๐ Bioenergetics questions commonly test pathway location, inputs and outputs, and ATP or electron-carrier counts together.
๐ The figures 36 or 38 ATP per glucose are theoretical maximum values, whereas the realistic yield is approximately 30โ32 ATP because efficiency and NADH transport costs vary.
Location โ inputs and outputs โ ATP or carrier count
โ Must-know
The bonds linking ATPโs second and third phosphate groups are phosphoanhydride bonds, whose hydrolysis is favourable because ADP and inorganic phosphate are more stable than ATP.
ATP is hydrolysed to ADP and inorganic phosphate to drive cellular work, and ADP is then re-phosphorylated using energy harvested from food breakdown.
Further detail
Glucose is a bank deposit; ATP is small-denomination cash.
ATP hydrolysis โ phosphorylation โ endergonic reaction proceeds
โ Must-know
๐ Oxidation is the loss of electrons, whereas reduction is the gain of electrons, and the two processes always occur together in a redox reaction.
Further detail
OIL RIG: Oxidation Is Loss, Reduction Is Gain.
โ Must-know
๐ Formula โ For each glucose, glycolysis consumes two ATP, produces four ATP by substrate-level phosphorylation, and yields a net of ATP plus two NADH.
Further detail
๐ Phosphofructokinase is inhibited by high ATP levels and activated by high AMP levels, slowing glycolysis when energy is abundant and accelerating it when energy is scarce.
Invest ATP โ split glucose โ pay off ATP and NADH โ choose respiration or fermentation
โ Must-know
In the link reaction, each pyruvate loses carbon dioxide, its two-carbon remainder joins coenzyme A to form acetyl-CoA, and NADโบ is reduced to NADH in the mitochondrial matrix.
Because one glucose produces two pyruvate, the link reaction occurs twice per glucose and yields two acetyl-CoA, two carbon dioxide, and two NADH.
The Krebs cycle occurs in the mitochondrial matrix and turns twice per glucose, producing four carbon dioxide, six NADH, two FADHโ, and two ATP.
The respiratory electron transport chain passes electrons from NADH and FADHโ through inner-membrane protein complexes, pumping protons into the intercristal space and creating a proton gradient.
๐ Oxygen is the final electron acceptor of aerobic respiration and combines with electrons and protons to form water, allowing the electron transport chain to continue.
Further detail
๐ Cyanide blocks the final electron transport complex, whereas dinitrophenol dissipates the proton gradient by making the inner membrane leaky and generates heat instead of ATP.
Link reaction โ Krebs cycle โ electron transport chain โ chemiosmosis
๐ Fermentation regenerates NADโบ when oxidative phosphorylation cannot reoxidise NADH, allowing glycolysis to continue producing its net two ATP per glucose.
๐ Lactic acid fermentation reduces pyruvate to lactate in animal cells and some bacteria without releasing carbon dioxide, whereas alcoholic fermentation produces ethanol and carbon dioxide in yeast and some bacteria.
Lactate in animal cells versus ethanol and COโ in yeast.
A chloroplast contains thylakoid membranes stacked into grana and suspended in the stroma, whereas a mitochondrion uses its inner membrane and matrix for respiration.
The light-dependent reactions occur across the thylakoid membrane, where light excites electrons, photosystem II splits water and releases oxygen, electron transport pumps protons, and ATP synthase produces ATP by photophosphorylation.
NADPโบ is the final electron acceptor of the light-dependent reactions and is reduced to NADPH.
The Calvin cycle occurs in the stroma, where RuBisCO fixes carbon dioxide onto RuBP and ATP and NADPH convert the resulting three-carbon compounds into G3P while most G3P regenerates RuBP.
Mitochondria use NADH and oxygen; chloroplasts use water and NADPโบ.
โ Must-know
๐ The respiratory chain uses NADH and FADHโ as electron sources and oxygen as final acceptor, whereas the thylakoid chain uses water as electron source and NADPโบ as final acceptor.
๐ Oxidative phosphorylation produces most ATP from glucose through the respiratory electron transport chain, whereas substrate-level phosphorylation produces ATP directly in glycolysis and the Krebs cycle.
Further detail
| Pathway | Location | Main outputs | ATP yield |
|---|---|---|---|
| Glycolysis | Cytoplasm | 2 pyruvate, 2 NADH | Net 2 ATP |
| Link reaction | Mitochondrial matrix | 2 acetyl-CoA, 2 COโ, 2 NADH | None directly |
| Krebs cycle | Mitochondrial matrix | 4 COโ, 6 NADH, 2 FADHโ | 2 ATP |
| Electron transport and chemiosmosis | Inner mitochondrial membrane | Water and proton gradient | Majority of ATP |
| Feature | Respiration | Photosynthesis |
|---|---|---|
| Final electron acceptor | Oxygen, forming water | NADPโบ, forming NADPH |
| Electron source | NADH and FADHโ | Water split by photosystem II |
| Proton accumulation | Intercristal space | Thylakoid space |
| Main ATP-producing process | Oxidative phosphorylation | Photophosphorylation |
Test your knowledge on Bioenergetics and ATP with 24 multiple-choice questions with detailed corrections.
1. Regarding the Bioenergetics Exam Framework, which statements are correct?
2. A student reports both 38 ATP and approximately 30โ32 ATP per glucose. Which statements correctly interpret these values?
Memorize the key concepts of Bioenergetics and ATP with 64 interactive flashcards.
What do bioenergetics questions commonly test together?
Pathway location, inputs and outputs, and ATP or electron-carrier counts.
What are the theoretical maximum ATP yields per glucose?
36 or 38 ATP per glucose.
Why is the realistic ATP yield per glucose lower than theoretical values?
Because efficiency and NADH transport costs vary.
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