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This deck focuses on Cellular Respiration, giving you a quick way to review the definitions, rules, and examples that matter most for AP Biology.
Study Cellular Respiration in AP Biology with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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Which process regenerates NAD⁺ under anaerobic conditions?
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Fermentation. Allows glycolysis to continue when oxygen is unavailable for ETC.
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This deck focuses on Cellular Respiration, giving you a quick way to review the definitions, rules, and examples that matter most for AP Biology.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: Fermentation. Allows glycolysis to continue when oxygen is unavailable for ETC.
Answer: Catalyzes the formation of ATP. This enzyme uses proton gradient energy to phosphorylate ADP into ATP.
Answer: Final electron acceptor. Receives electrons from ETC, allowing electron flow to continue.
Answer: Acetyl-CoA. The 2-carbon acetyl unit enters the cycle attached to Coenzyme A.
Answer: Glucose. Primary sugar molecule that cells break down for energy production.
Answer: Inner mitochondrial membrane. Embedded in the cristae where proton pumping and ATP synthesis occur.
Answer: NADH. NADH enters at Complex I while FADH2 enters at Complex II.
Answer: Lactic acid or ethanol and CO2. Different pathways regenerate NAD⁺ without oxygen for continued glycolysis.
Answer: Complex IV (cytochrome c oxidase). This complex catalyzes the final electron transfer to oxygen.
Answer: Lactate and NAD+. Pyruvate is reduced while NADH is oxidized to NAD+.
Answer: NAD+ is reduced to NADH when it gains electrons (and H+). NAD+ serves as an electron acceptor during glucose oxidation.
Answer: Inner mitochondrial membrane. Protein complexes in this membrane pump protons and transfer electrons.
Answer: Pyruvate oxidation (acetyl-CoA formation). Pyruvate is decarboxylated and combined with coenzyme A.
Answer: Inner mitochondrial membrane. Impermeability maintains the proton gradient essential for ATP synthesis.
Answer: NAD⁺ is reduced to NADH. NAD⁺ gains electrons and hydrogen to become NADH during glucose oxidation.
Answer: Final electron acceptor. Receives electrons from ETC, allowing electron flow to continue.
Answer: To generate ATP by oxidizing organic molecules. Cells break down glucose and other molecules to harvest chemical energy.
Answer: Krebs cycle (Citric Acid Cycle). Acetyl-CoA is oxidized to produce electron carriers and ATP.
Answer: Oxygen. Oxygen receives electrons at the end of the chain, forming water.
Answer: Direct ATP synthesis from a substrate in glycolysis/Krebs cycle. Direct transfer of phosphate from substrate to ADP without electron transport.
Answer: Converted to Acetyl-CoA. Pyruvate oxidation removes one carbon as CO2 to form acetyl-CoA.
Answer: ADP. ADP is the acceptor molecule that gets phosphorylated to form ATP.
Answer: Electrochemical gradient of H+ across the inner membrane. Concentration and electrical gradients of protons store potential energy.
Answer: Pyruvate oxidation and the citric acid cycle. Decarboxylation reactions remove carbon atoms as CO2.
Answer: Cytoplasm. Glycolysis occurs outside the mitochondria in the cell's main compartment.
Answer: 3 NADH, 1 FADH2, 1 ATP (or GTP), 2 CO2. One acetyl-CoA is completely oxidized in each cycle turn.
Answer: ADP. ADP is the acceptor molecule that gets phosphorylated to form ATP.
Answer: Fermentation. Allows glycolysis to continue when oxygen is unavailable for ETC.
Answer: Oxygen (O2). Oxygen accepts electrons at the end of the electron transport chain.
Answer: NADH and FADH₂. These electron carriers feed into the ETC to generate most ATP.
Answer: Substrate-level phosphorylation. Direct phosphate transfer from substrate to ADP without electron transport.
