportional to the total amount of enzyme; kcat is how many substrate molecules each enzyme converts per second; kcat divided by Km is the catalytic efficiency, with an upper limit of roughly the diffusion rate, ten to the eighth to ninth power. When the substrate concentration is far below Km, the reaction simplifies to v approximately equal to Vmax divided by Km, multiplied by [S], and the proportionality constant is kcat divided by Km — that is, Vmax divided by Km — not kcat alone, and not one divided by Km; this is an easy point to drop in calculation questions. The three types of reversible inhibition can be told apart at a glance with a double-reciprocal plot: the x-intercept is negative one divided by Km, and the y-intercept is one divided by Vmax. Competitive inhibition binds only the free enzyme, competing for the active site; Vmax is unchanged, Km rises, the lines share a y-intercept with a steeper slope, and a large excess of substrate can rescue Vmax. Noncompetitive inhibition binds an allosteric site, binding both the enzyme and the enzyme-substrate complex; Km is unchanged, Vmax falls, and the lines share an x-intercept. Uncompetitive inhibition binds only the enzyme-substrate complex; Km and Vmax fall together, giving parallel lines. Irreversible inhibition — such as aspirin acetylating COX or organophosphates inhibiting acetylcholinesterase — causes permanent covalent inactivation, kinetically resembling a reduction in the amount of enzyme. Protein quantification relies on absorbance at 280 nm: the absorbance comes strongest from tryptophan, next from tyrosine, weaker from phenylalanine; the non-aromatic asparagine, glycine, and alanine do not absorb; 280 nm absorbance can only quantify, never identify a protein's identity or molecular weight. Choosing the right separation technique depends on what you are separating by: SDS-PAGE confers a uniform negative charge, destroys activity, and separates by molecular weight; native gel electrophoresis preserves activity; isoelectric focusing separates by isoelectric point and measures the isoelectric point; ion exchange separates by charge; molecular sieving separates by size, with large molecules eluting first, and cannot identify identity; affinity chromatography separates by specific binding. Do not reach for isoelectric focusing to measure molecular weight — that measures the isoelectric point instead; this too is a high-frequency, fatal trap. Think through where the molecules flow across the whole chapter, work out exactly which parameter has shifted, and every question will fall out on its own.

🧪 Practice on this topic: 93 questions Taiwan board past papers · in Chinese, with explanations
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★ High-yield points & traps from past exams (4 sections)
Molecular Biology Techniques (PCR, Sequencing, Hybridization, etc.) 26 questions
Exam pointCorrect answerCommon trap
Why PCR uses TaqDenaturation at 95°C → requires a heat-stable enzyme; E. coli Pol would be inactivatedTreating "Taq lacks proofreading" as the main reason it could not be used
How many regions one primer pair amplifiesOnly one specific segment; multiple loci require multiplex PCRThinking one primer set can amplify several sites at once
What is needed to build a genomic libraryRestriction enzyme + ligase (no reverse transcriptase needed)Adding reverse transcriptase by mistake
Reverse transcriptase is used forcDNA library (mRNA→cDNA)Using it for a genomic library
Uses of RFLPPaternity testing, linkage analysis, DNA fingerprintingUsing it to build a cDNA library by mistake
Largest cloning vectorYAC (contains telomeres/centromere/ori)Choosing plasmid or cosmid by mistake
Recognition site of type II restriction enzymesPalindromic sequencesTaking asymmetric sequences as the target
Standard method of plasmid transformationCaCl₂ + 42°C heat shockWriting "low-voltage electrophoresis" by mistake
Does site-directed mutagenesis need reverse transcriptase?No (uses mutagenic primers + polymerase)Adding reverse transcriptase by mistake

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Translation and Protein Synthesis 35 questions
Exam pointCorrect answerCommon trap
Pairing partner of the Shine-Dalgarno sequence3′ end of 16S rRNA (prokaryotic 30S)Treating it as the eukaryotic cap mechanism
Mechanism of ampicillinInhibits the cell wall (transpeptidase)Treating it as inhibiting ribosomes/protein synthesis
Codon-anticodon bondingHydrogen bonds (complementary pairing)Answering covalent bonds
Structural tendency of Gly-Pro sequencesβ-turnAnswering α-helix
How iron deficiency inhibits translationHRI → phosphorylates eIF2αOverlooking that "phosphorylation actually inhibits initiation"
Molecular weight of the protein encoded by 900 bp≈ 33,000 Da (299 aa×110≈32,900)Forgetting to subtract the stop codon/using the wrong average mass
Order of eukaryotic initiationThe small subunit binds the mRNA first, the large subunit joins lastThinking the complete ribosome assembles first
Initiator tRNAProkaryotes fMet; eukaryotes Met (not formylated)Assigning 80S to prokaryotes
Catalyst of peptide bond formation23S rRNA (ribozyme)Thinking it is a protein enzyme
Direction of synthesis/readingPolypeptide N→C; mRNA 5′→3′Writing the directions in reverse

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Transcription and RNA Processing 14 questions
Exam pointCorrect answerCommon trap
Polymerase that synthesizes mRNAPol IIChoosing Pol IV by mistake (it exists only in plants, not in humans)
Most sensitive to α-amanitinPol II (Pol I is insensitive)Reversing the order
Synthesis of tRNA / 5S rRNAPol IIIConfusing it with the large rRNAs made by Pol I
Processing of the mRNA 3′ endpolyadenylation (adding the poly(A) tail)Answering "phosphorylation"
poly(A) signal sequenceAAUAAAWriting a promoter sequence such as TATA/CAAT
Where 5′ capping occursIn the nucleus, cotranscriptionallyAnswering ER or Golgi
Nucleophile in group I intronsFree guanosineChoosing snRNA/ligase (spliceosome components) by mistake
Nucleophile in spliceosome/group II introns2′-OH of an internal A (lariat)Confusing it with the external G of group I
Common 3′-end sequence of tRNA-CCA-OHThinking it differs among tRNAs
Number of prokaryotic RNA polymerasesOnly one (relies on σ factors)Applying the eukaryotic three-polymerase division of labor

