StepWise USMLE
NEPHROLOGY · STEP 1

The Renal System

From ureteric bud to uremic frost — the nephron's development, physiology, and failure states, organized for fast, repeatable review.

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How this page is organized These notes are ordered by USMLE high-yield priority, not by logical/physiological flow — so you can lock in the most testable concepts first. For the topics in their natural logical sequence, watch the YouTube video for this system.

🚨 Acute Kidney Injury — Classification & Causes

See also

The hemodynamic logic behind prerenal causes — how afferent/efferent arteriolar tone and NSAID/ACE-inhibitor effects shift glomerular pressure — is worked out in more depth under Renal Blood Flow, Filtration & Clearance → Arteriolar tone and GFR.

Acute kidney injury — localize before you treat

Prerenal — hypoperfusion: kidney tissue itself is intact
Intrinsic renal — direct parenchymal damage: ATN, AIN, glomerulonephritis, vascular disease
Postrenal — obstruction distal to the kidney (must be bilateral or a single functioning kidney to raise creatinine)
Concept check

Localizing first matters because the fixes are opposite: fluids can worsen a postrenal obstruction, and treating an intrinsic injury like a prerenal one just delays source control — the history and labs that follow exist to answer "where," not "how bad."

Prerenal causes, grouped by mechanism

  • Hypovolemia: hemorrhage, burns, dehydration, vomiting, diarrhea, over-diuresis, pancreatitis
  • Low cardiac output: arrhythmias, pulmonary embolus, myocardial or valvular disease, cardiac tamponade, pulmonary hypertension
  • Renal vasoconstriction: cirrhosis with ascites (hepatorenal physiology), vasoconstrictive drugs (epinephrine, norepinephrine, cyclosporine, amphotericin B)
  • Intrinsically reduced perfusion pressure at the glomerulus: NSAIDs/COX inhibitors (afferent constriction), ACE inhibitors/ARBs (efferent dilation)

Intrinsic renal causes, grouped by mechanism

  • Acute tubular necrosis: most common intrinsic cause overall — ischemic or nephrotoxic (see below)
  • Vascular/microangiopathic: HUS, TTP, DIC, scleroderma renal crisis, malignant hypertension
  • Glomerular: any of the glomerulonephritides above, especially rapidly progressive GN and lupus nephritis
  • Tubulointerstitial: acute interstitial nephritis, acute pyelonephritis
  • Transplant-specific: acute rejection is a recognized cause of ATN-pattern injury in a transplanted kidney
Quick hits
  • Therapeutic drugs are the single most common overall cause of acute renal failure
  • HUS and TTP classically produce a "flea-bitten" appearance of the kidney from diffuse petechial hemorrhages
  • Renal transplant rejection risk is reduced with cyclosporine and muromonab-CD3 (OKT3)
  • Postrenal causes (accounts for under 5% of AKI): bilateral ureteral obstruction from stones or tumor, prostatic hyperplasia, bladder neck obstruction, urethral stricture, neurogenic bladder
LabPrerenalIntrinsic (e.g., ATN)
LogicTubules work fine — avidly reabsorb Na⁺ and water to defend volumeTubules are damaged — can't reabsorb normally
FENa<1%>2%
Urine sodium concentration<10 mEq/L>20 mEq/L
Urine creatinine : plasma creatinine>40:1<20:1
Urine osmolalityHigh (concentrated)Low / near plasma (isosthenuric)
BUN:Cr ratio>20:1<10–15:1
Urine sedimentBland, hyaline castsMuddy brown granular casts (ATN)
Concept check

Every row in this table collapses to one question — are the tubules still intact enough to avidly reabsorb sodium and concentrate urine, or not? That's also why BUN:Cr rises in prerenal states: urea, like sodium, gets passively dragged back with water when flow is sluggish, while creatinine (not reabsorbed) doesn't follow.

Why FENa works Formula: FENa = (Urine Na⁺ ÷ Plasma Na⁺) ÷ (Urine Cr ÷ Plasma Cr) × 100. In prerenal injury the kidney is desperately reabsorbing sodium to restore volume, so almost none appears in the urine — FENa stays low even as creatinine rises.

Acute tubular necrosis

  • Most common intrinsic cause of acute kidney injury in hospitalized patients
  • Two big buckets of cause: ischemic (prolonged prerenal hypoperfusion — proximal tubule and thick ascending limb are most vulnerable, highest oxygen demand) and nephrotoxic
  • Exogenous nephrotoxins: IV contrast, aminoglycosides, cyclosporine, ethylene glycol, acetaminophen (overdose), heavy metals
  • Endogenous nephrotoxins: myoglobin (rhabdomyolysis), uric acid (tumor lysis syndrome), oxalate
  • Hallmark urine finding: muddy brown granular casts
  • Clinical course: oliguric phase → diuretic phase (tubules regenerate but can't yet concentrate urine, risk of dehydration) → recovery phase

Two more named patterns of acute kidney injury

  • Diffuse cortical necrosis: acute infarction of both renal cortices from combined vasospasm and DIC — classically follows an obstetric catastrophe (e.g., placental abruption) or septic shock
  • Renal papillary necrosis: the renal papillae slough off and cause gross hematuria, often triggered by infection or an immune stimulus — remember the four risk factors with SAAD (papa with papillary necrosis): Sickle cell disease/trait, Acute pyelonephritis, Analgesics (NSAIDs), Diabetes mellitus
Exam trap Don't confuse acute interstitial nephritis (immune-mediated, WBC casts, drug hypersensitivity) with acute tubular necrosis (direct toxic/ischemic injury, muddy brown casts) — both are drug-associated but by completely different mechanisms and with different urine sediment.

🔬 Glomerular Disease

See also

Nephrotic syndromes lose protein because the size- and charge-selective glomerular filtration barrier itself is damaged — that three-layer structure is detailed under Gross Anatomy & Body Fluid Compartments → Glomerular filtration barrier.

Urine casts — reading the sediment

  • A cast means blood or pus originated somewhere in the nephron itself, not the bladder/lower tract — bladder cancer and stones cause hematuria without casts, and simple cystitis causes pyuria without casts
  • All casts share a matrix of Tamm–Horsfall protein (uromodulin), normally secreted by tubular cells
Cast typePoints to
RBC castsGlomerulonephritis, hypertensive emergency
WBC castsTubulointerstitial inflammation, acute pyelonephritis, transplant rejection
Granular ("muddy brown") castsAcute tubular necrosis
Fatty casts ("oval fat bodies," Maltese cross under polarized light)Nephrotic syndrome
Waxy castsEnd-stage renal disease / advanced chronic kidney disease
Hyaline castsNonspecific — can be a normal finding with dehydration, exercise, or diuretics
Concept check

Casts are the tell that pathology is glomerular or tubular, not lower-tract — a stone or bladder tumor can bleed heavily but will never produce a cast, since a cast requires the nephron's own tubular lumen to mold it.

Nephrotic vs. nephritic — the defining split

Nephrotic syndromeNephritic syndrome
Core lesionPodocyte / basement membrane injury — loses size/charge barrier for proteinInflammatory injury with leukocyte infiltration — glomerular capillary wall breaks, RBCs escape
UrinalysisHeavy proteinuria (>3.5 g/day), fatty casts, minimal bloodHematuria with dysmorphic RBCs, RBC casts, sub-nephrotic proteinuria
Systemic findingsHypoalbuminemia, edema, hyperlipidemia, hypercoagulability (loss of antithrombin III)Hypertension, oliguria, azotemia
Overall etiologyIdiopathic in ~75%; secondary to systemic disease in ~25%Almost always secondary to an identifiable immune or infectious trigger
Concept check

The nephrotic/nephritic split really tracks one variable: whether the injury damages the filtration barrier quietly (protein leaks, RBCs stay in) or triggers inflammatory rupture of the capillary wall (RBCs leak too). Nephrotic-range proteinuria plus hematuria isn't a contradiction — MPGN and lupus nephritis show both because they mix mechanisms.

Clinical pearl Corticosteroids are a mainstay used to help resolve both nephrotic and nephritic syndromes, though response varies dramatically by underlying disease — excellent in minimal change disease, poor in FSGS and membranous nephropathy.

Nephrotic diseases

DiseaseWho / triggerMicroscopy clue
Minimal change diseaseMost common nephrotic syndrome in young children; can follow a viral illnessNormal light microscopy; effacement of podocyte foot processes on EM; excellent steroid response
Focal segmental glomerulosclerosisMost common in Black adults; idiopathic, superimposed on preexisting kidney disease, secondary to loss of functioning renal mass, or associated with HIV/heroin use/obesitySegmental sclerosis of some glomeruli only; poor steroid response relative to MCD
Membranous nephropathyMost common nephrotic syndrome in adults; idiopathic (anti-PLA2R) or secondary to hepatitis B, malignancy, SLE, gold/penicillamineDiffuse basement membrane thickening; subepithelial spikes on silver stain
Diabetic nephropathyLong-standing hyperglycemia — nonenzymatic glycation of the basement membraneDiffuse and nodular (Kimmelstiel–Wilson) glomerulosclerosis
AmyloidosisMultiple myeloma (AL) or chronic inflammation (AA)Apple-green birefringence with Congo red under polarized light
Concept check

MCD and FSGS sit on a spectrum more than as fully separate diseases — some FSGS is thought to represent an evolution of steroid-unresponsive MCD, which is why a "steroid-resistant MCD" picture should raise suspicion for FSGS missed on a non-representative biopsy sample.

