---
title: "Cellular Respiration and Fermentation"
book: "University Biology — Year 1"
subject: biology
language: en
chapter: 15
exercises: 12
source: https://one-course.com/books/biology/3/en/chapter/15-cellular-respiration-and-fermentation
---

# Chapter 15 — Cellular Respiration and Fermentation

A flask of yeast in sugar solution with the air excluded bubbles carbon dioxide and turns the sugar into alcohol; let air in and the bubbling slows, the alcohol stops, and the yeast grows ten times faster on the same sugar. Pasteur saw this in 1861 and could not explain it; the explanation took a century and runs through the whole of this chapter. Oxygen lets a [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) extract from glucose fifteen times the energy it can get without it, and it does so by passing the electrons of the sugar down a chain of carriers to oxygen, pumping protons across a membrane as they fall, and letting the protons back through a turbine that makes [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp). This chapter describes [glycolysis](#def-b1-respiration-fermentation-glycolysis), the [Krebs cycle](#def-b1-respiration-fermentation-krebs), the [respiratory chain](#def-b1-respiration-fermentation-chain) and its chemiosmotic coupling, the [fermentations](#def-b1-respiration-fermentation-fermentation) that do without oxygen, and the burning of [fats](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) and [proteins](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) by the same machinery.

## 15.1 The oxidation of glucose

**Proposition 15.1 (The overall reaction and its stages).**

The complete oxidation of glucose,

$$
\mathrm{C_6H_{12}O_6} + 6\,\mathrm{O_2} \to 6\,\mathrm{CO_2} + 6\,\mathrm{H_2O},
\qquad \Delta G^{\circ\prime} = -2870\,\mathrm{kJ}/\mathrm{mol},
$$

is carried out in three stages that never let the electrons meet the oxygen directly. *[Glycolysis](#def-b1-respiration-fermentation-glycolysis)*, in the [cytosol](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-organelle), splits glucose into two pyruvate and yields 2 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) and 2 NADH. *Pyruvate oxidation and the [Krebs cycle](#def-b1-respiration-fermentation-krebs)*, in the [mitochondrial matrix](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion), oxidise the pyruvate to $\mathrm{CO_2}$, loading the electrons onto 8 NADH and 2 $\mathrm{FADH_2}$ and making 2 GTP. *Oxidative phosphorylation*, in the inner mitochondrial membrane, passes those electrons to oxygen through a chain of carriers that pumps protons, and the proton gradient drives the synthesis of about 26 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp). In all, some 30 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per glucose: about half the [free energy](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#prop-b1-water-small-molecules-gibbs) of combustion captured, the rest released as heat.

**Definition 15.2 (Electron carriers).**

*$\mathrm{NAD^+}$* (nicotinamide adenine dinucleotide) accepts two electrons and one proton from a substrate to become NADH; *FAD* accepts two electrons and two protons to become $\mathrm{FADH_2}$. Both are [coenzymes](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) of dehydrogenases, and both are recycled: reduced by catabolism, re-oxidised by the [respiratory chain](#def-b1-respiration-fermentation-chain). A [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) holds only micromoles of them, turning over thousands of times an hour. Their redox potentials, $E'_0 = -0.32\,\mathrm{V}$ for $\mathrm{NAD^+}/\mathrm{NADH}$, place them far below oxygen ($+0.82\,\mathrm{V}$): each pair of electrons NADH hands to oxygen releases $\Delta G^{\circ\prime} = -2F\Delta E =
-220\,\mathrm{kJ}/\mathrm{mol}$, enough for more than four [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp).

![The three stages of respiration. Glycolysis and the Krebs cycle strip the electrons of glucose onto NADH and FADH_2; oxidative phosphorylation cashes them in.](https://one-course.com/images/onecourse/chapters/biology-3/b1-respiration-fermentation/fig-63e9ac4750b5.svg)

*The three stages of respiration. [Glycolysis](#def-b1-respiration-fermentation-glycolysis) and the [Krebs cycle](#def-b1-respiration-fermentation-krebs) strip the electrons of glucose onto NADH and $\mathrm{FADH_2}$; oxidative phosphorylation cashes them in.*

## 15.2 Glycolysis

**Definition 15.3 (Glycolysis).**

*Glycolysis* is a sequence of ten [enzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) reactions in the [cytosol](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-organelle) that converts one glucose (C6) into two *pyruvate* (C3). In the *investment phase* two [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) are spent to phosphorylate the sugar (hexokinase, then *phosphofructokinase*, PFK) and the six-carbon diphosphate is split into two three-carbon phosphates. In the *payoff phase* each triose is oxidised by $\mathrm{NAD^+}$ (the only oxidation of glycolysis) and its phosphates are transferred to ADP by *substrate-level phosphorylation* — a phosphate handed directly from a high-energy intermediate to ADP, with no membrane or oxygen involved. The balance:

$$
\text{glucose} + 2\,\mathrm{NAD^+} + 2\,\mathrm{ADP} + 2\,\mathrm{P_i}
\to 2\,\text{pyruvate} + 2\,\mathrm{NADH} + 2\,\mathrm{H^+} + 2\,\mathrm{ATP} + 2\,\mathrm{H_2O} .
$$

It needs no oxygen; it is the oldest and most universal pathway of metabolism.

