14.4 Homeostasis
- Syllabus
- 0610–2026–2027
- Topic
- 14.4
- Level
- —
Homeostasis is the maintenance of a constant internal environment.
Internal conditions are kept within narrow limits so cells and enzymes can function effectively even when external conditions change.
Homeostasis keeps conditions within limits; it does not mean that every internal value is perfectly fixed.
Insulin decreases blood glucose concentration.
It is released when blood glucose concentration is too high and helps return the concentration towards its normal level.
Insulin lowers blood glucose concentration; glucagon raises it.
A set point is the normal level around which an internal condition is regulated. Negative feedback reverses a deviation from that set point.
| Stage | Job |
|---|---|
| 1 | a condition moves above or below its set point |
| 2 | receptors detect the change |
| 3 | a control system activates effectors |
| 4 | the response opposes the original change |
| 5 | the condition returns towards the set point |
Negative feedback opposes a change; it does not amplify the deviation from the set point.
The pancreas detects blood-glucose changes and uses insulin or glucagon to control the liver by negative feedback.
| Blood glucose | Pancreatic hormone | Liver response | Result |
|---|---|---|---|
| too high | more insulin | takes up glucose and converts glucose to glycogen | blood glucose falls |
| too low | more glucagon | converts glycogen to glucose and releases glucose | blood glucose rises |
The pancreas secretes the hormones; the liver stores or releases carbohydrate in response. Insulin and glucagon have opposite effects.
Type 1 diabetes is treated by replacing missing insulin and actively managing blood glucose concentration.
| Treatment action | Purpose |
|---|---|
| insulin injections or an insulin pump | supplies insulin |
| regular blood-glucose monitoring | guides insulin dose and detects unsafe levels |
| controlled carbohydrate intake and regular meals | limits large glucose changes |
| appropriate exercise | supports glucose control |
Insulin controls Type 1 diabetes but does not cure the destroyed insulin-producing cells.
Identify skin structures by both their shape and their connections.
| Structure | Identification cue |
|---|---|
| hair | shaft projecting through skin surface |
| hair erector muscle | sloping muscle attached to a hair follicle |
| sweat gland | coiled gland with a duct to the surface |
| receptor | sensory ending in the skin |
| sensory neurone | nerve fibre leading from a receptor |
| blood vessels | tubes and capillary networks in the skin |
| fatty tissue | layer of large fat cells beneath the skin |
A sweat gland is a coiled secretory structure; a receptor detects change, while its sensory neurone carries impulses.
The brain coordinates responses that balance heat loss and heat production around normal body temperature.
| Condition | Response | Effect |
|---|---|---|
| too hot | sweating | evaporation removes heat |
| too cold | shivering | muscle contraction releases heat |
| cold surroundings | hairs raised and fatty tissue insulates | trapped air and fat reduce heat loss |
Temperature receptors provide information to the brain, which coordinates the appropriate effectors.
Sweating cools only when sweat evaporates; shivering generates heat through repeated muscle contractions.
Arterioles supplying skin-surface capillaries change diameter to alter heat transfer from the blood.
| Condition | Arterioles | Blood near skin surface | Heat loss |
|---|---|---|---|
| too hot | vasodilate | more | increases |
| too cold | vasoconstrict | less | decreases |
Vasodilation and vasoconstriction describe changes in arteriole diameter, not capillaries moving closer to or farther from the skin.