Answer: Electron transport chain (ETC). Electrons from NADH and FADH₂ flow through protein complexes to generate ATP.
Answer: Glucose. Primary sugar molecule that cells break down for energy production.
Answer: Carbon dioxide (CO2). Carbon atoms from acetyl groups are released as waste CO2 gas.
Answer: About 1.5 ATP per FADH2. FADH2 bypasses Complex I, generating fewer ATP molecules.
Answer: Approximately 38 ATP molecules. Maximum theoretical yield from complete glucose oxidation through all stages.
Answer: Electron carriers. These molecules transport electrons from metabolic reactions to the ETC.
Answer: Oxygen. Oxygen receives electrons at the end of the chain, forming water.
Answer: Disrupts proton gradient, reducing ATP synthesis. Allows protons to leak across membrane, bypassing ATP synthase.
Answer: Glycolysis. The initial breakdown of glucose occurs in the cytoplasm without oxygen.
Answer: About 30–32 ATP per glucose. Modern estimates account for proton leak and transport costs.
Answer: ATP made by direct phosphate transfer from a substrate. Direct enzymatic transfer of phosphate group from substrate to ADP.
Answer: 2 ATP (or 2 GTP). Direct phosphorylation produces ATP without electron transport.
Answer: Catalyzes the formation of ATP. This enzyme uses proton gradient energy to phosphorylate ADP into ATP.
Answer: Oxidative phosphorylation (ETC and chemiosmosis). The electron transport chain and chemiosmosis generate most ATP.
Answer: NADH. NAD+ accepts electrons during glucose oxidation to become NADH.
Answer: NADH. NAD+ accepts electrons during glucose oxidation to become NADH.
Answer: 1 acetyl-CoA, 1 NADH, 1 CO2. Each pyruvate loses one carbon as CO2 and reduces one NAD+.
Answer: C6H12O6+6O2→6CO2+6H2O+ATP (energy). The complete oxidation of glucose to CO2 and water with ATP production.
Answer: Pyruvate. Glucose is split into two 3-carbon pyruvate molecules during glycolysis.
Answer: Approximately 38 ATP molecules. Maximum theoretical yield from complete glucose oxidation through all stages.
Answer: ADP and inorganic phosphate (Pi). ATP synthase phosphorylates ADP using energy from proton flow.
Answer: Cytosol. Glycolysis occurs in the cell's cytoplasm, not in organelles.
Answer: Inner mitochondrial membrane. Impermeability maintains the proton gradient essential for ATP synthesis.
Answer: Three. Pyruvate is a 3-carbon molecule formed when 6-carbon glucose is split.
Answer: Approximately 34 ATP molecules. Electron flow creates proton gradient that drives ATP synthase production.
Answer: 2 turns. Two acetyl-CoA molecules require two complete turns of the cycle.
Answer: Substrate-level phosphorylation. Direct phosphate transfer from substrate to ADP without electron transport.
Answer: Ethanol, CO2, and NAD+. Pyruvate is decarboxylated then reduced while regenerating NAD+.
Answer: It allows NADH oxidation to regenerate NAD+ via the ETC. NAD+ must be regenerated to continue the glycolytic pathway.
Answer: Net 2 ATP. Four ATP are made but two are consumed, yielding net gain of two.
Answer: NAD+ is reduced to NADH when it gains electrons (and H+). NAD+ serves as an electron acceptor during glucose oxidation.
Answer: 3 NADH, 1 FADH2, 1 ATP (or GTP), 2 CO2. One acetyl-CoA is completely oxidized in each cycle turn.
Answer: Transfers acetyl group to the Krebs cycle. Carries acetyl groups from pyruvate oxidation into the Krebs cycle.
Answer: To produce ATP. Converts glucose energy into usable cellular energy currency (ATP).
Answer: ATP. Universal energy molecule that powers most cellular processes.
Answer: Cytochrome c oxidase. Cyanide blocks Complex IV, preventing oxygen from accepting electrons.
