Tag: photosynthesis

Questions Related to photosynthesis

In CAM plants, organic acid content

  1. Decreases during night

  2. Increases during day

  3. Increases during night

  4. Both A and B


Correct Option: C
Explanation:

In CAM plants, organic acid content increases during the night because the stomata remain open at the night and close during the daytime to conserve water. When stomata are open during the night, carbon dioxide is fixed by the action of phosphoenolpyruvate carboxylase to malic acid, this is called as acidification. During daytime, when the stomata are closed, malic acid is converted to pyruvic acid and carbon dioxide, this is called as deacidification. Hence acid concentration increases at night and decreases at daytime. So, the correct answer is 'Increases during night'.

CAM plants belong to .......... family.

  1. Malvaceae

  2. Crassulaceae

  3. Trapaceae

  4. Orchidaceae


Correct Option: B
Explanation:

CAM stands for crassulacean acid metabolism because it was first studied in members of the plant family Crassulaceae (Bryophyllum). CAM is the fixation of carbon dioxide by plants in arid condition. In normal conditions, the opening of the stomata is always connected with the large losses of water. To inhibit this loss during intense sunlight, CAM plants have developed a mechanism which allows the uptake of carbon dioxide during the night. They are more common than C$ _4$ plants and include cacti and a wide variety of other succulent plants. So, the correct answer is 'Crassulaceae'.

Sunken stomata are usually found in

  1. Phanerogams

  2. $C _3$ plants

  3. CAM plants

  4. Insectivorous plants


Correct Option: C
Explanation:

A) Phanerogams are seed bearing plants like Gymnosperms and Angiosperms. They have prominent stomata.

B) ${ C } _{ 3 }$ plants have bean shaped stomata present on their surface.
C) CAM plants have sunken stomata to reduce the loss of water through transpiration.
D) Insectivorous plants do not have stomata.
So the correct answer is 'CAM plants'.

The common feature in CAM and $C _4$ plants is

  1. Stomata open only during night

  2. Acid concentration increases during night

  3. Both $C _3$ and $C _4$ pathways occur

  4. Having Kranz anatomy


Correct Option: C
Explanation:

A) Stomata are open both during the day and night in ${ C } _{ 4 }$ plants, but open only at night in CAM plants.

B) The acid in ${ C } _{ 4 }$ plants decreases at night.
C) In both CAM and ${ C } _{ 4 }$ plants, ${ C } _{ 4 }$ pathway takes place followed by ${ C } _{ 3 }$ pathway.
D) Only ${ C } _{ 4 }$ plants have Kranz anatomy.
So the correct answer is 'Both ${ C } _{ 3 }$ and ${ C } _{ 4 }$ pathways occur'.

Which of the following is a CAM plant?

  1. Maize

  2. Sugarcane

  3. Agave

  4. Mango


Correct Option: C
Explanation:

Crassulacean acid metabolism is a carbon fixation pathway that evolved in some plants as an adaptation to arid conditions. In a plant using full CAM, the stomata in the leaves remain shut during the day to reduce evapotranspiration, but open at night to collect carbon dioxide.

Kranz type of anatomy is found in 

  1. $C _{3}$ plants

  2. $C _{2}$ plants

  3. $C _{4}$ plants

  4. CAM plant


Correct Option: C
Explanation:
  • $C _4$ photosynthesis incorporates novel leaf anatomy, metabolic specializations, and modified gene expression.
  • Plants that utilize this pathway typically possess a distinctive Kranz leaf anatomy, consisting of two photosynthetic cell types.
  • Their vascular bundles are surrounded by two rings of cells; the inner ring, called bundle sheath cells, contains starch-rich chloroplasts lacking grana, which differ from those in mesophyll cells present as the outer ring.
  • This structural framework allows for the compartmentalization and functional separation of two sets of carboxylation and decarboxylation reactions.
    Hence, the correct answer is C.

In CAM cycle, during the formation of malic acid, stomata remains

  1. Open

  2. Closed

  3. Semi open

  4. Always closed


Correct Option: A
Explanation:

CAM method is a carbon fixation pathway that evolved in some plants as an adaptation to arid conditions. In a plant using full CAM, the stomata in the leaves remain shut during the day to reduce evapotranspiration, but open at night to collect carbon dioxide. The carbon dioxide is then stored as a four-carbon acid, malate, and then used during photosynthesis during the day. The pre-collected CO2 is concentrated around the enzyme RuBisCO, increasing photosynthetic efficiency.

In maximum plants, stomata open during day and closed at night. Its exception is

  1. Crassulacean acid metabolism plants

  2. $C _{3}$ plants

  3. $C _{4}$ plants

  4. None of the above


Correct Option: A
Explanation:

Crassulacean acid metabolism is a carbon fixation pathway that evolved in some plants as an adaptation to arid conditions. In a plant using full CAM, the stomata in the leaves remain shut during the day to reduce evapotranspiration, but open at night to collect carbon dioxide. The $CO _2$ is stored as the four- carbon acid malate, and then used during photosynthesis during the day. The pre-collected $CO _2$ is concentrated around the enzyme RuBisCO, increasing photosynthetic efficiency.

CAM helps the plants in

  1. Reproduction

  2. Secondary growth

  3. Conserving water

  4. Disease resistance


Correct Option: C
Explanation:
CAM stands for Crassulacean Acid Metabolism. Plants having CAM have scotoactive stomata. These plants fix $CO _{2}$ during the night but form sugars only during the day (when RuBisCO is active). CAM helps plants in conserving water. These plants are succulent and they have water-storing cells. Sedum, Kalanchoe, Opuntia, etc., are the examples of CAM plants.
So, the correct answer is 'Conserving water'

In overall photosynthetic pathway, for one molecule of $O _2$ liberated eight light quanta are required two molecules of NADPH$2$ are formed. Beside this, certain amount of energy is also released along with electron transport. This energy is liberated as.

  1. $2$ ATP molecules

  2. $8$ ATP molecules

  3. $3$ ATP molecules

  4. $4$ ATP molecules


Correct Option: A