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Enzyme Kinetics and Inhibition 35 questions
Exam pointCorrect answerCommon trap
Rate constant when [S]≪Kmkcat/Km (second-order rate constant; Vmax/Km = kcat/Km × [E]t)Answering kcat or 1/Km
Index of catalytic efficiencykcat/KmLooking only at kcat or only at Km
Effect of competitive inhibition on Km/VmaxKm↑, Vmax unchangedConfusing it with noncompetitive inhibition
Uncompetitive inhibitionKm↓, Vmax↓ (parallel LB lines)Thinking Vmax is unchanged
Source of A280 absorbanceTrp>Tyr>PheCounting residues without aromatic rings, such as Asn
The only covalent bond in tertiary structureDisulfide bond (S-S)Treating it as a force maintaining secondary structure
Force maintaining the α-helixBackbone hydrogen bonds (i ↔ i+4)Answering disulfide bonds/hydrophobic interactions
Measuring protein molecular weightSDS-PAGE or gel filtrationUsing IEF (that measures pI)
Action of SDSConfers a uniform negative charge, destroys activityThinking SDS-PAGE preserves activity
Elution order in gel filtrationLarge molecules elute firstRemembering small molecules eluting first
Can gel filtration identify a protein?No; it separates by size onlyThinking it can establish identity

