Enzymes change the route, not the destination

A chemical reaction requires reactants to reach a high-energy transition state. The activation energy is the energy barrier between reactants and that state. Enzymes provide an alternative reaction pathway with a lower activation energy, so a larger fraction of collisions can produce products at a given temperature.

An enzyme does not make an energetically impossible reaction favourable, supply energy to the products or change the position of equilibrium. It accelerates forward and reverse reactions and helps the system reach equilibrium sooner.

The active site is chemically precise

An active site is a three-dimensional region formed by amino acid side chains that may be far apart in the primary sequence. Shape, charge, polarity and temporary interactions determine which substrates bind and how they are oriented.

The induced-fit model recognises that an enzyme is flexible. Substrate binding can shift the active site's shape, placing catalytic groups in better positions and stressing particular substrate bonds. Specificity is therefore chemical and dynamic, not simply a rigid lock-and-key outline.

The catalytic cycle
01Encounter

Substrate collides with the active site.

02Bind

Specific interactions form an enzyme–substrate complex.

03Catalyse

The transition state is stabilised.

04Release

Products leave; the enzyme is reusable.

The enzyme participates temporarily but is regenerated at the end of the catalytic cycle.

Why rate rises and then levels off

At low substrate concentration, adding substrate increases the frequency of successful active-site encounters. As concentration rises, more active sites are occupied. Eventually almost every enzyme molecule is working whenever possible, and the reaction approaches its maximum rate.

Adding more substrate beyond saturation has little effect. Adding more enzyme can raise the maximum rate if sufficient substrate is available. This distinction is central to graph-based questions.

Factors affecting enzyme activity
FactorInitial effectLimit or decline
Substrate concentrationMore enzyme–substrate collisionsActive sites become saturated
Enzyme concentrationMore active sites availableSubstrate becomes limiting
TemperatureFaster molecular motionExcess heat disrupts structure
pHChanges ionisation and interactionsExtreme pH alters active-site structure

Temperature and pH act through structure

Increasing temperature initially raises kinetic energy and collision frequency. Beyond an optimum range, thermal motion disrupts weak interactions that maintain the enzyme's tertiary structure. The active site loses the arrangement required for catalysis: the enzyme is denatured.

pH changes the ionisation of amino acid side chains. That can alter substrate binding, catalytic chemistry or the ionic interactions stabilising protein structure. Different enzymes have different pH optima because their environments and active-site chemistry differ.

Competitive and non-competitive inhibition

A competitive inhibitor binds at the active site and competes with substrate. Increasing substrate concentration can reduce its effect because substrate molecules occupy a greater fraction of active sites. The same maximum rate may be reached, but more substrate is required.

A pure non-competitive inhibitor binds elsewhere and reduces the proportion of functional enzyme molecules. Adding more substrate cannot fully restore the original maximum rate. Real enzymes can show mixed or irreversible inhibition, but MDCAT comparisons usually focus on these core patterns.

Two inhibition patterns
01Competitive

Active-site binding; overcome by sufficiently high substrate.

02Non-competitive

Binding elsewhere; maximum rate is reduced.

Ask where the inhibitor binds and whether increasing substrate can recover the original maximum rate.
Quick recap

The ideas to carry forward

  • Enzymes lower activation energy through an alternative pathway.
  • Active sites depend on three-dimensional chemistry and induced fit.
  • Saturation limits rate at high substrate concentration.
  • Competitive inhibition differs from non-competitive inhibition in site and kinetic effect.
Exam-style concept checks

Answer first. Then reveal the marking logic.

01Why does an enzyme not change the equilibrium position of a reversible reaction?2 marks · show the biological link

Answer: It lowers the activation barrier for both forward and reverse directions, so equilibrium is reached faster without changing the relative energies of reactants and products.

02Which observation supports competitive inhibition?2 marks · show the biological link

Answer: The inhibited reaction can approach the original maximum rate when substrate concentration becomes sufficiently high.

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