- Blood glucose is the main controller of insulin secretion from pancreatic beta cells (Fig. 79.7).
- Beta cells contain many glucose transporters, so glucose entry into the cells rises as blood glucose rises.
- Inside the beta cell: Glucose → glucose-6-phosphate by glucokinase.
- Glucokinase is the main rate-limiting step in beta-cell glucose metabolism.
- Therefore, glucokinase acts as an important glucose sensor, helping match insulin secretion to blood glucose level.
- Glucose-6-phosphate is metabolized to produce ATP.
- Increased ATP closes ATP-sensitive K⁺ channels.
- Closing K⁺ channels causes beta-cell membrane depolarization.
- Depolarization opens voltage-gated Ca²⁺ channels.
- Ca²⁺ then enters the beta cell.
- Increased intracellular Ca²⁺ causes insulin-containing vesicles to fuse with the cell membrane.
- Insulin is then released by exocytosis.
- The basic sequence is: ↑ Blood glucose → ↑ glucose entry → glucokinase → ↑ ATP → K⁺ channels close → depolarization → Ca²⁺ channels open → ↑ Ca²⁺ entry → insulin exocytosis
- Certain amino acids can also increase ATP inside beta cells and stimulate insulin secretion.
- Glucagon, GLP-1, GIP, and acetylcholine increase intracellular Ca²⁺ through other pathways and enhance glucose-stimulated insulin secretion.
- These substances have little effect on insulin secretion when glucose is absent.
- Somatostatin and norepinephrine acting through α-adrenergic receptors inhibit insulin exocytosis.
- Sulfonylurea drugs stimulate insulin secretion by blocking ATP-sensitive K⁺ channels.
- This causes membrane depolarization and promotes insulin release.
- Therefore, sulfonylureas can stimulate insulin secretion in patients with type 2 diabetes.
- Factors that increase or decrease insulin secretion are summarized in Table 79.1.
- Excess cortisol can cause insulin resistance.
- Insulin resistance then produces a compensatory increase in insulin secretion.
- If cortisol excess is severe and prolonged, type 2 diabetes mellitus may develop.
- Excess growth hormone can produce a similar effect.
- Although normal growth hormone and insulin work together for growth, excessive growth hormone in acromegaly may cause:
- Insulin resistance
- Compensatory increased insulin secretion
- Eventually type 2 diabetes mellitus

KEY CONCEPT
- Glucokinase acts as the beta-cell glucose sensor.
- ↑ Glucose → ↑ ATP → K⁺ channel closure → depolarization → Ca²⁺ entry → insulin release.
- GLP-1, GIP, glucagon, and acetylcholine enhance glucose-stimulated insulin secretion.
- Somatostatin and norepinephrine inhibit insulin secretion.
- Sulfonylureas close ATP-sensitive K⁺ channels → ↑ insulin secretion.
- Excess cortisol or growth hormone → insulin resistance → compensatory ↑ insulin → possible type 2 diabetes.
Conceptual Examples
- After blood glucose rises:
↑ Glucose → ↑ ATP → K⁺ channels close → Ca²⁺ enters → insulin is released. - Sulfonylurea:
Blocks ATP-sensitive K⁺ channel → depolarization → Ca²⁺ entry → ↑ insulin secretion. - GLP-1:
Glucose is present + GLP-1 → stronger intracellular Ca²⁺ effect → more insulin secretion. - Excess cortisol:
↑ Cortisol → insulin resistance → body compensates with ↑ insulin secretion → prolonged severe excess may lead to type 2 diabetes.

Figure 79.7 — Glucose-Stimulated Insulin Secretion
Easiest Concept
Think of the pancreatic β-cell as a glucose sensor:
↑ Blood glucose → β-cell detects it → releases insulin.
Follow the diagram from left → right
- ↑ Glucose outside the cell → more glucose enters the β-cell through GLUT-2.
- Inside the cell, glucokinase converts glucose → glucose-6-phosphate.
- Glucose-6-phosphate is oxidized/burned for energy.
- This produces ↑ ATP.
- Increased ATP closes the ATP-sensitive K⁺ channel.
- Therefore, K⁺ cannot easily leave the cell.
- The cell membrane becomes more positive → depolarization.
- Depolarization opens voltage-gated Ca²⁺ channels.
- Ca²⁺ rushes into the β-cell.
- ↑ intracellular Ca²⁺ makes the insulin-containing vesicles move to and fuse with the membrane.
- Insulin is released outside the cell → ↑ blood insulin.
What do the symbols/arrows mean?
- Yellow channel at top left = GLUT-2 glucose transporter.