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🧪 Other questions in this subject (4, not tied to a chapter)
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★ Final review: every must-know in this subject (28 sets)
01 · The Code and Toolkit of the Double Helix
★ Must-know
Chargaff's Rules and DNA Conformations
  • Double-stranded DNA: A=T, G=C; A+G (purines) = T+C (pyrimidines) = 50%.
  • Calculation formula: given T=31% → A=31%, the remaining 38% is split between G and C → C=G=19% (not 31%).
  • B-DNA = right-handed, 10 bp/turn, base-pair rise of 3.4 Å (the predominant physiological conformation).
  • A-DNA = right-handed, 11 bp/turn, 2.6 Å (dehydrated conditions, RNA-DNA hybrids).
  • Z-DNA = left-handed, 12 bp/turn, 3.7 Å (alternating GC sequences, transcriptionally active regions).
  • Traps: ① B-DNA listed as 3.6 Å (wrong — it is 3.4); ② B-DNA called left-handed (wrong — left-handed is Z); ③ T=31% leads you to write C as 31% too (wrong — it is 19%).
01 · The Code and Toolkit of the Double Helix
★ Must-know
Test Points Derived from the 3'-OH Rule
  • The primer in DNA replication is RNA (synthesized by primase, not DNA).
  • AZT mechanism = chain termination from the missing 3'-OH; target = HIV reverse transcriptase.
  • Proofreading activity = Pol III's 3'→5' exonuclease (Taq lacks this activity → low fidelity).
  • Primer removal = Pol I's 5'→3' exonuclease; sealing the nick = DNA ligase (not a polymerase).
  • The lagging strand is made of Okazaki fragments; once the primer is excised, the gap is filled in and sealed.
  • Traps: ① listing the AZT target as protease/RNase H/host polymerase (wrong — it is reverse transcriptase); ② listing nick-sealing as polymerase/helicase (wrong — it is ligase); ③ listing the proofreading direction as 5'→3' (wrong — it is 3'→5').
01 · The Code and Toolkit of the Double Helix
★ Must-know
The Four Repair Systems
  • BER: DNA glycosylase excises the abnormal base (deamination, oxidation, uracil) → AP endonuclease.
  • NER: handles large distorting lesions such as UV pyrimidine dimers; deficiency = XP (xeroderma pigmentosum).
  • MMR: post-replication mismatches; MutS recognizes, MutH nicks the unmethylated new strand; deficiency = Lynch syndrome / HNPCC.
  • SOS: RecA activation → LexA autocleavage (the one being cleaved) → repair genes are derepressed.
  • Traps: ① listing DNA glycosylase under MMR (wrong — it belongs to BER alone); ② assigning UV dimers to BER (wrong — they need NER); ③ naming UvrA or RecA as the one broken down in SOS (wrong — it is LexA).
01 · The Code and Toolkit of the Double Helix
★ Must-know
Core Facts About PCR
  • Three steps: 95 / 50–65 / 72°C (denaturation / annealing / extension).
  • Main reason for using Taq = heat resistance (*E. coli* Pol is inactivated at 95°C); Taq's lack of proofreading is a side effect.
  • One primer pair → one specific segment; multiple sites require multiplex PCR.
  • Traps: ① listing the main reason as "Taq has high fidelity" (wrong — it is actually low); ② claiming one primer pair can amplify multiple regions (wrong — only one segment); ③ listing the polymerase used in PCR as *E. coli* Pol (wrong — it would be heat-inactivated).
01 · The Code and Toolkit of the Double Helix
★ Must-know
Libraries, Vectors, and Blots
  • Genomic library = restriction enzyme + ligase (no reverse transcriptase needed; contains introns).
  • cDNA library = reverse transcriptase + ligase (no introns; allows eukaryotic protein expression in prokaryotes).
  • RFLP is used for paternity testing, linkage analysis, and DNA fingerprinting (not for building a cDNA library).
  • Largest vector = YAC (contains an origin of replication, telomere, and centromere).
  • Type II restriction enzymes recognize palindromic sequences; transformation = CaCl₂ + 42°C heat shock; site-directed mutagenesis needs no reverse transcriptase.
  • The three blots: Southern = DNA, Northern = RNA, Western = protein (using antibodies).
  • Traps: ① adding reverse transcriptase to a genomic library (wrong — not needed); ② using RFLP to build a cDNA library (wrong — unrelated); ③ describing transformation as "low-voltage electrophoresis" (wrong — it is heat shock or electroporation).
02 · Switches, Batteries, and Packaging
★ Must-know
Operon Logic
  • lac = inducible: fully on only when no glucose (glucose low, cAMP↑, CAP-cAMP activation) and lactose is present (repressor released) → lacZYA is transcribed.
  • lacZ = β-gal, lacY = permease, lacA = transacetylase, lacI = repressor.
  • trp = repressible: Trp high → termination, Trp low → continuation; the mechanism is a switch in mRNA secondary structure (terminator vs. antiterminator), not the leader peptide acting directly on RNA pol.
  • Traps: ① assuming lactose alone turns it fully on (wrong — glucose must also be low); ② assuming Trp high leads to continuation (wrong — it leads to termination); ③ swapping lacZ/lacY (wrong — Z is β-gal).
02 · Switches, Batteries, and Packaging
★ Must-know
Eukaryotic Transcriptional Regulation
  • The main reason housekeeping-gene expression levels differ = the promoter's affinity for RNA pol (not degradation rate).
  • The direct binder of the enhancer = the activator (a transcription factor); the coactivator is a bridge, and TBP binds TATA.
  • Traps: ① attributing enhancer binding to coactivator/TBP (wrong — it is the activator); ② attributing expression-level differences to degradation rate (wrong — it is promoter strength).
02 · Switches, Batteries, and Packaging
★ Must-know
Epigenetics and Motifs
  • DNA methylation: DNMT acts on CpG (not TATA / CAAT / telomere) → transcriptional repression.
  • HAT acetylation → loosens → activation; HDAC deacetylation → condenses → repression.
  • Mediates dimerization = leucine zipper; main DNA-binding motif = zinc finger; homeotic genes contain a homeodomain and, expressed late, determine "segment structure".
  • Traps: ① listing the methylation hotspot as TATA/CAAT/telomere (wrong — it is CpG); ② listing zinc finger or β-barrel as mediating the dimer (wrong — it is the leucine zipper); ③ pairing homeotic genes with "specific organs" (wrong — it is "body segments").
02 · Switches, Batteries, and Packaging
★ Must-know
Division of Labor Among Coenzymes
  • NAD⁺ structure: two nucleotides + a pyrophosphate bridge; the hydrogen-accepting site = nicotinamide C4, accepting a hydride; the reduced form is NADH.
  • NADP⁺ vs. NAD⁺: the only difference is one extra phosphate on the 2'-position of the ribose at the adenine end.
  • NADH is routed toward catabolism (energy production); NADPH is routed toward biosynthesis and antioxidant defense.
  • Vitamin sources: NAD/NADP ← B3 niacin; FAD/FMN ← B2 riboflavin.
  • Quick reference for other coenzymes: B1 = TPP (oxidative decarboxylation), B5 = CoA (acyl transfer), B6 = PLP (transamination/decarboxylation), B7 biotin = carboxylation (requires CO₂ + ATP), B9 = THF (one-carbon transfer), B12 = cobalamin (methyl transfer/isomerization).
  • Traps: ① writing NADH₂ (wrong — it is NADH; FADH₂ is the one with two H's); ② listing NAD as coming from B2 (wrong — it is B3); ③ routing NADPH toward catabolic energy production (wrong — it goes toward biosynthesis and antioxidant defense).
02 · Switches, Batteries, and Packaging
★ Must-know
Chromosome Packaging
  • Histones carry a positive charge (rich in Lys/Arg) → they grip the negatively charged DNA electrostatically (not covalently or hydrophobically).
  • Hierarchy: DNA → nucleosome (8 histones) → 30 nm fiber (with H1's help) → chromosome.
  • The protein-coding fraction of the human genome = about 1.5–2% (not >40%).
  • Traps: ① describing the histone-DNA interaction as covalent/hydrophobic (wrong — it is electrostatic); ② listing the coding fraction as 40% (wrong — it is 1.5–2%); ③ pairing the nucleosome with H1 (wrong — H1 assists in forming the 30 nm fiber).
03 · Chromosomal Recombination, the Salvage Yard, and Fuel
★ Must-know
Recombination and V(D)J
  • Homologous recombination = requires homology (meiosis, double-strand break repair).
  • Site-specific recombination = requires no homology; V(D)J belongs here, RAG1/2 recognize the RSS.
  • Transposition/viral integration = requires no homology; after retroviral integration, the LTR is duplicated at both ends (gag/pol/env occur only once).
  • V–J occurs in DNA, J–C occurs via RNA splicing.
  • Traps: ① listing V(D)J as homologous recombination (wrong — it is site-specific); ② claiming gag/pol/env are also duplicated after integration (wrong — only the LTR is); ③ claiming J–C is also DNA recombination (wrong — it is RNA splicing).
03 · Chromosomal Recombination, the Salvage Yard, and Fuel
★ Must-know
Hemoglobin, Telomeres, and the Cell Cycle
  • Sickle cell disease: β-globin Glu→Val point mutation (qualitative); β/α-thalassemia: reduced/absent chain synthesis (quantitative).
  • Telomere sequence = repeating TTAGGG; the single-stranded overhang forms a four-stranded G-quadruplex (not three- or five-stranded).
  • Telomerase shows high activity in stem/germ/cancer cells.
  • Terminally differentiated cells exit the cycle → G0 phase; the cycle = G1→S→G2→M.
  • Traps: ① describing sickle cell as "too little chain made" (wrong — it is a wrong substitution); ② listing the G-quadruplex as three- or five-stranded (wrong — it is four-stranded); ③ saying differentiated cells arrest in G1 (wrong — it is G0).
03 · Chromosomal Recombination, the Salvage Yard, and Fuel
★ Must-know
The Three Purine Salvage Enzymes
  • HGPRT deficiency = Lesch-Nyhan: salvage blocked, uric acid↑, intellectual disability, self-mutilation; de novo synthesis is intact and even accelerated.
  • APRT deficiency = adenine is oxidized by XO into 2,8-DHA → kidney stones.
  • Overactive PRPP synthetase = de novo synthesis↑ → uric acid↑ → gout.
  • Xanthine has no salvage enzyme and can only be oxidized by XO into uric acid.
  • Allopurinol/febuxostat inhibit XO; an acute flare is treated with NSAIDs/colchicine/steroids, never started with a urate-lowering drug.
  • Traps: ① describing Lesch-Nyhan as "de novo broken" (wrong — salvage is broken, and de novo actually accelerates); ② claiming xanthine can also be salvaged (wrong — no enzyme exists for it); ③ giving allopurinol first in acute gout (wrong — it would provoke a flare).
03 · Chromosomal Recombination, the Salvage Yard, and Fuel
★ Must-know
Pyrimidines, dTMP, Deamination, and End Products
  • Orotic aciduria (part of the same family of metabolic defects as galactosemia) = UMP synthase deficiency; supplementing uridine bypasses the defect and provides feedback to suppress orotic acid; it does not improve with folate/B12.
  • dUMP→dTMP is carried out by thymidylate synthase (methyl donor = 5,10-methylene-THF); 5-FU inhibits thymidylate synthase, methotrexate inhibits DHFR.
  • The difference between thymine and uracil = one extra methyl group at the 5-position.
  • 5-methylcytosine deaminates → thymine (mutational hotspot); cytosine→uracil; adenine→hypoxanthine; guanine→xanthine.
  • End products: purines → uric acid; pyrimidines → β-alanine / β-aminoisobutyric acid.
  • Traps: ① supplementing thymine or adenosine for orotic aciduria (wrong — it should be uridine); ② claiming 5-mC deaminates to uracil (wrong — it becomes thymine); ③ listing uric acid as a pyrimidine breakdown product (wrong — uric acid comes from purines).
03 · Chromosomal Recombination, the Salvage Yard, and Fuel
★ Must-know
PDH, the TCA Cycle, the ETC, and ROS
  • PDH = 3 enzymes, 5 coenzymes (TPP, lipoic acid, CoA, FAD, NAD⁺); biotin/CoQ are neither. B1 deficiency → Wernicke-Korsakoff syndrome, beriberi.
  • One turn of the TCA cycle: 2 CO₂, 3 NADH, 1 FADH₂, 1 GTP; net OAA consumption = 0; rate-limiting enzyme = isocitrate DH.
  • Substrate-level phosphorylation = occurs in both the cytosol and the mitochondrion; oxidative phosphorylation = only at the inner mitochondrial membrane.
  • Electron pathway: I → CoQ → III → Cyt c → IV → O₂; the one that hands off directly to O₂ = Complex IV; FADH₂ enters at II.
  • Pumping H⁺: matrix → intermembrane space (I, III, IV); ATP yield = NADH 2.5 / FADH₂ 1.5.
  • Inhibitors (oxygen consumption↓): rotenone (I), antimycin A (III), CN⁻/CO/H₂S/azide (IV), oligomycin (V).
  • Uncouplers (oxygen consumption↑, heat production↑, ATP↓): 2,4-DNP, aspirin overdose, UCP1.
  • Clearing H₂O₂ = glutathione peroxidase; reductase uses NADPH to recharge GSH.
  • Acetyl-CoA: a high-energy thioester bond.
  • Traps: ① listing biotin or CoQ among the PDH coenzymes (wrong — neither is); ② claiming cyanide blocks Complex I (wrong — it is IV); ③ saying 2,4-DNP decreases oxygen consumption (wrong — it rises instead).
03 · Chromosomal Recombination, the Salvage Yard, and Fuel
★ Must-know
Feeding/Fasting, HIF-1, and Glycosylation
  • Fed = insulin-dominant (storage); fasting = glucagon-dominant (mobilization, lipolysis, ketogenesis).
  • Low-carbohydrate, high-protein → β-oxidation↑ → ketone bodies↑ → high-anion-gap metabolic acidosis (not alkalosis); urea↑; fat↓.
