IB Biology HL Gas Exchange Systems Paper 1 & 2 ~11 min read

Adaptations of Mammalian Lungs

A lung is not a bag of air. It is a tree of tubes that splits again and again until it ends in millions of tiny damp bubbles, each one wrapped in blood vessels. Everything about its design comes back to the same four rules: big area, short distance, moist, permeable.

📚 What you need to know

The road in: from your nose to an alveolus

Air enters through the nose and mouth, where it is warmed and filtered, then goes down the trachea. The trachea has to stay open all the time – a collapsed windpipe is fatal – but it also has to bend when you turn your head. It solves both problems with C-shaped rings of cartilage: rigid enough to hold the tube open, separate enough to let it flex.

The trachea splits into two bronchi, one to each lung. Their walls also contain cartilage plus a layer of smooth muscle that can contract or relax to change the diameter of the airway. Both the trachea and the bronchi are lined with ciliated epithelium. Goblet cells make mucus that traps dust and bacteria, and the cilia beat the sticky mucus upwards, away from the lungs.

Each bronchus branches into narrow bronchioles. These have smooth muscle but no cartilage, so they can dilate when you need more air and constrict when something irritating, such as an allergen, is in the air. At the end of the smallest bronchioles sit groups of alveoli, and that is where the actual gas exchange happens.

The airway splits again and again TRACHEA cartilage rings hold it open cilia sweep mucus back up BRONCHUS one to each lung BRONCHIOLE smooth muscle, no cartilageALVEOLI Each lung holds hundreds of millions of alveoli Every branch makes the tubes narrower and more numerous
Only the last stop does any gas exchange. Everything above the alveoli is plumbing that delivers, cleans and warms the air.
A neat way to keep the order: trachea, bronchi, bronchioles, alveoli – the words get longer as the tubes get smaller. Cartilage disappears at the bronchioles, and cilia disappear before the alveoli, because you do not want mucus sitting on your exchange surface.

How the alveoli are adapted

An alveolus is basically a moist bubble one cell thick with blood on the other side. Small, and there are a lot of them. Here is the point students often miss: lots of small bubbles have far more surface area than one big bag of the same volume. That is the whole reason for splitting the lung up.

One bronchiole, a bunch of alveoli, and a net of capillaries air from the bronchiole blood in, low in O₂ blood out, high in O₂Why this design works ✓ many small sacs, huge area ✓ wall only one cell thick ✓ capillaries touch every sac ✓ moist lining dissolves gases ✓ surfactant stops collapse ✓ branching spreads them evenlyBlood arrives from the pulmonary artery and leaves in the pulmonary vein
Blue is deoxygenated blood arriving, red is oxygenated blood leaving. The blood only has to cross two thin cell layers to reach the air.
AdaptationWhat it doesFactor improved
Many small alveoliSplits the same volume into a vast number of surfacesLarge surface area
Branched bronchiole networkSpreads alveoli evenly through the whole lung, so no region is wastedLarge surface area
Extensive capillary bedBlood is in contact with almost every alveolusSurface area and steep gradient
Continuous blood flowDeoxygenated blood in from the pulmonary artery, oxygenated blood out in the pulmonary veinMaintains the concentration gradient
Alveolar wall one cell thickFlattened epithelial cells, so gases cross in a fraction of a secondShort diffusion distance
Moist liningOxygen dissolves before it diffuses into the bloodMakes diffusion possible
SurfactantLowers surface tension so alveoli do not collapse or stick shutKeeps the surface area available

Surfactant: the part that gets skipped

A wet bubble wants to close. Water molecules pull on each other, and in a tiny damp sac that pull, called surface tension, is strong enough to squeeze the alveolus shut when you breathe out. If that happened, you would have to force each alveolus open again from scratch on every breath.

Cells in the alveolar wall release surfactant, a substance that lowers surface tension. The alveoli stay open, they do not stick together, and breathing in stays easy. Premature babies sometimes have not made enough surfactant yet, which is why their breathing is so hard work.

Say the right wall. The alveolar wall is a single layer of epithelial cells in your lungs. A cell wall is the rigid box around a plant cell. Examiners see these swapped every year, and it costs the mark.

Worked examples

WE 1

The path of a molecule of oxygen

Outline the path taken by a molecule of oxygen from the air outside the body until it reaches the blood. (4 marks)

Step 1: into the body Through the nose or mouth, where the air is warmed and filtered, then down the trachea. Step 2: the split Into one of the two bronchi, one leading to each lung. Step 3: the small tubes Along the branching bronchioles to a group of alveoli at the end. Step 4: the crossing It dissolves in the moist lining, then diffuses across the alveolar wall and the capillary wall into the blood. Trachea → bronchus → bronchiole → alveolus → capillary the last mark is usually for naming the two thin walls the gas crosses, not just for the list of tubes
WE 2

Explaining the adaptations

Explain three ways in which mammalian lungs are adapted for efficient gas exchange. (3 marks)

Point 1: area There are many small alveoli, giving a very large surface area, so many molecules can diffuse at the same time. Point 2: distance The alveolar wall is one flattened cell thick, so the diffusion distance is short and diffusion is fast. Point 3: gradient A dense capillary network with continuously flowing blood removes oxygen as it arrives, keeping the concentration gradient steep. Big area, short distance, steep gradient every adaptation mark needs the “so that” part; the feature on its own is only half the answer
WE 3

The job of surfactant

Explain the importance of surfactant in the alveoli. (2 marks)

Point 1: what it does Surfactant is secreted by cells of the alveolar wall and lowers the surface tension of the moist lining. Point 2: why that matters Without it the alveoli would collapse and stick together as air leaves during expiration, so surface area for gas exchange would be lost and breathing in would take much more effort. Less surface tension, so the alveoli stay open link it back to surface area and you turn a description into an explanation

💡 Exam tips

⚠ Common mistakes

Up next: How Ventilation Works – the muscles and pressure changes that pull fresh air into all those alveoli, and let it out again.

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