★ Must-know
📌 The substrate is the substance acted on by an enzyme, and it binds at the enzyme’s active site.
Further detail
📌 In the lock-and-key model, the active site is already complementary to the substrate, whereas in the induced-fit model, substrate binding changes the enzyme’s conformation.
Enzyme + substrate → enzyme–substrate complex → product
★ Must-know
📌 Competitive inhibition occurs when an inhibitor competes for the active site and can be overcome by increasing substrate concentration, whereas noncompetitive inhibition involves another site and reduces catalytic activity.
Further detail
Competitive inhibition uses the active site; noncompetitive inhibition uses another site
★ Must-know
The net yield of glycolysis per glucose is 2 ATP, 2 NADH, and 2 pyruvate.
PFK-1 is the major regulatory and rate-limiting enzyme of glycolysis; ATP inhibits it and ADP stimulates it according to the lecture.
Red blood cells depend on anaerobic glycolysis because they lack mitochondria, producing lactate from pyruvate.
Further detail
Investment → cleavage → payoff: 2 ATP used, then 4 ATP and 2 NADH produced
★ Must-know
The three gluconeogenic bypasses are:
Pyruvate carboxylase requires biotin, occurs in mitochondria, uses ATP, and is activated by acetyl-CoA, while PEP carboxykinase uses GTP.
Increased fructose-2,6-bisphosphate stimulates glycolysis, whereas decreased fructose-2,6-bisphosphate stimulates gluconeogenesis.
Further detail
📐 Formula — The energy cost of producing one glucose is , requiring 6 high-energy phosphate bonds.
Insulin favors glycolysis, whereas glucagon favors gluconeogenesis
★ Must-know
📌 Liver glycogen maintains blood glucose and can release glucose, whereas muscle glycogen supplies energy only to muscle because muscle lacks glucose-6-phosphatase.
Further detail
Glycogen synthase builds glycogen; glycogen phosphorylase breaks it down
★ Must-know
The TCA cycle occurs in the mitochondrial matrix and is a central pathway for carbohydrate, fat, and amino-acid oxidation.
The eight TCA intermediates are:
Succinate dehydrogenase is the only TCA enzyme that produces FADH₂.
Further detail
Citrate → isocitrate → α-ketoglutarate → succinyl-CoA → succinate → fumarate → malate → oxaloacetate
★ Must-know
The five PDH cofactors are:
PDH kinase is activated by ATP, NADH, and acetyl-CoA, causing PDH phosphorylation and inhibition when energy is abundant.
Further detail
Tender Loving Care For Nancy: TPP, lipoate, CoA, FAD, NAD⁺
★ Must-know
The oxidative phase is irreversible and produces 2 NADPH per glucose-6-phosphate.
G6PD deficiency lowers NADPH and reduced glutathione, causing oxidative damage and hemolysis, especially after oxidant drugs, severe infection, or fava beans.
Further detail
G6PD deficiency → low NADPH → low reduced glutathione → oxidative hemolysis
★ Must-know
🔄 Each β-oxidation cycle consists of:
Long-chain fatty acids enter the mitochondrial matrix through the carnitine shuttle, and malonyl-CoA inhibits CPT-I.
Every β-oxidation cycle produces .
Further detail
According to the lecture, palmitate yields 8 acetyl-CoA, 7 NADH, 7 FADH₂, and a net 129 ATP after activation cost.
MCAD deficiency impairs medium-chain fatty-acid oxidation and causes hypoglycemia and hypoketonemia, so fasting should be avoided.
Dehydrogenation → hydration → oxidation → thiolysis
The three ketone bodies are:
Ketogenesis occurs in the liver during fasting, prolonged exercise, or low-carbohydrate conditions when fatty-acid oxidation raises acetyl-CoA and oxaloacetate is diverted to gluconeogenesis.
Mitochondrial HMG-CoA synthase is the rate-limiting enzyme of ketogenesis.
📌 The liver cannot use ketone bodies because it lacks thiophorase, and red blood cells cannot use them because they lack mitochondria.
Toxic ammonia → urea formation in the liver → urinary nitrogen excretion
★ Must-know
One urea nitrogen comes from ammonia, the second comes from aspartate, and its carbon comes from CO₂ or HCO₃⁻.
The five urea-cycle enzymes are:
CPS-I uses 2 ATP and is activated by N-acetylglutamate, while OTC deficiency is the most common inherited urea-cycle disorder and is X-linked.
Further detail
Stomach pepsinogen → pepsin; intestine enteropeptidase → trypsin; trypsin activates pancreatic zymogens
★ Must-know
📌 Fat-soluble vitamins A, D, E, and K are stored in liver or adipose tissue and carry a greater risk of toxicity, whereas water-soluble vitamins include the B-complex and vitamin C.