Answer: ATP production driven by chemiosmosis and the ETC. Uses proton gradient energy to drive ATP synthesis via ATP synthase.
Answer: Complex IV (cytochrome c oxidase). This complex catalyzes the final electron transfer to oxygen.
Answer: Lactate and NAD+. Pyruvate is reduced while NADH is oxidized to NAD+.
Answer: NADH and FADH2. These reduced carriers donate high-energy electrons to generate ATP.
Answer: 2 ATP molecules. Two turns of the cycle produce 2 ATP through substrate-level phosphorylation.
Answer: ATP made by direct phosphate transfer from a substrate. Direct enzymatic transfer of phosphate group from substrate to ADP.
Answer: 2 pyruvate. One glucose molecule splits into two 3-carbon pyruvate molecules.
Answer: Oxidative phosphorylation (ETC and chemiosmosis). The electron transport chain and chemiosmosis generate most ATP.
Answer: Krebs cycle (Citric Acid Cycle). Acetyl-CoA is oxidized to produce electron carriers and ATP.
Answer: C6H12O6+6O2→6CO2+6H2O+ATP (energy). The complete oxidation of glucose to CO2 and water with ATP production.
Answer: Cytochrome c oxidase. Cyanide blocks Complex IV, preventing oxygen from accepting electrons.
Answer: Pyruvate oxidation and the citric acid cycle. Decarboxylation reactions remove carbon atoms as CO2.
Answer: Converted to Acetyl-CoA. Pyruvate oxidation removes one carbon as CO2 to form acetyl-CoA.
Answer: Mitochondrial matrix. The innermost compartment of mitochondria where the cycle enzymes are located.
Answer: Cristae increase surface area for the ETC. Folded inner membrane provides more space for ETC protein complexes.
Answer: Mitochondrial matrix. The innermost compartment of mitochondria where the cycle enzymes are located.
Answer: Glycolysis, citric acid cycle, oxidative phosphorylation. These sequential stages completely oxidize glucose to maximize ATP yield.
Answer: NADH and FADH₂ transfer electrons to the ETC. Reduced coenzymes from Krebs cycle donate electrons to start ETC.
Answer: Mitochondrial matrix. The inner compartment of mitochondria contains citric acid cycle enzymes.
Answer: Approximately 34 ATP molecules. Electron flow creates proton gradient that drives ATP synthase production.
Answer: Cytoplasm. Glycolysis occurs outside the mitochondria in the cell's main compartment.
Answer: Ethanol, CO2, and NAD+. Pyruvate is decarboxylated then reduced while regenerating NAD+.
Answer: Regenerate NAD+ so glycolysis can continue. NADH is oxidized back to NAD+ without oxygen present.
Answer: NAD⁺ or FAD. These molecules accept and transport electrons during metabolic oxidation.
Answer: Direct ATP synthesis from a substrate in glycolysis/Krebs cycle. Direct transfer of phosphate from substrate to ADP without electron transport.
Answer: Transfers acetyl group to the Krebs cycle. Carries acetyl groups from pyruvate oxidation into the Krebs cycle.
Answer: About 1.5 ATP per FADH2. FADH2 bypasses Complex I, generating fewer ATP molecules.
Answer: ATP synthesis powered by H+ diffusion through ATP synthase. Proton gradient drives ATP synthesis as protons flow through ATP synthase.
Answer: Electron carriers. These molecules transport electrons from metabolic reactions to the ETC.
Answer: Carbon dioxide (CO2). Carbon atoms from acetyl groups are released as waste CO2 gas.
Answer: NADH and FADH₂. These electron carriers feed into the ETC to generate most ATP.
Answer: 2 turns. Two acetyl-CoA molecules require two complete turns of the cycle.
Answer: Oxidize acetyl-CoA to CO2 and reduce NAD+ and FAD. The cycle harvests electrons while completely oxidizing the 2-carbon unit.