CBSE Class 11 Biology Chapter 21: Excretory Products and Their Elimination NCERT Solutions
This chapter delves into the crucial biological process of excretory products and their elimination in living organisms. The NCERT Solutions for Class 11 Biology, Chapter 21, provide a comprehensive understanding of the human excretory system, including the definition and regulation of Glomerular Filtration Rate (GFR), the autoregulatory mechanisms involving the juxtaglomerular apparatus, and the role of hormones like ADH. It further explains the intricate counter-current mechanism involving Henle's loop and vasa recta, which is vital for concentrating urine and conserving water. The solutions also clarify the reabsorption and secretion processes within the nephron. These solutions are designed to help students grasp complex physiological concepts, answer exam-style questions accurately, and build a strong foundation for future biological studies, aiding in effective revision and exam preparation.
Quick info
| Board | CBSE |
|---|---|
| Class | Class 11 |
| Subject | Biology |
| Session | 2026 |
| Language | English |
| Type | NCERT Solutions |
| Chapter | Chapter 21 |
Chapter summary
Chapter 21 of the Class 11 Biology NCERT Solutions focuses on Excretory Products and Their Elimination. It covers the definition and regulation of Glomerular Filtration Rate (GFR), the autoregulatory mechanisms of GFR, and the functions of the juxtaglomerular apparatus. The chapter also details the counter-current mechanism, explaining how Henle's loop and vasa recta contribute to urine concentration. True/False questions test understanding of key concepts like micturition, ADH function, filtration, and reabsorption.
Learning outcomes
- Define Glomerular Filtration Rate (GFR) and its normal value.
- Explain the autoregulatory mechanism of GFR.
- Identify the role of the juxtaglomerular apparatus in regulating GFR.
- Understand the function of ADH in water balance.
- Describe the counter-current mechanism and its importance in urine concentration.
- Differentiate between true and false statements regarding excretory processes.
Topics covered
Paper topics
- Excretory Products
- Elimination of Excretory Products
- Glomerular Filtration Rate (GFR)
- Autoregulation of GFR
- Juxtaglomerular Apparatus
- Renin-Angiotensin Mechanism
- Counter-current Mechanism
- Henle's Loop
- Vasa Recta
- Urine Concentration
- Water Conservation
- Micturition Reflex
Important topics
- Glomerular Filtration Rate (GFR) and its regulation
- Autoregulation of GFR
- Counter-current Mechanism (Henle's Loop and Vasa Recta)
- Role of ADH in urine concentration
- Functions of the Juxtaglomerular Apparatus
PDF preview
Read page by page below. PDF is streamed from the official NCERT website — no download button on this page.
Questions and Solutions
Question 1
Question 2
Question 3
(a) Micturition is carried out by a reflex.
(b) ADH helps in water elimination, making the urine hypotonic.
(c) Protein-free fluid is filtered from blood plasma into the Bowman's capsule.
(d) Henle's loop plays an important role in concentrating the urine.
(e) Glucose is actively reabsorbed in the proximal convoluted tubule.
- (a) True. Micturition, the process of expelling urine, is a reflex action controlled by the nervous system.
- (b) False. ADH (Antidiuretic Hormone) promotes water reabsorption, making the urine more concentrated (hypertonic), not hypotonic. It reduces water elimination.
- (c) True. During glomerular filtration, a protein-free fluid is forced from the blood plasma in the glomerulus into the Bowman's capsule. Large proteins and blood cells are retained in the blood.
- (d) True. The Loop of Henle is crucial for establishing the osmotic gradient in the renal medulla, which is essential for the counter-current mechanism and the subsequent concentration of urine.
- (e) True. Glucose is almost completely reabsorbed from the filtrate back into the blood in the proximal convoluted tubule through active transport mechanisms.
Question 4
The Loop of Henle is a U-shaped tubule extending from the proximal convoluted tubule into the medulla. It has two limbs, a descending limb and an ascending limb, through which tubular fluid flows in opposite directions. This arrangement creates a counter-current flow.
The vasa recta are capillaries that run parallel to the Loop of Henle. Blood flows in opposite directions within the descending and ascending limbs of the vasa recta, also establishing a counter-current flow. The descending limb of the vasa recta is permeable to water and solutes, while the ascending limb is less permeable. As blood flows down the descending limb into the hypertonic medulla, water moves out. As it flows up the ascending limb, it encounters the less hypertonic cortex, and solutes move out, while water re-enters.
