Anaerobic respiration: lactate and yeast

Molecules (Interaction and interdependence) · Cell respiration · note 5 of 8

Spec C1.2.9, C1.2.10
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Anaerobic respiration: lactate and yeastSpec C1.2.9, C1.2.10

In short

In anaerobic respiration, reduced NAD from glycolysis cannot pass hydrogen to the electron transport chain. In humans, pyruvate accepts the hydrogen and becomes lactate, regenerating NAD so glycolysis continues, with a net yield of 2 ATP per glucose. Yeast uses the same pathway except that pyruvate becomes ethanol and carbon dioxide, which are used in brewing and baking.

Glycolysis needs a supply of NAD to accept hydrogen. Without oxygen, reduced NAD cannot be oxidised by the electron transport chain, so the cell's NAD would soon all be reduced and glycolysis would stop. Anaerobic respiration solves this by using pyruvate as the hydrogen acceptor.

Humans: pyruvate to lactate

pyruvate + reduced NAD → lactate + NAD

Regeneration of NAD allows glycolysis to continue, with a net yield of two ATP molecules per molecule of glucose. No carbon dioxide is produced. The reaction happens in the cytoplasm.

Yeast

The pathways of anaerobic respiration are the same in humans and yeasts apart from the regeneration of NAD using pyruvate, and therefore the final products. In yeast, pyruvate is decarboxylated (CO₂ removed) to ethanal, which is then reduced by reduced NAD to ethanol, regenerating NAD.

Yeast: glucose → ethanol + carbon dioxide
Uses of anaerobic respiration in yeast
ProcessUseful productWhat happens to the other product
Brewing (beer, wine)EthanolCO₂ escapes, or is kept to make the drink fizzy
Baking (bread)Carbon dioxide, which makes the dough riseEthanol evaporates during baking
Common mistake:

Lactate formation does not produce extra ATP. Its purpose is to regenerate NAD so glycolysis can keep making its 2 ATP.

Written and checked against the IB Biology HL specification · Updated October 2026

Frequently asked questions

Why is ATP called the energy currency of the cell?

ATP is called the energy currency because it distributes energy within cells. It is soluble, stable without enzymes and stays inside the cell, and hydrolysis to ADP and phosphate releases enough energy for tasks such as active transport, building macromolecules and movement. It is quickly regenerated from ADP using energy from respiration.

What is the difference between cell respiration and gas exchange?

Cell respiration is a set of enzyme-catalysed reactions inside cells that produce ATP using energy from carbon compounds. Gas exchange is the diffusion of oxygen and carbon dioxide between an organism and its environment, for example in the lungs. Gas exchange supplies oxygen for aerobic respiration and removes the carbon dioxide it produces.

What are the differences between aerobic and anaerobic respiration?

Aerobic respiration needs oxygen and mitochondria, can use carbohydrates, lipids and amino acids, gives a large yield of ATP and produces carbon dioxide and water. Anaerobic respiration in humans needs no oxygen, happens only in the cytoplasm, uses only glucose, gives just 2 ATP per glucose and produces lactate.

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