CBSE Class 11 Biology Chapter 11: Transport in Plants NCERT Solutions
This resource provides detailed NCERT Solutions for CBSE Class 11 Biology, Chapter 11: Transport in Plants. It covers essential concepts such as the factors affecting diffusion, the role of porins, the mechanism of active transport via protein pumps, and the explanation of water potential, including why pure water has the maximum potential. The solutions also offer clear differentiations between key related processes like diffusion and osmosis, transpiration and evaporation, osmotic pressure and osmotic potential, imbibition and diffusion, apoplast and symplast pathways, and guttation and transpiration. These explanations are designed to help students grasp the fundamental principles of how substances move within plant organisms, aiding in their understanding and exam preparation.
Quick info
| Board | CBSE |
|---|---|
| Class | Class 11 |
| Subject | Biology |
| Session | 2026 |
| Language | English |
| Type | NCERT Solutions |
| Chapter | Chapter 11: Transport in Plants |
Chapter summary
Chapter 11 of the CBSE Class 11 Biology syllabus focuses on Transport in Plants. This NCERT Solutions set breaks down complex topics like diffusion, osmosis, active transport, and water potential. It clarifies the factors influencing these processes, the function of specialized structures like porins, and the pathways water takes through the plant. The solutions also provide crucial comparisons between related physiological and physical processes, ensuring a thorough understanding for students.
Learning outcomes
- Understand the factors influencing the rate of diffusion in plants.
- Explain the function of porins in membrane transport.
- Describe the process and energy requirements of active transport.
- Define water potential and explain why pure water has the maximum value.
- Differentiate between key transport processes like diffusion, osmosis, transpiration, and evaporation.
- Distinguish between apoplast and symplast pathways for water movement.
- Compare guttation and transpiration.
Topics covered
Paper topics
- Diffusion
- Factors affecting diffusion
- Porins
- Active Transport
- Protein Pumps
- Water Potential
- Pure Water Potential
- Osmosis
- Transpiration
- Evaporation
- Apoplast Pathway
- Symplast Pathway
Important topics
- Water Potential
- Diffusion vs. Osmosis
- Active Transport Mechanism
- Apoplast and Symplast Pathways
- Factors Affecting Transport
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Questions and Solutions
Question 1
- Concentration Gradient: The greater the difference in concentration between two regions, the faster the rate of diffusion. Diffusion continues until the concentrations become equal on both sides of a barrier.
- Membrane Permeability: The ease with which a substance can pass through a membrane significantly affects diffusion. A more permeable membrane allows for a faster diffusion rate.
- Temperature: Higher temperatures increase the kinetic energy of molecules, leading to faster movement and thus a higher rate of diffusion.
- Pressure: Pressure, particularly partial pressure for gases, plays a role. Gases diffuse from an area of higher partial pressure to an area of lower partial pressure.
Question 2
Question 3
- The protein pump binds to the specific substance that needs to be transported.
- Using energy, usually derived from the hydrolysis of ATP, the protein pump undergoes a conformational change.
- This change facilitates the movement of the substance across the membrane.
- Once across, the substance is released into the cytoplasm as the protein-substance complex dissociates.
Question 4
Question 5
- Diffusion and Osmosis
- Transpiration and Evaporation
- Osmotic Pressure and Osmotic Potential
- Imbibition and Diffusion
- Apoplast and Symplast pathways of movement of water in plants.
- Guttation and Transpiration.
