Skip to content
Evaluation · Q11

Q.Match the following terms.
a. D-receptor - afferent arteriole
b. Autoregulation - basal lamina
c. Bowman's capsule - capillary blood pressure
d. Capsule fluid - colloid osmotic pressure
e. Glomerulus - GFR
f. Podocyte - JG cells
g. Vasoconstriction - plasma proteins
Norepinephrine

Tamil Nadu DgeTextbookSubjectiveImportance★★★★★
17% · 11/64 Questions
🔒 Locked · start free trial →

You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.

Start your 14-day free trial to unlock the full solution →

Concept understanding — Regulation Of Kidney Function

Why Does the Kidney Need Regulation?

Your body is a bag of water with salt dissolved in it. Every day, you drink, you sweat, you breathe out moisture, and you eat salty food. Left to itself, the composition of your blood would swing wildly — too dilute after a big glass of water, too concentrated after a sweaty run. The kidney's job is to hold the line: keep the volume of blood steady and the concentration of salts (especially sodium) within a razor-thin range.

But the kidney can't just guess. It needs signals — hormones — that tell it: "We're getting dehydrated, hold onto water" or "Blood pressure is dropping, save salt" or "We've had enough, flush it out." That's regulation.


The Three Main Controllers

Three hormone systems work together, like a thermostat with multiple sensors. They act on the nephron — specifically on the distal convoluted tubule and the collecting duct, where the final adjustments to urine are made.

1. ADH (Antidiuretic Hormone) — The Water Saver

Intuition: Imagine you're in a desert with limited water. Your brain detects that blood is getting too concentrated (osmoreceptors in the hypothalamus fire). It sends a signal: "Release ADH." ADH travels in the blood to the kidney and tells the collecting duct: "Open the water channels (aquaporins)." Water rushes out of the tubule back into the blood. You produce a small volume of concentrated urine.

If you've just drunk a litre of water, ADH secretion stops. The collecting duct becomes waterproof. Water stays in the tubule and leaves as dilute urine.

Effect of ADH: Increases water permeability of collecting duct → more water reabsorbed → concentrated urine, less volume.

2. The RAAS Pathway (Renin-Angiotensin-Aldosterone System) — The Salt & Pressure Keeper

Intuition: Blood pressure drops — maybe from dehydration, blood loss, or low salt intake. The kidney itself senses this. Special cells in the juxtaglomerular apparatus (JGA) — located where the afferent arteriole touches the distal tubule — detect the fall in blood pressure and release an enzyme called renin.

Renin starts a cascade:

  1. Renin converts angiotensinogen (a liver protein) into angiotensin I.
  2. In the lungs, ACE (angiotensin-converting enzyme) turns angiotensin I into angiotensin II.
  3. Angiotensin II does three powerful things:
    • Constricts blood vessels — raises blood pressure immediately.
    • Stimulates the adrenal cortex to release aldosterone.
    • Triggers thirst and more ADH release.

Aldosterone then acts on the distal tubule and collecting duct: it tells them to reabsorb more sodium (and with it, water follows). Potassium is excreted in exchange.

Watch out

A common mistake: students think ADH and aldosterone do the same thing. They don't. ADH reabsorbs water only (by opening pores). Aldosterone reabsorbs sodium (and water follows osmotically). The net effect is similar — less urine — but the trigger and mechanism are different.

RAAS summary: ↓ Blood pressure → JGA releases renin → angiotensin II → vasoconstriction + aldosterone release → ↑ Na⁺ reabsorption → ↑ water reabsorption → ↑ blood volume & pressure.

3. ANF (Atrial Natriuretic Factor) — The Brake

Intuition: Now imagine the opposite — blood pressure is too high, or blood volume is too large. The heart's atria get stretched. They release ANF (atrial natriuretic factor). ANF travels to the kidney and does the reverse of RAAS:

  • It dilates the afferent arteriole (more blood flows in).
  • It inhibits renin release and aldosterone secretion.
  • It directly reduces sodium reabsorption in the collecting duct.

Result: more sodium and water are lost in urine. Blood volume drops, pressure falls.

Important

ANF is the antagonist of the RAAS system. RAAS conserves salt and water; ANF excretes them. Together they maintain homeostasis.


Putting It All Together — A Real Scenario

You eat a very salty meal. Your blood sodium rises. What happens?

  1. Osmoreceptors detect the rise → ADH is released → you retain water to dilute the sodium. You feel thirsty.
  2. The increased blood volume from retained water raises blood pressure slightly. …

Unlock everything free for 14 days

  • Full step-by-step solutions
  • Concept-first explanations
  • Methods, shortcuts & mistakes
  • PYQ mapping + timed mock tests

Full access for 14 days. No credit card required.