- Diabetes mellitus is a disorder of carbohydrate, fat, and protein metabolism.
- It occurs because of either:
- Too little insulin secretion, or
- Reduced tissue sensitivity to insulin.
- There are two main types:
- Type 1 diabetes mellitus
- Also called insulin-dependent diabetes mellitus.
- Caused by lack of insulin secretion.
- Type 2 diabetes mellitus
- Also called non–insulin-dependent diabetes mellitus.
- Initially caused by decreased sensitivity of target tissues to insulin.
- This reduced sensitivity is called insulin resistance.
- Type 1 diabetes mellitus
- In both types, metabolism of carbohydrates, fats, and proteins becomes abnormal.
- Insulin deficiency or insulin resistance prevents most body cells from efficiently taking up and using glucose.
- Brain cells are an important exception.
- Therefore:
- Blood glucose increases
- Cellular glucose utilization decreases
- Fat utilization increases
- Protein utilization increases
KEY CONCEPT
- Type 1 diabetes → lack of insulin secretion.
- Type 2 diabetes → insulin resistance, especially initially.
- Both cause: ↓ Effective insulin action → ↓ glucose uptake/use by most cells → ↑ blood glucose → ↑ fat and protein utilization
Conceptual Examples
- Type 1:
↓ Insulin secretion → cells cannot efficiently use glucose → blood glucose rises. - Type 2:
Insulin is present but tissues respond poorly → insulin resistance → reduced glucose utilization. - Overall metabolic effect:
↓ Glucose use → body increasingly uses fat and protein for energy.
Type 1 Diabetes—Deficiency of Insulin Production By Beta Cells of the Pancreas
- Type 1 diabetes develops when pancreatic beta cells are damaged or destroyed, causing inadequate insulin production.
- Possible causes include:
- Viral infections
- Autoimmune destruction
- Hereditary susceptibility
- In some people, inherited beta-cell degeneration may occur even without viral or autoimmune disease.
- Type 1 diabetes can occur at any age, but often develops in children before 14 years, so it has also been called juvenile diabetes mellitus or insulin-dependent diabetes mellitus.
- It may develop rapidly over days to weeks.
- Its three major metabolic effects are:
- ↑ Blood glucose
- ↑ Fat use for energy and cholesterol formation
- ↓ Body proteins
- About 5%–10% of people with diabetes have type 1 diabetes.
Blood Glucose Concentration Rises to High Levels in Diabetes Mellitus
- Lack of insulin causes ↓ peripheral glucose use and ↑ glucose production.
- Plasma glucose may rise to about 300–1200 mg/100 mL.
- This severe hyperglycemia produces multiple harmful effects throughout the body.
Increased Blood Glucose Causes Loss of Glucose in the Urine
- When blood glucose becomes very high, more glucose is filtered by the kidneys than can be reabsorbed.
- Excess glucose therefore appears in the urine.
- Glucose usually begins to spill into urine when blood glucose exceeds about 200 mg/100 mL, called the renal threshold for glucose.
- At blood glucose levels of 300–500 mg/100 mL, more than 100 g of glucose may be lost in urine each day.
Increased Blood Glucose Causes Dehydration
- Severe hyperglycemia increases extracellular osmotic pressure.
- Water therefore moves out of cells, causing intracellular dehydration.
- Glucose in the renal tubules also causes osmotic diuresis.
- This reduces water reabsorption and causes large amounts of fluid to be lost in urine.
- The result is:
- Polyuria → excessive urination
- Extracellular dehydration
- Intracellular dehydration
- Increased thirst
Chronic High Glucose Concentration Causes Tissue Injury
- Long-term uncontrolled hyperglycemia damages blood vessels and reduces blood supply to tissues.
- This increases the risk of:
- Heart attack
- Stroke
- End-stage kidney disease
- Retinopathy and blindness
- Limb ischemia and gangrene
- Chronic diabetes can also damage peripheral nerves and the autonomic nervous system.
