IB Biology SL Topic 2 — Transport in Animals & Plants Paper 1 & 2 Core idea ~12 min read

Blood Vessels

Blood leaves your heart at high pressure and comes back at almost none. That one fact explains nearly every difference between an artery, a capillary and a vein. Learn the pressure story and you never have to memorise the list again.

📚 What you need to know

Start with the pressure, not the list

Your heart is a pump. When the ventricles squeeze, they fire a large volume of blood into the arteries in one hard push. From that moment on, the pressure only ever falls. Nothing downstream adds pressure back.

So think of the whole system as one long slide. The vessel at the top of the slide has to survive a hammering. The vessel at the bottom has almost nothing pushing the blood along, so it needs help to get the blood home. Everything else follows from that.

Blood pressure falls all the way round the body Same blood, same volume — but the push from the heart leaks away as the tubes branchArteries: high pressure, in pulses Veins: low pressure, steady flow 100 75 50 25 0 mean pressure / mmHg arterioles narrow the tube slow flow = time to swap valves and muscles help pushARTERY ARTERIOLE CAPILLARY VENULE VEIN VENA CAVAThe biggest drop happens across the arterioles, not the capillaries. That is why arterioles are the taps of the body: narrow them and that organ gets less blood.
Values here are typical mean pressures. You do not need the numbers for SL — you need the shape of the line.
If you can say “high pressure at the start, almost none at the end”, you can work out most vessel adaptations in the exam without having revised them.

The three main vessels side by side

Cross sections: look at the wall, then the lumen Drawn roughly to the same scale so you can compare them fairlythick muscle and elastic thin wall, big space inside red cells squeeze past one at a time lumen wide lumen ARTERY VEIN CAPILLARYthick wall, narrow lumen thin wall, wide lumen wall is one cell thickblood away from heart blood back to heart where swapping happensThe wall matches the pressure it must survive. The lumen matches the flow it must carry.
The vein is drawn with the same outside diameter as the artery on purpose — the difference is where the space is.

Arteries: built to take a beating

An artery wall has three layers. You do not need the Latin names at SL, but you do need what each one does.

🤔 Why the elastic tissue matters so much

Blood leaves the ventricle in a burst, not a stream. When that burst arrives, the elastic tissue lets the artery wall stretch outwards, so it soaks up the spike instead of splitting. This is systolic pressure — the peak.

Then the heart relaxes and no new blood is coming. The stretched wall recoils, squeezing inwards on the blood and pushing it onward. This is diastolic pressure — the lowest point, and it never falls to zero. So the artery does two jobs at once: it survives the peak and it keeps blood moving between beats.

Use the right verbs. Muscle contracts and relaxes. Elastic tissue stretches and recoils. Examiners take marks off for “the muscle recoils” because muscle cannot recoil — it is not elastic.

Arterioles are the control valves

Arterioles are small arteries, and their walls are mostly muscle. When that muscle contracts, the lumen gets narrower — this is vasoconstriction, and it raises resistance and pressure while cutting the flow to whatever lies downstream. When the muscle relaxes, the lumen widens — vasodilation — and more blood flows through.

This is how your body sends more blood to your legs when you run and less to your gut. Look back at the graph: the steepest fall is across the arterioles, and that is exactly why they are such useful taps.

Capillaries: the only vessels that actually deliver

Arteries and veins are just plumbing. Nothing gets delivered in them. The whole point of the circulatory system is the capillary bed, and every feature of a capillary is about making exchange fast.

FeatureWhy it speeds up exchange
Wall is a single layer of endothelial cellsShortest possible diffusion distance between blood and tissue, so diffusion is fast
Very narrow lumenRed blood cells travel single file and press against the wall, so the gap to cross is tiny
Blood flows slowly hereMore time for oxygen and glucose to diffuse out before the blood moves on
Branch into huge networks (capillary beds)Massive surface area, and no cell is far from a capillary
Gaps between cells (fenestrations) in some capillariesPlasma leaks out to form tissue fluid, which bathes the cells directly

Tissue fluid is worth a sentence of its own. Plasma squeezes out through those gaps carrying oxygen, glucose and other small molecules, and it surrounds the cells so they can take what they need. Large molecules such as plasma proteins are too big to fit through, so they stay in the blood.

Notice the pattern: short distance, big area, slow flow. That trio turns up again in the alveoli, in the gills of a fish, and in the root hairs of a plant. Any exchange surface anywhere uses the same three tricks.

Veins: getting blood home with almost no pressure

By the time blood leaves a capillary bed, the push from the heart is nearly gone. Veins therefore have a completely different problem to solve: not “how do I survive this pressure” but “how do I move blood that has stopped being pushed”.

🧩 How blood gets back up your leg

  1. Wide lumen — less friction against the wall, so more blood can move per second even though it is moving slowly.
  2. Thin, flexible wall — there is no high pressure to withstand, so a thick muscular layer would be wasted. Being floppy is useful here.
  3. Skeletal muscles squeeze — every time you walk, the muscles in your leg press on the soft veins running between them and shove the blood along.
  4. Valves catch the backflow — blood pushed the wrong way fills the pocket-shaped valves, which snap shut. The next muscle squeeze then moves it forwards again.

🧠 A one-second memory hook

Arteries carry blood away. Veins carry blood into the heart. Silly, but nobody who uses it gets them the wrong way round under exam pressure.

Careful with the pulmonary vessels. “Artery carries oxygenated blood” is wrong. The pulmonary artery carries deoxygenated blood to the lungs, and the pulmonary vein carries oxygenated blood back. The rule is about direction, never about oxygen.

Worked examples

WORKED EXAMPLE

Explain two ways the structure of an artery is related to its function. [4 marks]

Spot the command word: “explain” needs structure + reason, twice Two structures alone would only score 2 of the 4 marks. Point 1 The wall has a thick layer of elastic tissue, which stretches when blood is forced in at high pressure and then recoils to push the blood onwards, keeping pressure up between beats. Point 2 The lumen is narrow relative to the wall, which helps maintain the high blood pressure needed to reach the whole body. 4 marks: 2 structures, each with its function
WORKED EXAMPLE

Blood in the capillaries flows more slowly than in the arteries. Suggest an advantage of this. [2 marks]

What is a capillary actually for? Exchange. So the answer must be about exchange, not about protecting the vessel. Build the chain Slower flow means blood spends longer in contact with the capillary wall, so there is more time for oxygen and glucose to diffuse out into the tissue fluid and for carbon dioxide to diffuse in. More time in contact = more diffusion per unit of blood “Suggest” means you will not have been taught the exact wording — reason it out from what the vessel does.
WORKED EXAMPLE

A patient has damaged valves in the veins of their legs. Explain why their ankles swell. [3 marks]

Step 1: what do the valves normally do? They stop blood flowing backwards down the leg when the muscles are not squeezing. Step 2: what changes if they fail? Blood falls back and pools in the veins of the lower leg, so pressure builds up inside those vessels. Step 3: link to the swelling Higher pressure in the vessels → more fluid forced out into the tissues → fluid collects around the ankle Pooled blood raises pressure, so more tissue fluid forms than is drained away

💡 Exam tip

⚠ Common mix-up

Up next: Identifying Blood Vessels (Skills) — how to look at a real micrograph and decide, in about five seconds, whether you are staring at an artery or a vein.

Want this explained one-to-one?

Book a free session with an experienced IB Biology tutor and get your trickiest topics made simple.

Book a Free Session →