IB Biology HL Enzymes & Metabolism Paper 1 & 2 ~15 min read

Enzyme Inhibition

A cell that could only switch enzymes on would be in serious trouble. Inhibitors are the off switch — and they are also how statins lower cholesterol and how penicillin kills bacteria.

📚 What you need to know

Two ways to block an enzyme

Both types slow the enzyme down or stop it, but they do it in completely different places.

Competitive inhibition

Non-competitive inhibition

Where the inhibitor binds changes everything COMPETITIVE NON-COMPETITIVE ENZYME inhibitor sits in the active site substrate shapes are similar, so they compete ENZYME allosteric site active site squashed out of shape substrate the inhibitor never touches the active siteOne blocks the doorway; the other bends the door frame That difference is why extra substrate rescues one case and not the other
Notice the right-hand active site: it has not been filled, it has been reshaped. The substrate is not competing with anything — it simply does not fit.

Telling them apart from a graph

This is the graph question that appears again and again. Plot rate against substrate concentration for an uninhibited enzyme and for each inhibitor, and the three curves behave differently.

The same enzyme with and without inhibitors Watch what each curve does at the far right of the graph no inhibitor competitive inhibitor non-competitive inhibitorall three curves start at the origin both inhibitors lower the initial ratesubstrate concentration rate of reactionCompetitive: same maximum, reached later. Non-competitive: lower maximum Enough substrate outcompetes one of them and makes no difference to the other
Cover the labels and you can still identify the curves: the one that catches up is competitive, the one that never does is non-competitive.

Reading the curves

FeatureCompetitiveNon-competitive
Binding siteThe active siteAn allosteric site
ShapeChemically resembles the substrateChemically unlike the substrate
Effect on the enzymeBlocks the active siteChanges the shape of the active site
Adding more substrateOvercomes the inhibitorDoes not overcome the inhibitor
Maximum rateStill reached, but laterNever reached
Total product formedEventually the sameLess than normal
Statins. Statins lower blood cholesterol by acting as competitive inhibitors. They have a shape similar to the substrate of the enzyme that synthesises cholesterol, so they bind to its active site and block access. Less cholesterol is made, so LDL levels — the “bad cholesterol” linked to atherosclerosis and coronary heart disease — fall.

End-product inhibition

This is the cell’s own thermostat. If a pathway makes too much of its end product, that product itself switches the pathway off.

The end product binds to an allosteric site on an enzyme early in the pathway, acting as a non-competitive inhibitor. Because it binds allosterically, it is also called an allosteric inhibitor. This stops intermediate products piling up.

🧩 The feedback loop, step by step

  1. The pathway runs and the end product accumulates.
  2. End product binds to the allosteric site of the first enzyme in the chain.
  3. The active site changes shape, so no more enzyme–substrate complexes form and the pathway slows.
  4. The cell keeps using up the end product elsewhere, so its concentration falls.
  5. Inhibitor molecules detach, the active site reforms, and the enzyme becomes active again.
  6. The pathway restarts. The loop is continuous, which is why the product never runs out and never floods the cell.

The example to learn: threonine and isoleucine

Bacteria synthesise the amino acid isoleucine from threonine. The enzyme threonine deaminase catalyses the first step of that pathway.

Isoleucine switches off its own production line threonine intermediate intermediate isoleucinethreonine deaminase more steps end product isoleucine binds to the allosteric site of the first enzyme as cells use isoleucine up, it detaches and the pathway starts againThe product is a non-competitive inhibitor of the enzyme that makes it Inhibit the first step and nothing further down the chain gets built
Notice the feedback goes to the first enzyme. Blocking step one stops intermediates accumulating anywhere along the pathway.
This is exactly how a thermostat works. The heating raises the temperature; the temperature switches the heating off; the room cools; the heating comes back on. Nothing decides anything — the output controls the input, and the level stays roughly steady.

Mechanism-based inhibition

Both inhibitors so far were reversible. Some are not.