Nephritic diseases

DiseaseMechanismDistinguishing feature
Poststreptococcal GNImmune complex deposition ~2–3 weeks after group A strep infectionLow complement, subepithelial "humps" on EM; self-resolving, mostly in children
IgA nephropathy (Berger disease)Mesangial IgA depositionHematuria within 1–2 days of a mucosal (URI/GI) infection — much faster onset than PSGN
Rapidly progressive (crescentic) GNSevere injury → fibrin/macrophage crescents in Bowman spaceAny severe GN can progress to this pattern; renal failure over weeks
Goodpasture syndromeAntibodies against basement membrane collagen (type IV, α3 chain) in both kidney and lungLinear IF pattern; hemoptysis + hematuria in a young man
Granulomatosis with polyangiitisc-ANCA (PR3) vasculitisUpper + lower respiratory involvement plus pauci-immune GN (no deposits on IF)
Lupus nephritisAnti-dsDNA immune complexesDiffuse proliferative (class IV) form has subendothelial "wire-loop" lesions and worst prognosis
Alport syndromeInherited (X-linked) type IV collagen defect"Basket-weave" splitting of basement membrane on EM; deafness + ocular defects
Membranoproliferative GNImmune complex deposition (type 1) or an autoantibody that stabilizes C3 convertase, "C3 nephritic factor" (type 2, dense deposit disease)Basement membrane splits into two layers — "train-track" appearance on silver/EM; can present as nephrotic, nephritic, or a mix of both
Concept check

Time-to-hematuria is a fast bedside discriminator built into this table: IgA nephropathy flares within a day or two of a mucosal infection because it's a pre-formed antibody response, while PSGN takes 2–3 weeks because fresh immune complexes have to form and deposit after the strep exposure.

Immunofluorescence pattern shortcut
  • Linear IF → antibody against the basement membrane itself (Goodpasture)
  • Granular/"lumpy-bumpy" IF → immune complex deposition (PSGN, membranous, lupus, IgA)
  • Negative/pauci-immune IF → ANCA-associated vasculitis

🦠 Urinary Tract Infection & Interstitial Disease

See also

Acute pyelonephritis and acute interstitial nephritis are both intrinsic causes of AKI in the prerenal/intrinsic/postrenal localization scheme, laid out under Acute Kidney Injury — Classification & Causes → Intrinsic renal causes.

Cystitis vs. pyelonephritis

CystitisAcute pyelonephritis
SiteBladderRenal parenchyma / collecting system
PresentationDysuria, frequency, urgency, suprapubic pain — no systemic signsFever, chills, flank pain, costovertebral angle tenderness, nausea/vomiting
RouteAscending from urethraAscending from bladder (usually) or hematogenous seeding
Urine microscopyPyuria, bacteriuriaPyuria plus white blood cell casts (casts = renal parenchymal origin)
Concept check

The line between cystitis and pyelonephritis is really the line between mucosal and parenchymal infection — that's why WBC casts, which can only be molded in the tubular lumen, are the one urine finding that proves the kidney itself (not just the bladder) is involved.

  • E. coli causes the large majority of uncomplicated UTIs
  • Staphylococcus saprophyticus — second most common cause in young sexually active women
  • Proteus mirabilis — urease-positive, alkalinizes urine, associated with struvite stones
  • Klebsiella and Enterobacter are also common colonic-flora causes of cystitis
  • Nosocomial (catheter-associated) cystitis is more often caused by Pseudomonas or Staphylococcus aureus
  • Risk factors: female urethral anatomy, sexual activity, pregnancy, catheterization, vesicoureteral reflux, obstruction, diabetes
  • Diagnostic threshold: pyuria (>8 leukocytes/high-power field) plus >10⁵ CFU/mL on culture with compatible symptoms

Chronic pyelonephritis

  • Results from recurrent or inadequately treated infection, often with underlying vesicoureteral reflux or obstruction
  • Scarring and deformity of the renal pelvis and calyces
  • Interstitial fibrosis with tubular atrophy
  • Tubular ischemia can produce a microscopic pattern resembling thyroid follicles ("thyroidization" of the kidney) — atrophic tubules filled with eosinophilic, colloid-like casts

Acute interstitial nephritis

  • Hypersensitivity reaction in the renal interstitium — classically drug-induced
  • Common culprits, grouped by the mnemonic DRAINS: Diuretics, Rifampin, Antibiotics (penicillins, cephalosporins), proton pump Inhibitors, NSAIDs, Sulfa drugs — can also follow infection or be idiopathic
  • Classic (but insensitive) triad: fever, rash, eosinophilia
  • Urinalysis: white cells, white cell casts, and eosinophils; sterile pyuria
  • Usually reversible with withdrawal of the offending drug
AIN vs. ATN Acute interstitial nephritis presents with WBC casts and often a triad of fever, rash, and eosinophilia (though the triad is not always present). Acute tubular necrosis presents with muddy brown casts and is caused by ischemia or direct nephrotoxins. Both are drug-associated, but their mechanisms and sediments are distinct.

💎 Nephrolithiasis, Cystic Kidney Disease & Urinary Tract Obstruction

See also

Obstruction from a stone (or any downstream blockage causing hydronephrosis) raises Bowman-space pressure and drops filtration fraction — the Starling-force mechanism behind that is worked out under Renal Blood Flow, Filtration & Clearance → Other variables that shift filtration fraction.

Stone typeRelative frequencyRadiographic appearanceKey associations
Calcium oxalate / phosphateMost common (~80%); more common in men, typically age 20–30, often recurrent every 2–3 years, familial predispositionRadiopaqueHypercalciuria, low urine volume, primary hyperparathyroidism; oxalate risk also rises with fat malabsorption (Crohn disease); calcium phosphate stones favored by alkaline urine (pH >6)
Struvite (Mg-ammonium-phosphate)~10–15%; more common in womenRadiopaque, can fill the collecting system as a staghorn calculusUrease-producing organisms (Proteus), catheterization, recurrent UTI, alkaline urine
Uric acid~5–10%; more common in menRadiolucent (needs CT, not seen on plain film); shows strong negative birefringence under polarized lightAbout half occur with gout; also high cell-turnover states (chemotherapy, leukemia); urine pH runs <5.5
CystineRare (~1%)Radiopaque (contains sulfur)Autosomal recessive cystinuria (defective amino acid transporter), presents in childhood
Concept check

Struvite and uric acid stones are the two types that can be attacked at the metabolic level — struvite by clearing the urease-producing infection, uric acid by alkalinizing the urine — while calcium stones can only be reduced in frequency, which is why prevention and imaging (not medical dissolution) is the calcium-stone strategy.

  • Cardinal presentation: sudden-onset severe flank pain radiating to groin, hematuria, restlessness (contrast with the still posture of peritonitis)
  • Natural inhibitors of stone formation: citrate, nephrocalcin, Tamm–Horsfall protein (uromodulin), and uropontin — low urine citrate is a common, treatable driver of calcium stone formation
  • First-line imaging: noncontrast CT (most sensitive); ultrasound preferred in pregnancy
  • Cystinuria transporter defect: the same PCT carrier that fails to reabsorb cystine also fails to reabsorb COLA — Cystine, Ornithine, Lysine, Arginine; cystine itself is the only one of the four poorly soluble enough to precipitate into stones. Treatment: high fluid intake, urinary alkalinization, and chelating agents (e.g., penicillamine) if refractory
  • Struvite stones form only in the presence of urease-producing bacteria (Proteus, Klebsiella, Staphylococcus saprophyticus) that split urea into ammonia and alkalinize the urine — treatment requires eradicating the infection, often alongside surgical stone removal since antibiotics alone won't dissolve an existing staghorn calculus
  • Uric acid stones are one of the few types that can be dissolved medically — alkalinizing the urine (raising pH) plus allopurinol to lower uric acid production

Cystic kidney disease

DiseaseInheritanceKey features
Autosomal dominant polycystic kidney diseaseAD (PKD1/PKD2)Presents in midlife; bilateral, large, palpable cystic kidneys with parenchyma progressively replaced by cysts; hypertension, hematuria, progressive renal failure; associated with berry aneurysms (subarachnoid hemorrhage risk) and cystic disease in other organs, especially the liver
Autosomal recessive polycystic kidney diseaseARPresents in infancy with enlarged, palpable kidneys on newborn exam; small collecting-duct cysts, congenital hepatic fibrosis, can be lethal from pulmonary hypoplasia (oligohydramnios) or progress to renal failure in childhood
Medullary cystic kidney diseaseADSmall, shrunken kidneys with medullary cysts; progressive renal failure in adulthood
Simple renal cystsAcquired, non-geneticCommon, usually incidental, benign; thin-walled, fluid-filled, and anechoic on ultrasound — account for the majority of all renal masses found
Concept check

ADPKD and ARPKD are easy to mix up by name alone — the fastest discriminator is age at presentation (midlife vs. infancy) plus inheritance pattern, since both can show large cystic kidneys and hepatic involvement on imaging.

Simple vs. complex cysts A cyst that's septated, has an enhancing wall, or contains solid components is called "complex" and needs follow-up imaging or removal, since these features raise the possibility of renal cell carcinoma hiding within it — a plain simple cyst does not need this workup.

