Zoology MCQs for NEET — Practice Questions with Answers

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The collecting duct contributes to the maintenance of high medullary osmolarity by allowing the passage of small amounts of:

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Explanation

The text states: 'This segment (Collecting Duct) allows passage of small amounts of urea into the medullary interstitium to keep up the osmolarity.'

Through the countercurrent mechanism, the Distal Convoluted Tubule (DCT) and collecting duct concentrate the filtrate approximately how many times?

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Explanation

The NCERT text clearly states: 'DCT and collecting duct concentrate the filtrate about four times, i.e., from 300 mOsmolL –1 to 1200 mOsmolL –1, an excellent mechanism of conservation of water.'

If the countercurrent mechanism in the kidney were to become non-functional, what would be the most immediate consequence regarding urine formation?

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Explanation

The countercurrent mechanism is essential for establishing and maintaining the medullary osmolar gradient (300-1200 mOsmolL-1). This gradient is crucial for the reabsorption of water from the collecting ducts, thus allowing the production of concentrated urine. Without it, the ability to concentrate urine would be severely impaired, leading to the excretion of a large volume of dilute urine and significant water loss.

The vasa recta performs a countercurrent exchange with the Henle's loop. What is the primary function of this arrangement for the vasa recta?

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Explanation

The vasa recta, by mimicking the countercurrent flow of the Henle's loop, minimizes the washout of solutes (electrolytes and urea) from the medullary interstitium. This 'countercurrent exchange' property allows the blood in the vasa recta to pick up water and lose solutes in a way that preserves the high osmolarity of the medulla, which is vital for concentrating urine.

A healthy human kidney can produce urine with an osmolarity of up to 1200 mOsmolL-1. This remarkable ability is primarily attributed to the functions of:

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Explanation

The text explicitly states: 'HL primarily helps to maintain osmolar gradient (300 mOsmolL –1 -1200 mOsmolL –1 ) within the kidney interstitium.' and 'DCT and collecting duct concentrate the filtrate about four times, i.e., from 300 mOsmolL –1 to 1200 mOsmolL –1, an excellent mechanism of conservation of water.' This concentrating ability relies entirely on the countercurrent mechanism.

Which of the following statements about the descending limb of Henle's loop is correct in the context of the countercurrent mechanism?

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Explanation

The text states: 'The filtrate gets concentrated as it moves down the descending limb'. This concentration occurs due to the passive diffusion of water out of the descending limb, indicating its permeability to water. Conversely, the ascending limb is described as diluting the filtrate, implying the active transport of solutes out without water following, making the descending limb largely impermeable to electrolytes.

The primary cause for the dilution of filtrate as it moves up the ascending limb of Henle's loop is:

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Explanation

The text notes: 'The filtrate gets concentrated as it moves down the descending limb but is diluted by the ascending limb.' The dilution occurs because the ascending limb is impermeable to water, but allows electrolytes to be transported out (passively in the thin part, actively in the thick part), thus reducing the solute concentration of the filtrate without water following it.

Mammals have the ability to produce concentrated urine mainly due to the specialized structures:

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Explanation

The NCERT text explicitly states: 'Mammals have the ability to produce a concentrated urine. The Henle’s loop and vasa recta play a significant role in this.'

In the countercurrent mechanism, urea plays a role in maintaining the osmolarity of the medullary interstitium. In which part of the nephron or associated structure is urea allowed to pass into the medullary interstitium to 'keep up the osmolarity'?

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Explanation

The text clearly states: 'Collecting Duct: This segment allows passage of small amounts of urea into the medullary interstitium to keep up the osmolarity.'

If the descending limb of Henle's loop became impermeable to water, what would be the immediate effect on the osmolarity of the filtrate reaching the ascending limb?

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Explanation

The descending limb is permeable to water, allowing water to exit and the filtrate to become concentrated. If it became impermeable to water, water would be retained in the filtrate, and thus, the osmolarity of the filtrate reaching the ascending limb would be significantly lower (more dilute) than normal.

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