- Blue channel at bottom left = ATP-sensitive K⁺ channel, now closed.
- Green channel at bottom right = Ca²⁺ channel, now open.
- Purple dots = insulin molecules.
- Pink circles containing purple dots = insulin storage vesicles/granules.
- Black arrows = direction of the sequence.
- Dashed K⁺ arrow = reduced K⁺ movement causes depolarization.
🔑 KEY CONCEPT
↑ Glucose → GLUT-2 → glucokinase → ↑ ATP → K⁺ channel closes → depolarization → Ca²⁺ channel opens → ↑ Ca²⁺ → insulin released
One-line memory
“Glucose raises ATP → closes K⁺ → opens Ca²⁺ → releases insulin.”
CONTROL OF INSULIN SECRETION
- Insulin secretion is controlled mainly by blood glucose, but amino acids and other factors also influence it (Table 79.1).
Increased Blood Glucose Stimulates Insulin Secretion
- If blood glucose suddenly rises to 2–3 times normal and stays high, insulin secretion increases in two phases (Fig. 79.8).
- First phase:
- Plasma insulin rises almost 10-fold within 3–5 minutes.
- This rapid rise occurs because beta cells release preformed insulin already stored in the islets of Langerhans.
- This high secretion is brief.
- Within another 5–10 minutes, insulin falls about halfway back toward normal.
- Second phase:
- Begins at about 15 minutes.
- Insulin secretion rises again.
- It reaches a new plateau within about 2–3 hours.
- This second phase may be even greater than the first.
- It results from:
- Further release of preformed insulin
- Synthesis and release of new insulin
KEY CONCEPT
- ↑ Blood glucose → biphasic insulin secretion.
- First phase = rapid release of stored insulin.
- Second phase = more stored insulin + newly synthesized insulin.
- Timing:
- 3–5 min → first peak
- ~15 min → second rise begins
- 2–3 h → new plateau
Conceptual Examples
- Immediately after sudden hyperglycemia:
Stored insulin is rapidly released → first insulin peak. - If glucose remains high:
Beta cells continue releasing insulin and make new insulin → second, sustained phase. - Easy sequence:
High glucose → stored insulin first → new insulin later.

Figure 79.8 — Biphasic Insulin Response After Sudden Rise in Blood Glucose
Main idea
When blood glucose suddenly rises 2–3 times normal, pancreatic β-cells release insulin in 2 phases:
1st phase = fast, short burst
2nd phase = slower, bigger, prolonged rise
📊 Understand the graph
- X-axis = Minutes → time after glucose suddenly increases.
- Y-axis = Plasma insulin (µU/mL) → amount of insulin in the blood.
- Red curve = insulin concentration over time.
🔴 Before 0 minutes
Insulin stays at a low basal level.
➡️ Blood glucose is still at its previous level, so only normal resting insulin secretion is occurring.
🚀 1st phase: Rapid insulin surge
Immediately after glucose rises:
Insulin shoots upward within about 3–5 minutes.
Why?
➡️ Pancreatic β-cells quickly release preformed insulin that was already stored in secretory granules.
Think:
“Emergency insulin already packed and ready → released immediately.”
📉 Why does insulin then fall?
After the first peak, insulin drops toward about half of its peak.
Why?
➡️ The readily available stored insulin becomes partly depleted.
So:
Stored insulin released quickly → temporary shortage → insulin level falls.
It does not return to normal because blood glucose is still high.
📈 2nd phase: Delayed, prolonged rise
At about 15–20 minutes, insulin begins rising again.
This second rise is:
- slower,
- larger,
- and continues for a long time.
Why?
β-cells now:
mobilize additional stored insulin + synthesize new insulin → continuous secretion.
So insulin continues rising as long as glucose remains high.
🔴 Why does the red curve eventually flatten?
At later times, the curve approaches a plateau.
➡️ Insulin secretion is very high but begins reaching a relatively steady maximal response.
⭐ KEY CONCEPT
Biphasic insulin secretion
High glucose →
Phase 1:
⚡ Immediate release of preformed insulin
→ rapid peak
→ then decline
Phase 2:
⏳ More insulin mobilization + new insulin synthesis
→ begins ~15–20 min later
→ larger, sustained rise
Easy memory
First phase = “Release what is READY.”
Second phase = “Bring more + MAKE more.”
Feedback Regulation of Blood Glucose and Insulin Secretion
- When blood glucose rises above about 100 mg/100 mL, insulin secretion increases rapidly.
- At blood glucose levels of about 400–600 mg/100 mL, insulin secretion may reach 10–25 times the basal level (Fig. 79.9).