Hydronephrosis

  • Distention of the renal pelvis and/or calyces, almost always from downstream urinary tract obstruction — stones, severe BPH, congenital narrowing, tumor, or ureteral injury
  • Dilation occurs proximal to (upstream of) the blocked segment
  • Serum creatinine only rises if the obstruction is bilateral, or the patient has just one working kidney — a unilaterally obstructed kidney in someone with two functioning kidneys can hide behind a normal creatinine
  • Prolonged obstruction leads to compression and eventual atrophy of the renal cortex and medulla

Urinary incontinence — three mechanisms

StressUrgencyOverflow
MechanismUrethral outlet incompetence — leaks with ↑ intra-abdominal pressure (coughing, sneezing, lifting)Detrusor overactivity — sudden urge, then leakIncomplete bladder emptying (weak detrusor or outlet obstruction) — leaks with overfilling
AssociationsObesity, pregnancy, vaginal delivery, prostate surgeryUTI, bladder stones/tumors, pelvic radiationBPH, neurogenic bladder (spinal injury, MS, diabetic neuropathy), anticholinergic drugs, polyuria
ManagementPelvic floor exercises, weight loss, pessaryBladder training, antimuscarinics, β3-agonists, botulinum toxinCatheterization, relieve the obstruction (e.g., α-blockers for BPH)
Concept check

Stress and urgency incontinence sit at opposite ends of the same continence system — an outlet that fails to stay shut vs. a detrusor that refuses to stay quiet — while overflow is a mechanically distinct third problem (a bladder that can't empty), which is why an antimuscarinic that helps urgency incontinence would make overflow incontinence worse.

📉 Chronic Kidney Disease, Uremia & Renovascular Disease

See also

Renal osteodystrophy's calcium-phosphate cascade runs on the PTH/vitamin D axis, explained in more depth under Hormonal & Neural Regulation → Parathyroid hormone & vitamin D on the nephron.

Chronic kidney disease

  • Leading causes worldwide: diabetes mellitus and hypertension, by a wide margin
  • Defined by ≥3 months of reduced GFR or kidney damage markers
  • Overt uremic symptoms typically emerge once GFR falls to roughly 50–65% of normal — by-products of protein and amino acid metabolism (especially urea) start driving the multi-system findings below
  • Imaging clue: bilateral small, echogenic kidneys (contrast with normal/enlarged kidneys in ADPKD or diabetic nephropathy)

Uremic syndrome — systems affected, one line each

  • Cardiovascular: hypertension, uremic pericarditis, accelerated atherosclerosis
  • Hematologic: normocytic normochromic anemia (↓ erythropoietin), lymphocytopenia and leukopenia (↑ infection risk), platelet dysfunction (bleeding despite normal platelet count), burr cells (RBCs with irregular spiny projections) on smear
  • Neurologic: asterixis, headache, fatigue, seizures, encephalopathy, peripheral neuropathy
  • GI: nausea, anorexia, peptic ulcer, uremic fetor, increased GI bleeding risk
  • Endocrine/metabolic: secondary hyperparathyroidism from phosphate retention and low active vitamin D → renal osteodystrophy/osteomalacia; impaired growth and development; infertility and sexual dysfunction
  • Dermatologic: pallor, pruritus, uremic frost (rare, advanced)
  • Electrolyte: hyperkalemia, hyperphosphatemia, hypertriglyceridemia, hyperuricemia, hypocalcemia, metabolic acidosis
Two consolidating mnemonics
  • Overall consequences of renal failure — MAD HUNGER: Metabolic Acidosis, Dyslipidemia (especially high triglycerides), High potassium, Uremia, Na⁺/H₂O retention (heart failure, edema, hypertension), Growth retardation/developmental delay, Erythropoietin deficiency (anemia), Renal osteodystrophy
  • Core uremic symptom cluster — pronounced "Ure-PEAN": Pericarditis, Encephalopathy (asterixis), Anorexia, Nausea
  • Phosphate stays deceptively normal in early CKD because rising fibroblast growth factor 23 (FGF23) forces more renal phosphate excretion to compensate — "FGF23 fights f(ph)osphate" — so a normal phosphate on labs doesn't rule out early CKD
Clinical pearl Dialysis indications are worth memorizing directly with AEIOU: refractory Acidosis, Electrolyte abnormalities (especially hyperkalemia), Intoxication (e.g., lithium, toxic alcohols), fluid Overload, and Uremic symptoms (encephalopathy, pericarditis).

Renal osteodystrophy — the chain reaction

CKD → phosphate retention + failing 1α-hydroxylase → high phosphate, low active vitamin D
↓
High phosphate binds free calcium in tissue → serum calcium falls further
↓
Low calcium + low vitamin D → secondary hyperparathyroidism → if unchecked, tertiary (autonomous) hyperparathyroidism
↓
Chronic PTH excess pulls calcium from bone → subperiosteal thinning, bone pain and fracture risk
Concept check

The osteodystrophy cascade is a chain, not parallel effects — treating only the calcium without addressing the upstream phosphate retention and low vitamin D won't stop the PTH drive, which is why phosphate binders and vitamin D analogs are needed alongside (not instead of) calcium correction.

Renovascular disease — a common, correctable cause of hypertension

  • Renal artery stenosis → reduced renal perfusion is misread by the kidney as systemic hypotension → renin rises → angiotensin II rises → secondary hypertension, one of the most common identifiable causes in adults
  • Atherosclerotic plaque: proximal third of the renal artery — typically older males with other vascular risk factors
  • Fibromuscular dysplasia: distal two-thirds of the artery or its segmental branches — typically younger or middle-aged women, giving a classic "string of beads" appearance on angiography
  • Unilateral stenosis lets the affected kidney atrophy over time and shows higher renin on that side specifically when sampled
  • Bilateral stenosis is the setting where starting an ACE inhibitor or ARB can precipitate a sharp rise in creatinine, because the drug removes the angiotensin-mediated efferent constriction both kidneys were relying on to maintain filtration pressure
Concept check

Atherosclerotic and fibromuscular renal artery stenosis aren't just different ages and sexes — they also predict different angiographic patterns (proximal focal plaque vs. distal "string of beads"), so the demographic clue and the imaging clue should point the same direction on a vignette.

🎗️ Renal Neoplasms

See also

Renal cell carcinoma's paraneoplastic syndromes (ectopic EPO, renin, PTHrP) hijack the kidney's own hormone-producing role, covered under Hormonal & Neural Regulation → Kidney as an endocrine/paracrine organ.

TumorTypical ageGenetics / risk factorsDistinguishing feature
Renal cell carcinomaAdults, 50s–70s, male predominanceSmoking; VHL gene loss (chromosome 3p) — sporadic or as part of von Hippel–Lindau syndromeClassic triad (flank pain, hematuria, palpable mass) is actually uncommon; can secrete ectopic EPO, PTHrP, renin causing paraneoplastic syndromes; arises from proximal tubule (clear cell most common subtype)
Wilms tumor (nephroblastoma)Children, peak 2–4 yearsWT1 tumor suppressor loss (chromosome 11p); part of WAGR and Denys-Drash syndromesLarge, unilateral abdominal mass in an otherwise well-appearing child; can cause hematuria, hypertension (renin secretion), or intestinal obstruction from mass effect; classic "two-hit" tumor suppressor model
Transitional cell (urothelial) carcinomaAdultsSmoking, aniline dyes, cyclophosphamide, chronic Schistosoma infection (favors squamous instead)Most common tumor of the renal pelvis/ureter/bladder; painless hematuria is the classic presenting sign
AngiomyolipomaAdultsSporadic or tuberous sclerosisBenign; contains fat, smooth muscle, and vessels — fat content is diagnostic on CT
Concept check

All four tumors can present with hematuria, but the accompanying clue localizes them: RCC pairs with paraneoplastic hormone effects, Wilms with a palpable mass in an otherwise well child, and TCC with painless hematuria alone — the extra detail, not the hematuria itself, points to the diagnosis.

Association to remember Renal cell carcinoma is the kidney manifestation of von Hippel–Lindau syndrome — pair it mentally with cerebellar hemangioblastoma and pheochromocytoma when VHL is on the differential. Quick memory trick: RCC has 3 letters, it's linked to chromosome 3, and it's associated with VHL (also 3 letters).
RCC paraneoplastic syndromes Remember with PEAR — ectopic secretion of PTHrP (hypercalcemia), Erythropoietin (secondary polycythemia), ACTH (Cushing-like features), and Renin (hypertension).