- This may cause:
- Impaired cardiovascular reflexes
- Impaired bladder control
- Reduced sensation in the limbs
- Other signs of peripheral nerve damage
- The exact mechanisms are not fully understood but involve effects of high glucose and other metabolic abnormalities on vascular and other tissues.
- Hypertension from renal injury and atherosclerosis from abnormal lipid metabolism can further worsen tissue damage.
Diabetes Mellitus Causes Increased Utilization of Fats and Metabolic Acidosis
- In uncontrolled diabetes, especially type 1, the body shifts from carbohydrate use to fat use.
- This increases formation of keto acids, mainly:
- Acetoacetic acid
- β-hydroxybutyric acid
- These acids may be produced faster than tissues can use them.
- They accumulate and cause metabolic acidosis.
- Together with dehydration, severe acidosis can rapidly lead to diabetic coma and death without prompt insulin treatment.
- The body compensates with rapid, deep breathing, which increases CO₂ removal.
- The kidneys also:
- Decrease bicarbonate loss
- Produce new bicarbonate
- If blood pH falls below about 7.0, coma and death may occur within hours.
- Severe electrolyte changes in diabetic acidosis are shown in Fig. 79.11.
- Long-term excessive fat use also increases blood cholesterol and its deposition in arterial walls, promoting arteriosclerosis.
Diabetes Mellitus Causes Depletion of the Body’s Proteins
- Failure to use glucose normally causes increased use and decreased storage of protein and fat.
- Therefore, severe untreated diabetes causes:
- Rapid weight loss
- Asthenia → lack of energy
- Polyphagia → excessive eating
- Without treatment, severe tissue wasting can cause death within weeks.
Treatment of Type 1 Diabetes Mellitus Requires Insulin Administration
- Type 1 diabetes requires insulin replacement to keep carbohydrate, fat, and protein metabolism as normal as possible.
- Regular insulin acts for about 3–8 hours.
- Longer-acting forms are absorbed more slowly and may act for about 10–48 hours.
- A patient may receive:
- A longer-acting insulin for overall daily control.
- Additional regular insulin, especially when blood glucose rises after meals.
- Insulin treatment is therefore individualized for each patient.
KEY CONCEPT
- Type 1 diabetes = beta-cell destruction → severe insulin deficiency.
- ↓ Insulin → ↑ blood glucose + ↓ glucose use + ↑ fat and protein breakdown.
- Hyperglycemia → glycosuria → osmotic diuresis → dehydration.
- Excess fat breakdown → ketone bodies → metabolic acidosis → possible coma.
- Long-term hyperglycemia damages blood vessels, kidneys, retina, nerves, and limbs.
- Treatment requires insulin replacement.
Conceptual Examples
- Hyperglycemia:
↓ Insulin → glucose cannot be used efficiently → blood glucose rises. - Polyuria and thirst:
Glucose enters urine → pulls water with it → excess urination → dehydration → increased thirst. - Diabetic ketoacidosis:
↓ Insulin → ↑ fat breakdown → ↑ keto acids → metabolic acidosis → possible coma. - Weight loss despite eating:
↓ Glucose use → ↑ fat and protein breakdown → weight loss + weakness despite polyphagia. - Treatment:
Type 1 diabetes → inadequate insulin → insulin must be given from outside the body.

Type 2 Diabetes—Resistance to the Metabolic Effects of Insulin
- Type 2 diabetes is much more common than type 1 and accounts for about 90%–95% of diabetes cases.
- It usually develops gradually and was traditionally seen after age 30 years, especially around 50–60 years.
- However, it is now increasingly seen in younger people, even those under 20 years.
- This increase is strongly related to obesity, the most important risk factor for type 2 diabetes.
Obesity, Insulin Resistance, and “Metabolic Syndrome” Usually Precede Development of Type 2 Diabetes
- Unlike type 1 diabetes, type 2 diabetes is often associated initially with high plasma insulin levels.