  • β-OHB is the most abundant; the nitroprusside strip cannot detect β-OHB (urine ketones may be falsely negative).
  • The liver makes but does not use ketone bodies (lacking SCOT/thiophorase); ketone bodies serve the brain, heart, and muscle.
  • HIF-1↑ → PDK1↑ → PDH↓ → glycolysis, ROS↓ (decreased) (one of the Warburg mechanisms).
  • N-glycosylation attaches to Asn (amide nitrogen), consensus Asn-X-Ser/Thr (X≠Pro), initiated by GlcNAc, in the ER; O-glycosylation attaches to Ser/Thr (hydroxyl), initiated by GalNAc, in the Golgi.
  • Cysteine is not a standard glycosylation site.
  • Traps: ① describing a low-carb, high-protein diet as causing alkalosis/decreased urea (wrong — it is acidosis/increased urea); ② ruling out DKA on a negative strip (wrong — β-OHB cannot be detected); ③ saying HIF-1 activation leaves ROS unchanged (wrong — it decreases).
04 · Gas Pedal, Brakes, and Proofreader: The Dual Command of Cancer Genes and Vitamins
★ Must-know
  • Oncogene: gain-of-function, dominant (one allele is enough for disease). Metaphor = gas pedal stuck to the floor.
  • Tumor suppressor: loss-of-function, recessive, two-hit (RB is the prototype; LOH achieves the second hit).
  • DNA repair gene: a mutator, usually also two-hit.
  • Exception: TP53's dominant-negative effect lets Li-Fraumeni show a clear cancer increase with a single germline mutation; some suppressors also show haploinsufficiency.
  • "The most commonly mutated tumor suppressor" = TP53, not RB.
  • Traps: ① listing oncogenes as recessive (wrong — they are dominant); ② claiming RB is also dominant-negative (wrong — that is TP53); ③ listing RB as the most commonly mutated (wrong — it is TP53).
04 · Gas Pedal, Brakes, and Proofreader: The Dual Command of Cancer Genes and Vitamins
★ Must-know
  • Lynch (HNPCC) = MMR mutation (MLH1/MSH2/MSH6/PMS2) → MSI-high.
  • Favors the right colon + endometrial cancer; often <50 years old; does not arise through a large number of polyps.
  • FAP = APC (a suppressor), covered with polyps.
  • Screening uses the Amsterdam/Bethesda criteria; diagnosis relies on MSI testing + genetics.
  • MSI-high / dMMR → respond well to anti-PD-1 (pembrolizumab) (a frequent, newer test point).
  • Traps: ① listing Lynch as APC (wrong — it is MMR); ② describing Lynch as a field of polyps (wrong — that is FAP); ③ saying Lynch favors the left colon (wrong — it is the right).
04 · Gas Pedal, Brakes, and Proofreader: The Dual Command of Cancer Genes and Vitamins
★ Must-know
  • KRAS mutation → anti-EGFR ineffective (a frequent, high-stakes question).
  • BRCA1/2 → PARP inhibitor (synthetic lethality).
  • Burkitt = MYC t(8;14); CML = BCR-ABL t(9;22).
  • "The most commonly mutated tumor suppressor" = TP53.
  • Traps: ① giving cetuximab despite a KRAS mutation (wrong — it is ineffective); ② listing Burkitt as t(9;22) (wrong — it is t(8;14)); ③ pairing BRCA with an EGFR inhibitor (wrong — it pairs with a PARP inhibitor).
04 · Gas Pedal, Brakes, and Proofreader: The Dual Command of Cancer Genes and Vitamins
★ Must-know
  • B1 (TPP) → PDH, α-KGDH; deficiency = beriberi, Wernicke-Korsakoff syndrome. In patients with alcohol use disorder, give thiamine before glucose.
  • B3 (NAD/NADP): the 3 D's of pellagra; Hartnup disease / carcinoid / INH can all cause pellagra-like presentations.
  • B5 (CoA) comes from pantothenic acid, not folate (a frequent trap).
  • B6 (PLP): transamination, decarboxylation; coenzyme for ALA synthase → sideroblastic anemia; INH causes deficiency.
  • B7 (biotin): carboxylation; avidin in raw egg white binds biotin and causes deficiency.
  • Vitamin C: hydroxylates collagen (scurvy), reduces iron; it is not merely an antioxidant.
  • Traps: ① listing CoA as coming from folate (wrong — it is pantothenic acid, B5); ② claiming INH causes B12 deficiency (wrong — it is B6); ③ giving glucose before thiamine in alcohol use disorder (wrong — the order is reversed).
04 · Gas Pedal, Brakes, and Proofreader: The Dual Command of Cancer Genes and Vitamins
★ Must-know
  • B12 deficiency = MMA↑ + Hcy↑ + neurological deficit; folate deficiency = only Hcy↑, no neurological symptoms.
  • Folate alone must not be used: it corrects the anemia while worsening the neuropathy.
  • Pernicious anemia = autoimmune destruction of gastric parietal cells → IF deficiency → poor B12 absorption.
  • The structural metal of B12 = cobalt (Co); active forms = methyl-/adenosylcobalamin.
  • CoA comes from pantothenic acid (B5), not folate (a frequent, high-stakes question).
  • The zinc finger = Cys+His coordinating zinc; do not confuse it with the leucine zipper.
  • Traps: ① treating B12 deficiency with folate alone (wrong — it worsens the neuropathy); ② listing the B12 metal as iron or magnesium (wrong — it is cobalt); ③ claiming folate deficiency also raises MMA (wrong — only B12 deficiency does).
05 · Handling Nitrogen, Storing Fat, Sending Signals: Three Axes of Metabolism and Signal Transduction
★ Must-know
  • Transamination → deamination → ammonia disposal; blood ammonia transport = glutamine (whole body/brain) + alanine (muscle, Cahill cycle).
  • The urea cycle's two nitrogen sources: free NH₄⁺ (via CPS-I) + aspartate.
  • Final products = urea + fumarate; fumarate enters the TCA cycle.
  • CPS-I is the rate-limiting enzyme, requiring activation by NAG; the first 2 steps occur in the mitochondrion, the last 3 in the cytosol.
  • OTC deficiency (X-linked, most common) → hyperammonemia + orotic aciduria.
  • Traps: ① calling the final products urea + OAA (wrong — it is fumarate); ② claiming both nitrogens come from NH₄⁺ (wrong — the second is aspartate); ③ claiming all six steps occur in the cytosol (wrong — the first two occur in the mitochondrion).
05 · Handling Nitrogen, Storing Fat, Sending Signals: Three Axes of Metabolism and Signal Transduction
★ Must-know
  • PKU: PAH or BH4 deficiency; Tyr becomes essential; avoid aspartame; the BH4 variant also disrupts neurotransmitters.
  • Homocystinuria: CBS (requires B6) deficiency; downward lens dislocation (Marfan: upward); some patients respond to high-dose B6.
  • MSUD: deficiency of branched-chain α-ketoacid dehydrogenase (requires B1).
  • Albinism = tyrosinase; alkaptonuria = homogentisate oxidase; PKU = PAH — do not confuse the three.
  • GSH = γ-Glu–Cys–Gly (γ bond); creatine = Gly + Arg + Met (SAM supplies the methyl group).
  • OI (osteogenesis imperfecta) = type I collagen mutation, usually a glycine substitution.
  • Traps: ① calling the PKU deficiency tyrosinase (wrong — that is albinism); ② homocystinuria dislocating the lens upward (wrong — it is downward; Marfan is upward); ③ GSH as α-Glu-Cys-Gly (wrong — it is a γ bond).
05 · Handling Nitrogen, Storing Fat, Sending Signals: Three Axes of Metabolism and Signal Transduction
★ Must-know
  • Rate-limiting step of fatty acid synthesis = ACC (→ malonyl-CoA, requires biotin); rate-limiting step of cholesterol synthesis = HMG-CoA reductase.
  • Synthesis in the cytosol, oxidation in the mitochondrion; malonyl-CoA also inhibits CPT-I (the gate to β-oxidation).
  • Odd-chain fatty acid → propionyl-CoA → (B12) → succinyl-CoA; B12 deficiency → MMA↑.
  • COX substrate = arachidonate (C20:4), not a saturated fatty acid; aspirin does not affect cholesterol synthesis.
  • Cardiolipin is in the inner mitochondrial membrane; integral membrane proteins require detergent extraction; PAF = alkyl-ether, plasmalogen = vinyl-ether.
  • Lipoproteins: HDL performs reverse transport (esterification by LCAT); LDL travels via the LDL receptor (defective in FH).
  • Traps: ① aspirin lowering cholesterol (wrong — it acts on COX); ② naming palmitate as the COX substrate (wrong — it is arachidonate); ③ placing cardiolipin in the plasma membrane (wrong — it is in the inner mitochondrial membrane).
05 · Handling Nitrogen, Storing Fat, Sending Signals: Three Axes of Metabolism and Signal Transduction
★ Must-know
  • Lipid-soluble → receptor inside, slow and long-lasting; water-soluble → receptor on the membrane, fast and brief. Hsp90 binds the ligand-binding domain, not the DNA-binding domain.
  • Gs/Gi/Gq downstream: cAMP↑ / cAMP↓ / IP3 + DAG.
  • Cholera = locks Gsα on (inhibits GTPase); pertussis = locks Giα off (cannot bind GTP); both raise cAMP↑.
  • Insulin MAPK sequence: IRS-1 → Grb2-Sos → Ras → Raf → MEK → ERK.
  • ANP = membrane-bound GC → cGMP; JAK-STAT = IL, GH, EPO, leptin, IFN.
  • The β receptor does not directly activate Ras (Ras belongs to the RTK pathway).
  • Cyclin is the regulatory subunit and does not catalyze directly; CDK is the catalyst.
  • Traps: ① Hsp90 binding the DNA-binding domain (wrong — it is the ligand-binding domain); ② cholera and pertussis modifying the same G protein (wrong — Gs vs. Gi); ③ MEK downstream of ERK (wrong — it is upstream).
06 · Translation, Transcription, Enzymes: The Final Three Acts of Molecular Biology
★ Must-know
  • Pol I → large rRNA / Pol II → pre-mRNA / Pol III → tRNA + 5S rRNA; α-amanitin: Pol II most sensitive, Pol I insensitive.
  • Prokaryotes have only one RNA polymerase; mammals have no Pol IV (a trap).
  • The three major mRNA modifications occur entirely in the nucleus, co-transcriptionally; 3′ processing = polyadenylation, not phosphorylation; signal = AAUAAA.
  • Group I = exogenous G 3′-OH; group II and the spliceosome = internal A 2′-OH (lariat).
  • The 3′ end of every tRNA = -CCA-OH.
  • Traps: ① Pol I being most sensitive to amanitin (wrong — it is Pol II); ② calling 3′ processing phosphorylation (wrong — it is poly(A)); ③ group I using an internal A (wrong — it uses an exogenous G).
06 · Translation, Transcription, Enzymes: The Final Three Acts of Molecular Biology
★ Must-know
  • Initiator tRNA: prokaryotes fMet, eukaryotes Met; the small subunit binds mRNA first, the large subunit last.
  • The SD sequence pairs with the 3′ end of 16S rRNA (prokaryotes); eukaryotes use cap → scanning.
  • Peptide bond catalysis = 23S rRNA (a ribozyme); polypeptide N→C, mRNA 5′→3′.
  • Ampicillin hits the cell wall, not the ribosome (a trap); 30S = aminoglycoside/tetracycline; 50S = chloramphenicol/macrolide.
  • Iron deficiency → HRI → eIF2α phosphorylation → global translation shutdown.
  • Calculation: (bp/3) − 1 = aa; aa × 110 ≈ Da.
  • Gly-Pro → β-turn; the disulfide bond belongs to tertiary structure, the α-helix relies on hydrogen bonds.
  • Codon-anticodon = hydrogen bonds, not covalent.
  • Traps: ① ampicillin hitting the ribosome (wrong — it hits the cell wall); ② eukaryotic initiation using fMet (wrong — it is Met); ③ the peptide bond being catalyzed by a protein enzyme (wrong — it is 23S rRNA).
06 · Translation, Transcription, Enzymes: The Final Three Acts of Molecular Biology
★ Must-know
  • When [S] ≪ Km, the rate constant = kcat/Km (second-order rate constant; Vmax/Km = kcat/Km × [E]t), not kcat.
  • LB plots for the three inhibition types: competitive shares the y-intercept / noncompetitive shares the x-intercept / uncompetitive runs parallel; competitive: Km↑, Vmax unchanged; uncompetitive: Km↓, Vmax↓.
  • A280 = Trp > Tyr > Phe; non-aromatic residues do not absorb; A280 is for quantification only, not identification.
  • The disulfide bond belongs to tertiary structure, the only covalent bond; the α-helix relies purely on backbone hydrogen bonds (i↔i+4).
  • SDS-PAGE measures molecular weight and destroys activity; IEF measures pI; in gel filtration, large molecules elute first — it cannot identify a protein's identity.
  • Irreversible inhibition (aspirin acetylating COX, organophosphates inhibiting AChE) causes covalent inactivation, which kinetically resembles a drop in [E].
  • Traps: ① answering kcat when [S] ≪ Km (wrong — it is kcat/Km); ② Asn also absorbing at 280 (wrong — it has no aromatic ring); ③ using IEF to measure molecular weight (wrong — IEF measures pI).
★ High-yield points & traps: 14 exam sections (from the question book)
Exam pointCorrect answerCommon trap
Chargaff calculation (T=31%)C=G=19%Miscalculating C=31%
B-DNA parametersRight-handed, 10 bp/turn, 3.4 Å3.6 Å or left-handed (that is Z-DNA)
Nature of the replication primerRNA (synthesized by primase)Answering a DNA primer
AZT mechanism and targetLacks a 3'-OH → chain termination; target = reverse transcriptasePointing to protease/RNase H/host pol by mistake
Proofreading activity3'→5' exonuclease (Pol III)Confusing it with 5'→3' (primer removal)
Sealing nicks between DNA fragmentsDNA ligaseAnswering polymerase or helicase
Discontinuous fragments of the lagging strandOkazaki fragments (primers removed and gaps filled by Pol I)Thinking both strands are synthesized continuously
Repair of UV pyrimidine dimersNER; defect = XPAnswering BER
Postreplication mismatch repairMMR (MutS/L/H); defect = LynchAnswering NER
DNA glycosylase belongs toBERListing it as an MMR component by mistake
What is cleaved in the SOS responseLexA repressor (autocleavage)Answering that UvrA or RecA is degraded