Renal oncocytoma — the benign look-alike

  • Benign epithelial tumor arising from collecting-duct intercalated cells — large eosinophilic cells packed with mitochondria
  • Grossly shows a well-circumscribed mass with a characteristic central scar; on histology the cells lack the perinuclear clearing/halo seen in chromophobe RCC, which is the main lesion it has to be distinguished from
  • Presents with painless hematuria, flank pain, or an abdominal mass — indistinguishable from RCC by symptoms alone, so it's usually resected just to rule malignancy out

Wilms tumor syndromes, spelled out

  • WAGR complex (WT1 gene deletion): Wilms tumor, Aniridia (missing iris), Genitourinary malformations, Range of developmental delays
  • Denys-Drash syndrome (WT1 point mutation): Wilms tumor, early-onset nephrotic syndrome from diffuse mesangial sclerosis, and gonadal dysgenesis (male pseudohermaphroditism)
  • Beckwith-Wiedemann syndrome (WT2/imprinting defect on chromosome 11, causing genetic overexpression): Wilms tumor, organomegaly, macroglossia, hemihyperplasia, omphalocele

Bladder cancer — two histologic types, different risk factors

  • Urothelial (transitional cell) carcinoma: the most common bladder tumor by far, and the most common tumor of the urinary tract overall (renal calyces, pelvis, ureters, or bladder). Suggested by Painless hematuria (no casts, since it's a lower-tract lesion). Risk factors spell "Pee SAC": tobacco Smoking, Aromatic amines (dye/rubber industry exposure), Cyclophosphamide
  • Squamous cell carcinoma of the bladder: arises from chronic irritation → squamous metaplasia → dysplasia. Four "S" risk factors: Schistosoma haematobium infection (endemic to parts of the Middle East/Africa), chronic cystitis, smoking, and chronic bladder stones. Also presents with painless hematuria and no casts
Concept check

Urothelial and squamous bladder cancer split cleanly by their driving exposure — one from chronic chemical/smoking carcinogen exposure, the other from chronic irritation and metaplasia (schistosomiasis, chronic stones) — so a schistosomiasis history should shift the differential toward squamous, not urothelial, cancer despite identical painless hematuria.

💊 Diuretics & Water-Balance Drugs

See also

ACE inhibitors, ARBs, and aliskiren each interrupt a different step of the same cascade — the full renin–angiotensin–aldosterone pathway they target is diagrammed under Hormonal & Neural Regulation → Renin–angiotensin–aldosterone axis.

Site of action along the nephron

PCT — carbonic anhydrase inhibitors (acetazolamide)
Thick ascending limb — loop diuretics (furosemide, bumetanide, torsemide, ethacrynic acid)
Distal convoluted tubule — thiazides (hydrochlorothiazide, chlorthalidone)
Collecting duct — potassium-sparing agents (spironolactone/eplerenone, triamterene/amiloride)
Whole tubule (osmotic) — mannitol
ClassMechanismElectrolyte signatureNotable use / toxicity
Loop diureticsInhibit Na⁺/K⁺/2Cl⁻ cotransporterHypokalemia, metabolic alkalosis, hypocalcemiaPulmonary edema, CHF — also have a direct pulmonary vasodilatory effect that helps acute pulmonary edema independent of diuresis; rapid onset, short duration; toxicity: ototoxicity, sulfa allergy (except ethacrynic acid)
ThiazidesInhibit Na⁺/Cl⁻ cotransporter in DCTHypokalemia, metabolic alkalosis, hypercalcemia (opposite of loop)First-line hypertension, nephrogenic DI, idiopathic hypercalciuria; toxicity: hyperglycemia, hyperlipidemia, hyperuricemia; sulfa derivatives — use cautiously with sulfa allergy
K⁺-sparing (aldosterone antagonists)Block mineralocorticoid receptorHyperkalemiaHeart failure mortality benefit, hyperaldosteronism; spironolactone causes gynecomastia (antiandrogen effect)
K⁺-sparing (ENaC blockers)Block Na⁺ channel directly in collecting ductHyperkalemiaOften paired with a thiazide/loop to offset potassium loss
Carbonic anhydrase inhibitorsBlock HCO₃⁻ reabsorption in PCTMetabolic acidosis, mild hypokalemiaGlaucoma, altitude sickness, urine alkalinization
Osmotic diuretic (mannitol)Increases tubular fluid osmolality — prevents water reabsorption throughout the nephronLittle electrolyte change; risk of volume overload before diuresis↓ intracranial/intraocular pressure; contraindicated in anuria and heart failure
Concept check

Diuretic potency tracks how much filtered sodium is normally reabsorbed at that site — loops act on the thick ascending limb (~25% of filtered Na⁺), making them the most powerful, while K⁺-sparing agents act on the collecting duct (~5%), making them weak diuretics used mainly to blunt the potassium loss from something stronger.

Drug-class mnemonics worth keeping straight
  • Loop diuretic toxicities — OHH DAANG: Ototoxicity, Hypokalemia, Hypomagnesemia, Dehydration, Allergy (sulfa), metabolic Alkalosis, interstitial Nephritis, Gout
  • Ethacrynic acid: "loop earrings hurt your ears" — same mechanism as furosemide but even more ototoxic, and it's the loop diuretic of choice for a patient with a true sulfa allergy
  • Thiazide toxicities — "Hypergluc": hyperglycemia, hyperlipidemia, hyperuricemia, hypercalcemia (plus hypokalemia and hyponatremia)
  • K⁺-sparing agents — "keep your SEAT": Spironolactone, Eplerenone, Amiloride, Triamterene
  • Acetazolamide: "acid-azolamide causes acidosis" — a carbonic anhydrase inhibitor, so it's the one diuretic class that produces metabolic acidosis instead of alkalosis
Calcium rule to memorize Loop diuretics waste calcium (useful in hypercalcemic emergencies); thiazides retain calcium (useful in idiopathic hypercalciuria/stone prevention, but can unmask hyperparathyroidism).
Why loop/thiazide diuretics cause metabolic alkalosis Three mechanisms stack together: volume contraction raises angiotensin II, which drives more Na⁺/H⁺ exchange (and therefore more HCO₃⁻ reabsorption) in the PCT — "contraction alkalosis." Separately, the K⁺ lost in the urine is partly replaced by K⁺ leaving cells in exchange for H⁺ entering them, raising blood pH further. Finally, once the body is K⁺-depleted, the collecting duct starts exchanging H⁺ (instead of K⁺) for reabsorbed Na⁺ — producing urine that is paradoxically acidic even though the blood is alkalotic, a state called paradoxical aciduria.

RAAS blockers

ClassMechanismClinical useAdverse effects
ACE inhibitors (captopril, enalapril, lisinopril, ramipril)Block conversion of angiotensin I → II, so efferent arteriolar constriction eases and GFR drops slightly; also block breakdown of bradykinin, a vasodilatorHypertension, heart failure (mortality benefit), proteinuria/diabetic nephropathy — slows GBM thickening by lowering intraglomerular pressureCATCHH: Cough (dry), Angioedema (bradykinin-driven; avoid in C1 esterase inhibitor deficiency), Teratogen, ↑ Creatinine, Hyperkalemia, Hypotension
ARBs (losartan, candesartan, valsartan)Directly block the angiotensin II receptor — same downstream hemodynamic effect as ACE inhibitors but without touching bradykininSame indications as ACE inhibitors; preferred when a patient can't tolerate an ACE inhibitor's cough or angioedemaHyperkalemia, ↓ GFR, hypotension, teratogen — no cough (bradykinin is untouched)
Aliskiren ("Aliskiren kills renin")Direct renin inhibitor — blocks the very first step, angiotensinogen → angiotensin IHypertensionHyperkalemia, ↓ GFR, hypotension, angioedema; avoid combining with an ACE inhibitor or ARB, and contraindicated in pregnancy
Concept check

ACE inhibitors and ARBs both drop GFR by the same efferent-dilation mechanism, but only ACE inhibitors touch bradykinin breakdown — that single difference is the entire reason cough and angioedema are ACE-specific side effects that ARBs don't share.

Exam trap All three RAAS blockers are relatively contraindicated in bilateral renal artery stenosis — removing angiotensin II's efferent constriction in a kidney that depends on it to maintain filtration pressure can push GFR down sharply and precipitate renal failure.

ADH-axis drugs

  • Desmopressin (DDAVP): ADH analog — treats central diabetes insipidus and some bleeding disorders (releases vWF)
  • Demeclocycline / lithium: ADH antagonists at the collecting duct — used to treat SIADH; lithium's use here also explains why it can cause nephrogenic diabetes insipidus as a side effect
  • Central DI responds to desmopressin; nephrogenic DI does not (the receptor/channel machinery itself is broken) — a fast way to distinguish the two on a vignette
Acetazolamide's two non-diuretic uses
  • Glaucoma: carbonic anhydrase is also needed to secrete bicarbonate into the aqueous humor — inhibiting it reduces aqueous humor production and lowers intraocular pressure
  • Altitude sickness: the hyperventilation triggered by hypoxia at altitude causes a respiratory alkalosis; acetazolamide accelerates the kidney's compensatory response by forcing bicarbonate excretion, producing a mild metabolic acidosis that speeds acclimatization

💧 Renal Blood Flow, Filtration & Clearance

See also

The Starling forces analyzed here act across the physical three-layer barrier described under Gross Anatomy & Body Fluid Compartments → Glomerular filtration barrier.

Core quantities

QuantityTypical valueHow it's measured / key point
Renal blood flow (RBF)~20–25% of cardiac outputAutoregulated (myogenic reflex + tubuloglomerular feedback) across MAP 80–180 mmHg; RBF = RPF ÷ (1 − hematocrit)
Renal plasma flow (RPF)—Estimated by PAH clearance (freely filtered + actively secreted → clearance ≈ RPF, underestimates true value by roughly 10%)
Glomerular filtration rate (GFR)~90–125 mL/minGold standard = inulin clearance (filtered, not reabsorbed/secreted); clinically estimated with creatinine; declines steadily with normal aging
Filtration fraction (FF)~20%FF = GFR / RPF
Concept check

These four quantities aren't independent facts — they're linked by FF = GFR/RPF, so any question that shifts one (e.g., efferent constriction raising GFR while RPF falls) is really just asking you to track how FF moves as a consequence.