- This high insulin is a compensatory response to insulin resistance.
- Insulin resistance means target tissues have reduced sensitivity to insulin.
- As insulin becomes less effective:
- Glucose utilization decreases
- Glucose storage decreases
- Blood glucose rises
- Pancreatic beta cells compensate by secreting more insulin
- Insulin resistance usually develops gradually with weight gain and obesity.
- Some obese people may have fewer insulin receptors, especially in:
- Skeletal muscle
- Liver
- Adipose tissue
- However, most insulin resistance appears to result from abnormalities in the intracellular signaling pathways after insulin binds its receptor.
- This impaired signaling may be related to lipotoxicity, caused by excess lipid accumulation in tissues such as skeletal muscle and liver.
- Insulin resistance commonly occurs as part of the metabolic syndrome.
- Important features include:
- Abdominal obesity
- Insulin resistance
- Fasting hyperglycemia
- ↑ Blood triglycerides
- ↓ HDL cholesterol
- Hypertension
- These abnormalities are closely associated with excess visceral fat around abdominal organs.
- Insulin resistance is the main cause of the increased blood glucose in this syndrome.
- Metabolic syndrome greatly increases the risk of cardiovascular disease, including atherosclerosis and organ damage.
- Insulin resistance also increases the risk of developing type 2 diabetes, which further increases cardiovascular risk.
Other Factors That Can Cause Insulin Resistance and Type 2 Diabetes
- Type 2 diabetes may also result from acquired or genetic abnormalities that impair insulin signaling, even without severe obesity (Table 79.2).
- Polycystic ovary syndrome (PCOS) is associated with:
- Increased ovarian androgen production
- Insulin resistance
- PCOS affects about 6% of women during reproductive life.
- About 80% of affected women have insulin resistance and hyperinsulinemia.
- In many cases, this is associated with increased visceral fat.
- Long-term risks include:
- Diabetes mellitus
- Increased blood lipids
- Cardiovascular disease
- Excess glucocorticoids in Cushing syndrome can decrease tissue sensitivity to insulin and lead to diabetes.
- Excess growth hormone in acromegaly can produce a similar effect.
- Severe genetic causes of obesity and insulin resistance may also cause type 2 diabetes and other features of metabolic syndrome.
KEY CONCEPT
- Type 2 diabetes = insulin resistance first, often with compensatory high insulin.
- Obesity, especially visceral abdominal fat, is the major risk factor.
- Sequence: Obesity/visceral fat → insulin resistance → ↓ glucose use → ↑ blood glucose → compensatory ↑ insulin → type 2 diabetes
- Metabolic syndrome = abdominal obesity + insulin resistance + hyperglycemia + lipid abnormalities + hypertension.
- PCOS, Cushing syndrome, acromegaly, and genetic disorders can also cause insulin resistance.
Conceptual Examples
- Early type 2 diabetes:
Insulin is present → tissues respond poorly → pancreas produces more insulin → hyperinsulinemia + insulin resistance. - Obesity:
↑ Visceral fat → impaired insulin signaling → ↓ glucose uptake → ↑ blood glucose. - Metabolic syndrome:
Abdominal obesity + insulin resistance + high triglycerides + low HDL + hypertension → high cardiovascular risk. - Hormonal cause:
Excess cortisol or growth hormone → ↓ insulin sensitivity → insulin resistance → possible type 2 diabetes.

Prolonged, Severe Insulin Resistance May Lead to Type 2 Diabetes
- With prolonged severe insulin resistance, even high insulin levels may no longer maintain normal blood glucose.
- Early in the disease, this causes moderate hyperglycemia after carbohydrate intake.
- Later, pancreatic beta cells become dysfunctional and cannot produce enough insulin.
- As a result, hyperglycemia becomes more severe, especially after carbohydrate-rich meals.
- Some obese people with marked insulin resistance do not develop severe diabetes because their pancreas can still produce enough insulin.