![Glycolysis in outline. Two ATP are spent to build a six-carbon diphosphate, which splits into two trioses; their oxidation and two substrate-level phosphorylations each return four ATP and two NADH. Phosphofructokinase is the pathway’s control valve.](https://one-course.com/images/onecourse/chapters/biology-3/b1-respiration-fermentation/fig-11845cb985c5.svg)

*[Glycolysis](#def-b1-respiration-fermentation-glycolysis) in outline. Two [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) are spent to build a six-carbon diphosphate, which splits into two trioses; their oxidation and two [substrate-level phosphorylations](#def-b1-respiration-fermentation-glycolysis) each return four [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) and two NADH. Phosphofructokinase is the pathway’s control valve.*

**Proposition 15.4 (Control at phosphofructokinase).**

PFK, the first irreversible step committed to [glycolysis](#def-b1-respiration-fermentation-glycolysis), is an [allosteric enzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-allosteric) ([Chapter 13](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#ch-b1-enzymes)) inhibited by [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) and by citrate — the signals that energy and Krebs-cycle fuel are plentiful — and activated by AMP and ADP, the signals that they are not. When [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) is high the flux through [glycolysis](#def-b1-respiration-fermentation-glycolysis) falls within seconds; when the [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) spends [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp), AMP rises steeply (through adenylate kinase, $2\,\mathrm{ADP} \rightleftharpoons \mathrm{ATP} + \mathrm{AMP}$), and PFK opens. The [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell)’s *energy charge* regulates the pathway that fills it.

## 15.3 Pyruvate oxidation and the Krebs cycle

**Definition 15.5 (Pyruvate dehydrogenase, acetyl-CoA).**

Pyruvate enters the [mitochondrion](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion) and is oxidised by the *pyruvate dehydrogenase* complex to *acetyl-CoA* — a two-carbon acetyl group carried by [coenzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) A ([Chapter 11](https://one-course.com/books/biology/3/en/chapter/11-nucleotides-and-nucleic-acids#ch-b1-nucleic-acids)) on a high-energy thioester bond — releasing one $\mathrm{CO_2}$ and one NADH. Acetyl-CoA is the common entry of all fuels into the cycle: [carbohydrate](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide) through pyruvate, [fats](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) through $\beta$-oxidation, many [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) directly.

**Definition 15.6 (The Krebs cycle).**

The *Krebs cycle* (citric acid cycle) in the [mitochondrial matrix](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion) condenses [acetyl-CoA](#def-b1-respiration-fermentation-pdh) (C2) with oxaloacetate (C4) into citrate (C6) and, in eight steps, oxidises the two carbons to $\mathrm{CO_2}$ while regenerating oxaloacetate. Per acetyl group: 3 NADH, 1 $\mathrm{FADH_2}$, 1 GTP (by [substrate-level phosphorylation](#def-b1-respiration-fermentation-glycolysis)) and 2 $\mathrm{CO_2}$. Per glucose (two acetyls): 6 NADH, 2 $\mathrm{FADH_2}$, 2 GTP, 4 $\mathrm{CO_2}$ — which with the 2 $\mathrm{CO_2}$ of pyruvate dehydrogenase makes the six of the overall equation. No oxygen is consumed in the cycle itself; it runs only as long as the [respiratory chain](#def-b1-respiration-fermentation-chain) re-oxidises its NADH. It is also *amphibolic*: its intermediates are drawn off for biosynthesis ([Chapter 16](https://one-course.com/books/biology/3/en/chapter/16-biosyntheses-and-the-integrated-cell#ch-b1-biosyntheses-integration)) and replenished from [amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) and pyruvate.

![The Krebs cycle. An acetyl group enters by condensing with oxaloacetate; two carbons leave as CO_2 at the two decarboxylations; the four oxidations load three NADH and one FADH_2; oxaloacetate is regenerated for the next turn.](https://one-course.com/images/onecourse/chapters/biology-3/b1-respiration-fermentation/fig-abc453ac507a.svg)

*The [Krebs cycle](#def-b1-respiration-fermentation-krebs). An acetyl group enters by condensing with oxaloacetate; two carbons leave as $\mathrm{CO_2}$ at the two decarboxylations; the four oxidations load three NADH and one $\mathrm{FADH_2}$; oxaloacetate is regenerated for the next turn.*

**Example 15.7 (Following the carbons).**

Feed a [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) glucose labelled with $\mathrm{^{14}C}$ on carbon 1: the label appears in the methyl carbon of pyruvate, then of [acetyl-CoA](#def-b1-respiration-fermentation-pdh), enters citrate, and [leaves](https://one-course.com/books/biology/3/en/chapter/3-functional-organization-of-a-flowering-plant#def-b1-flowering-plant-organization-organs) as $\mathrm{CO_2}$ only on the second or third turn of the cycle — the two carbons released in a given turn belong to the oxaloacetate of the previous one. Krebs (1937) deduced the cycle from the observation that catalytic amounts of any of its acids stimulated the oxidation of far more pyruvate than they could account for themselves: they were being regenerated.

