Unit 6: Metabolism - Practice Quiz

BTY105 — Fundamentals Of Biochemistry 60 Questions
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1 What is the main energy currency of the cell?

Bioenergetics Easy
A. DNA
B. CoA
C. NAD+
D. ATP

2 What type of reaction releases free energy?

Bioenergetics Easy
A. Neutral reaction
B. Synthetic reaction
C. Exergonic reaction
D. Endergonic reaction

3 Which molecule commonly carries high-energy electrons in metabolism?

Bioenergetics Easy
A. Glucose
B. Lactate
C. NADH
D. Pyruvate

4 Where does glycolysis occur in a eukaryotic cell?

Glycolysis and its regulation Easy
A. Cytoplasm
B. Mitochondrial matrix
C. Nucleus
D. Endoplasmic reticulum

5 What is the starting molecule of glycolysis?

Glycolysis and its regulation Easy
A. Acetyl-CoA
B. Glucose
C. Citrate
D. Glycerol

6 What is the final product of glycolysis under aerobic conditions?

Glycolysis and its regulation Easy
A. Acetyl-CoA
B. Lactate
C. Oxaloacetate
D. Pyruvate

7 Which enzyme catalyzes the major rate-limiting step of glycolysis?

Glycolysis and its regulation Easy
A. Phosphofructokinase-1
B. Aldolase
C. Pyruvate kinase
D. Hexokinase

8 Where does the TCA cycle occur in eukaryotic cells?

TCA cycle and its regulation Easy
A. Golgi apparatus
B. Nucleus
C. Cytoplasm
D. Mitochondrial matrix

9 Which molecule enters the TCA cycle by combining with oxaloacetate?

TCA cycle and its regulation Easy
A. Acetyl-CoA
B. Lactate
C. Glucose
D. Palmitate

10 How many carbon dioxide molecules are released from one acetyl-CoA during one turn of the TCA cycle?

TCA cycle and its regulation Easy
A. Two
B. Four
C. Three
D. One

11 Which molecule is regenerated at the end of the TCA cycle?

TCA cycle and its regulation Easy
A. Pyruvate
B. Glucose
C. Oxaloacetate
D. Lactate

12 Where does the pentose phosphate pathway occur?

Pentose phosphate pathway and its significance Easy
A. Cytoplasm
B. Lysosome
C. Nucleus
D. Mitochondrial matrix

13 What reducing equivalent is mainly produced by the pentose phosphate pathway?

Pentose phosphate pathway and its significance Easy
A. NADH
B. FADH2
C. NADPH
D. ATP

14 Which five-carbon sugar is produced by the pentose phosphate pathway?

Pentose phosphate pathway and its significance Easy
A. Ribose-5-phosphate
B. Fructose-6-phosphate
C. Glucose-6-phosphate
D. Glyceraldehyde-3-phosphate

15 Where is the electron transport chain located in mitochondria?

Electron transport chain and oxidative phosphorylation Easy
A. Inner membrane
B. Outer membrane
C. Matrix fluid
D. Intermembrane enzymes

16 What is the final electron acceptor in the electron transport chain?

Electron transport chain and oxidative phosphorylation Easy
A. Pyruvate
B. Carbon dioxide
C. NAD+
D. Oxygen

17 Which enzyme synthesizes ATP during oxidative phosphorylation?

Electron transport chain and oxidative phosphorylation Easy
A. Citrate synthase
B. Hexokinase
C. ATP synthase
D. Lipase

18 Where does most ß-oxidation of fatty acids occur?

ß-oxidation of fatty acids Easy
A. Golgi apparatus
B. Mitochondrial matrix
C. Nucleus
D. Cytoplasm

19 What two-carbon product is formed during each cycle of ß-oxidation?

ß-oxidation of fatty acids Easy
A. Acetyl-CoA
B. Oxaloacetate
C. Lactate
D. Pyruvate

20 Where does fatty acid synthesis mainly occur in a eukaryotic cell?

Synthesis of fatty acids Easy
A. Nucleus
B. Mitochondrial matrix
C. Cytoplasm
D. Lysosome

21 A reaction has a positive standard free-energy change but proceeds forward inside a cell. Which explanation is most appropriate?

Bioenergetics Medium
A. Its products contain less chemical energy
B. Its equilibrium constant is always greater than one
C. It is coupled to an exergonic reaction
D. It must occur without enzyme involvement

22 If the concentrations of products increase while reactant concentrations remain constant, what generally happens to the free-energy change of a forward reaction?

Bioenergetics Medium
A. It becomes exactly zero
B. It becomes more positive
C. It remains permanently unchanged
D. It becomes more negative

23 A cell has a high ATP concentration and a low AMP concentration. Which glycolytic enzyme is most likely inhibited under these conditions?