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Exam pointCorrect answerCommon trap
Why PCR uses TaqDenaturation at 95°C → requires a heat-stable enzyme; E. coli Pol would be inactivatedTreating "Taq lacks proofreading" as the main reason it could not be used
How many regions one primer pair amplifiesOnly one specific segment; multiple loci require multiplex PCRThinking one primer set can amplify several sites at once
What is needed to build a genomic libraryRestriction enzyme + ligase (no reverse transcriptase needed)Adding reverse transcriptase by mistake
Reverse transcriptase is used forcDNA library (mRNA→cDNA)Using it for a genomic library
Uses of RFLPPaternity testing, linkage analysis, DNA fingerprintingUsing it to build a cDNA library by mistake
Largest cloning vectorYAC (contains telomeres/centromere/ori)Choosing plasmid or cosmid by mistake
Recognition site of type II restriction enzymesPalindromic sequencesTaking asymmetric sequences as the target
Standard method of plasmid transformationCaCl₂ + 42°C heat shockWriting "low-voltage electrophoresis" by mistake
Does site-directed mutagenesis need reverse transcriptase?No (uses mutagenic primers + polymerase)Adding reverse transcriptase by mistake

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Exam pointCorrect answerCommon trap
lac gene pairingZ = β-gal, Y = permease, A = transacetylaseSwapping Z/Y
Conditions for full lac operon expressionNo glucose + lactose present (CAP-cAMP↑)Thinking lactose alone turns it fully on
Direction of trp attenuationTrp high → termination; Trp low → continuationReversing the direction
Main reason expression levels differ among housekeeping genesPromoter affinity for RNA polAnswering degradation rate or inducers
What binds directly to an enhanceractivatorAnswering coactivator/TBP
Hotspot for DNA methylationCpG dinucleotidesAnswering TATA/CAAT box, telomeres
Effect of HDACDeacetylation → condensation → transcriptional repressionReversing it with HAT-mediated activation
Motif mediating dimerizationLeucine zipperAnswering zinc finger/β-barrel
Role of homeotic genesExpressed late; determine segmental structuresTreating them as genes for specific organs/traits (eye color/wings)

