IB Biology HL Disease & Immunity Paper 1 & 2 ~9 min read

Blood Clotting

A cut does two bad things at once: you lose blood, and you have opened a door for pathogens. Clotting fixes both problems with the same plug. The clever part is how a tiny signal turns into a full clot in seconds.

📘 What you need to know

What blood is made of

Before the clotting, get the ingredients straight. Two of these four components do the work in this topic: platelets start the process, and plasma carries the proteins that finish it.

What is actually in a sample of blood By volume, in a healthy adult 55% 45% under 1% PLASMA the liquid part, and it carries the clotting proteins RED BLOOD CELLS carry oxygen, and get trapped in the clot as it forms WHITE CELLS + PLATELETS tiny share of the volume, but they run defence and repairPlatelets are fragments of cells, not complete cells They have no nucleus, which is why the word fragment matters in the exam.
Everything that seals a wound comes from the two smallest slices: platelets start the cascade, and plasma supplies the fibrinogen.

Step one: the platelet plug

When the skin is cut, the first line of defence has been broken and microorganisms have an entry point. The body needs to close that gap fast, both to limit blood loss and to block unwanted microorganisms.

Platelets respond to blood vessel damage by sticking to the damaged wall and to each other, forming a temporary plug that slows the bleeding. That plug alone is weak. To make it strong, the platelets release chemicals called clotting factors.

Remember this order vessel damaged → platelets plug → clotting factors released → cascade → fibrin mesh → scab

Step two: the cascade

A cascade is a chain of reactions where each step sets off the next one, and each step makes more product than the step before. That is why a very small signal at a cut can produce a huge amount of fibrin almost immediately.

The clotting cascade Each step switches on the next, and makes more of it 1. DAMAGE a blood vessel wall is broken open2. PLATELET PLUG platelets stick together and release clotting factors3. THROMBIN clotting factors cause this enzyme to be released4. FIBRIN thrombin turns soluble fibrinogen into fibrin5. MESH fibrin threads trap platelets and blood cells6. SCAB air hardens the mesh and the wound is sealedSoluble goes in, insoluble comes out That single change of state is what turns liquid blood into a solid plug.
Follow the arrows round. Fibrinogen is already dissolved in your plasma all the time — thrombin simply switches it into its insoluble form when it is needed.

The two names people mix up

 FibrinogenFibrin
StateSoluble — dissolved in the plasmaInsoluble — comes out of solution
When presentAll the time, waitingOnly once thrombin has acted
ShapeSeparate protein moleculesLong threads forming a mesh
JobThe raw materialTraps platelets and blood cells to seal the wound
🧠

Fibrinogen has the extra letters, and it is the one that is still dissolved

The –ogen ending means “not active yet”. Chop it off and you get the working version: fibrin. The same trick works for pepsinogen and pepsin.

Do not memorise every protein in the cascade. IB only wants the shape of it: clotting factors → thrombin → fibrinogen to fibrin → mesh, plus the word amplified. Say that a small stimulus is amplified into a large amount of fibrin and you have the key idea.
Why a cascade and not one step? Two reasons worth writing down. It is fast, because each stage produces many molecules for the next stage. It is also controlled, because a clot only forms where the damage signal starts, not everywhere in your circulation.

Worked examples

WE 1

Outline the process of blood clotting

Outline how a blood clot forms after a blood vessel is damaged. (4 marks)

Point 1: platelets respond Platelets form a temporary plug at the site of damage to stem the bleeding. Point 2: the signal Platelets release clotting factors, which trigger a chemical cascade and cause the release of the enzyme thrombin. Point 3: the conversion Thrombin catalyses the conversion of soluble fibrinogen into insoluble fibrin. Point 4: the seal Fibrin forms a mesh that traps platelets and blood cells, and exposure to air hardens it into a scab. Plug, factors, thrombin, fibrinogen to fibrin, mesh, scab use the words soluble and insoluble — that contrast is usually a mark on its own
WE 2

Explain the advantage of a cascade

Explain why blood clotting involves a cascade of reactions rather than a single reaction. (2 marks)

Point 1: amplification Each step in the cascade produces many molecules that take part in the next step, so a small initial stimulus is amplified. Point 2: the benefit A large amount of fibrin is produced very quickly, so the wound is sealed before much blood is lost or many pathogens enter. Small signal in, large fast response out the word “amplified” is the one the mark scheme is looking for
WE 3

Link clotting to defence against disease

Explain how blood clotting contributes to the body’s defence against infectious disease. (3 marks)

Point 1: what a cut does A cut breaks the skin, which is the primary defence, so pathogens now have an entry point into the body. Point 2: the repair A clot forms a plug of fibrin, platelets and trapped blood cells across the break. Point 3: the outcome This restores the physical barrier and prevents pathogens entering through the wound, as well as reducing blood loss. The clot rebuilds the barrier that the cut destroyed the question says “against infectious disease”, so blood loss alone will not get full marks

💡 Exam tips

⚠ Common mistakes

Up next: The Immune System. Barriers and clots stop most pathogens. From here on we deal with the ones that got past them, starting with the two very different systems your body uses.

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