Tag: botany
Questions Related to botany
In CAM plants, photophosphorylation occurs in
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Bundle sheath cell, during night
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Mesophyll cell, during day time
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Mesophyll cell, during night
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Bundle sheath cell, during day time
In CAM plants, photophosphorylation occurs in bundle sheath cell during night. Hence, stomata is open during night in order to fix the carbon dioxide. During night, a four carbon acid is produced when stomata are open. RuBisCo enzyme fixes carbon during the day time during the light reactions. Examples of plants that show CAM photosynthesis are cactus and pineapple.
C A M photosynthesis occurs in plants with
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Thin green leaves with reticulate venation
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Thin green leaves with parallel venation
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Fleshy green leaves
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Thin coloured leaves
CAM (Crassulacean Acid Metabolism) photosynthesis is found in most desert plants, particularly the succulents (plants that store water in thick, fleshy leaves). CAM plants keep their stomata closed during the day to conserve water. At night, the stomata open to allow CO$ _{2}$ to enter. CO$ _{2}$ is incorporated into organic acids which are then stored within the mesophyll cells. During the day, CO$ _{2}$ is released from the organic acids to supply the Calvin Cycle. Thus, CAM photosynthesis occurs in fleshy green leaves and not in thin green leaves with reticulated venation or Thin green leaves with parallel or thin colored leaves. Thus, option C is correct and other options are incorrect.
In sugarcane plant, ${^{14}CO _2}$ is fixed in malic acid, the enzyme that fixes ${C O _2}$ in this reaction is
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Ribulose biphosphate carboxylasc
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Phosphoenol pyruvic acid carboxylase
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Ribulose phosphate kinase
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Fructose phosphatase
Phosphoenol pyruvate is formed from the decarboxylation of oxloacetate and hydrolysis of one guanosine triphosphate molecule. This reaction is catalyzed by the enzyme phosphoenolpyruvate carboxylase. This reaction is a rate limiting step in gluconeogenesis.
GTP + Oxaloacetate -----> GDP + Phosphoenolpyruvate + $CO _2$.
CAM helps the plants in
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Reproduction
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Conserving water
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Secondary growth
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Disease resistance
Certain plants especially succulents which grow under extremely xerophytic conditions, fix atmospheric carbon dioxide in the dark. Since the process was first observed in the plants belonging to family Crassulaceae such as Bryophyllum, Kalanchoe, Sedum etc., it was termed crassulacean acid metabolism (CAM). Such plants are known as CAM plants. The most characteristic feature of these plants is that their stomata remain open at night but closed during the day. Thus, CAM is a kind of adaptation in succulents to carry out photosynthesis without much loss of water. This helps in conserving water in these plants.
CAM plants are mainly
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Succulent xerophyte
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Hydrophytes
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Epiphyted
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None of the above
CAM plants are mainly succulent xerophytes. Besides C3 and C4 cycles, Crassulacean acid metabolism is a third mechanism for fixing carbon dioxide. It is found not only in members of the family Crassulaceae eg., Kalanchoe, Sedum, Crassula, but also in the members of family Cactaceae example Opuntia. Besides it also occurs in some members of Liliaceae, Orchidaceae, Bromeliaceae, Euphorbia sp and pteridophytes like Isoetes. In CAM plants the stomata are open at night and during day time the stomata remain close.
In the mesophyll cells of CAM plants, $CO _{2}$ fixation during the day occurs through
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RuBP oxygenase
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PEP carboxylase
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RuBP carboxylase
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Both RuBP carboxylase and PEP carboxylase
CAM photosynthesis is a carbon fixation pathway present in some plants, such as desert plants. These plants fix carbon dioxide during night, storing it as the four carbon acid malate. The malate is then reduced to a three carbon compound oxaloacetate and the carbon dioxide. This carbon dioxide is released during the day, where it is concentrated around the enzyme RuBP carboxylase and increases the efficiency of photosynthesis. The carboxylating enzyme used during day is RuBP carboxylase and during the night its PEP carboxylase.
Answer is option C.
The source of $CO _{2}$ for photosynthesis in the CAM plants is
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3-PGA.
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Malic acid.
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Oxaloacetic acid.
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Pyruvate.
In CAM plants there is temporal separation between initial carbon dioxide fixation and Calvin cycle. In these plants, during night time the stomata are open and atmospheric carbon dioxide is fixed into organic acids like malic acid. The organic acids are stored in cell vacuoles during night time. During day time the stomata are closed and organic acids are decarboxylated to release carbon dioxide. The released carbon dioxide is fixed by the RuBisCO and usual reactions of the Calvin cycle.
Kranz anatomy can be observed in leaves of ______________.
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Sorghum
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Spinach
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Mustard
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Tulip
- Kranz anatomy is a special structure of leaves in C4 PLANTS e.g. maize, sugarcane, sorghum, and millets.
- Mustard and Spinach belongs to C3 plants.
- Tulip is an example of a CAM plant.
So, the correct answer is option A, Sorghum
Select the incorrect statement from the following.
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C4 pathway for CO$ _2$ fixation were discovered by Hatch and Slack.
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CO$ _2$ is essential for photosynthesis.
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Addition of sodium carbonate in water retards photosynthetic rate in Vallisneria.
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Phloem is the principal pathway for translocation of solutes.
In a CAM plant, the concentration of organic acid
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Increases during the day.
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Decreases or increases during the day.
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Increases during night.
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Decreases during any time.
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. As photosynthesis occurs during night, the concentration of organic acid, which is the product of photosynthesis increases during night. Thus, option C is correct answer.