Clearance equation Clearance = (Urine concentration × Urine flow rate) ÷ Plasma concentration — the volume of plasma fully cleared of a substance per minute.

Starling forces across the glomerular capillary

  • Filtration is always net-favored across the glomerulus (unlike systemic capillaries)
  • Hydrostatic pressure in the capillary (PGC) pushes fluid out — raised by afferent dilation or efferent constriction
  • Hydrostatic pressure in Bowman space (PBS) opposes filtration — raised by ureteral obstruction
  • Oncotic pressure in the capillary (πGC) opposes filtration and rises along the capillary length as protein concentrates
  • Oncotic pressure in Bowman space (πBS) is normally ~0 (protein doesn't cross an intact filter)
Concept check

Because filtration is always net-favored across the glomerulus — unlike systemic capillaries, where forces balance out near the arteriolar end — even small pressure changes reliably move GFR in a predictable direction rather than flipping filtration on and off.

Other variables that shift filtration fraction

  • Ureteral obstruction → raises Bowman-space pressure → decreases FF
  • Increased plasma protein (e.g., multiple myeloma) → raises capillary oncotic pressure → decreases FF
  • Decreased plasma protein (e.g., liver failure, nephrotic syndrome) → lowers capillary oncotic pressure → increases FF

Arteriolar tone and GFR — the pairs students mix up

ChangeRBFGFRFFTypical trigger
Afferent constriction↓↓No changeNSAIDs (block protective prostaglandin dilation)
Afferent dilation↑↑No changeProstaglandins
Efferent constriction↓↑↑Angiotensin II
Efferent dilation↑↓↓ACE inhibitors / ARBs
Dehydration↓↓↑Volume depletion — RBF falls more steeply than GFR
Ureter constrictionNo change↓↓Obstruction raises Bowman-space pressure, opposing filtration
Two paired mnemonics PDA: Prostaglandins Dilate the Afferent arteriole. ACE: Angiotensin II Constricts the Efferent arteriole. Put together, this is exactly why NSAIDs and ACE inhibitors are a risky combination in a volume-depleted patient: NSAIDs remove the afferent dilation and ACE inhibitors remove the efferent constriction at the same time, and GFR can collapse.

Clearance logic for individual solutes

  • Substance cleared faster than GFR → net tubular secretion (e.g., PAH, most organic acids/bases)
  • Substance cleared slower than GFR (or zero) → net tubular reabsorption or non-filtration (e.g., glucose normally, plasma proteins)
  • Substance cleared equal to GFR → freely filtered, neither reabsorbed nor secreted (inulin — the definition of an ideal GFR marker)
  • Reabsorption of actively-transported solutes (glucose, amino acids) is saturable — described by a transport maximum (Tm); above Tm, the excess spills into urine
  • Glucose Tm is reached around a plasma level of ~350–375 mg/dL — above that, filtered glucose exceeds reabsorptive capacity and drives an osmotic diuresis, the mechanism behind polyuria in uncontrolled diabetic hyperglycemia
  • Glucosuria actually begins earlier, around a plasma level of ~200 mg/dL (the "threshold") — the gap between threshold and Tm is the splay, a gradual rather than all-or-nothing transition caused by natural variation in transporter capacity across different nephrons
  • Normal pregnancy raises GFR, which filters more glucose at any given plasma level and effectively lowers the threshold — mild glucosuria at a normal plasma glucose is common in pregnancy and isn't necessarily diabetes
  • SGLT2 inhibitors (the "-flozin" drugs) block the same PCT transporter directly, causing glucosuria even at plasma glucose levels below 200 mg/dL — this is their intended mechanism, not a side effect
Concept check

Tₘ and threshold aren't the same number because nephrons vary in transporter capacity — some saturate before others, so splay is really nephron-to-nephron heterogeneity showing up as a gradual curve instead of a sharp cutoff.

Fanconi syndrome Generalized failure of proximal tubule reabsorption — hereditary or acquired (e.g., heavy metals, multiple myeloma light chains). Loses glucose, amino acids, phosphate, and bicarbonate together, producing glycosuria, aminoaciduria, hyperphosphaturia, and a proximal (type 2) RTA pattern of metabolic acidosis all at once.
Exam trap Creatinine clearance overestimates true GFR because a small amount is also secreted by the tubules — but this is conveniently offset by lab assays that also slightly overestimate plasma creatinine, making it "accidentally accurate" for clinical use. Muscle mass distorts this in both directions: low muscle mass (elderly, cachectic patients) means less creatinine is generated, so the estimated GFR looks falsely reassuring even as true GFR falls; high muscle mass (bodybuilders) generates excess creatinine and can make a genuinely normal GFR look falsely low.
After a nephrectomy Losing one kidney doesn't just halve overall function proportionally in the short term — the remaining kidney's own GFR initially drops to roughly 50% of its pre-donation value, before compensatory hypertrophy gradually restores some of that lost capacity over the following months.

🧬 Hormonal & Neural Regulation

Renin–angiotensin–aldosterone axis

↓ Afferent arteriole pressure / ↓ NaCl at macula densa / β1 stimulation
→
JG cells release renin
→
Angiotensinogen → Angiotensin I
→
ACE (lung) → Angiotensin II
  • Angiotensin II: constricts efferent arteriole, stimulates aldosterone (zona glomerulosa), stimulates ADH and ACTH release, drives thirst, and directly increases proximal Na⁺/H⁺ exchange
  • Angiotensin II is the most potent endogenous vasoconstrictor acting on renal arterioles at physiologic levels
  • Aldosterone acts on principal cells: reabsorb Na⁺ (and water follows), secrete K⁺; acts on intercalated cells to secrete H⁺
  • Angiotensin II is further broken down to angiotensin III — still a potent aldosterone stimulator, but a much weaker vasoconstrictor than angiotensin II
  • ACE inhibitors (e.g., captopril, enalapril) lower blood pressure by blocking the angiotensin I → II conversion, which also reduces aldosterone release; ARBs (e.g., losartan, valsartan) instead block angiotensin II from reaching its receptor, preventing efferent arteriolar constriction
Concept check

Angiotensin II is doing three separate jobs off one signal — vasoconstricting, driving aldosterone release, and directly boosting PCT sodium reabsorption — so blocking it lowers blood pressure through more than vasodilation alone.

Antidiuretic hormone (ADH / vasopressin)

  • Released from posterior pituitary in response to ↑ plasma osmolality (sensed by hypothalamic osmoreceptors) or severe volume depletion
  • Binds V2 receptors on principal cells → ↑ cAMP → inserts aquaporin-2 channels → ↑ water reabsorption, concentrated urine
  • Governs water balance; aldosterone governs solute (Na⁺/K⁺) balance — a useful one-line distinction

Atrial natriuretic peptide (ANP) & BNP

  • Released by atrial (ANP) / ventricular (BNP) myocytes in response to stretch from volume overload
  • Dilates afferent arteriole, constricts efferent → raises GFR
  • Inhibits renin and aldosterone → promotes natriuresis and diuresis — a physiologic counterweight to RAAS

Parathyroid hormone & vitamin D on the nephron

  • PTH acts on PCT: inhibits phosphate reabsorption (phosphaturic) and activates 1α-hydroxylase → more active vitamin D
  • PTH acts on DCT: increases Ca²⁺ reabsorption
  • Active vitamin D (1,25-dihydroxyvitamin D) increases both intestinal and renal Ca²⁺/phosphate reabsorption
Memory anchor Four hormones, four different jobs: aldosterone = sodium, ADH = water, PTH = calcium/phosphate, ANP = volume off-switch.

Juxtaglomerular apparatus

  • Sits where the distal tubule loops back to touch its own glomerulus's afferent arteriole
  • Juxtaglomerular cells: modified smooth muscle in the afferent arteriole wall — sense arteriolar pressure directly and secrete renin
  • Macula densa: specialized DCT cells sitting right against the arterioles — sense NaCl delivery and signal the JG cells via paracrine communication
  • Function: short-term, this apparatus is the effector arm of tubuloglomerular autoregulation; long-term, it's the trigger for the whole renin–angiotensin–aldosterone cascade
Concept check

The JGA runs on two timescales at once — moment-to-moment tubuloglomerular feedback locally, and the slower systemic RAAS cascade for long-term pressure control — which is why JGA damage can derange both local autoregulation and blood pressure at the same time.

