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

Blood Glucose Regulation

Eat a bowl of pasta and a large amount of glucose floods into your blood over about half an hour. An hour later the level is almost back where it started. Nobody measured anything and nobody made a decision — two hormones from the pancreas did it automatically. Here is exactly how, and what goes wrong when the system breaks.

📘 What you need to know

Why glucose has to be controlled

There are two reasons, and a good answer gives both.

So the body is not just topping glucose up. It is squeezing it between an upper and a lower limit, which is exactly the negative feedback pattern from the previous page.

The pancreas: two cell types, two hormones

The pancreas does two completely separate jobs. Most of it is exocrine tissue that makes digestive enzymes and pours them into the gut. Scattered through it are small patches of endocrine tissue called the islets of Langerhans, which release hormones straight into the blood. Only the islets are involved in glucose control.

Each islet contains two cell types you must be able to name:

Notice something neat here: these cells are both the receptor and the effector gland. They detect the change themselves and they secrete the hormone themselves, so the loop is short and fast. That is why glucose control does not need the brain in the way temperature control does.

Insulin: bringing glucose down

After a meal containing carbohydrate, glucose is absorbed from the small intestine and blood glucose rises. The β cells detect this and secrete insulin, which travels in the blood to target cells all over the body. The main targets are liver and muscle cells.

Insulin has several effects, and they all pull in the same direction — glucose out of the blood:

Insulin, in one line glucose too high → β cells → insulin → cells take glucose in and liver stores glycogen → glucose falls

Glucagon: bringing glucose back up

Glucose falls after a period of fasting, or during exercise when muscles are using it quickly. The α cells detect the fall and secrete glucagon, which also travels in the blood to the liver.

Three words that look alike. Glycogenesis = making glycogen (storing). Glycogenolysis = splitting glycogen (releasing). Gluconeogenesis = making glucose from something that was not a carbohydrate. Read the middle of the word, not the start.
CONTROL OF BLOOD GLUCOSE two hormones from the pancreas, pulling in opposite directions GLUCOSE RISES after a meal with carbohydrateBETA CELLS RELEASE INSULIN beta cells sit in the pancreasGLUCOSE IS TAKEN UP liver stores it as glycogenBLOOD GLUCOSE NORMAL about 5 mmol dm⁻³GLUCOSE FALLS fasting, or during exerciseALPHA CELLS RELEASE GLUCAGON alpha cells sit in the pancreasGLYCOGEN IS BROKEN DOWN glucose is released into blood Each arm cancels out the change that started it — classic negative feedback. Insulin is the only hormone that lowers blood glucose; glucagon puts it back up.
Both arms start and end in the same place. If you can redraw this from memory with the correct cell type on each side, you can answer almost any glucose question.

What the graph looks like

A glucose tolerance test is a favourite data question. A person drinks a measured glucose solution and their blood glucose is measured for the next few hours. In someone without diabetes the level rises, peaks, and is back to normal within about two hours. In someone with untreated diabetes it starts higher, climbs higher, and is still high hours later.

BLOOD GLUCOSE AFTER A GLUCOSE DRINK the shape of the curve is what a data question is really testing no diabetes untreated diabetes 0 5 10 15 blood glucose / mmol dm⁻³0 1 2 3 4 time after the drink / hoursinsulin brings it back down still high hours later normal rangeLook at three things: the starting value, the height of the peak, and the recovery time. A curve that never comes back into the green band is the signature of failed insulin control.
Both curves fall after the peak, so “it goes down” is not enough. What separates them is how far it falls and how long it takes.

Diabetes: when the control loop fails

Diabetes is a condition where the homeostatic control of blood glucose has failed or got worse. Insulin no longer does its job properly, so glucose stays high in the blood. That produces a set of symptoms you should be able to explain, not just list:

Type 1 and type 2 compared

 Type 1Type 2
CauseAn autoimmune response destroys the β cells of the islets of Langerhans, so insulin production stopsβ cells still make insulin, but the receptors on target cells are fewer or no longer respond — insulin resistance
When it usually startsUsually begins in childhoodMore common than type 1, and usually develops in older adults
Insulin level in the bloodVery low or noneNormal or high at first, as the pancreas secretes more and more to compensate
Main risk factorNot linked to diet or body massObesity and a diet high in rapidly digested carbohydrate
TreatmentRegular blood glucose testing, insulin injections, and a modified dietMedication, a low carbohydrate diet, and regular exercise to lower blood glucose

The key difference to hold on to: in type 1 the hormone is missing; in type 2 the hormone is there but the message is not received. That is why injecting insulin fixes type 1 but is not the first treatment for type 2 — adding more of a signal that cells are ignoring does not help much.

Glucagon and glycogen are the single most mixed-up pair of words in this topic. Glucagon ends in “-on”, like hormone. Glycogen is the storage polysaccharide. Write them slowly in the exam; a slip here can lose a mark even when your biology is right.

Worked examples

WORKED EXAMPLE 1

Describe how blood glucose concentration is returned to normal after a meal containing carbohydrate. [4]

Step 1: the change and the detection Glucose is absorbed from the intestine, so blood glucose rises; the β cells of the islets of Langerhans detect this. Step 2: the hormone The β cells secrete insulin into the blood; it travels to target cells, mainly liver and muscle. Step 3: what insulin does Glucose channels open so cells take glucose up by facilitated diffusion, and the liver converts glucose to glycogen (glycogenesis). Respiration also increases. Step 4: close the loop Blood glucose falls back towards the set point four clear stages: rise, detection, hormone, effect — then always finish by saying the level returns to normal
WORKED EXAMPLE 2

A runner has not eaten for six hours and then runs for 40 minutes. Explain how their blood glucose is kept from falling too low. [4]

Step 1: the change Respiring muscle uses glucose quickly, so blood glucose starts to fall. Step 2: detection and hormone The α cells of the islets of Langerhans detect the fall and secrete glucagon. Step 3: what glucagon does in the liver It activates enzymes that hydrolyse glycogen into glucose (glycogenolysis), and it causes amino acids to be converted into glucose (gluconeogenesis). Glucose is released into the blood. Step 4: close the loop Blood glucose rises back towards the set point the glycogen store is the reason a person can go hours without eating and still think clearly
WORKED EXAMPLE 3

Two people take the same glucose drink. Person A’s blood glucose returns to 5 mmol dm−3 after 2 hours. Person B’s is still 11 mmol dm−3 after 4 hours. Suggest an explanation for the difference. [3]

Step 1: read the data, do not guess Person B starts higher, peaks higher and does not recover within four hours. Step 2: link the pattern to the mechanism Glucose is not being taken out of the blood, so either not enough insulin is secreted or target cells are not responding to it. Step 3: name the condition, carefully Person B is likely to have diabetes say “suggests” and give both possible causes — the graph alone cannot tell you whether it is type 1 or type 2

💡 Exam tip

⚠ Common mix-up

Up next: Thermoregulation — the same negative feedback shape again, but this time with the hypothalamus in charge and the skin doing most of the work.

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