The interaction between the Loop of Henle and the vasa recta maintains a steep osmotic gradient in the renal medulla, increasing from approximately 300 mOsmol/L in the cortex to as high as 1200 mOsmol/L in the deep inner medulla. This gradient is established and maintained by the differential transport of solutes (like NaCl and urea) and water. This medullary osmotic gradient is crucial for enabling the collecting ducts to reabsorb water under the influence of ADH, thereby producing concentrated urine and conserving body water.
The osmolarity increases from 300 mOsmolL-1 in the cortex to 1200 mOsmolL-1 in the inner medulla by counter current mechanism. It helps in maintaining the concentration gradient, which in turn helps in easy movement of water from collecting tubules. The gradient is a result of the movement of NaCl and urea.
Common mistakes
- Confusing the role of ADH (it promotes water reabsorption, not elimination).
- Misunderstanding the direction of blood flow and its impact in the counter-current mechanism.
- Incorrectly identifying which substances are filtered, reabsorbed, or secreted.
- Overlooking the autoregulatory nature of GFR.
Revision tips
- Draw diagrams of the nephron and the counter-current system to visualize the processes.
- Focus on understanding the 'why' behind each regulatory mechanism, especially for GFR and urine concentration.
- Use the true/false questions to quickly test your recall of key facts.
- Relate the concepts of filtration, reabsorption, and secretion to the concentration gradient maintained by the counter-current mechanism.
Practice MCQs
Q1. What is the approximate Glomerular Filtration Rate (GFR) in a healthy individual per minute?
Explanation: The Glomerular Filtration Rate (GFR) is defined as the amount of filtrate formed by all the nephrons in both kidneys per minute. In a healthy person, this rate is approximately 125 mL per minute.
Q2. Which structure plays a key role in the autoregulation of GFR?
Explanation: The juxtaglomerular apparatus (JGA) is a specialized structure within the kidney that monitors and regulates glomerular filtration rate, ensuring it remains relatively constant despite fluctuations in blood pressure.
Q3. Which of the following statements about ADH is FALSE?
Explanation: Antidiuretic Hormone (ADH) promotes the reabsorption of water from the distal convoluted tubule and collecting duct, thus reducing water loss and making the urine more concentrated (hypertonic), not hypotonic.
Q4. The counter-current mechanism primarily helps in:
Explanation: The counter-current mechanism, involving Henle's loop and vasa recta, establishes and maintains an osmotic gradient in the renal medulla, which is essential for the reabsorption of water and the production of concentrated urine.
Q5. Which part of the nephron is primarily responsible for concentrating the urine?
Explanation: While the collecting duct plays a role in final water reabsorption under hormonal influence, the Loop of Henle is crucial for establishing the osmotic gradient in the medulla, which is the basis for urine concentration.
Frequently asked questions
What is GFR and why is it important?
GFR stands for Glomerular Filtration Rate, which is the volume of fluid filtered from the glomerular capillaries into Bowman's capsule per unit time. It's a key indicator of kidney function, representing the rate at which blood is filtered by the kidneys. In healthy adults, it's about 125 mL/minute.
How do the kidneys regulate GFR automatically?
The kidneys use an autoregulatory mechanism, primarily involving the juxtaglomerular apparatus (JGA). If GFR drops, the JGA triggers the release of renin, which activates the renin-angiotensin system to increase glomerular blood flow and restore GFR to normal.
What is the counter-current mechanism and where does it occur?
The counter-current mechanism is a system within the kidney that helps conserve water and concentrate urine. It involves the Loop of Henle and the vasa recta, where fluids flow in opposite directions in parallel tubes, creating an osmotic gradient in the renal medulla.
Does ADH help in eliminating water?
No, ADH (Antidiuretic Hormone) does the opposite. It promotes the reabsorption of water in the kidneys, reducing water loss and making the urine more concentrated. It helps in water conservation, not elimination.
What is the significance of the osmotic gradient in the renal medulla?
The increasing osmotic gradient (from cortex to inner medulla) established by the counter-current mechanism allows for the efficient reabsorption of water from the filtrate in the collecting ducts, leading to the production of concentrated urine and preventing dehydration.
Are all substances in the blood filtered into Bowman's capsule?
No, typically only protein-free fluid is filtered. Large molecules like proteins and blood cells are generally retained in the blood and do not pass into Bowman's capsule during glomerular filtration.
Content reviewed by the NCERT Help team. Editorial Team and update policy
NCERT Solutions PDF PDF on NCERT Help. URL unchanged for search indexing.