Kidney as an endocrine/paracrine organ

  • Erythropoietin: released by peritubular interstitial cells in response to hypoxia — stimulates RBC production in bone marrow; this is why chronic kidney disease causes a normocytic anemia, and why replacement EPO can raise blood pressure as a side effect
  • Calcitriol (active vitamin D): PCT cells convert 25-OH vitamin D to the active 1,25-(OH)₂ form via 1α-hydroxylase, a step stimulated by PTH — increases intestinal calcium absorption
  • Prostaglandins: locally vasodilate the afferent arteriole to protect renal blood flow, especially when systemic pressure drops — this is exactly the protective effect NSAIDs block, which is why NSAIDs are risky in volume-depleted patients
  • Dopamine: secreted locally by proximal tubule cells, promotes natriuresis; at low concentrations it dilates the renal vasculature and raises renal blood flow with little GFR change, but at higher doses it becomes a vasoconstrictor instead

Potassium shifts — what pushes K⁺ into vs. out of cells

Shifts K⁺ into cells (risk of hypokalemia)

  • Alkalosis (H⁺ leaves cells, K⁺ moves in to balance charge)
  • Insulin (drives Na⁺/K⁺-ATPase activity)
  • β-agonists

Shifts K⁺ out of cells (risk of hyperkalemia)

  • Acidosis
  • Insulin deficiency, β-blockers, digoxin (all impair the Na⁺/K⁺-ATPase)
  • Cell lysis / tissue breakdown (tumor lysis, rhabdomyolysis)
  • Succinylcholine (opens nicotinic ACh receptor channels)
  • Severe hyperosmolality — water is pulled out of cells and K⁺ follows by solvent drag
Concept check

Nearly every trigger in this list acts through the same lever — Na⁺/K⁺-ATPase activity — so anything that boosts the pump (insulin, β-agonists, alkalosis) pulls K⁺ into cells, and anything that impairs it (acidosis, β-blockers, digoxin) pushes K⁺ back out.

How these hormones reshape the fluid compartments

Reasoning through six scenarios by whether volume is gained/lost and whether the fluid is isotonic, hypertonic, or hypotonic:

ScenarioExampleECF volumeICF volumeOsmolarity
Isosmotic volume expansionIsotonic (normal) saline infusion↑No changeNo change
Isosmotic volume contractionDiarrhea↓No changeNo change
Hyperosmotic volume expansionHigh dietary NaCl intake↑↓↑
Hyperosmotic volume contractionSweating, fever, diabetes insipidus↓↓↑
Hyposmotic volume expansionSIADH↑↑↓
Hyposmotic volume contractionAdrenal insufficiency↓↑↓
  • Rule of thumb: water always shifts to equalize osmolarity between ICF and ECF — trace the water, not the solute, to get ICF volume right
  • An isotonic fluid shift never moves water across cell membranes, so ICF volume never changes in the top two rows
Concept check

Tracking ICF volume is really just tracking water movement, not solute movement — an isotonic fluid never crosses the cell membrane at all, so it's the fluid's tonicity, not the volume change itself, that decides whether ICF shrinks, swells, or stays put.

⚖️ Acid–Base Physiology & Tubular Transport

See also

Loop and thiazide diuretics are a classic clinical trigger for the metabolic alkalosis discussed here — the three-mechanism explanation for why is worked out under Diuretics & Water-Balance Drugs → Why loop/thiazide diuretics cause metabolic alkalosis.

Anion gap

  • AG = Na⁺ − (Cl⁻ + HCO₃⁻); normal range roughly 8–12 mEq/L
  • Elevated AG means an unmeasured acid has accumulated (lactate, ketoacids, toxin anions)
  • Normal AG (hyperchloremic) acidosis means bicarbonate was lost directly and chloride rose to compensate — GI loss (diarrhea) or renal tubular acidosis

High anion-gap causes

  • Lactic acidosis (sepsis, hypoperfusion)
  • Diabetic / alcoholic / starvation ketoacidosis
  • Uremia (advanced renal failure)
  • Toxic alcohols — methanol, ethylene glycol
  • Salicylate toxicity

GOLDMARK as a fuller checklist: Glycols (ethylene, propylene), chOxoproline (chronic acetaminophen use), L-lactate, D-lactate, Methanol, Aspirin (late), Renal failure, Ketones.

Normal anion-gap causes

  • Diarrhea (GI bicarbonate loss)
  • Renal tubular acidosis, types 1/2/4
  • Carbonic anhydrase inhibitor use
  • Early/mild renal insufficiency

SHARDS as a fuller checklist: Spironolactone, Hyperchloremia/hyperalimentation, Addison disease/acetazolamide, Renal tubular acidosis, Diarrhea, Saline infusion.

Concept check

High and normal anion-gap acidosis aren't mechanistically different diseases — both lose bicarbonate. They differ only in whether an unmeasured acid anion (high gap) or chloride (normal gap) fills the resulting space, which is exactly what the anion gap formula is built to detect.

Working up metabolic alkalosis by urine chloride

  • Check urine Cl⁻ once you've confirmed metabolic alkalosis — it separates the two mechanisms driving it
  • Saline-responsive (urine Cl⁻ <20 mEq/L): volume-depleted, chloride-avid state — vomiting, recent loop/thiazide use, antacid overuse; corrects with volume/chloride repletion
  • Saline-resistant (urine Cl⁻ >20 mEq/L): mineralocorticoid excess is driving it independent of volume status — hyperaldosteronism, Bartter/Gitelman syndrome, current diuretic use; volume repletion alone won't fix it

Clinical presentation by disturbance type

DisturbancePresentation cluesAdditional causes
Metabolic acidosisFatigue, shortness of breath, abdominal pain, vomiting, Kussmaul (deep, labored) respirations, hypotension, tachycardiaChronic renal failure, acetazolamide
Respiratory acidosisHypercapnia, confusion, blunted sensation, asterixis, papilledema (from CO₂-driven cerebral vasodilation)Respiratory-depressant drugs, cerebral disease, cardiopulmonary arrest, neuromuscular disease (e.g., myasthenia gravis)
Metabolic alkalosisOften asymptomatic; can cause apathy, stupor, confusion; tetany if paired with hypocalcemiaVomiting, loop/thiazide diuretics, milk-alkali syndrome, Cushing syndrome, primary aldosteronism
Respiratory alkalosisHyperventilation, numbness, tingling/paresthesias, tetany if severeAsthma, pneumonia, pulmonary edema/fibrosis, high altitude, anxiety, pregnancy, gram-negative sepsis, salicylate toxicity (early)

Renal tubular acidosis at a glance

TypeDefectSerum K⁺Notes
Type 1 (distal)Can't secrete H⁺ in collecting ductLowUrine pH stays >5.5; risk of nephrocalcinosis
Type 2 (proximal)Can't reabsorb filtered HCO₃⁻LowOften part of Fanconi syndrome (also lose glucose, amino acids, phosphate)
Type 4Aldosterone deficiency or resistanceHighMost common RTA in adults; seen with diabetic nephropathy
Concept check

Type 1 and type 2 RTA both cause hypokalemic, hyperchloremic acidosis and look identical on basic electrolytes — the real difference is location and mechanism (can't secrete acid distally vs. can't reabsorb bicarbonate proximally), which only shows up as differing urine pH and stone risk.

Inherited tubular transport defects

Order to memorize them in, working from proximal tubule to collecting duct: Fanconi → Bartter → Gitelman → Liddle → SAME.

DisorderSegment / defectAcid–base & K⁺ signatureNotes
Fanconi syndromeGeneralized PCT reabsorption failureProximal (type 2) RTA — metabolic acidosis, hypokalemia, hypophosphatemiaHereditary (e.g., Wilson disease, cystinosis) or acquired (multiple myeloma, ischemia, heavy metals, some chemo drugs); causes growth restriction and rickets in children
Bartter syndromeThick ascending limb Na⁺/K⁺/2Cl⁻ cotransporter failsMetabolic alkalosis, hypokalemia, hypochloremia, hypercalciuriaAutosomal recessive; looks like someone is chronically on a loop diuretic
Gitelman syndromeDCT Na⁺/Cl⁻ cotransporter failsMetabolic alkalosis, hypokalemia, hypochloremia, hypomagnesemia (but low urine calcium, unlike Bartter)Autosomal recessive; looks like chronic thiazide use, milder than Bartter
Liddle syndromeGain-of-function mutation in the collecting-duct Na⁺ channel (ENaC) — degrades too slowly, so it stays activeMetabolic alkalosis, hypokalemia, hypertension, but aldosterone is low/undetectableAutosomal dominant; mimics hyperaldosteronism at the bedside but the renin-aldosterone axis is suppressed; treat with amiloride (blocks the channel directly)
Syndrome of apparent mineralocorticoid excess (SAME)11β-hydroxysteroid dehydrogenase deficiency — cortisol can no longer be inactivated to cortisone, so it keeps stimulating the mineralocorticoid receptorMetabolic alkalosis, hypokalemia, hypertension, low aldosteroneHereditary, or acquired from real licorice (glycyrrhetinic acid blocks the same enzyme); treat with K⁺-sparing diuretics or exogenous corticosteroid to suppress endogenous cortisol
Separating the four hypokalemic-alkalosis look-alikes Bartter and Gitelman both have high renin and aldosterone (the kidney is genuinely losing salt, so RAAS ramps up to compensate) — Gitelman is distinguished from Bartter by low magnesium and low urine calcium. Liddle and SAME both have low renin and aldosterone (the collecting duct is being over-activated directly, so the body shuts RAAS down) — but Liddle comes from a channel mutation while SAME comes from unopposed cortisol.

Widening the differential — renin/aldosterone patterns across renal disorders

ConditionBlood pressurePlasma reninAldosteroneDistinguishing extra clue
SIADHNormal/↑Normal/↓Normal/↓Euvolemic hyponatremia with concentrated urine
Bartter syndromeNormal↑↑↑ urine calcium (vs. Gitelman)
Gitelman syndromeNormal↑↑↓ serum magnesium, ↓ urine calcium
Renin-secreting tumor↑↑↑Renin is the primary driver — everything downstream rises with it
Primary hyperaldosteronism↑↓↑Aldosterone is high despite suppressed renin — the adrenal gland is acting autonomously
Liddle syndrome / SAME↑↓↓Hypertension with an aldosterone level that's actually low — the collecting duct is being driven by something other than aldosterone itself
Concept check

Plasma renin localizes the disturbance: high renin means the kidney is genuinely underperfused or autonomously secreting renin, while low renin with high aldosterone means the adrenal gland itself is the driver — the pairing, not either value alone, tells you where the lesion sits.

