Enzymes as catalysts and their role in metabolism

Molecules (Interaction and interdependence) · Enzymes and metabolism · note 1 of 4

Enzymes as catalysts and their role in metabolismSpec C1.1.1, C1.1.2, C1.1.3

In short

Enzymes are biological catalysts: they speed up chemical reactions in cells without being used up. Metabolism is the complex network of interdependent and interacting chemical reactions in an organism. Each enzyme is specific, so many enzymes are needed, and cells control metabolism by controlling enzymes. Anabolic reactions build macromolecules; catabolic reactions break them down.

An enzyme is a protein that acts as a biological catalyst: it increases the rate of a chemical reaction and is not changed or used up by the reaction, so one enzyme molecule can be used again and again.

Without enzymes, most reactions in cells would happen far too slowly at body temperature to keep the organism alive. Raising the temperature enough to speed them up would damage cell structures. Enzymes give fast rates at the moderate temperatures found in cells, and the cell can switch reactions on or off by making, activating or inhibiting particular enzymes.

Metabolism

Metabolism is the complex network of interdependent and interacting chemical reactions occurring in living organisms. The product of one reaction is often the substrate of the next, so reactions are linked into pathways, and pathways share molecules with each other.

Enzymes are specific: each one catalyses one reaction or one type of reaction. Living organisms therefore need many different enzymes, often thousands. Because every step depends on its own enzyme, control over metabolism can be exerted through these enzymes, for example by changing how much of an enzyme is made or how active it is.

Anabolic and catabolic reactions

The two types of metabolic reaction
AnabolismCatabolism
What happensLarger molecules built from smaller onesLarger molecules broken down into smaller ones
Typical reactionCondensation: monomers joined, water releasedHydrolysis (water used to split bonds) or oxidation
EnergyNeeds an energy input (usually from ATP)Often releases energy
ExamplesProtein synthesis (amino acids joined by peptide bonds); glycogen formation from glucose; photosynthesis (carbon compounds made from CO₂)Hydrolysis of macromolecules into monomers in digestion; oxidation of substrates such as glucose in respiration
Anabolism
Reactions that build macromolecules from monomers, for example by condensation.
Catabolism
Reactions that break down macromolecules into monomers, for example by hydrolysis, or oxidise substrates as in respiration.
Common mistake:

Photosynthesis is anabolic and respiration is catabolic. Do not describe digestion as anabolic just because it happens before new molecules are built.

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

Frequently asked questions

Why do enzymes denature at high temperatures?

Enzymes denature at high temperatures because extra vibration breaks the bonds holding the protein's three-dimensional structure. The active site changes shape and chemical properties, so the substrate can no longer bind and no enzyme–substrate complexes form. This is why the rate falls steeply above the optimum temperature, and the change is usually permanent.

What is the induced-fit model of enzyme action?

The induced-fit model says that both the substrate and the enzyme change shape when the substrate binds to the active site. The active site moulds more tightly around the substrate, which stresses bonds in the substrate and lowers the activation energy. After the products leave, the active site returns to its original shape.

Why does the rate of an enzyme reaction level off at high substrate concentration?

The rate levels off because nearly all the active sites are occupied at any moment. Adding more substrate cannot increase the number of successful substrate–active site collisions, so enzyme concentration becomes the limiting factor. At low substrate concentrations, by contrast, more substrate means more frequent collisions and a faster rate.