Diabetes insipidus

Last updated: September 12, 2024

Diabetes insipidus

Block 3 endo/repro

Block 3 endo/repro

Anatomy of the pelvic girdle
Anatomy of the pelvic cavity
Anatomy of the male reproductive organs of the pelvis
Anatomy of the inguinal region
Anatomy of the male urogenital triangle
Arteries and veins of the pelvis
Nerves and lymphatics of the pelvis
Anatomy of the perineum
Anatomy clinical correlates: Male pelvis and perineum
Anatomy of the breast
Anatomy of the female reproductive organs of the pelvis
Anatomy clinical correlates: Breast
Anatomy of the female urogenital triangle
Anatomy clinical correlates: Female pelvis and perineum
Development of the reproductive system
Pituitary gland histology
Thyroid and parathyroid gland histology
Pancreas histology
Adrenal gland histology
Anatomy of the thyroid and parathyroid glands
Endocrine system anatomy and physiology
Hunger and satiety
Adrenocorticotropic hormone
Growth hormone and somatostatin
Antidiuretic hormone
Thyroid hormones
Insulin
Glucagon
Synthesis of adrenocortical hormones
Cortisol
Phosphate, calcium and magnesium homeostasis
Parathyroid hormone
Vitamin D
Calcitonin
Congenital adrenal hyperplasia
Primary adrenal insufficiency
Hyperaldosteronism
Diabetes mellitus
Diabetic nephropathy
Autoimmune polyglandular syndrome type 1 (NORD)
Hyperthyroidism
Hypothyroidism
Thyroid cancer
Type I hypersensitivity
Type II hypersensitivity
Type III hypersensitivity
Type IV hypersensitivity
Hashimoto thyroiditis
Graves disease
Cushing syndrome
Familial hypercholesterolemia
Phenylketonuria (NORD)
Diabetes mellitus: Clinical
Diabetes insipidus
Insulins
Hypoglycemics: Insulin secretagogues
Miscellaneous hypoglycemics
Hyperparathyroidism
Hypoparathyroidism
Hypercalcemia
Hypocalcemia
Hyperthyroidism medications
Hypothyroidism medications
Adrenal hormone synthesis inhibitors
Mineralocorticoids and mineralocorticoid antagonists
Prostate gland histology
Testis, ductus deferens, and seminal vesicle histology
Penis histology
Mammary gland histology
Ovary histology
Cervix and vagina histology
Fallopian tube and uterus histology
Anatomy and physiology of the male reproductive system
Testosterone
Puberty and Tanner staging
Infertility: Clinical
Contraception: Clinical
Anatomy and physiology of the female reproductive system
Estrogen and progesterone
Menstrual cycle
Menopause
Pregnancy
Oxytocin and prolactin
Stages of labor
Breastfeeding
Precocious puberty
Delayed puberty
Klinefelter syndrome
Turner syndrome
Androgen insensitivity syndrome
5-alpha-reductase deficiency
Cervical cancer
Human papillomavirus
Development of the placenta
Development of the umbilical cord
Human development days 1-4
Human development days 4-7
Human development week 2
Human development week 3
Pelvic inflammatory disease
Vulvovaginitis: Clinical
Chlamydia trachomatis
Neisseria gonorrhoeae
Herpes simplex virus
Sexually transmitted infections: Clinical
Androgens and antiandrogens
PDE5 inhibitors
Adrenergic antagonists: Alpha blockers
Estrogens and antiestrogens
Progestins and antiprogestins
Aromatase inhibitors
Uterine stimulants and relaxants
Disorders of sex chromosomes: Pathology review
Disorders of sexual development and sex hormones: Pathology review
Premature ovarian failure
Breast cancer
Kallmann syndrome
Benign prostatic hyperplasia
Amenorrhea
Preeclampsia & eclampsia
Placenta previa
Placental abruption
Postpartum hemorrhage
Congenital cytomegalovirus (NORD)
Miscarriage
Ectopic pregnancy
Fetal alcohol syndrome
Gestational diabetes
Treponema pallidum (Syphilis)

Transcript

Watch video only

With diabetes insipidus, “diabetes” means an increased passing of urine, and “insipidus” means tasteless; so diabetes insipidus is a condition characterized by the production of large quantities of dilute and tasteless urine.

The tasteless urine of diabetes insipidus distinguishes it from diabetes mellitus which describes sweet tasting urine- and, yes, urine was really tasted at one point in time to make that distinction!

Now, in the brain there’s a region called the hypothalamus.

Inside the hypothalamus are osmoreceptors, which can sense the osmolality of the blood, or how concentrated it is.

Osmolality is the concentration of dissolved particles in the blood plasma, or the liquid portion of blood.

There are a number of dissolved particles in the blood plasma, but the major ones are glucose, sodium, and blood urea nitrogen, and a normal osmolality is between 285 and 295 milli Osmoles per kilogram.

During periods of dehydration there is an increase in concentration of these particles in the blood and osmolality increases.