A substrate analogue is a molecule that can form a covalent bond with the active site. The enzyme treats it like a substrate and modifies it, but the modification produces a reactive group, which forms a stable inhibitor–enzyme complex. The enzyme is now permanently blocked. This is mechanism-based inhibition, and it is irreversible.

Penicillin

Bacterial cell walls are made of peptidoglycans — long molecules of peptides and sugars — held together by cross-links.

🧩 How penicillin kills a growing bacterium

  1. A growing bacterium secretes enzymes called autolysins, which cut small holes in its own cell wall so the wall can stretch.
  2. New peptidoglycan molecules fill the gaps and are joined by cross-links, made by the enzyme DD-transpeptidase.
  3. Penicillin has a structure similar to part of the growing peptide chain, so DD-transpeptidase binds to it.
  4. The enzyme modifies the penicillin, forming a stable enzyme–penicillin complex that permanently blocks the active site.
  5. No new cross-links form, but the autolysins keep cutting holes, so the wall gets weaker and weaker.
  6. Water enters the bacterium by osmosis, and the weakened wall cannot withstand the pressure. The cell bursts — death by lysis.
Why penicillin only works on growing bacteria. Once a bacterium has finished growing, its wall no longer needs to expand: autolysins stop cutting holes and no new cross-links are needed. With nothing to block, penicillin has no effect.

Bacteria can become resistant. A DNA mutation can change the shape of the active site of DD-transpeptidase so penicillin no longer binds well. If that mutation is in a plasmid, it spreads quickly, because bacteria transfer plasmids by conjugation — even between different species.

Worked examples

WE 1

Identify an inhibitor from data

Adding substance X to an enzyme reaction lowers the rate. Increasing the substrate concentration restores the original maximum rate. Identify the type of inhibition and explain your answer. (3 marks)

Step 1: the identification Substance X is a competitive inhibitor. Step 2: where it binds It has a similar shape to the substrate and binds to the active site, competing with the substrate for it. Step 3: why extra substrate works At high substrate concentration, substrate molecules are far more likely to reach an active site first, displacing the inhibitor, so the maximum rate is still reached. Maximum rate restored = competitive the giveaway is always the maximum rate, not the initial rate — both inhibitors lower that
WE 2

Explain end-product inhibition

Explain how isoleucine regulates its own synthesis in bacteria. (4 marks)

Point 1: the pathway Isoleucine is made from threonine, and threonine deaminase catalyses the first step. Point 2: what isoleucine does As isoleucine builds up, it binds to the allosteric site of threonine deaminase, acting as a non-competitive inhibitor. Point 3: the effect The active site changes shape, threonine can no longer bind, and isoleucine production stops. Point 4: the loop closing As cells use isoleucine for protein synthesis its concentration falls, inhibitor molecules detach, the active site reforms and production resumes. A continuous feedback loop that keeps isoleucine at a steady level say “allosteric site” and “non-competitive” explicitly — both are marking points
WE 3

Describe mechanism-based inhibition

Using penicillin as an example, describe mechanism-based inhibition. (4 marks)

Point 1: what it is A substrate analogue forms a covalent bond with the active site, producing a stable inhibitor–enzyme complex, so the inhibition is irreversible. Point 2: the target enzyme Penicillin resembles part of the growing peptide chain of the bacterial cell wall, so DD-transpeptidase binds it and is permanently blocked. Point 3: the effect on the wall No new cross-links form between peptidoglycan molecules, while autolysins keep making holes, so the wall weakens. Point 4: the outcome Water enters by osmosis, the wall cannot withstand the internal pressure, and the cell bursts — death by lysis. Permanent block on cross-linking, then lysis add that penicillin only affects bacteria that are still growing — it is a common extension mark

💡 Exam tips

⚠ Common mistakes

That completes Enzymes & Metabolism — enzymes make reactions possible in mild conditions, conditions and concentrations set the speed, pathways string the reactions together, and inhibitors keep the system under control. Up next: Adenosine Triphosphate (ATP), the first page of Cellular Respiration, which is one long metabolic pathway built entirely from the ideas on these seven pages.

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