- In others, prolonged high insulin production and factors related to lipid accumulation in the pancreas may damage beta-cell function.
- This can lead to full type 2 diabetes mellitus.
- Genetic factors may influence whether beta cells can maintain high insulin production for many years.
Treatment of Type 2 Diabetes By Lifestyle Modifications, Increasing Insulin Sensitivity, and Enhancing Insulin Secretion
- Lifestyle treatment usually includes:
- Calorie restriction
- More physical activity
- Weight loss
- Reduced body fat
- Long-term weight loss is difficult to maintain in many patients, so lifestyle treatment alone may have limited success.
- Drugs may be needed to control blood glucose:
- Thiazolidinediones → increase insulin sensitivity.
- Metformin → decreases liver glucose production.
- Sulfonylureas → increase insulin release from the pancreas.
- In later stages, insulin administration may be required.
- GLP-1 receptor agonists:
- Enhance insulin secretion.
- Can produce substantial weight loss in many patients with obesity.
- GIP receptor agonists can also help treat obesity and type 2 diabetes.
- Combined GLP-1/GIP receptor agonists can produce even greater reductions in:
- Body fat
- Blood glucose
- DPP-4 inhibitors prevent rapid inactivation of GLP-1 and GIP.
- This prolongs incretin effects and leads to:
- ↑ Insulin secretion
- Better blood glucose control
- Newer treatments for obesity and type 2 diabetes have also shown benefits in reducing complications involving cardiovascular disease, chronic kidney disease, cancer, and other disorders.
Treatment of Type 2 Diabetes By Inhibition of Sodium-Glucose Transporter 2 (SGLT2)
- About 90% of filtered glucose is normally reabsorbed in the proximal tubules by SGLT2.
- Drugs called gliflozins inhibit SGLT2.
- Therefore: ↓ SGLT2 activity → ↓ renal glucose reabsorption → ↑ glucose in urine → ↓ blood glucose
- SGLT2 inhibitors are often combined with other diabetes drugs.
- Clinical trials have shown important protection against cardiovascular and kidney disease in patients with diabetes.
- Glucose remaining in renal tubules also causes osmotic diuresis.
- This may slightly reduce blood pressure.
- However, excessive diuresis can increase the risk of:
- Dehydration
- Hypotension
- This risk is greater in patients already taking diuretics or antihypertensive drugs.
Treatment of Type 2 Diabetes With Surgery
- In severe obesity with type 2 diabetes, diet, exercise, and drugs may not adequately reduce body fat or blood glucose.
- In these cases, bariatric surgery may be used.
- Two widely used procedures are:
- Gastric bypass
- Vertical sleeve gastrectomy
- These are often called metabolic surgery because many patients develop nearly complete remission of diabetes and may no longer need antidiabetic drugs.
- Improvements in blood glucose, blood lipids, and blood pressure can occur within days or weeks.
- Therefore, some benefits may occur through mechanisms beyond weight loss alone.
- The exact physiological mechanisms remain unclear.
Physiology of Diagnosis of Diabetes Mellitus
- Clinical features of type 1 and type 2 diabetes are compared in Table 79.3.
- Diabetes is commonly diagnosed using blood and urine tests.

Urinary Glucose
- Normally, a person without diabetes excretes little or no detectable glucose in urine.
- In diabetes, glucose may appear in urine in small or large amounts.
- The amount generally increases with:
- Severity of diabetes
- Carbohydrate intake
Fasting Blood Glucose and Insulin Concentrations
- Normal fasting blood glucose in the early morning is about 80–90 mg/100 mL.
- About 115 mg/100 mL is considered the upper limit of normal in this text.
- Fasting glucose above this level may indicate:
- Diabetes mellitus
- Marked insulin resistance
- Prediabetes
- In type 1 diabetes:
- Plasma insulin is very low or undetectable during fasting.
- It remains very low even after a meal.