The osmoreceptors in the hypothalamus detect the increased osmolality and that triggers the sensation of thirst, which tells us to drink more water. The water then gets absorbed and dilutes the blood, bringing the osmolality back to normal.

In addition to osmoreceptors, the hypothalamus also contains a cluster of neurons that are found in a specific spot called the supraoptic nucleus.

These neurons produce a hormone called antidiuretic hormone, or ADH. ADH is also called vasopressin because it causes smooth muscle around the blood vessels to contract, which increases blood resistance and raises blood pressure.

When the osmoreceptors detect high osmolality, they signal the supraoptic nucleus to send ADH down the supraoptico-hypophyseal tract, which runs through the infundibulum or pituitary stalk, and into the posterior pituitary gland, where it is then released into the blood.

ADH travels to the kidneys, specifically to the distal convoluted tubule and collecting ducts of the nephrons and binds to a receptor called vasopressin receptor 2, or AVPR2.

When AVPR2 is bound, proteins called aquaporins, which usually sit in vesicles inside the cells of the distal convoluted tubule and collecting ducts, start to embed themselves in the apical surface of the cells, which is the side facing the lumen of the tubule.

These aquaporins ultimately allow water -- and only water -- to travel out of the lumen of the tubule and into the cells lining the nephron, and ultimately back into the blood. Just like drinking more water, this dilutes the blood, and returns plasma osmolality to a normal level.

However, this reabsorption process also decides how much water leaves the body as urine, and how concentrated the urine is, which is one of the things that keeps a normal urine osmolality between 300 and 900 milli Osmoles per kilogram.

Diabetes insipidus is when the kidneys reabsorb too little water from the lumen of the tubule, causing the body to produce unusually large quantities of urine, which is called polyuria.

Since there’s less water in the blood, plasma osmolality increases and that triggers thirst and causes an individual to drink a lot, which is called polydipsia.

There are four types of diabetes insipidus, each with its own underlying cause.

The first type is central diabetes insipidus, which is when there’s a problem in the hypothalamus or pituitary gland preventing ADH production or release. As a result, there’s insufficient ADH in the blood, and that means there is less vasoconstriction, and that there are insufficient aquaporins in the kidneys.

Central diabetes insipidus is often caused by damage to the hypothalamus osmoreceptors, the supraoptic nucleus, or the supraoptico-hypophysial tract, but in other cases, the exact cause is hard to identify.

The second type is nephrogenic diabetes insipidus, which is when there’s a problem with the kidneys themselves, which makes them unresponsive to ADH. That can happen due to a genetic defect which can lead to abnormal vasopressin receptors or aquaporin proteins that are unresponsive to ADH.

In addition, there are medications like lithium that can decrease the production of aquaporin proteins in the collecting duct.

Finally, there are kidney disorders like polycystic kidney disease that can cause diabetes insipidus.

The third type is gestational diabetes insipidus, which occurs when the placenta of a pregnant woman releases an enzyme called vasopressinase that breaks down vasopressin or ADH. As a result, ADH might still be produced and released as normal, but it doesn’t get to exert its full effect on the blood vessels or kidneys.

In women with gestational diabetes insipidus, vasopressinase is produced starting in week 8 of pregnancy, and peaks in the third trimester. As a result, the symptoms typically worsen during the course of the pregnancy right up until birth when the placenta is removed, but can continue for up to two months after birth due to residual vasopressinase.

Key Takeaways

Diabetes insipidus is when the body cannot regulate its fluid levels properly and loses a lot of water in the urine. There are two major types of diabetes insipidus, which are central and nephrogenic diabetes insipidus. Central diabetes insipidus occurs when the hypothalamus is not producing enough antidiuretic hormone (ADH). ADH ensures that the kidneys produce less urine and reduce water loss. On the other hand, nephrogenic diabetes insipidus results from the kidneys failing to respond to ADH. People with diabetes insipidus present with excessive quantities of diluted urine (polyuria), resulting in excessive thirst (polydipsia).

Sources

  1. "Robbins Basic Pathology" Elsevier (2017)
  2. "Harrison's Principles of Internal Medicine, Twentieth Edition (Vol.1 & Vol.2)" McGraw-Hill Education / Medical (2018)
  3. "Pathophysiology of Disease: An Introduction to Clinical Medicine 8E" McGraw-Hill Education / Medical (2018)
  4. "CURRENT Medical Diagnosis and Treatment 2020" McGraw-Hill Education / Medical (2019)
  5. "Harrison's Endocrinology, 4E" McGraw-Hill Education / Medical (2016)
  6. "THE PATHOGENESIS OF DIABETES INSIPIDUS." Journal of the American Medical Association (1907)
  7. "Management of Hypopituitarism" Journal of Clinical Medicine (2019)
  8. "Post-Traumatic Hypopituitarism—Who Should Be Screened, When, and How?" Frontiers in Endocrinology (2018)