Electrolyte disturbances — symptoms at a glance

ElectrolyteLowHigh
SodiumNausea, malaise, stupor, seizuresIrritability, stupor, coma
PotassiumFlattened T waves, U waves, arrhythmias, muscle weakness/crampsPeaked T waves, widened QRS, arrhythmias, muscle weakness
CalciumTetany, seizures, QT prolongation, Chvostek/Trousseau signs"Stones, bones, groans, and psychiatric overtones" — renal stones, bone pain, abdominal pain, anxiety/altered mental status, polyuria
MagnesiumTetany, torsades de pointes, and — confusingly — can itself cause hypokalemia and hypocalcemiaReduced reflexes, lethargy, bradycardia, hypotension, cardiac arrest
PhosphateBone loss, osteomalacia (adults), rickets (children)Renal stones, metastatic calcification, secondary hypocalcemia

Compensation — expected direction, not full correction

  • Metabolic acidosis → respiratory compensation is hyperventilation (↓ PCO₂)
  • Metabolic alkalosis → respiratory compensation is hypoventilation (↑ PCO₂)
  • Respiratory acidosis/alkalosis → renal compensation (↑ or ↓ HCO₃⁻ handling) takes days, so chronic respiratory disturbances are far better compensated than acute ones
  • Use Winter's formula for expected PCO₂ in metabolic acidosis: PCO₂ ≈ (1.5 × HCO₃⁻) + 8 ± 2 — a measured PCO₂ outside this range means a second, superimposed acid–base disorder
  • The relationship between pH, bicarbonate, and PCO₂ is formalized by the Henderson-Hasselbalch equation: pH = 6.1 + log([HCO₃⁻] ÷ (0.03 × PCO₂)) — worth recognizing rather than memorizing, since it's just the algebraic version of "more bicarbonate or less CO₂ raises pH"

Where the nephron handles acid–base

  • PCT: reabsorbs ~85–90% of filtered HCO₃⁻ via carbonic anhydrase; generates new bicarbonate by metabolizing glutamine, excreting the byproduct as NH₄⁺
  • DCT: also generates "new" bicarbonate through H⁺ secretion coupled to filtered phosphate buffering (titratable acid)
  • Distal nephron / collecting duct: intercalated cells actively secrete H⁺ (type A, generating new HCO₃⁻) or secrete HCO₃⁻ (type B, during alkalosis)
  • Ammoniagenesis is the kidney's main adaptive mechanism to excrete a chronic acid load
  • Normal urine is mildly acidic (pH ≈ 6) at baseline, reflecting net daily acid excretion

Approximate nephron reabsorption budget (freely filtered load)

  • PCT: ~67% of filtered Na⁺, water, and K⁺ regardless of GFR ("glomerulotubular balance"); ~100% of filtered glucose and amino acids; ~50% of urea; ~85% of filtered phosphate
  • Thick ascending limb: ~20–25% of filtered Na⁺/K⁺ via the Na⁺-K⁺-2Cl⁻ cotransporter; essentially impermeable to water
  • DCT: ~5–7% of filtered Na⁺ via the Na⁺-Cl⁻ cotransporter; still impermeable to water
  • Collecting duct: final ~5% of Na⁺ (aldosterone-dependent) and up to ~15% of filtered water (ADH-dependent)

Direction of change in each primary disturbance

Primary disorderpHPrimary changeCompensation
Metabolic acidosis↓↓ HCO₃⁻ (consumed by buffering)Hyperventilation → ↓ PCO₂; renally, ↑ H⁺ excretion and ↑ new HCO₃⁻ generation
Metabolic alkalosis↑↑ HCO₃⁻Hypoventilation → ↑ PCO₂; renally, ↑ HCO₃⁻ excretion
Acute respiratory acidosis↓↑ PCO₂ (primary)None yet — too fast for renal compensation
Chronic respiratory acidosis↓ but closer to normal↑↑ PCO₂ (primary)Renal ↑ H⁺ excretion (as NH₄⁺) and ↑↑ HCO₃⁻ reabsorption over days
Acute respiratory alkalosis↑↓ PCO₂ (primary)None yet
Chronic respiratory alkalosis↑ but closer to normal↓↓ PCO₂ (primary)Renal ↓ H⁺ excretion and ↓↓ HCO₃⁻ reabsorption over days
  • Respiratory compensation for a metabolic problem is fast (minutes); renal compensation for a respiratory problem is slow (days) — this is why acute respiratory disturbances show near-uncompensated pH swings while chronic ones look much closer to normal
Concept check

This table is the master key for reading an ABG: first decide whether pH points to acidosis or alkalosis, then check whether HCO₃⁻ or PCO₂ moved first (the "primary" change) — everything else in the table is just the expected secondary compensation following from that one call.

Salicylate (aspirin) overdose — a classic mixed picture Early: salicylate directly stimulates the medullary respiratory center → hyperventilation → primary respiratory alkalosis. As toxicity progresses, salicylate also uncouples oxidative phosphorylation and generates organic acids → a superimposed high anion-gap metabolic acidosis follows. A vignette showing both patterns in the same patient over time points straight to salicylates.
Exam trap Don't confuse the effect of aldosterone with acid–base status by reflex: aldosterone excess (via K⁺/H⁺ secretion) causes metabolic alkalosis, while aldosterone deficiency/resistance causes metabolic acidosis — track it through the H⁺-secretion step, not just the K⁺ change.

⭐ Integration & High-Yield Pearls

Fast differentiators worth drilling

  • Hematuria + recent sore throat (1–2 weeks ago) → think poststreptococcal GN; hematuria within 1–2 days of a URI → think IgA nephropathy
  • Nephrotic child under 5 with no other findings → minimal change disease until proven otherwise
  • Young man with hemoptysis + hematuria → Goodpasture syndrome
  • Flank pain + palpable kidneys + family history → ADPKD
  • Painless gross hematuria in an older smoker → transitional cell carcinoma (bladder/ureter/pelvis) or RCC depending on location
  • Muddy brown casts → ATN; WBC casts → pyelonephritis or interstitial nephritis; RBC casts → glomerulonephritis; fatty/waxy casts → nephrotic syndrome/advanced CKD

Common examination traps

  • "Increased anion gap" and "decreased anion gap" questions almost always hinge on whether bicarbonate was lost with chloride replacing it (normal gap) versus consumed by buffering an unmeasured acid (high gap)
  • A rising creatinine after starting an ACE inhibitor is expected and mild (efferent dilation drops GFR) — a large rise (>30%) instead suggests underlying bilateral renal artery stenosis
  • Distinguish SIADH (euvolemic hyponatremia, concentrated urine) from cerebral salt wasting (hypovolemic hyponatremia) — both can occur after CNS injury but require opposite management (fluid restriction vs. fluid/salt repletion)
  • "Nephrotic-range proteinuria" is a lab threshold (>3.5 g/day), not proof of full-blown nephrotic syndrome — the full syndrome also needs hypoalbuminemia and edema
Big picture Nearly every renal vignette reduces to three questions in sequence: (1) where in the nephron/urinary tract is the lesion, (2) what mechanism — hemodynamic, immune, toxic, obstructive, or genetic — explains it, and (3) what lab or urine sediment finding proves that mechanism. Anchor new facts to that framework rather than memorizing them in isolation.

🫘 Gross Anatomy & Body Fluid Compartments

Position & relations

  • Retroperitoneal, spanning roughly T12–L3, hilum near L1
  • Each adult kidney weighs roughly 150 g
  • Highly vascularized — filters over 1,700 L of blood per day to ultimately produce about 1 L of urine
  • Right kidney sits slightly lower than left — displaced by the liver
  • Left renal vein crosses anterior to the aorta and posterior to the SMA (the "nutcracker" point — compression here causes nutcracker syndrome)
  • Left gonadal vein drains into the left renal vein; right gonadal vein drains straight into the IVC — explains why left-sided varicocele is more common
  • Left renal vein also picks up the left suprarenal (adrenal) vein along the way
  • Renal medulla receives far less blood flow than the cortex, which leaves it chronically closer to hypoxia and makes it the first tissue to die off in ischemic injury (e.g., ATN)
  • Rule of Ls: the Left kidney is preferred for living-donor transplantation because its renal vein is longer — easier to anastomose

Ureter relations (memorize both sexes)

  • Ureters run posterior/deep to the gonadal vessels ("water under the bridge")
  • In males: ureter passes posterior to the ductus deferens
  • In females: ureter passes posterior/inferior to the uterine artery — relevant during hysterectomy (ureter injury risk)
  • Memory line: water (the ureter) flows over the iliac vessels and under the bridge (uterine artery/vas deferens)
  • Three classic sites of ureteral narrowing/obstruction: the ureteropelvic junction, where it crosses the pelvic inlet over the iliac vessels, and the ureterovesical junction
  • Gynecologic surgery (e.g., ligating the uterine or ovarian vessels during hysterectomy) is a recognized cause of iatrogenic ureteral injury, given how closely the ureter runs to those vessels
  • Bladder wall contraction pinches the intramural segment of the ureter closed as it passes through — this one-way-valve effect is what normally prevents urine from refluxing back up toward the kidney during voiding

Glomerular filtration barrier — three layers, two jobs

  • Fenestrated capillary endothelium: size barrier — keeps blood cells in, lets plasma solutes through
  • Glomerular basement membrane: made of type IV collagen and heparan sulfate — the heparan sulfate carries a negative charge that repels other negatively charged proteins like albumin
  • Podocyte foot processes with slit diaphragms: the final size filter, blocking anything larger than a small protein from getting through
  • Losing the negative charge barrier (e.g., podocyte effacement in minimal change disease) lets albumin leak through even though the physical pores haven't changed size — this is why nephrotic syndromes are fundamentally charge-barrier diseases
Concept check

The three layers filter by two independent properties — size and charge — which is why diseases that damage only the charge barrier (podocyte effacement in MCD) cause selective albumin loss without necessarily letting through other, similarly-sized but neutral or positively charged molecules.