Glycolysis and its regulation Medium
A. Triose phosphate isomerase
B. Enolase
C. Phosphoglycerate mutase
D. Phosphofructokinase-1

24 What is the net yield from the anaerobic conversion of one glucose molecule to two lactate molecules?

Glycolysis and its regulation Medium
A. 2 ATP and no net NADH
B. 4 ATP and 2 NADH
C. 2 ATP and 2 NADH
D. 4 ATP and no net NADH

25 A mutation greatly reduces the activity of pyruvate kinase in a cell. Which immediate metabolic change is most likely?

Glycolysis and its regulation Medium
A. Increased conversion of lactate to pyruvate
B. Reduced glucose-6-phosphate formation
C. Reduced pyruvate formation
D. Increased acetyl-CoA formation

26 Which TCA-cycle enzyme is directly inhibited by high NADH and activated by ADP, reflecting the cell's energy state?

TCA cycle and its regulation Medium
A. Fumarase
B. Isocitrate dehydrogenase
C. Aconitase
D. Succinate thiokinase

27 How many NADH molecules are produced in the TCA cycle per acetyl-CoA molecule oxidized?

TCA cycle and its regulation Medium
A. Two
B. One
C. Four
D. Three

28 If oxaloacetate becomes severely depleted, what is the most likely effect on acetyl-CoA oxidation?

TCA cycle and its regulation Medium
A. It shifts directly into glycolysis
B. It increases because acetyl-CoA bypasses citrate
C. It decreases because citrate formation is limited
D. It remains unchanged because oxaloacetate is catalytic

29 A rapidly dividing cell requires ribose-5-phosphate for nucleotide synthesis but has little need for NADPH. Which pathway strategy is most suitable?

Pentose phosphate pathway and its significance Medium
A. Convert all pentose phosphates directly to acetyl-CoA
B. Increase oxidative decarboxylation of glucose-6-phosphate
C. Block transketolase to preserve ribulose-5-phosphate
D. Use the nonoxidative reactions in the reverse direction

30 Why are red blood cells especially dependent on the pentose phosphate pathway?

Pentose phosphate pathway and its significance Medium
A. It supplies NADPH for maintaining reduced glutathione
B. It converts lactate into glucose inside mitochondria
C. It produces most of their ATP through oxidative phosphorylation
D. It supplies acetyl-CoA for mitochondrial oxidation

31 A deficiency of glucose-6-phosphate dehydrogenase makes erythrocytes more vulnerable to oxidative stress because it reduces production of which molecule?

Pentose phosphate pathway and its significance Medium
A. Acetyl-CoA
B. FADH
C. Oxaloacetate
D. NADPH

32 If complex IV is blocked, which immediate effect is expected in the mitochondrial electron transport chain?

Electron transport chain and oxidative phosphorylation Medium
A. ATP synthase produces ATP without a proton gradient
B. The proton gradient becomes permanently stronger
C. NADH oxidation increases
D. Oxygen consumption decreases

33 An uncoupling agent allows protons to cross the inner mitochondrial membrane without passing through ATP synthase. What is the likely result?

Electron transport chain and oxidative phosphorylation Medium
A. Oxygen consumption falls and ATP production rises
B. Oxygen consumption rises and ATP production falls
C. Both oxygen consumption and ATP production fall
D. Both oxygen consumption and ATP production rise

34 Why does NADH generally yield more ATP than FADH during oxidative phosphorylation?

Electron transport chain and oxidative phosphorylation Medium
A. NADH carries electrons directly to oxygen
B. FADH is produced only outside mitochondria
C. NADH donates electrons at complex I
D. FADH cannot transfer electrons to ubiquinone

35 How many cycles of -oxidation are required to completely degrade a saturated fatty acid containing 16 carbon atoms?

ß-oxidation of fatty acids Medium
A. Eight
B. Seven
C. Nine
D. Six

36 A defect in carnitine acyltransferase I would most directly impair which process?

ß-oxidation of fatty acids Medium
A. Transfer of electrons from NADH to oxygen
B. Activation of glucose to glucose-6-phosphate
C. Transport of long-chain fatty acyl groups into mitochondria
D. Conversion of acetyl-CoA into malonyl-CoA

37 Complete oxidation of one palmitoyl-CoA molecule produces how many acetyl-CoA molecules?

ß-oxidation of fatty acids Medium
A. Six
B. Nine
C. Seven
D. Eight

38 What is the principal role of malonyl-CoA during fatty acid synthesis?

Synthesis of fatty acids Medium
A. It oxidizes NADH to generate ATP
B. It donates two-carbon units for chain elongation
C. It cleaves palmitate into acetyl-CoA
D. It transports fatty acids into mitochondria