- In type 2 diabetes:
- Plasma insulin may initially be several times higher than normal.
- It usually rises even more after a standard glucose load.
KEY CONCEPT
- Severe insulin resistance → compensatory ↑ insulin → eventual beta-cell dysfunction → worsening type 2 diabetes.
- Treatment may target:
- Weight and physical activity
- Insulin sensitivity
- Liver glucose production
- Insulin secretion
- Incretin pathways
- Renal glucose reabsorption
- Severe obesity by metabolic surgery
- Type 1 → very low insulin.
- Early type 2 → insulin may be high because of insulin resistance.
Conceptual Examples
- Progression of type 2 diabetes:
Insulin resistance → pancreas produces more insulin → beta cells eventually fail → blood glucose rises further. - Metformin:
↓ Liver glucose production → ↓ blood glucose. - GLP-1/GIP treatment:
↑ Incretin action → ↑ insulin secretion + ↓ body fat + better glucose control. - SGLT2 inhibition:
↓ Kidney glucose reabsorption → ↑ glucose lost in urine → ↓ blood glucose. - Type 1 vs type 2:
Type 1 → little or no insulin.
Type 2 → insulin may initially be high but tissues resist its effects.
Glucose Tolerance Test
- In a normal fasting person, ingestion of 1 g glucose/kg body weight raises blood glucose from about 90 mg/100 mL to 120–140 mg/100 mL.
- Blood glucose then falls back to below the starting level within about 2 hours, as shown by the lower glucose tolerance curve in Fig. 79.12.
- In diabetes mellitus, fasting blood glucose is usually >115 mg/100 mL and often >140 mg/100 mL.
- After glucose ingestion, blood glucose rises much more than normal.
- It then returns toward the control level only after about 4–6 hours.
- It also fails to fall below the control level.
- This abnormal slow fall indicates either:
- Insulin secretion does not increase normally, or
- The tissues have decreased sensitivity to insulin.
- Therefore, an abnormal glucose tolerance curve can help diagnose diabetes mellitus.
- Plasma insulin measurement can help distinguish:
- Type 1 diabetes → low or undetectable insulin
- Type 2 diabetes → increased insulin
Glycated Hemoglobin
- When blood glucose remains high for a long time, glucose attaches to hemoglobin in red blood cells.
- This forms glycated hemoglobin, called hemoglobin A1c (HbA1c).
- The longer hyperglycemia continues, the more glucose binds to hemoglobin.
- Once hemoglobin becomes glycated, it remains glycated for the life of the red blood cell.
- Therefore, HbA1c reflects the average blood glucose exposure of red blood cells.
- Red blood cells have an average lifespan of about 120 days.
- Because red blood cells have different individual lifespans, HbA1c mainly reflects average blood glucose over the previous 3 months.
- HbA1c can therefore be used to:
- Help diagnose diabetes mellitus
- Assess long-term glycemic control in people with diabetes
KEY CONCEPT
- Normal glucose tolerance: glucose rises after intake → returns toward normal within about 2 hours.
- Diabetes: higher fasting glucose + greater rise after glucose → slow return over 4–6 hours.
- Type 1 → low insulin; Type 2 → insulin may be increased.
- HbA1c = average blood glucose over approximately the previous 3 months.
Conceptual Examples
- Normal person:
Glucose drink → blood glucose rises → insulin acts normally → glucose returns toward normal within ~2 hours. - Diabetes:
Glucose drink → excessive rise in glucose → inadequate insulin effect → glucose stays high for 4–6 hours. - Type 1 versus Type 2:
Abnormal glucose tolerance + very low insulin → Type 1.
Abnormal glucose tolerance + high insulin → Type 2 insulin resistance. - HbA1c:
Repeated high blood glucose for weeks → more glucose attaches to hemoglobin → higher HbA1c.

Figure 79.12 — Glucose Tolerance Curve: Normal vs Diabetes
🧠 Main idea
After a person drinks glucose:
Normal person → glucose rises a little, then quickly comes back down.