![Hans Krebs (1900–1981), who worked out the cycle in 1937 from the rates at which minced pigeon muscle oxidised its acids. Photograph: Nobel Foundation, public domain.](https://one-course.com/images/onecourse/chapters/biology-3/b1-respiration-fermentation/img-89f11fc1c31c.jpg)

*Hans Krebs (1900–1981), who worked out the cycle in 1937 from the rates at which minced pigeon muscle oxidised its acids. Photograph: Nobel Foundation, public domain.*

## 15.4 Oxidative phosphorylation

**Definition 15.8 (The respiratory chain).**

The *respiratory chain* is four [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) complexes of the inner mitochondrial membrane and two mobile carriers. NADH gives its electrons to *complex I*, $\mathrm{FADH_2}$ (via succinate dehydrogenase, *complex II*) gives its own; both reduce *ubiquinone* (Q), a lipid-soluble quinone diffusing in the membrane; Q passes them to *complex III*, which hands them to *cytochrome $c$*, a small [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) on the outer face; and *complex IV* (cytochrome oxidase) delivers them, four at a time, to $\mathrm{O_2}$, making water. At each of complexes I, III and IV the electrons drop in potential and the energy pumps protons from the matrix into the intermembrane space: about 4, 4 and 2 per pair of electrons, ten per NADH, six per $\mathrm{FADH_2}$ (which enters below complex I).

![The inner mitochondrial membrane. Electrons (orange) fall from NADH or FADH_2 through the complexes to oxygen; complexes I, III and IV pump protons outward (green); the ATP synthase lets them back in and makes ATP.](https://one-course.com/images/onecourse/chapters/biology-3/b1-respiration-fermentation/fig-aa72973766b2.svg)

*The inner mitochondrial membrane. Electrons (orange) fall from NADH or $\mathrm{FADH_2}$ through the complexes to oxygen; complexes I, III and IV pump protons outward (green); the [ATP synthase](https://one-course.com/books/biology/3/en/chapter/14-photosynthesis-and-autotrophy#thm-b1-photosynthesis-chemiosmosis) lets them back in and makes [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp).*

**Theorem 15.9 (Chemiosmotic coupling).**

The proton gradient built by the chain — about $0.16\,\mathrm{V}$ of [membrane potential](https://one-course.com/books/biology/3/en/chapter/7-membranes-and-membrane-transport#def-b1-membranes-transport-potential) (matrix negative) plus one pH unit, a *[proton-motive force](#thm-b1-respiration-fermentation-chemiosmosis)* of about $0.22\,\mathrm{V}$, or $21\,\mathrm{kJ}$ per mole of protons — is the sole link between electron transport and [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) synthesis. The [ATP synthase](https://one-course.com/books/biology/3/en/chapter/14-photosynthesis-and-autotrophy#thm-b1-photosynthesis-chemiosmosis), a rotary motor of the inner membrane, lets about $3\,\mathrm{H}^{+}$ through per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) made, and one more is spent importing the phosphate and exporting the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp): 4 per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp). Hence the *P/O ratio*: $10/4 = 2.5$ [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per NADH and $6/4 = 1.5$ per $\mathrm{FADH_2}$.

**Evidence.** [Mitochondria](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion) make [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) only when their inner membrane is intact and closed; fragments that transport electrons but cannot hold a gradient make none. Uncouplers such as dinitrophenol, which shuttle protons across the membrane, abolish [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) synthesis while oxygen consumption continues and even accelerates, the energy leaving as heat — brown [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) does this deliberately with its own uncoupling [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) ([Chapter 2](https://one-course.com/books/biology/3/en/chapter/2-functional-organization-of-a-mammal#ch-b1-mammal-organization)), and dinitrophenol was once sold as a slimming drug that killed by hyperthermia. [Inhibitors](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-inhibitors) of the chain (cyanide on complex IV) stop both; [inhibitors](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-inhibitors) of the synthase (oligomycin) stop [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) synthesis and, with the gradient unable to discharge, stop respiration too, which an uncoupler then restores. An artificial pH gradient imposed on [mitochondria](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion) in the dark drives [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) synthesis, as in [chloroplasts](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-plastid) ([Chapter 14](https://one-course.com/books/biology/3/en/chapter/14-photosynthesis-and-autotrophy#ch-b1-photosynthesis)). ∎

![A mitochondrion cut open. The inner membrane’s folds multiply the area available for the chain and the synthase; the matrix within holds the Krebs cycle.](https://one-course.com/images/onecourse/chapters/biology-3/b1-respiration-fermentation/fig-b137f1ae2cf5.svg)

*A [mitochondrion](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion) cut open. The inner membrane’s folds multiply the area available for the chain and the synthase; the matrix within holds the [Krebs cycle](#def-b1-respiration-fermentation-krebs).*

**Method 15.10 (The ATP balance sheet of a glucose).**

1. [Glycolysis](#def-b1-respiration-fermentation-glycolysis) : $+2$ [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) (net), $+2$ NADH in the [cytosol](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-organelle) .
2. Pyruvate dehydrogenase: $+2$ NADH. [Krebs cycle](#def-b1-respiration-fermentation-krebs) : $+6$ NADH, $+2$ $\mathrm{FADH_2}$ , $+2$ GTP ( $=$ [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) ).
3. Oxidative phosphorylation: $2.5$ [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per mitochondrial NADH (8: 20 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) ), $1.5$ per $\mathrm{FADH_2}$ (2: 3 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) ).
4. Cytosolic NADH cannot cross the inner membrane; its electrons enter by a shuttle that delivers them to $\mathrm{FAD}$ (1.5 each, in muscle and brain) or to $\mathrm{NAD^+}$ (2.5 each, in liver and heart): 3 or 5 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) .
5. Total: $2 + 2 + 20 + 3 + 3 = 30$ , or $32$ with the better shuttle. Efficiency: $30\times 50/2870 \approx 52\,\%$ under cellular conditions.