Vitamin A supports vision, reproduction, growth, epithelial maintenance, and immunity, and its early deficiency sign is night blindness.
🔄 Vitamin D activation proceeds from:
Vitamin K is required for carboxylation of clotting factors, and deficiency causes bleeding and hypoprothrombinemia.
The active forms of vitamins B1, B2, B3, B5, B6, and B7 are respectively TPP, FMN/FAD, NAD⁺/NADP⁺, CoA, PLP, and a carboxylation cofactor.
Folate supports one-carbon metabolism, DNA synthesis, and red blood cell production, while vitamin B12 supports homocysteine to methionine and methylmalonyl-CoA to succinyl-CoA.
Further detail
ADEK are fat-soluble; B vitamins support cofactors and C supports collagen
★ Must-know
A pairs with T through 2 hydrogen bonds, G pairs with C through 3 hydrogen bonds, and DNA strands are joined by phosphodiester bonds.
Helicase unwinds DNA, SSB proteins prevent reannealing, topoisomerase relieves supercoiling, and primase makes the RNA primer.
📌 The leading strand is synthesized continuously, whereas the lagging strand is synthesized discontinuously as Okazaki fragments.
Further detail
Eukaryotes have multiple replication origins; Pol α initiates, Pol ε synthesizes the leading strand, Pol δ synthesizes the lagging strand, Pol β repairs DNA, and Pol γ replicates mitochondrial DNA.
Telomerase maintains telomere length using an RNA template and is especially active in gametes, stem cells, and tumor cells.
Unwind → prime → extend 5′→3′ → remove primers → ligate fragments
★ Must-know
📌 Mismatch repair corrects replication mismatches, nucleotide excision repair removes bulky lesions such as UV-induced thymine dimers, and base excision repair removes individual abnormal bases.
Base excision repair removes an abnormal base with DNA glycosylase, cuts the AP site with AP endonuclease, and completes repair with DNA polymerase and ligase.
Xeroderma pigmentosum results from defective nucleotide-excision repair and causes increased UV sensitivity and skin-cancer risk.
Further detail
📌 Double-strand breaks are repaired mainly by nonhomologous end joining or homologous recombination.
NER repairs bulky lesions; BER repairs individual abnormal bases
★ Must-know
Bacterial transcription uses one major RNA polymerase whose sigma-containing holoenzyme recognizes promoters at the -35 TTGACA sequence and the -10 Pribnow box TATAAT.
RNA polymerase I produces 28S, 18S, and 5.8S rRNA, RNA polymerase II produces the mRNA precursor, and RNA polymerase III produces tRNA and 5S rRNA.
The 5′ cap contains 7-methylguanosine, the poly-A tail is added to the 3′ end after an AAUAAA signal, and splicing removes introns while retaining exons.
The genetic code has 64 codons, including 61 amino-acid codons and three stop codons: UAA, UAG, and UGA; AUG is the start codon for methionine.
📌 A silent mutation does not change the amino acid, a missense mutation changes one amino acid, a nonsense mutation creates a premature stop codon, and a frameshift mutation changes the reading frame through an insertion or deletion not in multiples of three.
The ribosomal A site accepts incoming aminoacyl-tRNA, the P site holds peptidyl-tRNA, and the E site releases empty tRNA.
🔄 Translation proceeds through:
Further detail
Transcription → capping/polyadenylation/splicing → translation: A site → P site → E site
Core metabolic pathway comparison
| Pathway | Location | Main output or role |
|---|---|---|
| Glycolysis | Cytosol | Pyruvate, ATP, and NADH |
| Gluconeogenesis | Mainly liver | Glucose formation |
| TCA cycle | Mitochondrial matrix | NADH, FADH₂, GTP, and regenerated oxaloacetate |
| Pentose phosphate pathway | Cytosol | NADPH and ribose-5-phosphate |
Test your knowledge on Biochemistry Master Exam Review with 50 multiple-choice questions with detailed corrections.
1. What distinguishes an enzyme from a substrate during a chemical reaction?
2. Where does the substrate bind on an enzyme?
Memorize the key concepts of Biochemistry Master Exam Review with 86 interactive flashcards.
What is an enzyme?
A biological catalyst that increases reaction rate without being consumed.
What is the substrate in enzyme catalysis?
The substance acted on by an enzyme.
Where does the substrate bind on an enzyme?
At the enzyme’s active site.
Import your course and AI generates sheets, quizzes and flashcards in 30 seconds.
Sheet generator