Hypoglycemics: Insulin secretagogues

Hypoglycemics: Insulin secretagogues

Internal Medicine

Internal Medicine

Immunodeficiencies: Clinical
Antihistamines for allergies
Glucocorticoids
Advanced cardiac life support (ACLS): Clinical
Supraventricular arrhythmias: Pathology review
Ventricular arrhythmias: Pathology review
Heart blocks: Pathology review
Coronary artery disease: Clinical
Heart failure: Clinical
Syncope: Clinical
Pericardial disease: Clinical
Infective endocarditis: Clinical
Valvular heart disease: Clinical
Cardiomyopathies: Clinical
Hypertension: Clinical
Hypercholesterolemia: Clinical
Cholinomimetics: Direct agonists
Cholinomimetics: Indirect agonists (anticholinesterases)
Sympathomimetics: Direct agonists
Muscarinic antagonists
Sympatholytics: Alpha-2 agonists
Adrenergic antagonists: Presynaptic
Adrenergic antagonists: Alpha blockers
Adrenergic antagonists: Beta blockers
ACE inhibitors, ARBs and direct renin inhibitors
Thiazide and thiazide-like diuretics
Calcium channel blockers
cGMP mediated smooth muscle vasodilators
Class I antiarrhythmics: Sodium channel blockers
Class II antiarrhythmics: Beta blockers
Class III antiarrhythmics: Potassium channel blockers
Class IV antiarrhythmics: Calcium channel blockers and others
Lipid-lowering medications: Statins
Lipid-lowering medications: Fibrates
Miscellaneous lipid-lowering medications
Positive inotropic medications
Loop diuretics
Antiplatelet medications
Diabetes mellitus: Clinical
Hyperthyroidism: Clinical
Hypothyroidism and thyroiditis: Clinical
Parathyroid conditions and calcium imbalance: Clinical
Thyroid nodules and thyroid cancer: Clinical
Pituitary adenomas and pituitary hyperfunction: Clinical
Hypopituitarism: Clinical
Cushing syndrome: Clinical
Adrenal masses and tumors: Clinical
Adrenal insufficiency: Clinical
MEN syndromes: Clinical
Hyperthyroidism medications
Hypothyroidism medications
Insulins
Hypoglycemics: Insulin secretagogues
Miscellaneous hypoglycemics
Adrenal hormone synthesis inhibitors
Mineralocorticoids and mineralocorticoid antagonists
Esophageal disorders: Clinical
Esophagitis: Clinical
Gastroesophageal reflux disease (GERD): Clinical
Peptic ulcers and stomach cancer: Clinical
Gastroparesis: Clinical
Diarrhea: Clinical
Malabsorption: Clinical
Inflammatory bowel disease: Clinical
Colorectal cancer: Clinical
Diverticular disease: Clinical
Anal conditions: Clinical
Gastrointestinal bleeding: Clinical
Gallbladder disorders: Clinical
Pancreatitis: Clinical
Jaundice: Clinical
Viral hepatitis: Clinical
Cirrhosis: Clinical
Laxatives and cathartics
Antidiarrheals
Acid reducing medications
Fever of unknown origin: Clinical
Fat-soluble vitamin deficiency and toxicity: Pathology review
Water-soluble vitamin deficiency and toxicity: B1-B7: Pathology review
Zinc deficiency and protein-energy malnutrition: Pathology review
Anemia: Clinical
Microcytic anemia: Pathology review
Non-hemolytic normocytic anemia: Pathology review
Intrinsic hemolytic normocytic anemia: Pathology review
Extrinsic hemolytic normocytic anemia: Pathology review
Macrocytic anemia: Pathology review
Heme synthesis disorders: Pathology review
Leukemia: Clinical
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Blood products and transfusion: Clinical
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Pneumonia: Clinical
Tuberculosis: Pathology review
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Protein synthesis inhibitors: Aminoglycosides
Antimetabolites: Sulfonamides and trimethoprim
Antituberculosis medications
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Protein synthesis inhibitors: Tetracyclines
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Integrase and entry inhibitors
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Hepatitis medications
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Hypernatremia: Clinical
Hyponatremia: Clinical
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Hypokalemia: Clinical
Metabolic and respiratory acidosis: Clinical
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Toxidromes: Clinical
Medication overdoses and toxicities: Pathology review
Environmental and chemical toxicities: Pathology review
Acute kidney injury: Clinical
Chronic kidney disease: Clinical
Nephritic and nephrotic syndromes: Clinical
Renal tubular defects: Pathology review
Renal tubular acidosis: Pathology review
Osmotic diuretics
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Potassium sparing diuretics
Asthma: Clinical
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Acetaminophen (Paracetamol)
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Clinical Skills: Abdominal Assessment
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Acyanotic congenital heart defects: Pathology review
Cyanotic congenital heart defects: Pathology review
Atherosclerosis and arteriosclerosis: Pathology review
Coronary artery disease: Pathology review
Peripheral artery disease: Pathology review
Valvular heart disease: Pathology review
Cardiomyopathies: Pathology review
Heart failure: Pathology review
Aortic dissections and aneurysms: Pathology review
Pericardial disease: Pathology review
Endocarditis: Pathology review
Hypertension: Pathology review
Shock: Pathology review
Vasculitis: Pathology review
Cardiac and vascular tumors: Pathology review
Dyslipidemias: Pathology review
Cholinergic receptors
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Waterhouse-Friderichsen syndrome
Hyperaldosteronism
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Hyperthyroidism
Graves disease
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Hypoprolactinemia
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Precocious puberty
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Androgen insensitivity syndrome
Kallmann syndrome
5-alpha-reductase deficiency
Autoimmune polyglandular syndrome type 1 (NORD)
Multiple endocrine neoplasia
Pancreatic neuroendocrine neoplasms
Zollinger-Ellison syndrome
Carcinoid syndrome
Neuroblastoma
Opsoclonus myoclonus syndrome (NORD)
Adrenal insufficiency: Pathology review
Adrenal masses: Pathology review
Hyperthyroidism: Pathology review
Hypothyroidism: Pathology review
Thyroid nodules and thyroid cancer: Pathology review
Parathyroid disorders and calcium imbalance: Pathology review
Diabetes mellitus: Pathology review
Cushing syndrome and Cushing disease: Pathology review
Pituitary tumors: Pathology review
Hypopituitarism: Pathology review
Diabetes insipidus and SIADH: Pathology review
Multiple endocrine neoplasia: Pathology review
Neuroendocrine tumors of the gastrointestinal system: Pathology review