## 15.5 Fermentation

**Definition 15.11 (Fermentation).**

Without oxygen the [respiratory chain](#def-b1-respiration-fermentation-chain) stops, NADH cannot be re-oxidised, and [glycolysis](#def-b1-respiration-fermentation-glycolysis) would halt within seconds for lack of $\mathrm{NAD^+}$. *Fermentation* regenerates it by using pyruvate itself as the electron acceptor: in *lactic fermentation* (muscle, red [cells](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell), lactic bacteria) pyruvate is reduced to lactate; in *alcoholic fermentation* (yeast, some plants) it is decarboxylated to acetaldehyde, which is reduced to ethanol, releasing $\mathrm{CO_2}$. The yield is [glycolysis](#def-b1-respiration-fermentation-glycolysis)’ own: 2 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per glucose, a fifteenth of respiration’s; the carbon is barely oxidised and the products still hold nearly all the fuel’s energy. *Anaerobic respiration* — an electron-transport chain ending on nitrate, sulfate or carbonate instead of oxygen, in many bacteria — is a different thing, treated in the Year 2 volume.

![Left: baker’s yeast, budding. Right: what its fermentation does to dough: the CO_2 of two ATP’s worth of glycolysis per glucose, trapped in gluten. The ethanol bakes off.](https://one-course.com/images/onecourse/chapters/biology-3/b1-respiration-fermentation/img-f22f0387c894.jpg)

![Left: baker’s yeast, budding. Right: what its fermentation does to dough: the CO_2 of two ATP’s worth of glycolysis per glucose, trapped in gluten. The ethanol bakes off.](https://one-course.com/images/onecourse/chapters/biology-3/b1-respiration-fermentation/img-76b49c9d29a3.jpg)

*Left: baker’s yeast, budding. Right: what its [fermentation](#def-b1-respiration-fermentation-fermentation) does to dough: the $\mathrm{CO_2}$ of two [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp)’s worth of [glycolysis](#def-b1-respiration-fermentation-glycolysis) per glucose, trapped in gluten. The ethanol bakes off.*

**Proposition 15.12 (The Pasteur effect).**

A [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) that can respire consumes glucose far faster when deprived of oxygen than when supplied with it, and grows far less on it.

**Evidence.** Pasteur (1861) found yeast in an aerated vat consuming sugar slowly and multiplying, while in a sealed vat it consumed sugar ten times faster, multiplied little and made alcohol. The explanation is the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) yield: to obtain the same [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) from 2 per glucose as from 30, the [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) must run [glycolysis](#def-b1-respiration-fermentation-glycolysis) fifteen times faster, and PFK, released from the inhibition by [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) and citrate that respiration maintains, lets it. A sprinting muscle shows the same effect over seconds: its [glycogen](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) falls twenty times faster than at rest, and lactate rises. ∎

**Definition 15.13 (Respiratory quotient).**

The *respiratory quotient* RQ is the ratio of $\mathrm{CO_2}$ produced to $\mathrm{O_2}$ consumed, in moles. [Carbohydrate](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide) gives 1.0 (six of each per glucose); [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) about 0.7 (palmitate: $\mathrm{C_{16}H_{32}O_2} + 23\,\mathrm{O_2} \to 16\,\mathrm{CO_2} +
16\,\mathrm{H_2O}$, $16/23 = 0.70$), because its carbons are more reduced and need more oxygen per $\mathrm{CO_2}$; [protein](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-peptide) about 0.8. A fermenting culture releases $\mathrm{CO_2}$ without taking oxygen: its RQ is infinite, and a mixed culture’s RQ above 1 measures the share of [fermentation](#def-b1-respiration-fermentation-fermentation). Measured on a whole animal by gas analysis, the RQ tells which fuel it is burning.

**Example 15.14 (Reading an RQ).**

A resting human after a [carbohydrate](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide) meal: RQ 0.95, glucose burning. The same person after a night’s fast: 0.75, [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride). A marathon runner at the thirtieth kilometre, [glycogen](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) gone: 0.72. A flask of yeast on glucose with a little air: RQ 4 — three quarters of its glucose is being fermented.

## 15.6 Other fuels and the regulation of the whole

**Proposition 15.15 (Fats and proteins enter the same machinery).**

[Fatty acids](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-fattyacid) are activated to acyl-CoA and, in the [mitochondrial matrix](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion), shortened two carbons at a time by *$\beta$-oxidation*, each round yielding one [acetyl-CoA](#def-b1-respiration-fermentation-pdh), one NADH and one $\mathrm{FADH_2}$: palmitate (C16) gives 8 [acetyl-CoA](#def-b1-respiration-fermentation-pdh), 7 NADH and 7 $\mathrm{FADH_2}$ — about 106 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp), or $6.6\,$ [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per carbon against glucose’s 5. [Amino acids](https://one-course.com/books/biology/3/en/chapter/12-amino-acids-and-proteins#def-b1-proteins-aminoacid) lose their nitrogen as ammonia (converted to urea in the liver) and their carbon skeletons enter as pyruvate, [acetyl-CoA](#def-b1-respiration-fermentation-pdh) or Krebs-cycle intermediates. Every fuel converges on [acetyl-CoA](#def-b1-respiration-fermentation-pdh) and the chain; the [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) chooses among them by hormones and by the state of its [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp), as [Chapter 16](https://one-course.com/books/biology/3/en/chapter/16-biosyntheses-and-the-integrated-cell#ch-b1-biosyntheses-integration) describes.