Nephron segments — one-line function of each

  • Glomerulus: filtration barrier — size- and charge-selective
  • Proximal convoluted tubule: bulk isosmotic reabsorption of Na⁺, water, glucose, amino acids, bicarbonate
  • Thin descending limb: water-permeable only — concentrates filtrate
  • Thick ascending limb: impermeable to water, active NaCl reabsorption — dilutes filtrate, builds medullary gradient
  • Distal convoluted tubule: fine-tunes Na⁺/Ca²⁺ under aldosterone/PTH control
  • Collecting duct: final water reabsorption (ADH) and K⁺/H⁺ handling (aldosterone)
Concept check

Each segment's job maps directly onto what fails when it's damaged — losing the thick ascending limb (Bartter syndrome, loop diuretics) always costs the medullary concentrating gradient, which is why loop diuretics blunt the kidney's maximum urine-concentrating ability even after the drug itself has cleared.

Total body water and its compartments

Total body water ≈ 60% of body weight (men), ≈ 50% (women)
↓ splits
Intracellular fluid — 2/3 of TBW · main cation K⁺
Extracellular fluid — 1/3 of TBW · main cation Na⁺
↓ ECF splits
Plasma — 1/4 of ECF
Interstitial fluid — 3/4 of ECF
  • Measure TBW with a tracer that crosses all membranes (tritiated water)
  • Measure ECF with a tracer confined to extracellular space (inulin, mannitol)
  • Measure plasma volume with a tracer that stays intravascular (labeled albumin)
  • ICF = TBW − ECF (calculated, not measured directly)
  • Normal serum osmolality runs about 275–295 mOsm/kg H₂O
  • Plasma volume = total blood volume × (1 − hematocrit)
Concept check

TBW, ECF, and plasma volume are measured with progressively more restrictive tracers — crosses every membrane, then confined extracellularly, then stays intravascular — because each compartment is defined by what it excludes, not by a boundary you can see directly.

🌱 Embryology & Congenital Anomalies

See also

Cystic kidney diseases like ADPKD selectively hit collecting ducts versus glomeruli because those structures arise from different embryologic origins (ureteric bud vs. metanephric mesenchyme) — the diseases themselves are covered under Nephrolithiasis, Cystic Kidney Disease & Urinary Tract Obstruction → Cystic kidney disease.

Three successive kidney systems

Intermediate mesoderm → urogenital ridge
↓
Pronephros (week 4, regresses, never functions)
↓
Mesonephros (transiently functional, forms mesonephric/Wolffian duct)
↓
Metanephros (week 5 → definitive adult kidney, functional week 9–10)

Ureteric bud derivatives

  • Buds off the mesonephric duct, invades the metanephric blastema
  • Gives the entire collecting system: ureter, renal pelvis, calyces, collecting ducts
  • Reciprocal induction: bud induces blastema to condense into nephrons; blastema induces bud to branch
  • The ureteropelvic junction is the last part of the ureter to canalize (fully canalized by week 10) — incomplete canalization here causes congenital obstruction and is the most common pathologic cause of prenatal hydronephrosis, detectable on prenatal ultrasound
Concept check

Reciprocal induction means neither structure can develop without signaling from the other — a defect that stops the bud from reaching the blastema and a defect that stops the blastema from responding are mechanistically distinct, even though both simply look like a "missing kidney" on ultrasound.

Mesonephric (Wolffian) duct itself — separate fate

  • In males: persists and differentiates into the ductus deferens, epididymis, ejaculatory duct, and seminal vesicle
  • In females: regresses — no significant reproductive derivatives
  • Distinct from the ureteric bud that branches off it — the duct itself becomes genital structures, its outgrowth becomes urinary structures
Concept check

The mesonephric duct and the ureteric bud that sprouts from it have completely separate fates — this is exactly why the reproductive tract (from the duct) and urinary tract (from the bud) can each carry isolated congenital anomalies without the other being affected.

Metanephric mesenchyme derivatives

  • Gives the nephron proper: glomerulus, Bowman capsule, PCT, loop of Henle, DCT
  • Collecting duct and nephron are embryologically distinct — explains why some diseases (e.g., ADPKD) hit collecting ducts while others hit glomeruli selectively
Core distinction One line splits the whole kidney: everything the urine touches distal to the nephron comes from the ureteric bud; everything proximal to that comes from metanephric mesenchyme.

Ascent and rotation

  • Kidney originates in the pelvis, "ascends" to the abdomen as the fetus grows caudally away from it (not true migration)
  • Rotates 90° so the hilum faces medially
  • Blood supply is sequentially taken over by higher aortic branches during ascent
Concept check

"Ascent" is a naming convenience, not literal migration — the kidney's position relative to the aorta stays roughly fixed, and it's the fetus's caudal growth that leaves the kidney looking like it rose, which is also why its blood supply is sequentially handed off to progressively higher aortic branches.

Lower urinary tract

  • Urogenital sinus divides into the bladder and urethra
  • Bladder is continuous with the allantois → allantois regresses to the median umbilical ligament (urachus remnant)
  • Urethra: proximal part from endoderm/urogenital sinus, distal-most part from ectoderm
AnomalyMechanismKey associations
Bilateral renal agenesisUreteric bud fails to form/interact with mesenchymeOligohydramnios → Potter sequence (limb & facial deformities, pulmonary hypoplasia); incompatible with life
Unilateral renal agenesisSame defect, one sideCompatible with life; compensatory hypertrophy of remaining kidney
Horseshoe kidneyLower poles fuse across midline during ascentAscent arrested under the inferior mesenteric artery, so the fused kidney stays low in the abdomen; usually functions normally but predisposes to hydronephrosis (from UPJ obstruction), stones, infection, and renal cancer; more common with chromosomal aneuploidy (Turner syndrome, trisomy 13/18/21)
Accessory renal arteriesExtra vessels arise directly from the aorta and supply an isolated segment of parenchymaTrue end arteries with no collateral supply — ligating one during surgery causes a segmental ischemic infarct
Duplex/bifid ureterPremature or ectopic splitting of the ureteric bud (or two separate buds reaching the blastema)Predisposes to vesicoureteral reflux and/or ureteral obstruction — recurrent UTI, often found incidentally on prenatal ultrasound as hydronephrosis
Multicystic dysplastic kidneyUreteric bud forms but fails to induce the mesenchyme to differentiate properlyNon-inherited (though it can run in families), usually unilateral, nonfunctional kidney made of cysts and connective tissue
Posterior urethral valvesA membrane remnant is left behind in the posterior urethra of a male fetus and obstructs outflowMost common cause of bladder outlet obstruction in male infants; prenatal ultrasound shows bilateral hydronephrosis with a thick-walled, dilated bladder; severe cases cause oligohydramnios
Vesicoureteral refluxUrine flows backward from bladder toward the kidney — primary (short/poorly angled ureter tunnel through the bladder wall) or secondary (chronically elevated bladder pressure forces urine back)Major risk factor for recurrent UTI and, if longstanding, chronic pyelonephritis with renal scarring
Congenital solitary functioning kidneyBorn with only one working kidney — from unilateral agenesis or severe unilateral dysplasiaUsually asymptomatic thanks to compensatory hypertrophy of the remaining kidney, but the contralateral kidney has a higher rate of its own anomalies, so it's worth imaging
Concept check

Sorting this table by embryologic step clarifies the exam logic: bud-formation failures cause agenesis, bud-branching/positioning errors cause horseshoe kidney or duplex ureter, and induction failures cause multicystic dysplasia — same developmental process, different point of failure, different anomaly.

Potter sequence mnemonic A baby who can't make or pass urine in utero can't maintain amniotic fluid volume — think "babies who can't pee develop POTTER sequence": Pulmonary hypoplasia, Oligohydramnios (the trigger), Twisted face, Twisted skin, Extremity defects, Renal failure (in utero). Triggers include bilateral renal agenesis, ARPKD, and posterior urethral valves — anything that stops fetal urine output.
Exam trap Do not confuse Potter sequence's cause (oligohydramnios from no fetal urine output) with its downstream effects (limb contractures and pulmonary hypoplasia) — the lungs fail because amniotic fluid, not the kidney itself, is what the fetal lungs need to expand against.