IB Biology HL Homeostasis Paper 1 & 2 ~14 min read

Thermoregulation

Your core sits at about 37 °C whether you are in a heatwave or a snowstorm. That is not because your body is well insulated — it is because a set of effectors is constantly adjusting how much heat you make and how much you let go of.

📚 What you need to know

Why 37 °C

Human enzymes have evolved to work fastest at around 37 °C, and both directions away from that are costly.

The asymmetry is worth noticing. Cold slows you down and is usually reversible; heat destroys the enzyme and is not. That is why a fever of a few degrees is dangerous while a cold room is merely unpleasant.

Detecting the change

Having both matters. Skin receptors give early warning — you start shivering when you step outside, before your core has actually cooled at all.

Responses to heat and cold

The same patch of skin, two situations TOO HOT a lot of heat lost by radiationarterioles dilate, so more blood flows near the surface sweat evaporates, taking heat energy from the body hair erector muscles relax, so hairs lie flat TOO COLD trapped air is an excellent insulatorarterioles constrict, so less blood flows near the surface no sweat is produced, and shivering generates heat hair erector muscles contract, so hairs stand on endThe blood vessel that changes is the arteriole, not the capillary Capillaries have no muscle in their walls, so they cannot dilate or constrict
Humans have very little body hair, so the hair response does almost nothing for us. It is a leftover from ancestors with much thicker coats — which is why goosebumps feel useless. They are.

Responses to an increase in temperature

Responses to a decrease in temperature

Thermoregulation as negative feedback TOO HOT core rises above 37 degrees CHANGE IS DETECTED by skin and hypothalamus increased sweating vasodilation hairs lie flat against skin CORE TEMPERATURE BACK TO ABOUT 37 DEGREES the receptors stop detecting a change, so the effectors switch off hairs stand on end shivering vasoconstriction CHANGE IS DETECTED by skin and hypothalamus TOO COLD core falls below 37 degrees Each response opposes the change that triggered it — that is what makes it negative feedback
You can answer almost any thermoregulation question by reading one half of this diagram out loud, swapping in the right effectors.

The hormonal route: thyroxin

The responses above are fast and nervous. There is also a slower hormonal route that changes how much heat you generate in the first place.

Raising heat production with thyroxin HYPOTHALAMUS releases TRH PITUITARY releases TSH THYROID GLAND releases thyroxin MORE HEAT metabolic rate increases Most metabolic reactions release heat, so speeding metabolism up warms the body Lowering thyroxin does the reverse, reducing heat generation
Three glands in a row, each releasing a hormone that acts on the next. Altering the thyroxin level alters how much heat your cells generate, which is a slower but longer-lasting adjustment than shivering.

Behaviour counts too

Endotherms do not rely on physiology alone. Behavioural mechanisms — moving into shade, sheltering in a burrow, sunbathing, curling up, putting a jumper on — change how much heat is gained or lost without the body spending any energy. They are often the first response, and the cheapest.

Where the heat actually goes. Heat always transfers from a hotter region to a cooler one. When your skin is warmer than the air, you lose heat to it. Vasodilation works by making your skin warmer, increasing the difference. Vasoconstriction works by making it cooler, reducing the difference.

Worked examples

WE 1

Explaining a response to cold

Explain how the body reduces heat loss when a person steps outside on a cold day. (4 marks)

Step 1: detection The fall in temperature is detected by peripheral thermoreceptors in the skin, which send impulses to the hypothalamus. Step 2: vasoconstriction Muscles in the walls of the arterioles contract, so less blood flows through the surface capillaries and blood is diverted through shunt vessels. Less heat is lost by radiation. Step 3: hairs Hair erector muscles contract so hairs stand on end, trapping an insulating layer of air. Step 4: state the outcome Less heat is lost to the environment, so core temperature is maintained at about 37 °C. Reduce loss first, then generate heat if that is not enough the question said reduce heat loss, so shivering is not the best answer here — shivering generates heat.
WE 2

Interpreting skin temperature data

A student’s skin surface temperature is measured before and after ten minutes in a warm room. It rises from 32.1 °C to 34.8 °C, while their core temperature stays at 37.0 °C. Explain these results. (3 marks)

Point 1: what caused the skin change Vasodilation of the arterioles has increased blood flow through the skin capillaries, so warm blood from the core is brought closer to the surface, raising skin temperature by 2.7 °C. Point 2: link to heat loss A warmer skin surface increases the temperature difference with the surroundings, so more heat is lost by radiation. Point 3: explain the constant core Because this extra heat is lost, the core temperature is held at its set point, showing negative feedback is working. Skin temperature is allowed to change so that core temperature does not have to a common error is saying the core temperature rose. Read the numbers — it did not.
WE 3

Brown adipose tissue in newborns

Newborn babies have a much higher proportion of brown adipose tissue than adults. Suggest why. (3 marks)

Point 1: what they cannot do Newborns cannot shiver, so they cannot use muscle contraction to generate heat. Point 2: what brown fat does instead In brown adipose tissue, respiration is uncoupled from ATP production, so all of the energy released from metabolising lipids is given off as heat. Point 3: why they need it more Babies have a large surface area to volume ratio, so they lose heat quickly and need a way to generate it. No shivering means non-shivering thermogenesis has to do the job “suggest” means you are not expected to have learned the answer — you are expected to apply what you do know.

💡 Exam tips

⚠ Common mistakes

Up next: Osmoregulation & Excretion. We move to the kidney, which has two separate jobs: getting rid of toxic nitrogenous waste, and controlling how concentrated your blood is. Getting those two jobs straight in your head early makes the whole topic easier.

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