**Example 15.16 (A gram of each).**

One gram of glucose ($5.6\,\mathrm{mmol}$) yields about $170\,\mathrm{mmol}$ of [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp); one gram of palmitate ($3.9\,\mathrm{mmol}$) about $410\,\mathrm{mmol}$ — the $38\,\mathrm{kJ}/\mathrm{g}$ against $17\,\mathrm{kJ}/\mathrm{g}$ of [Chapter 9](https://one-course.com/books/biology/3/en/chapter/9-lipids#ch-b1-lipids), turned into currency. The [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) costs more oxygen per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp), which is why a sprinter’s muscle, oxygen-limited, burns [glycogen](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide), and a migrating bird, oxygen-rich and mass-limited, burns [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride).

## 15.7 Exercises

**Exercise 15.1 ★.**

Name the three stages of respiration, their location, and what each produces.

**Solution of Exercise 15.1.**

[Glycolysis](#def-b1-respiration-fermentation-glycolysis), [cytosol](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-organelle): 2 pyruvate, 2 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp), 2 NADH. Pyruvate oxidation and [Krebs cycle](#def-b1-respiration-fermentation-krebs), [mitochondrial matrix](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion): 6 $\mathrm{CO_2}$, 8 NADH, 2 $\mathrm{FADH_2}$, 2 GTP. Oxidative phosphorylation, inner membrane: water from oxygen, about 26 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp).

**Exercise 15.2 ★.**

Write the balance of [glycolysis](#def-b1-respiration-fermentation-glycolysis) and explain “[substrate-level phosphorylation](#def-b1-respiration-fermentation-glycolysis)”.

**Solution of Exercise 15.2.**

Glucose $+ 2\,\mathrm{NAD^+} + 2\,\mathrm{ADP} + 2\,\mathrm{P_i} \to
2$ pyruvate $+ 2\,\mathrm{NADH} + 2\,\mathrm{H^+} + 2\,\mathrm{ATP} +
2\,\mathrm{H_2O}$. [Substrate-level phosphorylation](#def-b1-respiration-fermentation-glycolysis): a phosphate is transferred directly from a high-energy intermediate (1,3-bisphosphoglycerate, phosphoenolpyruvate) to ADP by an [enzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme), without a membrane gradient or oxygen.

**Exercise 15.3 ★.**

From the [Krebs cycle](#def-b1-respiration-fermentation-krebs) figure, list in order the products released in one turn, and say where the two $\mathrm{CO_2}$ come from.

**Solution of Exercise 15.3.**

NADH and $\mathrm{CO_2}$ (isocitrate to $\alpha$-ketoglutarate), NADH and $\mathrm{CO_2}$ ($\alpha$-ketoglutarate to succinyl-CoA), GTP (succinyl-CoA to succinate), $\mathrm{FADH_2}$ (succinate to fumarate), NADH (malate to oxaloacetate). The two $\mathrm{CO_2}$ come from the two decarboxylations of the six- and five-carbon acids.

**Exercise 15.4 ★.**

What does [fermentation](#def-b1-respiration-fermentation-fermentation) achieve for a [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) without oxygen, and what does it not achieve?

**Solution of Exercise 15.4.**

It regenerates $\mathrm{NAD^+}$ so that [glycolysis](#def-b1-respiration-fermentation-glycolysis) can continue and yield its 2 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per glucose. It does not oxidise the carbon, extract the remaining energy (the product keeps nearly all of it) or make more than a fifteenth of respiration’s [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp).

**Exercise 15.5 ★★.**

Compute $\Delta G^{\circ\prime}$ for the transfer of two electrons from NADH ($E'_0 = -0.32\,\mathrm{V}$) to oxygen ($+0.82\,\mathrm{V}$), and to ubiquinone ($+0.05\,\mathrm{V}$). How many [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) could each step pay for in principle?

**Solution of Exercise 15.5.**

To oxygen: $-2\times 96\,500\times 1.14 = -220\,\mathrm{kJ}/\mathrm{mol}$, four [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) at $50\,\mathrm{kJ}$. To ubiquinone: $-2\times 96\,500\times 0.37 =
-71\,\mathrm{kJ}/\mathrm{mol}$, one [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp).

**Exercise 15.6 ★★.**

Draw up the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) balance of one glucose in a muscle [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) (glycerol phosphate shuttle) and in a liver [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) (malate shuttle), using [P/O ratios](#thm-b1-respiration-fermentation-chemiosmosis) of 2.5 and 1.5.

**Solution of Exercise 15.6.**

Muscle: $2 + 2$ (GTP) $+ 8\times 2.5$ (mitochondrial NADH) $+ 2\times
1.5$ ($\mathrm{FADH_2}$) $+ 2\times 1.5$ (cytosolic NADH via [FAD](#def-b1-respiration-fermentation-carriers)) $=
30$. Liver: the cytosolic NADH gives $2\times 2.5$: 32.

**Exercise 15.7 ★★.**

A culture consumes $1.0\,\mathrm{mmol}$ of $\mathrm{O_2}$ and releases $2.2\,\mathrm{mmol}$ of $\mathrm{CO_2}$ per hour on glucose. Compute the RQ, and the fractions of the glucose respired and fermented.

**Solution of Exercise 15.7.**

RQ $= 2.2$. Respired glucose $x$: $6x = 1.0$, $x = 0.167\,\mathrm{mmol}$; $\mathrm{CO_2}$: $6x + 2y = 2.2$, $2y = 1.2$, $y = 0.6\,\mathrm{mmol}$. Fermented $0.6/0.767 = 78\,\%$ of the glucose, respired $22\,\%$.