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Exam pointCorrect answerCommon trap
Type of recombination in V(D)J recombinationSite-specific recombination (RAG1/2 recognize RSS; no homologous sequence required)Answering homologous recombination
Feature of an integrated retrovirusLTRs repeated at both endsThinking gag/pol/env are repeated
Molecular defect in sickle cell diseaseβ-globin Glu→Val point mutationConfusing it with β-thalassemia (reduced/absent chains, γ compensation)
Phase in which terminally differentiated cells arrestG0 phaseAnswering G1 or still cycling
Why histones bind DNARich in Lys/Arg → positively charged, electrostatically holding negatively charged DNAThinking covalent bonds or hydrophobic interactions
Structure of the telomeric single strandFour-stranded G-quadruplexAnswering three- or five-stranded
Proportion of the human genome that codes for proteinAbout 1.5–2%Answering >40%
Level at which antibody light-chain V–J and J–C joining occurV–J at the DNA level, J–C by RNA splicingThinking J–C is also DNA recombination

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Exam pointCorrect answerCommon trap
Disease and mechanism of HGPRT deficiencyLesch-Nyhan: salvage blocked, uric acid↑, self-mutilationThinking de novo synthesis is also broken
Which base cannot be salvagedXanthine (no corresponding enzyme)Thinking all bases can be recycled
Treatment of orotic aciduriaGive uridine to bypass the defectChoosing thymine/adenosine/allopurinol by mistake
End products of purine vs pyrimidine catabolismPurines → uric acid; pyrimidines → β-alanine / β-aminoisobutyric acidSwapping the end products
Enzyme and cofactor for dUMP→dTMPthymidylate synthase + 5,10-methylene-THFOverlooking folate's role as the donor
Difference between thymine and uracilThymine has an extra 5-methyl groupAnswering a difference in the sugar or amino group
Deamination of 5-methylcytosineProduces thymine → mutation hotspotAnswering uracil
Overactive PRPP synthetasede novo synthesis↑ → uric acid↑ → goutConfusing it with APRT deficiency (2,8-DHA stones)