- When blood glucose falls back to the fasting level, insulin secretion decreases rapidly within about 3–5 minutes.
- This forms an important negative-feedback mechanism: ↑ Blood glucose → ↑ insulin → ↑ glucose uptake by liver, muscle, and other cells → ↓ blood glucose toward normal
Other Factors That Stimulate Insulin Secretion
Amino Acids
- Some amino acids stimulate insulin secretion, especially arginine and lysine.
- Amino acids alone cause only a small increase in insulin if blood glucose is not elevated.
- When blood glucose is also high, amino acids can increase glucose-stimulated insulin secretion by as much as twofold.
- Therefore, amino acids strongly potentiate the effect of glucose on insulin secretion.
- The increased insulin then promotes:
- Amino acid uptake into cells
- Protein formation
Gastrointestinal Hormones
- Several gastrointestinal hormones can increase insulin secretion:
- Gastrin
- Secretin
- Cholecystokinin
- GLP-1
- GIP
- GLP-1 and GIP are the most powerful and are called incretins.
- Incretins increase insulin release from beta cells when plasma glucose rises.
- They also inhibit glucagon secretion from alpha cells.
- These hormones are released after a meal and cause an early rise in insulin before absorbed glucose and amino acids fully enter the blood.
- They increase the sensitivity of beta cells to glucose and may almost double insulin secretion as blood glucose rises.
- Drugs that mimic or enhance incretin actions are used in treatment of diabetes mellitus and other components of metabolic syndrome, including obesity.
Other Hormones and the Autonomic Nervous System
- Hormones that increase insulin secretion or strengthen the glucose stimulus include:
- Glucagon
- Growth hormone
- Cortisol
- To a lesser degree, progesterone and estrogen
- Prolonged excessive secretion of these hormones can cause:
- Insulin resistance
- Compensatory ↑ insulin secretion
- Eventual beta-cell dysfunction or injury
- Increased risk of type 2 diabetes mellitus
- Diabetes is especially associated with:
- Excess growth hormone in acromegaly or gigantism
- Excess glucocorticoids in Cushing syndrome
- Pancreatic islets receive both parasympathetic and sympathetic nerves.
- During hyperglycemia:
- Parasympathetic stimulation → ↑ insulin secretion
- During hypoglycemia:
- Sympathetic stimulation → ↑ glucagon + ↓ insulin secretion
- Glucose levels are detected by specialized neurons in the hypothalamus and brain stem and by peripheral glucose-sensing cells such as those in the liver.
KEY CONCEPT
- ↑ Blood glucose → ↑ insulin → glucose enters tissues → blood glucose falls toward normal.
- Arginine and lysine strongly enhance glucose-stimulated insulin secretion.
- GLP-1 and GIP = incretins → ↑ insulin + ↓ glucagon.
- Prolonged excess growth hormone or cortisol → insulin resistance → compensatory hyperinsulinemia → possible type 2 diabetes.
- Parasympathetic activity favors insulin secretion; sympathetic activity during hypoglycemia favors glucagon and suppresses insulin.
Conceptual Examples
- High blood glucose:
↑ Glucose → ↑ insulin → ↑ tissue glucose uptake → glucose returns toward normal. - Protein-rich meal:
Glucose + amino acids → stronger insulin response → ↑ amino acid uptake and protein formation. - After a meal:
GLP-1 + GIP → early increase in insulin + decreased glucagon. - Hypoglycemia:
Sympathetic stimulation → ↓ insulin + ↑ glucagon. - Long-term hormone excess:
Excess growth hormone or cortisol → insulin resistance → ↑ insulin demand → possible beta-cell dysfunction and type 2 diabetes.

Figure 79.9 — Effect of Plasma Glucose on Insulin Secretion
🧠 Main idea
Blood glucose is the main controller of insulin secretion.
As glucose rises:
Glucose ↑ → pancreatic β-cells stimulated → insulin secretion ↑↑
But the response is not linear. It follows an S-shaped curve.
📊 Understand every part of the graph
X-axis = Plasma glucose concentration (mg/100 mL)
This means the amount of glucose in the blood.
- Moving left → right = blood glucose increasing
- 100 mg/100 mL = 100 mg/dL, approximately the normal fasting range.
Y-axis = Insulin secretion (× normal)
This tells us how many times insulin secretion is above its normal basal level.
For example:
- 1× = normal insulin secretion
- 5× = five times normal
- 10× = ten times normal
- 20× = twenty times normal
🔴 Red curve — Insulin secretion
1️⃣ Low glucose: almost flat line
When glucose is below about 100 mg/dL, insulin secretion is very low.
➡️ There is little need for insulin because blood glucose is already low.
