IB Biology HL Gas Exchange Systems Paper 1 & 2 ~12 min read

The Oxygen Dissociation Curve

One S-shaped line carries most of the marks in this topic. If oxygen simply dissolved in blood the graph would be a straight line, and your tissues would be in trouble. The curve is the shape it is because of one property of haemoglobin – and once you see that, every region of the graph explains itself.

📚 What you need to know

What the axes mean

The line answers one question at every point: if blood sits in this much oxygen, how full does its haemoglobin get?

Why it is not a straight line

Put oxygen next to water and it dissolves steadily – twice the pressure, roughly twice the amount dissolved. A straight line. Blood does not behave like that, because the oxygen is not dissolving, it is binding to a protein that changes shape as it fills up.

The oxygen dissociation curve Shallow, then steep, then flat – and each part has a reason 1 2 3if oxygen simply dissolved, you would get the dashed line1 shallow: the first oxygen is hard to bind 2 steep: cooperative binding takes over 3 plateau: almost every site is full0 20 40 60 80 1000 2 4 6 8 10 12 14partial pressure of oxygen / kPa saturation of haemoglobin / %respiring tissue is here the lungs are here
The dashed line is what a simple solution would do. The real curve starts slower, overtakes in the middle, and then flattens off.

Reading it left to right: binding

RegionWhat the curve doesWhy
Low pO2 (bottom left)Rises slowly; saturation stays lowThe shape of the molecule makes the first oxygen difficult to bind, so haemoglobin has a low affinity here and cannot pick much up
Medium pO2 (middle)Rises steeply; saturation climbs fastOnce the first oxygen is bound the protein changes conformation, so the next ones bind easily. A small rise in pO2 gives a large rise in saturation
High pO2 (top right)Levels off near 100%Most binding sites are already occupied, so there is little left to fill. Even a large rise in pO2 barely changes saturation

Reading it right to left: releasing

The same line read backwards tells you about dissociation – haemoglobin letting go.

Here is the part worth understanding rather than memorising: the steep middle of the curve sits at exactly the partial pressures found in respiring tissue. That is not a coincidence. It means a small drop in tissue oxygen triggers a big release, so the busier a tissue gets, the more oxygen it is given.
The same 2 kPa drop, two very different results tissues lungs0 50 100 0 4 6 12 14 partial pressure of oxygen / kPa saturation / %6 kPa to 4 kPa: saturation falls 82% to 59% about 23% of the load is handed to the cells 14 kPa to 12 kPa: 98% to 97% almost nothing is released up here
Steep means sensitive. Flat means stable. The body uses both: stable loading in the lungs, sensitive unloading in the tissues.

Putting the whole shape together

The explanation in one chain first O2 binds slowly → protein changes shape → next ones bind easily → sites run out → curve flattens
🧠

Hard, easy, easy, hard

Four words for the four oxygen molecules. They give you the three regions of the curve and the reason for each one, which is most of what any “explain the shape” question is asking for.

Do not forget the curve can move. Everything on this page describes one set of conditions. Raise the carbon dioxide level and the whole curve shifts right (the Bohr shift); foetal haemoglobin sits to the left. The shape stays the same – only the position changes.

Worked examples

WE 1

Explaining the shape

Explain the shape of the oxygen dissociation curve for haemoglobin. (4 marks)

Point 1: the shallow start Because of the shape of the molecule, the first oxygen binds slowly, so the curve is shallow at low pO₂. Point 2: the change in shape Once one oxygen has bound, the haemoglobin changes conformation, making the next binding sites easier to reach. Point 3: the steep middle This cooperative binding speeds up binding of the next oxygen molecules, so a small increase in pO₂ causes a large increase in saturation. Point 4: the plateau Near saturation there are few empty sites left, so the fourth oxygen binds slowly and the curve levels off. Hard, easy, easy, hard – and the curve follows the words conformation and cooperative binding are both worth marks; use them by name
WE 2

Using the steep region

Using the graph, explain the importance of the steep region of the curve to a respiring muscle. (3 marks)

Step 1: read the values Between 6 and 4 kPa the saturation falls from about 82% to about 59%, a drop of roughly 23 percentage points. Step 2: what that means A small decrease in pO₂ causes a large decrease in saturation, so a lot of oxygen dissociates from haemoglobin. Step 3: why it matters Respiring tissues have partial pressures in exactly this range, so oxygen is released readily where it is needed for aerobic respiration. Steep region = large release for a small change in pO₂ quote two readings from the graph; “it releases more oxygen” alone will not get the data mark
WE 3

Why the plateau is useful

Explain why the percentage saturation of haemoglobin changes very little at partial pressures above about 10 kPa, and suggest why this is an advantage. (3 marks)

Point 1: the reason At high pO₂ nearly all the binding sites are already occupied, so there is little capacity left and extra oxygen makes almost no difference. Point 2: the reading From 12 to 14 kPa the saturation only rises from about 97% to about 98%. Point 3: the advantage Blood leaves the lungs almost fully saturated even if the partial pressure in the alveoli falls, for example at altitude or during illness, so oxygen delivery stays reliable. The plateau makes loading in the lungs safe and stable “suggest” invites a sensible biological reason; the altitude point is a strong one

💡 Exam tips

⚠ Common mistakes

That completes Gas Exchange Systems. The whole topic is one idea told six ways: get a big, thin, moist surface, keep fresh supplies moving on both sides of it, and let diffusion do the rest – in an alveolus, in a leaf, and on the surface of a haemoglobin molecule.

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