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Exam pointCorrect answerCommon trap
Composition of the PDH complex3 enzymes, 5 coenzymes (TPP/lipoic acid/CoA/FAD/NAD⁺)Taking biotin or CoQ as a coenzyme
CO₂/FADH₂ produced per turn of the TCA cycle2 CO₂, 1 FADH₂, 3 NADH, 1 GTPMiscounting CO₂ or FADH₂
Net consumption of OAA in the TCA cycle0 (regenerated; acts in catalytic amounts)Thinking OAA is consumed
Where substrate-level phosphorylation occursBoth cytoplasm and mitochondriaThinking only in the cytoplasm
Location of oxidative phosphorylationInner mitochondrial membrane onlyConfusing it with substrate-level phosphorylation
Direction of H⁺ pumpingMatrix → intermembrane space (Complex I/III/IV)Writing the direction in reverse
What passes electrons directly to O₂Complex IV (cytochrome c oxidase)Choosing Cyt c or CoQ by mistake
Enzyme that removes H₂O₂glutathione peroxidaseChoosing SOD (handles only superoxide) by mistake
Bond in acetyl-CoAThioester bond (high-energy)Answering ester or amide bond
Rate-limiting enzyme of the TCA cycleisocitrate dehydrogenaseAnswering citrate synthase
ATP yield per NADH/FADH₂2.5 / 1.5 (current values)Still writing the old values 3/2
Site of action in cyanide (CN⁻) poisoningComplex IVAnswering Complex I
Action of 2,4-DNPUncoupling (O₂ consumption↑, heat↑, ATP↓)Thinking it inhibits the ETC and lowers O₂ consumption
Site of action of oligomycinATP synthase (Complex V)Answering Complex IV

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Exam pointCorrect answerCommon trap
Metabolic outcome of a low-carbohydrate, high-protein dietβ-oxidation↑ → ketone bodies↑ → metabolic acidosis, urea↑Answering alkalosis, decreased urea, fat accumulation
Effect of HIF-1 activation on ROSDecreased (PDK1↑ inhibits PDH → oxidative phosphorylation↓)Thinking ROS are unaffected or increased
Metabolic effects of HIF-1Shift toward glycolysis (Warburg); pyruvate does not enter the TCA cycleOverlooking PDK1 as the mediator
Attachment site of N-glycosylationAsn (amide nitrogen), initiated with GlcNAcAnswering Ser/Thr
Attachment site of O-glycosylationSer or Thr (hydroxyl group)Answering cysteine or Asn
Dominant hormone in the fed vs fasting stateFed: insulin; fasting: glucagonReversing them
Ketone bodiesacetoacetate, β-hydroxybutyrate, acetoneMistaking lactate for a ketone body
Most abundant ketone body / dipstick blind spotβ-hydroxybutyrate is the most abundant; nitroprusside dipsticks do not detect β-OHBThinking a negative urine ketone test rules out DKA
The liver and ketone bodiesThe liver produces them but cannot use them (lacks SCOT)Thinking the liver also burns ketones
N-glycosylation consensus sequenceAsn-X-Ser/Thr (X≠Pro)Omitting X≠Pro

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Exam pointCorrect answerCommon trap
Site of the first activation step of vitamin DLiver (25-hydroxylase, CYP2R1)Answering kidney (that is the second step)
Starting material of vitamin DCholesterolOverlooking this precursor relationship
Vitamin source of CoAPantothenic acid (B5)Answering folate
Metal in the structure of B12Cobalt (Co)Answering iron or magnesium
Coordinating amino acids of zinc fingerscysteine / histidineApplying leucine (that is the leucine zipper)
Why raw egg white causes biotin deficiencyAvidin binds biotin and blocks its absorptionThinking it relates to B12
What is lacking in pernicious anemiaB12 + intrinsic factor (IF)Confusing it with folate deficiency
Distinguishing B12 vs folate deficiencyB12 deficiency has neurologic symptoms; folate deficiency does notConfusing them because both anemias are macrocytic
Action of the active form of vitamin ARetinoic acid regulates transcription via RAR/RXRThinking it relates only to vision
Antioxidant vitaminsE (membrane lipids), C (aqueous phase)Answering K
Laboratory distinction of B12 vs folate deficiencyB12 deficiency: MMA↑ + Hcy↑; folate deficiency: only Hcy↑Thinking MMA rises in both
Why folate must not be given aloneIt masks the anemia of B12 deficiency while the neuropathy worsensSimply giving folate and leaving it at that
Enzymatic roles of vitamin CCofactor for prolyl/lysyl hydroxylase; reduces Fe³⁺→Fe²⁺Remembering only its antioxidant role
Secondary causes of niacin deficiency/pellagraHartnup, carcinoid, INH (depletes B6)Thinking only of dietary deficiency
B6 and sideroblastic anemiaPLP is the coenzyme of ALA synthase; INH causes deficiencyMissing the drug association

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Exam pointCorrect answerCommon trap
Final products of the urea cycleurea + fumarateAnswering oxaloacetate
Fate of fumarateEnters the TCA cycleThinking it becomes glucose directly
The two nitrogen sources of the urea cycleFree NH₄⁺ + aspartateOmitting aspartate
Rate-limiting enzymeCPS-I (requires NAG activation)Answering arginase
LocationFirst 2 steps in the mitochondria, last 3 in the cytoplasmPlacing all of it in the cytoplasm
Most common urea cycle defectOTC deficiency (X-linked) → hyperammonemia + orotic aciduriaOverlooking the mode of inheritance
Pathway from amino acids to glucoseVia TCA intermediates → gluconeogenesisThinking they convert directly
Amino acid most likely to form a cis peptide bondprolineAnswering glycine
Composition of GSHγ-Glu–Cys–GlyWriting an α-linkage or the wrong order
Three precursors of creatineglycine, arginine, methionineOmitting methionine (SAM)
Defective protein in OIType I collagenAnswering fibronectin/keratin
Main cause of the methyl trapB12 deficiencyThinking it is folate deficiency itself
Main transport forms of ammonia in bloodglutamine (whole body/brain), alanine (muscle, Cahill cycle)Thinking free NH₃ is transported directly
Main enzyme for ammonia detoxification in the brainglutamine synthetaseAnswering glutaminase
Defective enzyme in PKUphenylalanine hydroxylase (or BH4)Answering tyrosinase (that is albinism)
Why Tyr becomes essential in PKUThe Phe→Tyr step is blockedOverlooking this cause and effect
Lens in homocystinuriaDownward dislocation; CBS (B6-dependent) deficiencyConfusing it with Marfan (upward)
Defect in maple syrup urine diseaseBranched-chain α-keto acid DH (requires B1)Missing the B1 link