Diabetes → glucose starts high, rises much higher, and comes down very slowly.
📊 Understand the axes
X-axis = Hours
- Time after taking glucose.
- 0 hour = before glucose is given.
Y-axis = Blood glucose level (mg/100 mL)
- Moving upward = more glucose in blood.
- mg/100 mL = mg/dL.
🔴 Red line = NORMAL person
At 0 hour
Blood glucose is about:
~90 mg/dL
➡️ Normal fasting level.
During first hour
Glucose is absorbed from intestine:
Blood glucose ↑ → ~125–130 mg/dL
➡️ This rise stimulates pancreatic β-cells.
Then insulin acts
Insulin ↑ → glucose enters muscle/fat + liver stores glucose → blood glucose falls.
By about 2–3 hours, glucose returns to normal.
Why does red line fall slightly BELOW normal?
Around 3 hours it reaches about 85 mg/dL.
➡️ Insulin remains active for a short time even after much of the excess glucose has been removed.
So there is a small temporary “insulin overshoot.”
Then glucose returns toward normal again.🟢 Green line = DIABETES
At 0 hour
Blood glucose is already high:
~135–140 mg/dL
➡️ Fasting hyperglycemia.
After glucose intake
The curve rises dramatically:
~140 → >210 mg/dL
Why?
Because insulin action is inadequate:
↓ insulin / insulin resistance → ↓ glucose uptake by tissues → glucose remains in blood.
Why does the green line fall so slowly?
Even several hours later:
Blood glucose is still high (~150 mg/dL at 5 hours).
➡️ The body cannot remove glucose from blood efficiently.
So:
Normal = quick clearance
Diabetes = slow clearance
⚫ Dotted horizontal lines
Lower dotted line ≈ 90 mg/dL
Represents approximately the normal fasting/control glucose level.
The normal red curve:
starts near it → rises → later returns near it.
Upper dotted line ≈ 140 mg/dL
Shows a high glucose reference level.
The diabetic curve:
starts around this high level and remains above it for several hours.
So the dotted lines help you visually compare normal vs abnormally high glucose.
🔍 Compare both curves
| Feature | 🔴 Normal | 🟢 Diabetes |
|---|---|---|
| Fasting glucose | ~90 | ~140 |
| Rise after glucose | Small | Large |
| Peak | ~125–130 | ~215 |
| Fall afterward | Rapid | Very slow |
| Back near normal | ~2–3 h | Still high at 5 h |
| Falls below starting level? | Yes, slightly | No |
⭐ KEY CONCEPT
Normal
Glucose drink → glucose ↑ → insulin ↑ → tissues take glucose → blood glucose returns to normal quickly.
Diabetes
Glucose drink → glucose ↑↑ → inadequate insulin action → glucose stays in blood → slow fall.
Easy memory
Normal curve = “UP and quickly DOWN.”
Diabetic curve = “HIGH to begin with, HIGHER after glucose, SLOW to come down.”
Acetone Breath
- In severe diabetes, especially with marked insulin deficiency, the body cannot use glucose properly.
- Therefore, the body increasingly uses fat for energy.
- Fat breakdown produces keto acids, including acetoacetic acid.
- Some acetoacetic acid is converted into acetone.
- Acetone is volatile → it evaporates into the lungs → comes out in expired air.
- Therefore, the breath may develop a characteristic fruity/acetone smell.
Easy pathway
↓ Insulin → ↑ fat breakdown → ↑ acetoacetic acid → ↑ acetone → acetone breath
- Keto acids can also be detected in the urine.
- The amount of ketones can help indicate the severity of ketosis/diabetes.
- In early type 2 diabetes, excessive ketone formation is usually uncommon because some effective insulin action remains.
- If insulin resistance becomes very severe → fat use greatly increases → ketone production can also increase in type 2 diabetes.