**Exercise 15.8 ★★.**

Explain what happens to oxygen consumption, [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) synthesis and heat production when dinitrophenol is added to respiring [mitochondria](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion), and why the drug was lethal.

**Solution of Exercise 15.8.**

Oxygen consumption rises (the chain, freed from the back-pressure of the gradient, runs at full speed), [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) synthesis stops (no gradient to drive the synthase), and all the energy of the electrons appears as heat. Patients burned their [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) fast and died of a body temperature that nothing could bring down.

**Exercise 15.9 ★★.**

Cyanide blocks complex IV. Predict its effect on the [respiratory chain](#def-b1-respiration-fermentation-chain), on the [Krebs cycle](#def-b1-respiration-fermentation-krebs) and on [glycolysis](#def-b1-respiration-fermentation-glycolysis) in a [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell), and explain why lactate accumulates in the blood of the poisoned.

**Solution of Exercise 15.9.**

The chain backs up: every carrier becomes reduced, no protons are pumped, no [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) is made. NADH is not re-oxidised, so the [Krebs cycle](#def-b1-respiration-fermentation-krebs) and pyruvate dehydrogenase stop for lack of $\mathrm{NAD^+}$. [Glycolysis](#def-b1-respiration-fermentation-glycolysis), released from [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) inhibition, runs fast and must regenerate its $\mathrm{NAD^+}$ by reducing pyruvate to lactate, which floods the blood.

**Exercise 15.10 ★★★.**

Compute the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) yield of palmitate (8 [acetyl-CoA](#def-b1-respiration-fermentation-pdh), 7 NADH, 7 $\mathrm{FADH_2}$, minus 2 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) for activation) and its yield per carbon; compute the oxygen consumed per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) for palmitate and for glucose. Which fuel should a diving seal prefer, and which a hummingbird?

**Solution of Exercise 15.10.**

$8\times 10 + 7\times 2.5 + 7\times 1.5 - 2 = 80 + 17.5 + 10.5 - 2 =
106$ [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp); $106/16 = 6.6$ per carbon. Oxygen: palmitate 23 $\mathrm{O_2}$ for 106 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp), $0.22\,\mathrm{O}_{2}$ per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp); glucose 6 for 30, $0.20\,\mathrm{O}_{2}$ per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp). Per unit of oxygen glucose is $10\,\%$ better: the seal, oxygen-limited underwater, prefers [carbohydrate](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide); per unit of mass [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) is twice as good: the hummingbird, mass-limited in flight, migrates on [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride).

**Exercise 15.11 ★★★.**

A muscle fibre holds $5\,\mathrm{mmol}/\mathrm{L}$ of [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) and uses $3\,\mathrm{mmol}/\mathrm{L}$ per second in a sprint. How long would its [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) last alone? Its phosphocreatine ($25\,\mathrm{mmol}/\mathrm{L}$) regenerates [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) one for one; its [glycogen](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) through [fermentation](#def-b1-respiration-fermentation-fermentation) gives 3 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per glucose unit at up to $2\,\mathrm{mmol}/\mathrm{L}$ of glucose units per second. Compute the time each store can sustain the sprint, and explain why a 100 m race is run almost entirely without oxygen.

**Solution of Exercise 15.11.**

[ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) alone: $5/3 < 2\,\mathrm{s}$. Phosphocreatine: $25/3 = 8\,\mathrm{s}$. [Fermentation](#def-b1-respiration-fermentation-fermentation): $2\times 3 = 6\,\mathrm{mmol}/\mathrm{L}$ of [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per second, enough for the demand, for as long as [glycogen](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-polysaccharide) and tolerance to lactate last (tens of seconds). Oxygen delivery takes a minute or more to rise and supplies at most about $1\,\mathrm{mmol}/\mathrm{L}$ of [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per second in a fibre: a ten-second race is over before respiration has begun to help, and is paid for by phosphocreatine and [fermentation](#def-b1-respiration-fermentation-fermentation).

**Exercise 15.12 ★★★.**

“The [mitochondrion](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-mitochondrion) is a battery charged by electrons and discharged through a turbine.” Discuss in a paragraph: what the gradient stores, what the synthase does, where the analogy is exact and where it is loose.

**Solution of Exercise 15.12.**

The gradient stores energy as a difference of proton concentration and of electrical potential across an insulating membrane — exactly a charged capacitor plus a concentration [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell); the chain is the charger, driven by the fall of electrons; the synthase is a motor turned by the proton current, exactly a turbine, coupling the flow to a mechanical rotation that makes [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp). The analogy is loose in that the “battery” holds only milliseconds of the [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell)’s consumption and must be charged continuously, that the same membrane’s other transporters also draw on it, and that the turbine can run backward, hydrolysing [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) to pump protons when the chain fails.

## 15.8 Problem: Yeast With and Without Air

**Problem 15.1.**

Weekend problem — Pasteur’s vats revisited: ATP counted, glucose consumed, biomass grown and gases measured, ending on the ratio of ATP yields and the P/O ratio

Yeast is grown on glucose in two identical flasks, one aerated and one sealed. Use [P/O ratios](#thm-b1-respiration-fermentation-chemiosmosis) of 2.5 (NADH) and 1.5 ($\mathrm{FADH_2}$), the $\mathrm{FADH_2}$ shuttle for cytosolic NADH, a growth yield of $10.5\,\mathrm{g}$ of dry biomass per mole of [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp), and glucose at $180\,\mathrm{g}/\mathrm{mol}$.