39 Why does malonyl-CoA inhibit carnitine acyltransferase I during fatty acid synthesis?

Synthesis of fatty acids Medium
A. It increases mitochondrial fatty acid entry
B. It prevents simultaneous synthesis and oxidation
C. It directly activates mitochondrial -oxidation
D. It converts NADPH into NADP

40 Which reducing molecule is consumed during the reduction steps of fatty acid synthesis?

Synthesis of fatty acids Medium
A. NADH
B. NADPH
C. ATP only
D. FAD

41 A reaction has , but its actual concentrations give at . What is the most accurate conclusion?

Bioenergetics Hard
A. The reaction requires ATP hydrolysis regardless of metabolite levels
B. The reaction reaches equilibrium because standard energy is positive
C. The reaction becomes favorable because the term is negative
D. The reaction remains strongly endergonic under cellular conditions

42 A coupled reaction has and is driven by ATP hydrolysis with . Which statement is correct?

Bioenergetics Hard
A. The net reaction has
B. The net reaction has
C. The net reaction has
D. The net reaction has

43 A hepatocyte has high ATP and citrate concentrations but low fructose 2,6-bisphosphate. Which glycolytic response is most likely?

Glycolysis and its regulation Hard
A. PFK-1 activity increases and pyruvate rises
B. PFK-1 activity decreases and glycolytic flux falls
C. Pyruvate kinase becomes independent of phosphoenolpyruvate
D. Hexokinase activity increases through citrate activation

44 If glyceraldehyde 3-phosphate dehydrogenase is inhibited while oxygen is abundant, which immediate glycolytic consequence is expected?

Glycolysis and its regulation Hard
A. Fructose 1,6-bisphosphate is converted directly to acetyl-CoA
B. NADH production stops and upstream intermediates accumulate
C. ATP generation at pyruvate kinase becomes irreversible
D. NADH production doubles and lactate formation stops

45 A muscle cell expresses a pyruvate kinase variant with reduced affinity for phosphoenolpyruvate but normal allosteric regulation. Which change is most likely?

Glycolysis and its regulation Hard
A. Reduced glycolytic flux at low phosphoenolpyruvate concentration
B. Increased ATP production even when glucose is absent
C. Inability to generate NADH during glyceraldehyde oxidation
D. Enhanced conversion of pyruvate into oxaloacetate

46 A mutation eliminates succinate dehydrogenase activity but leaves the other TCA enzymes intact. Which combination best describes the direct metabolic effects?

TCA cycle and its regulation Hard
A. Malate accumulates, oxaloacetate decreases, and NADPH production rises
B. Fumarate accumulates, succinate decreases, and NADH production rises
C. Citrate accumulates, acetyl-CoA decreases, and ATP synthase stops
D. Succinate accumulates, fumarate decreases, and FADH production falls

47 During intense exercise, a high NADH/NAD ratio inhibits several TCA reactions. Which additional effect most directly limits continued cycle operation?

TCA cycle and its regulation Hard
A. Acetyl-CoA is converted rapidly into glucose
B. Citrate synthase is activated by increased NADH
C. Succinate dehydrogenase produces additional NADPH
D. Oxaloacetate is reduced to malate, limiting citrate formation

48 A cell receives uniformly C-labeled acetyl-CoA during one TCA cycle turn. Why is no net labeled oxaloacetate expected after that first turn?

TCA cycle and its regulation Hard
A. All acetyl-derived carbons are diverted to succinate before citrate forms
B. Acetyl-CoA cannot condense with oxaloacetate during isotopic labeling
C. The two acetyl-derived carbons are released as CO during the first turn
D. Oxaloacetate is irreversibly converted into acetyl-CoA during the cycle

49 A rapidly dividing cell requires ribose 5-phosphate far more than NADPH. Which pathway arrangement best meets this demand?

Pentose phosphate pathway and its significance Hard
A. Complete oxidation of glucose 6-phosphate to generate maximal NADPH
B. Only transketolase reactions converting ribose into fructose
C. Nonoxidative reactions converting glycolytic intermediates into ribose 5-phosphate
D. Oxidative reactions followed by complete recycling of pentoses

50 An erythrocyte with severe glucose 6-phosphate dehydrogenase deficiency is exposed to an oxidant. Which event is most likely?

Pentose phosphate pathway and its significance Hard
A. Increased ribose production prevents oxidation of hemoglobin
B. Reduced NADH formation blocks oxygen binding by hemoglobin
C. Reduced NADPH regeneration causes glutathione oxidation and hemolysis
D. Excess NADPH directly inhibits catalase and causes ATP depletion

51 If transketolase activity is selectively inhibited, which biochemical requirement becomes especially important for the remaining pathway reactions?