⭐ Key Concept
Acetone breath = increased fat breakdown and ketone production due to severe lack of effective insulin.
Relation of Treatment to Arteriosclerosis and Chronic Kidney Disease
People with diabetes may have several problems together:
↑ Blood glucose + ↑ blood pressure + ↑ cholesterol/lipids
Together, these greatly increase the risk of:
- Atherosclerosis and arteriosclerosis
- Severe coronary heart disease
- Chronic kidney disease
- Damage to small blood vessels (microcirculation)
Therefore, diabetes treatment is not only about lowering glucose.
Treatment may also target:
Blood glucose ↓ + body fat ↓ + blood pressure ↓ + blood lipids ↓
⭐ Key Concept
Good diabetes treatment controls the whole cardiovascular–metabolic risk, not glucose alone.
Insulinoma—Hyperinsulinism insulinoma is usually a tumor of the pancreatic islets of Langerhans that produces too much insulin.
Insulinoma → excessive insulin → blood glucose falls → hypoglycemia
- Excessive insulin production is much rarer than diabetes.
- About 10–15% of these adenomas may be malignant according to the text.
- Malignant tumors may spread to other parts of the body.
- Both the original tumor and metastases may produce enormous amounts of insulin.
- In extreme cases, patients may require very large amounts of glucose to prevent severe hypoglycemia.
⭐ Key Concept
Insulinoma = too much insulin → recurrent/severe hypoglycemia.
Insulin Shock and Hypoglycemia
🧠 Why is low glucose dangerous?
The brain depends heavily on glucose for energy.
Importantly:
Brain glucose uptake does NOT require insulin.
But if excessive insulin lowers blood glucose too much:
Blood glucose ↓↓↓ → brain gets insufficient glucose → brain function fails
This is called insulin shock.
It may occur because of:
Blood glucose 50–70 mg/dL
The nervous system becomes abnormally excitable.
Possible features:
- Extreme nervousness
- Trembling
- Sweating
- Sometimes hallucinations
Easy idea
Moderate hypoglycemia → brain becomes irritable/excitable.
Blood glucose 20–50 mg/dL
Hypoglycemia becomes much more severe.
May cause:
- Clonic seizures
- Loss of consciousness
Blood glucose falls even lower
Eventually:
Seizures stop → deep coma develops
This happens because the brain no longer has enough glucose to maintain normal neuronal activity.
Easy progression
Glucose ↓
→ nervousness/tremor/sweating
→ seizures
→ unconsciousness
→ coma
Diabetic coma vs hypoglycemic coma
They can sometimes appear similar, but the mechanisms are opposite.
| Feature | Diabetic ketoacidotic coma | Hypoglycemic coma |
|---|---|---|
| Main problem | Too little insulin | Too much insulin/effect |
| Blood glucose | Usually high | Very low |
| Acetone breath | Present | Absent |
| Rapid, deep breathing | Present | Absent |
⭐ Easy memory
Too little insulin → hyperglycemia + ketoacidosis
Too much insulin → hypoglycemia + brain failure
Treatment of Hypoglycemic Shock or Coma
This is an emergency.
The text describes immediate treatment with:
IV glucose → blood glucose rises rapidly → brain receives glucose again
The patient may improve very quickly.
Glucagon can also raise blood glucose by causing:
Liver glycogen → glucose
This process is glycogenolysis.
Epinephrine can also promote glycogenolysis, although the text describes it as less effective.
⚠️ Why immediate treatment matters
If severe hypoglycemia continues:
Brain glucose deprivation → neuronal injury → permanent CNS damage
⭐ FINAL KEY CONCEPT
Insulin deficiency → fat breakdown → ketones → acetone breath/ketoacidosis.
But:
Excess insulin → severe hypoglycemia → brain dysfunction → seizures/coma.
One-line memory
Too little insulin harms mainly through hyperglycemia + ketosis; too much insulin harms mainly through dangerous hypoglycemia.
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