**Part I — [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) counted.**

1. List the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) , GTP, NADH and $\mathrm{FADH_2}$ produced from one glucose by [glycolysis](#def-b1-respiration-fermentation-glycolysis) , pyruvate dehydrogenase and the [Krebs cycle](#def-b1-respiration-fermentation-krebs) .
2. Compute the protons pumped by the chain per glucose (10 per mitochondrial NADH, 6 per $\mathrm{FADH_2}$ ; cytosolic NADH enters as $\mathrm{FADH_2}$ ).
3. Compute the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) made by the synthase at $4\,\mathrm{H}^{+}$ per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) , and the total [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per glucose with air.
4. Compute the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per glucose without air.
5. Compute the ratio of the two yields.
6. Compute the [free energy](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#prop-b1-water-small-molecules-gibbs) captured with air ( $\Delta G_{\text{ATP}}  = -50\,\mathrm{kJ}/\mathrm{mol}$ ) as a fraction of $2870\,\mathrm{kJ}$ , and without air as a fraction of the $2870\,\mathrm{kJ}$ and of the energy actually released by [fermentation](#def-b1-respiration-fermentation-fermentation) (glucose to two ethanol and two $\mathrm{CO_2}$ : $-235\,\mathrm{kJ}/\mathrm{mol}$ ).

**Part II — Glucose consumed, biomass grown.** The sealed flask must make [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) at the same rate as the aerated one to maintain its [cells](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell): $30\,\mathrm{mmol}$ of [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per hour.

7. Compute the glucose consumed per hour in each flask.
8. Compute the ethanol and $\mathrm{CO_2}$ produced per hour in the sealed flask, and the $\mathrm{CO_2}$ and $\mathrm{O_2}$ exchanged in the aerated one.
9. Compute the biomass the sealed flask can build per mole of glucose, and per gram of glucose.
10. The aerated flask builds $0.5\,\mathrm{g}$ of biomass per gram of glucose. Compute the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) this would represent at $10.5\,\mathrm{g}/\mathrm{mol}$ , and compare with the 30 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) available. What limits the aerobic yield?
11. Explain the [Pasteur effect](#prop-b1-respiration-fermentation-pasteur) from questions 7 and 9, and name the [enzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) whose regulation implements it.

**Part III — Gases measured.** A third flask, poorly aerated, releases $44\,\mathrm{mg}$ of $\mathrm{CO_2}$ and consumes $20\,\mathrm{mg}$ of $\mathrm{O_2}$ per hour.

12. Convert both to millimoles and compute the RQ.
13. Let $x$ be the glucose respired and $y$ the glucose fermented per hour. Write the $\mathrm{O_2}$ and $\mathrm{CO_2}$ balances and solve for $x$ and $y$ .
14. What fraction of the glucose is fermented? What fraction of the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) comes from [fermentation](#def-b1-respiration-fermentation-fermentation) ?
15. The same flask on palmitate instead of glucose (aerobic): compute the RQ.
16. A student measures an RQ of 0.7 in a resting animal after a night’s fast and 1.0 after a meal. Interpret.

**Part IV — The turbine.**

17. Compute the [free energy](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#prop-b1-water-small-molecules-gibbs) of one mole of protons crossing a [proton-motive force](#thm-b1-respiration-fermentation-chemiosmosis) of $0.22\,\mathrm{V}$ .
18. Compute the energy of $4\,\mathrm{H}^{+}$ and the efficiency of the synthase at $50\,\mathrm{kJ}$ per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) .
19. Compute the [free energy](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#prop-b1-water-small-molecules-gibbs) released by two electrons falling from NADH to $\mathrm{O_2}$ ( $1.14\,\mathrm{V}$ ), the energy stored in the ten protons pumped, and the efficiency of the chain.
20. Combine the two efficiencies and compare with 2.5 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) $\times$ $50\,\mathrm{kJ}$ over $220\,\mathrm{kJ}$ .
21. An uncoupler is added to the aerated flask. Predict the changes in oxygen consumption, [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) yield, glucose consumption, heat output and growth.
22. Oligomycin, which blocks the synthase, is added instead. Predict the changes, and what happens if an uncoupler is then added on top.
23. A mutant yeast lacks complex I; its NADH enters the chain through an alternative [enzyme](https://one-course.com/books/biology/3/en/chapter/13-enzymes-and-biochemical-catalysis#def-b1-enzymes-enzyme) that pumps no protons. Compute its [P/O ratio](#thm-b1-respiration-fermentation-chemiosmosis) for NADH and its [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per glucose.
24. Explain why the [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) keeps the mitochondrial NADH pool almost fully reduced when oxygen is absent, and what this does to the [Krebs cycle](#def-b1-respiration-fermentation-krebs) .
25. State the result: the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) per glucose with and without air, their ratio, and the [P/O ratios](#thm-b1-respiration-fermentation-chemiosmosis) of NADH and $\mathrm{FADH_2}$ .