- Diffusion and Osmosis
Diffusion Osmosis It is the passive movement of particles, ions, and molecules along their concentration gradient (from higher to lower concentration). It is a specific type of diffusion involving the movement of solvent molecules (usually water) across a semi-permeable membrane from a region of higher solvent concentration (lower solute concentration) to a region of lower solvent concentration (higher solute concentration). It can occur in solids, liquids, and gases. It occurs primarily in the liquid medium. It does not require a semi-permeable membrane. It requires a semi-permeable membrane. - Transpiration and Evaporation
Transpiration Evaporation It is the loss of water vapor specifically from the aerial parts of plants, mainly through stomata. It is a physiological process. It is the physical process of water changing into vapor from any free surface (like soil, water bodies, or plant surfaces). It can occur from both living and non-living surfaces. It is regulated by the plant, involving stomatal opening and closing. It is a purely physical process influenced by environmental factors like temperature, humidity, and wind. - Osmotic Pressure and Osmotic Potential
Osmotic Pressure Osmotic Potential It is the pressure required to prevent the inward flow of solvent (water) across a semi-permeable membrane into a solution. It is always a positive value. It is a measure of the tendency of water to move by osmosis. It is always a negative value (or zero for pure water) and is directly related to the solute concentration. A higher solute concentration leads to a more negative osmotic potential. It is the force that drives osmosis into a solution. It represents the reduction in water potential due to the presence of solutes. - Imbibition and Diffusion
Imbibition Diffusion It is a special type of diffusion where water is absorbed by solid substances (like cellulose, proteins) causing them to swell. It involves adsorption of water. It is the general movement of any substance (solid, liquid, or gas) from a region of higher concentration to a region of lower concentration. It requires a hydrophilic surface and a liquid. It does not require a specific surface; it occurs in a medium. It leads to an increase in volume. It leads to the equalization of concentration. - Apoplast and Symplast Pathways
Apoplast Pathway Symplast Pathway Movement of water occurs exclusively through the non-living parts of the plant, such as cell walls and intercellular spaces. It is a faster pathway. Movement of water occurs through the living parts of the plant, i.e., the cytoplasm of cells. Water moves from cell to cell via plasmodesmata, which are cytoplasmic connections between adjacent cells. It does not involve crossing cell membranes. It involves crossing cell membranes at least once (to enter the symplast). - Guttation and Transpiration
Guttation Transpiration It is the loss of water in the form of liquid droplets from the tips or margins of leaves, typically occurring through specialized structures called hydathodes. It usually happens when transpiration is inhibited (e.g., at night or high humidity) and root pressure is high. It is the loss of water in the form of water vapor from the aerial parts of plants, primarily through stomata. It is a major process influencing water movement in plants. The lost water is in liquid form. The lost water is in vapor form. It occurs through hydathodes. It occurs mainly through stomata.
Common mistakes
- Confusing passive transport (diffusion, osmosis) with active transport.
- Misunderstanding the direction of movement in osmosis (solute vs. solvent).
- Not clearly differentiating between physiological processes (transpiration) and physical processes (evaporation).
- Incorrectly defining or comparing osmotic pressure and osmotic potential.
Revision tips
- Focus on understanding the definitions and conditions for each transport process.
- Create flashcards to quickly differentiate between similar terms like diffusion/osmosis and transpiration/evaporation.
- Pay close attention to the role of energy (ATP) in active transport.
- Visualize the movement of water molecules and solutes across membranes.
- Review the diagrams (if available in the textbook) illustrating apoplast and symplast pathways.
Practice MCQs
Q1. Which of the following factors does NOT directly affect the rate of diffusion?
Explanation: The rate of diffusion is influenced by concentration gradient, membrane permeability, and temperature. The presence of chlorophyll is related to photosynthesis, not directly to diffusion rates.
Q2. Porins are proteins that form large pores in the outer membranes of which organelles?
Explanation: Porins are found in the outer membranes of plastids like chloroplasts and mitochondria, facilitating the transport of small molecules.
Q3. Active transport in plants moves substances:
Explanation: Active transport moves substances against their concentration gradient (from lower to higher concentration) and requires energy, typically from ATP.
Q4. What is the water potential of pure water at standard temperature and pressure?
Explanation: Pure water has the highest water potential, which is defined as zero under standard conditions. Dissolving solutes decreases water potential.
Q5. Which process involves the movement of solvent molecules across a semi-permeable membrane?
Explanation: Osmosis is specifically the diffusion of a solvent, usually water, across a selectively permeable membrane from a region of higher solvent concentration to a region of lower solvent concentration.
Frequently asked questions
What is diffusion and what affects its rate?
Diffusion is the passive movement of substances from an area of higher concentration to an area of lower concentration. Its rate is affected by the concentration gradient, membrane permeability, temperature, and pressure.
What is the role of porins in plants?
Porins are proteins that form large pores in the outer membranes of organelles like chloroplasts and mitochondria, as well as in bacterial membranes. They facilitate the passive transport of small molecules across these membranes.
How does active transport differ from passive transport?
Active transport moves substances against their concentration gradient (from low to high concentration) and requires energy, usually from ATP, and specific protein pumps. Passive transport, like diffusion and osmosis, moves substances down their concentration gradient and does not require metabolic energy.
Why is the water potential of pure water considered zero?
The water potential of pure water is defined as zero at standard temperature and pressure. This serves as a reference point. Any dissolved solute lowers the water potential, making it negative.
What are the key differences between transpiration and evaporation?
Transpiration is the loss of water vapor specifically from plant surfaces (stomata, lenticels), a physiological process. Evaporation is the physical process of water turning into vapor from any free surface, occurring in both living and non-living contexts.
What are the apoplast and symplast pathways for water movement?
The apoplast pathway involves water movement through non-living parts of the plant (cell walls, intercellular spaces). The symplast pathway involves water movement through the living cytoplasm of cells, connected via plasmodesmata.
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