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Exam pointCorrect answerCommon trap
Rate-determining step of fatty acid synthesisACC (→ malonyl-CoA), requires biotinAnswering the FAS condensation step
Rate-determining enzyme of cholesterol synthesisHMG-CoA reductaseConfusing it with fatty acid synthesis
Site of fatty acid synthesis vs oxidationSynthesis in the cytoplasm / oxidation in the mitochondriaReversing the two
Fate of the end product of odd-chain β-oxidationpropionyl-CoA → succinyl-CoA (requires B12) → TCAMissing the B12 link
Substrate of COXarachidonate (C20:4)Answering saturated fatty acids/acetyl-CoA
Mechanism of aspirinIrreversibly acetylates COX, reducing TXA₂/PGThinking it "reduces cholesterol synthesis"
Distribution of cardiolipinInner mitochondrial membraneThinking it is in the plasma membrane
Extraction of integral membrane proteinsRequires a detergentUsing high salt/chelators (those are for peripheral proteins)
Structure of PAFC1 alkyl-ether + C2 acetate + C3 phosphocholineConfusing it with plasmalogen (vinyl-ether)
Function of HDLReverse cholesterol transport, esterification by LCATThinking it carries exogenous TG

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Exam pointCorrect answerCommon trap
Where Hsp90 binds nuclear receptorsLigand-binding domain (dissociates as soon as ligand arrives)Answering the DNA-binding domain
Role of cyclinsRegulatory subunit; no kinase activity of their ownThinking cyclins directly catalyze phosphorylation
Mechanism of cholera toxinADP-ribosylates Gsα, inhibiting its GTPase → cAMP↑Writing that it modifies Gi, or confusing it with pertussis toxin
Mechanism of pertussis toxinADP-ribosylates Giα, locking it in the off stateReversing the direction with cholera toxin
Type of ANP receptorMembrane-bound guanylyl cyclase (→cGMP)Treating it as a GPCR or cAMP pathway
Downstream of epinephrine β receptorsGs→AC→cAMP→PKAWriting "directly activates Ras"
Order of insulin MAPK signalingIRS-1→Grb2-Sos→Ras→Raf→MEK→ERKReversing MEK/ERK
RTK structureExtracellular ligand binding, intracellular catalytic domainPlacing the catalytic/substrate-binding domain outside the cell
Interleukin/cytokine receptorsJAK-STAT pathwayTreating them as the cAMP second-messenger pathway
Receptor location: lipid-soluble vs water-soluble hormonesLipid-soluble: intracellular/nuclear; water-soluble: on the membranePlacing the thyroid hormone receptor on the membrane

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Exam pointCorrect answerCommon trap
Pairing partner of the Shine-Dalgarno sequence3′ end of 16S rRNA (prokaryotic 30S)Treating it as the eukaryotic cap mechanism
Mechanism of ampicillinInhibits the cell wall (transpeptidase)Treating it as inhibiting ribosomes/protein synthesis
Codon-anticodon bondingHydrogen bonds (complementary pairing)Answering covalent bonds
Structural tendency of Gly-Pro sequencesβ-turnAnswering α-helix
How iron deficiency inhibits translationHRI → phosphorylates eIF2αOverlooking that "phosphorylation actually inhibits initiation"
Molecular weight of the protein encoded by 900 bp≈ 33,000 Da (299 aa×110≈32,900)Forgetting to subtract the stop codon/using the wrong average mass
Order of eukaryotic initiationThe small subunit binds the mRNA first, the large subunit joins lastThinking the complete ribosome assembles first
Initiator tRNAProkaryotes fMet; eukaryotes Met (not formylated)Assigning 80S to prokaryotes
Catalyst of peptide bond formation23S rRNA (ribozyme)Thinking it is a protein enzyme
Direction of synthesis/readingPolypeptide N→C; mRNA 5′→3′Writing the directions in reverse

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Exam pointCorrect answerCommon trap
Polymerase that synthesizes mRNAPol IIChoosing Pol IV by mistake (it exists only in plants, not in humans)
Most sensitive to α-amanitinPol II (Pol I is insensitive)Reversing the order
Synthesis of tRNA / 5S rRNAPol IIIConfusing it with the large rRNAs made by Pol I
Processing of the mRNA 3′ endpolyadenylation (adding the poly(A) tail)Answering "phosphorylation"
poly(A) signal sequenceAAUAAAWriting a promoter sequence such as TATA/CAAT
Where 5′ capping occursIn the nucleus, cotranscriptionallyAnswering ER or Golgi
Nucleophile in group I intronsFree guanosineChoosing snRNA/ligase (spliceosome components) by mistake
Nucleophile in spliceosome/group II introns2′-OH of an internal A (lariat)Confusing it with the external G of group I
Common 3′-end sequence of tRNA-CCA-OHThinking it differs among tRNAs
Number of prokaryotic RNA polymerasesOnly one (relies on σ factors)Applying the eukaryotic three-polymerase division of labor

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Exam pointCorrect answerCommon trap
Rate constant when [S]≪Kmkcat/Km (second-order rate constant; Vmax/Km = kcat/Km × [E]t)Answering kcat or 1/Km
Index of catalytic efficiencykcat/KmLooking only at kcat or only at Km
Effect of competitive inhibition on Km/VmaxKm↑, Vmax unchangedConfusing it with noncompetitive inhibition
Uncompetitive inhibitionKm↓, Vmax↓ (parallel LB lines)Thinking Vmax is unchanged
Source of A280 absorbanceTrp>Tyr>PheCounting residues without aromatic rings, such as Asn
The only covalent bond in tertiary structureDisulfide bond (S-S)Treating it as a force maintaining secondary structure
Force maintaining the α-helixBackbone hydrogen bonds (i ↔ i+4)Answering disulfide bonds/hydrophobic interactions
Measuring protein molecular weightSDS-PAGE or gel filtrationUsing IEF (that measures pI)
Action of SDSConfers a uniform negative charge, destroys activityThinking SDS-PAGE preserves activity
Elution order in gel filtrationLarge molecules elute firstRemembering small molecules eluting first
Can gel filtration identify a protein?No; it separates by size onlyThinking it can establish identity

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