✳️ Red star around 100 mg/dL
The star highlights approximately the normal glucose level.
At about 100 mg/dL, insulin secretion is around its normal basal level.
This is also where increasing glucose begins to produce a much stronger insulin response.
2️⃣ About 100–200 mg/dL: insulin rises rapidly
Once glucose rises above about 100 mg/dL:
Glucose ↑ → insulin secretion begins increasing steeply ↑↑
Example from the curve:
~200 mg/dL glucose → insulin secretion ≈ 8–10× normal
➡️ Pancreatic β-cells strongly sense the increased glucose.
3️⃣ About 200–400 mg/dL: very strong insulin response
The red curve continues steeply upward.
Approximately:
- ~300 mg/dL → ~15–17× normal
- ~400 mg/dL → ~19× normal
➡️ Higher glucose produces progressively greater insulin secretion.
4️⃣ About 400–600 mg/dL: plateau
At very high glucose concentrations, the curve begins to flatten near:
~20× normal insulin secretion
Why?
➡️ β-cells are approaching their maximum secretory capacity.
So increasing glucose further produces relatively little additional insulin secretion.
⭐ Why is the curve S-shaped?
Think of it as three stages:
Low glucose
→ β-cells barely stimulated
→ little insulin
Moderately/high glucose
→ β-cells strongly stimulated
→ rapid insulin increase
Extremely high glucose
→ β-cells near maximum capacity
→ plateau
⭐ KEY CONCEPT
Glucose below ~100 mg/dL → little insulin secretion
Glucose above ~100 mg/dL → insulin secretion rises dramatically
Glucose ~400–600 mg/dL → insulin secretion reaches about 20× normal and approaches maximum
Easy memory:
More glucose → more insulin, until β-cells reach their maximum.
✳️ Star = approximately normal glucose/normal insulin point.
THE ROLE OF INSULIN (AND OTHER HORMONES) IN “SWITCHING” BETWEEN CARBOHYDRATE AND LIPID METABOLISM
- Insulin acts like a metabolic switch between carbohydrate and fat use.
- When insulin is high, cells mainly use carbohydrates (glucose) for energy and fat use decreases.
- When insulin is low, most tissues shift toward fat utilization, while the brain continues to depend mainly on glucose.
- The main signal controlling this switch is the blood glucose concentration.
- When blood glucose is low:
- Insulin secretion decreases.
- Fat becomes the main energy source for most tissues.
- When blood glucose is high:
- Insulin secretion increases.
- Cells use carbohydrates instead of fat.
- Excess glucose is stored as:
- Liver glycogen
- Muscle glycogen
- Liver fat
- Therefore, an important function of insulin is to determine moment by moment whether cells use glucose or fat for energy.
- Four other hormones also help control this metabolic switching:
- Growth hormone
- Cortisol
- Epinephrine
- Glucagon
- Growth hormone and cortisol are released during hypoglycemia.
- They decrease cellular glucose utilization and increase fat utilization.
- Their effects develop slowly and may require many hours to become maximal.
- Epinephrine is especially important during stress when the sympathetic nervous system is activated.
- It rapidly increases blood glucose by causing glycogenolysis in the liver.
- Therefore: Liver glycogen → glucose → ↑ blood glucose within minutes
- Epinephrine also activates hormone-sensitive lipase in adipose tissue.
- This causes lipolysis and increases free fatty acids in blood.
- The rise in fatty acids is much greater than the rise in blood glucose.
- Therefore, epinephrine strongly promotes fat utilization during stress, especially in:
- Exercise
- Circulatory shock
- Anxiety
KEY CONCEPT
- ↑ Blood glucose → ↑ insulin → carbohydrate use + energy storage.
- ↓ Blood glucose → ↓ insulin → fat use increases.
- Growth hormone + cortisol → ↓ glucose use + ↑ fat use during hypoglycemia.
- Epinephrine → ↑ liver glycogenolysis + ↑ adipose lipolysis → ↑ glucose and especially ↑ fatty acids.
- Insulin is the major hormone that switches metabolism between glucose use and fat use.
Conceptual Examples
- After a carbohydrate-rich meal:
↑ Glucose → ↑ insulin → glucose used for energy + excess stored as glycogen or fat. - Between meals:
↓ Glucose → ↓ insulin → fat becomes the main fuel for most tissues. - During prolonged hypoglycemia:
↑ Growth hormone + ↑ cortisol → ↓ glucose use + ↑ fat use. - During exercise or stress:
↑ Epinephrine → liver glycogen breakdown + adipose fat breakdown → ↑ blood glucose + much greater ↑ fatty acids.
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