Transcript

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Hypoglycemics are used to treat high blood sugar, a condition commonly known as diabetes mellitus.

As a quick review, Type 1 diabetes mellitus, which most commonly affects children and adolescents, arises when certain cells of the pancreas known as beta cells are unable to produce enough insulin to maintain normal blood glucose levels.

This is in contrast to Type 2 diabetes mellitus where the body is able to produce insulin, but the tissues don’t respond as well to it, or in other words, these individuals are insulin resistant.

In this video, we’ll be focusing specifically on the use of insulin secretagogues like sulfonylurea for the treatment of Type 2 diabetes.

In general, diabetes mellitus occurs when your body has trouble moving glucose from your blood into your cells.

This leads to high levels of glucose in your blood and not enough in your cells, and remember that your cells need glucose as a source of energy.

So not letting glucose enter, means that the cells starve for energy despite having glucose right on their doorstep.

Insulin reduces the amount of glucose in the blood by binding to insulin receptors embedded in the cell membrane of various insulin-responsive tissues like muscle cells and adipose tissue.

When activated, the insulin receptors cause vesicles containing glucose transporter that are inside the cell to fuse with the cell membrane, allowing glucose to be transported into the cell.

Now in Type 2 diabetes, the body usually makes insulin, but the tissues don’t respond as well to it.

The exact reason why cells don’t “respond” isn’t fully understood, but the cells don’t move their glucose transporters to their membrane in response, which if you remember, is needed for glucose to get into the cell, these cells are therefore insulin resistant.

Since tissues don’t respond as well to normal levels of insulin, the body ends up producing more insulin in order to get the same effect and move glucose out of the blood.

They do this through beta cell hyperplasia, or an increased number of beta cells, and beta cell hypertrophy, where they actually grow in size, all in an attempt to pump out more insulin.

This works for a while, and by keeping insulin levels higher than normal, blood glucose levels can be kept normal.

Although, this beta cell compensation isn’t sustainable, and over time those maxed out beta cells get exhausted, and they become dysfunctional, and undergo hypotrophy and get smaller, as well as hypoplasia and die off.

As beta cells are lost and insulin levels decrease, glucose levels in the blood start to increase, and patients develop hyperglycemia.

Let’s take a more detailed look at the pancreatic beta cells, the main site of action of sulfonylureas. The pancreatic beta cell has calcium and potassium ion channels in its membrane.