**Solution of Problem 15.1.**

**1.** [Glycolysis](#def-b1-respiration-fermentation-glycolysis): 2 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp), 2 NADH (cytosolic). Pyruvate dehydrogenase: 2 NADH. Krebs: 6 NADH, 2 $\mathrm{FADH_2}$, 2 GTP. **2.** Mitochondrial NADH $8\times 10 = 80$; $\mathrm{FADH_2}$ $2\times 6 = 12$; cytosolic NADH as $\mathrm{FADH_2}$ $2\times 6 = 12$: 104 protons. **3.** $104/4 = 26$ [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp); total $26 + 2 + 2 = 30$. **4.** 2 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp). **5.** 15. **6.** With air $30\times 50 = 1500\,\mathrm{kJ}$: $52\,\%$ of 2870. Without: $100\,\mathrm{kJ}$, $3.5\,\%$ of 2870 but $43\,\%$ of the 235 released — [fermentation](#def-b1-respiration-fermentation-fermentation) is efficient at capturing what it releases; it just releases little. **7.** Aerated $30/30 = 1\,\mathrm{mmol}$ of glucose per hour; sealed $30/2 = 15\,\mathrm{mmol}$. **8.** Sealed: $30\,\mathrm{mmol}$ of ethanol and $30\,\mathrm{mmol}$ of $\mathrm{CO_2}$ per hour. Aerated: $6\,\mathrm{mmol}$ of $\mathrm{CO_2}$ released and $6\,\mathrm{mmol}$ of $\mathrm{O_2}$ consumed. **9.** $2\times 10.5 = 21\,\mathrm{g}$ per mole, $0.12\,\mathrm{g}$ per gram of glucose. **10.** $0.5\times 180 = 90\,\mathrm{g}$ per mole, i.e. $90/10.5 =
8.6$ [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp)’s worth against 30 available: [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) is in excess; the yield is limited by carbon (half the glucose is oxidised to $\mathrm{CO_2}$ to make the [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp), and biomass needs carbon skeletons and reducing power), and the surplus [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) is spent on maintenance. **11.** To get the same [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) the sealed culture consumes fifteen times more glucose (question 7) and grows a fifth as much per gram (question 9): fast sugar consumption, little growth, alcohol — Pasteur’s observation. Phosphofructokinase, inhibited by [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) and citrate under aeration, is released when respiration stops. **12.** $\mathrm{CO_2}$ $44/44 = 1.0\,\mathrm{mmol}$; $\mathrm{O_2}$ $20/32 = 0.625\,\mathrm{mmol}$: RQ $= 1.6$. **13.** $\mathrm{O_2}$: $6x = 0.625$, $x = 0.104\,\mathrm{mmol}$. $\mathrm{CO_2}$: $6x + 2y = 1.0$, $2y = 0.375$, $y = 0.1875\,\mathrm{mmol}$. **14.** Fermented $0.1875/0.292 = 64\,\%$ of the glucose. [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) from [fermentation](#def-b1-respiration-fermentation-fermentation) $2y = 0.375$ against $30x = 3.12$ from respiration: $11\,\%$. **15.** $16/23 = 0.70$. **16.** Fasted, the animal burns [fat](https://one-course.com/books/biology/3/en/chapter/9-lipids#def-b1-lipids-triglyceride) (RQ 0.7); fed, it burns the [carbohydrate](https://one-course.com/books/biology/3/en/chapter/10-carbohydrates#def-b1-carbohydrates-monosaccharide) of the meal (1.0). **17.** $96\,500\times 0.22 = 21.2\,\mathrm{kJ}/\mathrm{mol}$. **18.** $4\times 21.2 = 85\,\mathrm{kJ}$ per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) of $50\,\mathrm{kJ}$: $59\,\%$. **19.** $2\times 96\,500\times 1.14 = 220\,\mathrm{kJ}$; ten protons store $10\times 21.2 = 212\,\mathrm{kJ}$: $96\,\%$ — the chain wastes little; the losses are at the synthase and the transporters. **20.** $0.96\times 0.59 = 0.57$; $2.5\times 50/220 = 0.57$: the same figure by both routes. **21.** Oxygen consumption rises, [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) yield falls toward that of [fermentation](#def-b1-respiration-fermentation-fermentation) (2 per glucose from [glycolysis](#def-b1-respiration-fermentation-glycolysis), and PFK is released, so glucose consumption rises), heat output rises, growth collapses. **22.** [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) synthesis stops; the gradient cannot discharge, the chain stalls against it, oxygen consumption stops, the [cell](https://one-course.com/books/biology/3/en/chapter/5-the-cell-unit-of-life#def-b1-cell-unit-of-life-cell) ferments what it can. Adding an uncoupler then lets protons leak back: the chain and oxygen consumption resume, still with no [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp). **23.** NADH pumps only through complexes III and IV: $6/4 = 1.5$; per glucose $8\times 1.5 + 2\times 1.5 + 2\times 1.5 + 4 = 22$ [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp). **24.** With no oxygen the chain cannot take electrons, so NADH is not re-oxidised and the pool stays reduced; the three NAD-dependent dehydrogenases of the cycle have no $\mathrm{NAD^+}$ and the cycle stops — which is why [fermentation](#def-b1-respiration-fermentation-fermentation) must regenerate $\mathrm{NAD^+}$ in the [cytosol](https://one-course.com/books/biology/3/en/chapter/6-functional-organization-of-the-eukaryotic-cell#def-b1-eukaryotic-cell-organelle) for [glycolysis](#def-b1-respiration-fermentation-glycolysis) to go on. **25.** 30 [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp) with air, 2 without: a ratio of 15; P/O 2.5 for NADH (10 protons over 4 per [ATP](https://one-course.com/books/biology/3/en/chapter/8-water-and-small-biomolecules#def-b1-water-small-molecules-atp)) and 1.5 for $\mathrm{FADH_2}$ (6 over 4).