Pentose phosphate pathway and its significance Hard
A. Biotin becomes necessary for ribulose 5-phosphate oxidation
B. Coenzyme A becomes required for transaldolase catalysis
C. FAD becomes the direct electron acceptor for glucose 6-phosphate
D. Thiamine pyrophosphate availability becomes functionally limiting

52 A mitochondrial preparation consumes oxygen rapidly, but oxygen consumption is unaffected by oligomycin and ATP synthesis is absent. Which explanation best fits?

Electron transport chain and oxidative phosphorylation Hard
A. The adenine nucleotide translocase is producing ATP without protons
B. NADH cannot donate electrons to complex I under uncoupled conditions
C. A protonophore dissipates the gradient independently of ATP synthase
D. Complex IV is completely inhibited by an excess proton gradient

53 Rotenone inhibits complex I, but succinate still supports oxygen consumption in isolated mitochondria. Which conclusion is correct?

Electron transport chain and oxidative phosphorylation Hard
A. Succinate restores proton pumping at complex I through reverse transport
B. Electrons enter through complex II and bypass the blocked complex
C. Succinate donates electrons directly to complex IV without ubiquinone
D. Complex I inhibition accelerates NADH oxidation through cytochrome c

54 A mitochondrion has an intact electron transport chain but lacks a functional adenine nucleotide translocase. Which immediate effect is expected?

Electron transport chain and oxidative phosphorylation Hard
A. Oxygen cannot bind to complex IV despite normal electron flow
B. NADH cannot be generated by matrix dehydrogenases
C. Protons cannot cross the inner membrane through complex III
D. Matrix ATP cannot efficiently reach the cytosol for exchange with ADP

55 Complete mitochondrial oxidation of an even-chain saturated fatty acid containing 16 carbons yields how many acetyl-CoA, NADH, and FADH molecules?

ß-oxidation of fatty acids Hard
A. 7 acetyl-CoA, 7 NADH, and 8 FADH
B. 7 acetyl-CoA, 8 NADH, and 8 FADH
C. 8 acetyl-CoA, 7 NADH, and 7 FADH
D. 8 acetyl-CoA, 8 NADH, and 7 FADH

56 A long-chain fatty acid cannot enter the mitochondrial matrix because carnitine palmitoyltransferase I is inhibited. Which process is most directly affected?

ß-oxidation of fatty acids Hard
A. Transfer of acetyl groups from citrate into the cytoplasm
B. Activation of fatty acids to acyl-CoA in the cytosol
C. Conversion of malonyl-CoA into mitochondrial acetyl-CoA
D. Transport of fatty acyl groups across the inner mitochondrial membrane

57 Oxidation of an odd-chain fatty acid produces propionyl-CoA as its final three-carbon fragment. Which pathway converts this product into a TCA intermediate?

ß-oxidation of fatty acids Hard
A. Propionyl-CoA becomes citrate through direct condensation with malate
B. Propionyl-CoA becomes oxaloacetate through pyruvate dehydrogenase
C. Propionyl-CoA becomes acetyl-CoA through a single thiolase reaction
D. Propionyl-CoA becomes succinyl-CoA through biotin- and cobalamin-dependent steps

58 A hepatocyte has abundant mitochondrial acetyl-CoA and NADPH but low cytosolic citrate. Which intervention most directly limits fatty acid synthesis?

Synthesis of fatty acids Hard
A. Reduced mitochondrial beta-oxidation increases cytosolic NADPH use
B. Increased ketone-body synthesis directly activates fatty acid synthase
C. Increased carnitine transport prevents all malonyl-CoA formation
D. Reduced citrate export limits cytosolic acetyl-CoA production

59 Which change would most strongly increase fatty acid synthesis while simultaneously suppressing mitochondrial fatty acid oxidation?

Synthesis of fatty acids Hard
A. Activation of acetyl-CoA carboxylase and elevation of malonyl-CoA
B. Inhibition of fatty acid synthase and activation of hormone-sensitive lipase
C. Activation of CPT I and reduction of cytosolic NADPH
D. Inhibition of acetyl-CoA carboxylase and depletion of malonyl-CoA

60 For synthesis of one palmitate molecule from eight acetyl-CoA molecules, what are the required ATP and NADPH investments?

Synthesis of fatty acids Hard
A. 7 ATP and 16 NADPH
B. 8 ATP and 16 NADPH
C. 8 ATP and 14 NADPH
D. 7 ATP and 14 NADPH