Typically, the potassium ion channels are open, which allows potassium to flow out of the beta cell, while the calcium channels are normally closed.

When glucose is present in the blood, it gets transported into the cell via a GLUT2 transporter and the glucose is eventually metabolized into ATP.

Normally, the potassium channels are very sensitive to ATP, thus they are also called ATP-sensitive potassium channels; and when the ATP levels begin to increase from breaking down glucose, the potassium channels close.

Therefore, the concentration of potassium inside the pancreatic beta cells increases, since it’s no longer able to exit the cell.

This depolarizes the cell and consequently causes the voltage-gated calcium channel to open. As a result, calcium rushes into the cell.

The increased calcium concentration inside the cell triggers the exocytosis of vesicles filled with insulin into the bloodstream.

This insulin is then able to bind to insulin receptors on different tissues to help increase their uptake of glucose.

In Type 2 diabetics, the ATP-sensitive potassium channel is not as sensitive to ATP. Thus, there is less beta cell depolarization, which results in decreased insulin release. This is where sulfonylureas come into play.

Sulfonylureas have pancreatic and extrapancreatic effects! In pancreas, these medications work similarly to ATP in that they also cause potassium channels in pancreatic beta cells to close.

Again, this increases the intracellular potassium concentration leading to cellular depolarization and the influx of calcium via voltage-gated calcium channels, which results in the release of insulin.

On the flip side, extrapancreatic effects of sulfonylureas include decreased hepatic gluconeogenesis and increased peripheral insulin sensitivity.

There are two classes of sulfonylureas, the first generation and second generation, and they are both taken orally.

The first generation medications include chlorproPAMIDE, TOLBUTamide, and TOLAZamide. Second generation sulfonylureas are much more potent and are more commonly used today. They include glipiZIDE, glyBURIDE, and glimepiride.

In general, patients who are most responsive to oral hypoglycemics such as sulfonylureas are patients who only developed type 2 diabetes after the age of 40 and who have had diabetes for less than 5 to 10 years.

Common side effects include hypoglycemia, weight gain, and gastrointestinal disturbance, such as nausea.

It’s important to note that the second generation is more commonly associated with severe hypoglycemia since these medications are more potent!

Furthermore, sulfonylureas can cause allergic reactions, such as rash; but on rare occasions, they can also cause a severe skin condition called Stevens-Johnson syndrome.

For generation-specific side effects, the first generation sulfonylureas can cause disulfiram-like reactions, also known as alcohol intolerance.

In other words, individuals taking alcohol while on first generation sulfonylureas can experience hangover-like symptoms, such as nausea, vomiting, flushing, dizziness, and headache.

Finally, as far as the contraindications go, sulfonylureas should not be used to treat diabetes mellitus type 1 or diabetic ketoacidosis!

Another group of medications called meglitinides also prevent the ATP-sensitive potassium pumps from opening.

These medications include repaglinide and nateglinide, and just like sulfonylureas, they are taken orally.

Although they have the same mechanism as the sulfonylureas, they are more rapid-acting, but have a shorter duration; so, they are usually taken before each meal to control postprandial glucose levels.

The side effects are hypoglycemia and weight gain; thus, if a meal is missed, individuals on meglitinides should not take the medication to avoid hypoglycemia.

Sources

  1. "Katzung & Trevor's Pharmacology Examination and Board Review,12th Edition" McGraw-Hill Education / Medical (2018)
  2. "Rang and Dale's Pharmacology" Elsevier (2019)
  3. "Goodman and Gilman's The Pharmacological Basis of Therapeutics, 13th Edition" McGraw-Hill Education / Medical (2017)
  4. "Sulfonylurea versus metformin monotherapy in patients with type 2 diabetes: a Cochrane systematic review and meta-analysis of randomized clinical trials and trial sequential analysis" CMAJ Open (2014)
  5. "Ion Transporters, Channelopathies, and Glucose Disorders" International Journal of Molecular Sciences (2019)
  6. "Meglitinide analogues: a review of clinical data focused on recent trials" Diabetes & Metabolism (2006)
  7. "CONSENSUS STATEMENT BY THE AMERICAN ASSOCIATION OF CLINICAL ENDOCRINOLOGISTS AND AMERICAN COLLEGE OF ENDOCRINOLOGY ON THE COMPREHENSIVE TYPE 2 DIABETES MANAGEMENT ALGORITHM – 2019 EXECUTIVE SUMMARY" Endocrine Practice (2019)