IB Biology SL Topic 4 — Genetics, Inheritance & Change Paper 1 & 2 Core idea ~12 min read

Thermoregulation

You can walk out of a warm house into a freezing street and your core temperature will barely move. Your skin temperature drops a lot — that is why you feel cold — but the temperature deep inside you, where the enzymes are, stays close to 37 °C. This page is about how the skin, the muscles and one small part of the brain manage that.

📘 What you need to know

Why 37 °C and not 20 °C

Human enzymes have evolved to work best at about 37 °C, and moving away from that in either direction causes trouble — but for two completely different reasons.

That asymmetry is why the graph below is not a symmetrical hill. On the left the line climbs steadily; on the right it falls off a cliff.

WHY BODY TEMPERATURE IS WORTH CONTROLLING enzyme activity rises slowly, then collapses quickly human core temperature, 37 °C optimum warmer means more collisions enzymes denature here0 10 20 30 40 50 60 temperature / °C rate of enzyme reactionA few degrees too cold is inconvenient. A few degrees too hot is permanent. That is why overheating is far more dangerous than cooling, and why fevers are monitored.
The steep right-hand side is the whole reason the body sweats so hard. Cooling can be undone later; denaturing cannot.

Detecting the change

The body checks temperature in two places at once, and this is worth getting right because questions often ask for both:

Both send information to the hypothalamus, which acts as the control centre. It compares what it is receiving with the set point and sends instructions out to the effectors.

If a question asks “where is body temperature monitored?”, answering only “the skin” or only “the brain” usually costs a mark. Give both, and say which one measures external and which measures core.

What the skin actually does

Most of the response happens in the skin, because that is where heat is exchanged with the environment. Three things change in opposite directions depending on whether you are too hot or too cold.

THE SAME SKIN, TWO SETTINGS every response has an exact opposite on the other side TOO HOT: LOSE HEAT TOO COLD: KEEP HEAT vessels widen (vasodilation) sweat evaporates and cools hairs lie flat, no trapped air more heat lost by radiation vessels narrow (vasoconstriction) no sweat, so no evaporation hairs stand up and trap air shivering makes extra heatLearn the pairs, not the lists. Every hot response has a cold twin. Blood is not sent to the surface or away from it — the vessels leading to it change width.
The red band in each half is the same arteriole, drawn wide on the left and narrow on the right. Nothing has moved position; only the diameter has changed.

Responses to a rise in temperature

Responses to a fall in temperature

A detail examiners love. Vasodilation and vasoconstriction happen in the arterioles, not the capillaries. Capillary walls are one cell thick and have no muscle, so they cannot change diameter at all.

Making more heat from the inside

Changing how much heat you lose only gets you so far. The body can also change how much heat it makes.

Notice the timescales. Vasoconstriction takes seconds, shivering takes seconds to minutes, thyroxin takes hours to days. If a question mentions someone moving to a cold country for a year, thyroxin is the answer it wants.

Putting it together as a feedback loop

THERMOREGULATION AS NEGATIVE FEEDBACK one control centre, two sets of effectors TEMPERATURE RISES hot day, or exerciseHYPOTHALAMUS DETECTS IT skin receptors send information tooSWEAT, VASODILATION hairs lie flat, more heat lostCORE TEMPERATURE NORMAL about 37 °CTEMPERATURE FALLS cold air, wind or waterHYPOTHALAMUS DETECTS IT skin receptors send information tooSHIVER, VESSELS NARROW hairs stand up, less heat lost The effectors always push temperature the opposite way to the change. Control centre: hypothalamus. Effectors: skin arterioles, sweat glands and muscle.
Compare this with the blood glucose loop from the previous page. Same shape, different labels — that is the point of learning the pattern first.

Physiological and behavioural control

Endotherms are animals that keep a constant internal body temperature — mammals and birds. They do it in two ways, and the second one is easy to forget:

Behaviour is cheap. Physiology costs energy. An animal will almost always try the behavioural option first, which is why a dog moves onto cool tiles before it starts panting hard.

Worked examples

WORKED EXAMPLE 1

Explain how the body returns core temperature to normal after it rises during exercise. [5]

Step 1: detection Thermoreceptors in the skin and in the hypothalamus detect the rise in temperature. Step 2: coordination The hypothalamus acts as the control centre and sends impulses to the effectors. Step 3: effector one — vasodilation Muscles in the arteriole walls relax, so more blood flows near the skin surface and more heat is lost by radiation. Step 4: effector two — sweating Sweat glands secrete sweat; evaporation uses heat energy from the body, cooling the skin. Hair erector muscles also relax so hairs lie flat. Step 5: close the loop Core temperature falls back towards 37 °C a 5-mark answer needs detection, control centre, at least two effectors and the return to normal
WORKED EXAMPLE 2

Explain why newborn babies rely on brown adipose tissue to stay warm. [3]

Step 1: what they cannot do Newborn babies cannot shiver effectively, so they cannot use muscle contraction to make heat. Step 2: what brown adipose tissue does instead In brown adipose tissue, respiration is uncoupled from ATP production, so lipids are metabolised and the energy is released as heat rather than being stored in ATP. Step 3: name it Non-shivering thermogenesis the word “uncoupled” is doing the real work here — use it
WORKED EXAMPLE 3

A student writes: “In the cold, the capillaries in the skin move deeper into the body so less heat is lost.” Identify two errors in this statement and correct them. [3]

Error 1: capillaries do not change diameter Capillary walls are one cell thick with no muscle. It is the arterioles that constrict, because their walls contain muscle. Error 2: nothing moves Blood vessels do not change position. Blood is simply diverted through deeper shunt vessels while the surface arterioles are narrowed. The corrected version Arterioles near the skin constrict, so less blood flows through surface capillaries and less heat is lost by radiation this exact wording appears in mark schemes — it is worth memorising as a sentence

💡 Exam tip

⚠ Common mix-up

That completes the homeostasis chain: the loop itself, then glucose, then temperature. If you can draw all three feedback diagrams from a blank page, you are ready for anything this sub-topic can throw at you.

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