Kidney stones

Kidney stones

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Blk 3

Nervous system anatomy and physiology
Introduction to the central and peripheral nervous systems
Introduction to the somatic and autonomic nervous systems
Somatosensory pathways
Neuromuscular junction and motor unit
Myasthenia gravis
Neuromuscular junction disorders: Pathology review
Introduction to the cranial nerves
Cranial nerves
Cranial nerve pathways
Anatomy of the trigeminal nerve (CN V)
Anatomy of the facial nerve (CN VII)
Sympathetic nervous system
Parasympathetic nervous system
Central nervous system histology
Peripheral nervous system histology
Anatomy of the cerebral cortex
Anatomy of the cerebellum
Cerebellum
Anatomy of the brainstem
Ascending and descending spinal tracts
Anatomy of the ascending spinal cord pathways
Anatomy of the descending spinal cord pathways
Anatomy of the diencephalon
Anatomy of the basal ganglia
Anatomy of the ventricular system
Anatomy of the white matter tracts
Anatomy of the cranial meninges and dural venous sinuses
Pyramidal and extrapyramidal tracts
Cerebral circulation
Kidney histology
Chronic kidney disease
The role of the kidney in acid-base balance
Renal azotemia
Regulation of renal blood flow
Erythropoietin
Anatomy of the abdominal viscera: Kidneys, ureters and suprarenal glands
Kidney countercurrent multiplication
Antidiuretic hormone
Sodium homeostasis
Vitamin D
Glomerular filtration
Renal clearance
Measuring renal plasma flow and renal blood flow
Distal convoluted tubule
Proximal convoluted tubule
Loop of Henle
Tubular reabsorption of glucose
Tubular secretion of PAH
Urea recycling
Renin-angiotensin-aldosterone system
Potassium homeostasis
Phosphate, calcium and magnesium homeostasis
Prerenal azotemia
Postrenal azotemia
Hydronephrosis
Hyperphosphatemia
Acute tubular necrosis
Hypercalcemia
Hyperkalemia
Hypernatremia
Hypermagnesemia
Hypocalcemia
Hypokalemia
Hypomagnesemia
Hyponatremia
Hypophosphatemia
Kidney stones
Renal cortical necrosis
Polycystic kidney disease
Renal tubular acidosis
Loop diuretics
Development of the renal system
Renal system anatomy and physiology
Ureter, bladder and urethra histology
Anatomy of the urinary organs of the pelvis
Vesicoureteral reflux
Lower urinary tract infection
Urinary incontinence
Neurogenic bladder

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With nephrolithiasis, “nephro-” refers to the kidneys, and “-lithiasis” means stone, so nephrolithiasis means kidney stones, sometimes also referred to as renal calculi or urolithiasis.

Kidney stones form when solutes in the urine precipitate out and crystalize, and although these most commonly form in the kidneys themselves, they can also form in the ureters, the bladder, or the urethra.

Now, urine’s a combination of water, which acts as a solvent, and all sorts of particles, or solutes.

In general, when certain solutes become too concentrated in the solvent, they become supersaturated.

Urinary supersaturation of certain solutes results in precipitation out of the solution and formation of crystals.

Those crystals then act as a nidus, or place where more solutes can deposit and over time it builds up a crystalline structure.

This can happen if there’s an increase in the solute, or a decrease in the solvent, as would be the case with dehydration.

In addition, there are substances like magnesium and citrate that inhibit crystal growth and aggregation, preventing kidney stones from forming in the first place.

In the majority of cases, the inorganic precipitate is calcium oxalate, formed by a positively charged calcium ion binding to a negatively charged oxalate ion, which results in a black or dark brown colored stone that is radio-opaque on an Xray, meaning that it shows up as a white spot.

Sometimes, instead of oxalate, the calcium binds a negatively charged phosphate group to form calcium phosphate stones which are dirty white in color and also radiopaque on an X-ray.

Calcium oxalate crystals are more likely to form in acidic urine, whereas calcium phosphate crystals are more likely to form in alkaline urine.

The exact reason why these stones form is usually unknown, but there are some known risk factors like hypercalcemia and hypercalciuria, having too much calcium in the blood and urine, respectively.

Hypercalcemia can result from increased calcium absorption in the gastrointestinal tract as well as hormonal causes like primary hyperparathyroidism.

Hypercalciuria can result from impaired renal tubular reabsorption of calcium, which leaves a lot of calcium behind in the tubule.

For the calcium oxalate stones, hyperoxaluria is a risk factor as well, and it can be due to a genetic defect that increases oxalate excretion, a defect in liver metabolism, or a diet heavy in oxalate-rich foods like rhubarb, spinach, chocolate, nuts, and beer.

There are also uric acid stones which are red-brown in color and radiolucent under an Xray, meaning that they’re transparent to x-rays and don’t show up very well.

At a physiologic pH, uric acid loses a proton and becomes a urate ion, which then binds sodium, forming monosodium urate which crystallizes and ultimately forms uric acid stones.

Since uric acid is a breakdown product of purines, a very common reason for high levels of uric acid is consuming lots of purines.

Purine-rich foods include shellfish, anchovies, red meat or organ meat.

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. "Prospective Study of Beverage Use and the Risk of Kidney Stones" American Journal of Epidemiology (1996)
  6. "HELICAL CT OF URINARY TRACT STONES" Radiologic Clinics of North America (1999)
  7. "Diagnosis and Management of Acute Ureterolithiasis" American Journal of Roentgenology (2000)
  8. "Kidney stone disease" Journal of Clinical Investigation (2005)
  9. "An Update and Practical Guide to Renal Stone Management" Nephron Clinical Practice (2010)