IB Biology HL Transport in Animals & Plants Paper 1 & 2 ~12 min read

The Mammalian Heart

Four chambers, four valves, four big vessels. Learn which is which and the rest of this topic – the cardiac cycle, the pressure graph, heart disease – becomes much easier, because every one of those depends on knowing where the blood is at any moment.

📚 What you need to know

The plan of the heart

The heart as a plan pulmonary artery aorta vena cava right atrium right ventricle tricuspid valve pulmonary vein left atrium left ventricle bicuspid valve septum The thick line around the left ventricle is its extra muscle
Remember the diagram is drawn as if the heart were inside a person facing you – so the right side of the heart appears on the left of the page.

Why the walls differ

ChamberWallWhy
AtriaThin layer of muscleThey only push blood a few centimetres, down into the ventricles below
Right ventricleThick, but thinner than the leftPumps blood only as far as the lungs, and at a lower pressure to protect the alveolar capillaries
Left ventricleThickest of allGenerates enough pressure to push blood all the way around the body and back
Every question about wall thickness has the same answer shape: thicker muscle → more force → higher pressure → blood pushed further. Write that chain and you will pick up all the marks whichever chamber they ask about.

The valves

Valves are flaps of tissue that can only bend one way. They are not muscles and they do not decide anything – they are pushed open or slammed shut by pressure differences.

ValveWhere it isWhat it prevents
Tricuspid (atrioventricular)Between right atrium and right ventricleBackflow from the right ventricle into the right atrium
Bicuspid (atrioventricular)Between left atrium and left ventricleBackflow from the left ventricle into the left atrium
Pulmonary (semilunar)Between right ventricle and pulmonary arteryBackflow from the pulmonary artery into the right ventricle
Aortic (semilunar)Between left ventricle and aortaBackflow from the aorta into the left ventricle

The atrioventricular valves are held in place by tough cords, sometimes called valve tendons. Ventricular pressure gets very high, and without the cords the valve flaps would be blown inside out into the atria.

Following the blood

One full circuit, in order vena cava right atrium right ventricle pulmonary artery LUNGSBODY aorta left ventricle left atrium pulmonary vein Blue is deoxygenated, red is oxygenated; the swap happens in the lungs
Two vessels bring blood in – vena cava and pulmonary vein. Two take it away – pulmonary artery and aorta.

The heart’s own blood supply

The heart is a muscle, so it needs its own delivery of oxygen and glucose for aerobic respiration. It cannot use the blood inside its chambers – that blood is just passing through. Instead, coronary arteries branch off the aorta and run across the surface of the heart, supplying the cardiac muscle itself.

Myogenic muscle. Cardiac muscle contracts without any nerve signal from the brain, because the sinoatrial node in the right atrium wall generates its own rhythm. That is why a heart keeps beating in a transplant box, and it is the starting point of the next page.

Worked examples

WE 1

Thickness of the left ventricle

Explain why the wall of the left ventricle is thicker than the wall of the left atrium. (3 marks)

Point 1: what the atrium does The left atrium only pushes blood a short distance down into the ventricle, so little force is needed. Point 2: what the ventricle does The left ventricle pumps blood into the aorta and all the way around the body. Point 3: the link More muscle allows a stronger contraction, generating the high pressure needed to push blood that far and overcome the resistance of the vessels. More muscle, more force, higher pressure, further travel this chain works for any wall-thickness question – learn it once and reuse it
WE 2

How valves work

Explain how the atrioventricular valves prevent the backflow of blood. (3 marks)

Point 1: opening When atrial pressure is higher than ventricular pressure, the valve is pushed open and blood flows into the ventricle. Point 2: closing When the ventricle contracts, ventricular pressure rises above atrial pressure and the valve is forced shut. Point 3: the cords Cords attached to the valve flaps stop them turning inside out under the high ventricular pressure, so no blood returns to the atrium. Pressure opens them and pressure closes them never say a valve “decides” or “chooses” – it only responds to pressure
WE 3

The route through the heart

Describe the path taken by a red blood cell from the vena cava to the aorta. (4 marks)

Step 1: into the right side From the vena cava into the right atrium, then through the tricuspid valve into the right ventricle. Step 2: to the lungs Out through the pulmonary valve into the pulmonary artery, which carries it to the lungs. Step 3: back to the heart After gas exchange it returns in the pulmonary vein to the left atrium, then through the bicuspid valve into the left ventricle. Step 4: out to the body The left ventricle contracts, the aortic valve opens and the cell leaves in the aorta. Right side → lungs → left side → body naming the valves as you pass through them is an easy way to pick up the extra mark

💡 Exam tips

⚠ Common mistakes

Up next: The Cardiac Cycle – the same heart in motion, and the pressure graph that shows exactly when each valve opens and closes.

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