Class 11 Biology | Last 50 MCQs Of Cell: The Unit Of Life
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Cell: The Unit of Life MCQs with Answers – Part 5 (Class 11 Biology)

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401. Examine the following cellular records.
RecordGenetic organisationRibosomesInternal organisation
PCircular DNA in a nucleoid\(70S\)No typical membrane-bound organelles
QChromosomes inside a nucleus\(80S\) in cytoplasmExtensive compartmentalisation
RCircular DNA inside a double-membrane organelle\(70S\) within the organelleOccurs inside a eukaryotic cell
SChromosomes inside a nucleus\(80S\)Filament-hook-basal-body flagellum
The record requiring correction is:
ⓐ. P
ⓑ. Q
ⓒ. R
ⓓ. S
402. An unknown cell is disrupted and analysed. No nuclear envelope, ER or Golgi apparatus is detected. The genetic fraction contains one principal circular DNA molecule and several small circular DNA molecules. The cytoplasmic fraction contains \(70S\) ribosomes, and the locomotory structure separates into a filament, hook and basal body. The strongest inference is:
ⓐ. The sample is a prokaryotic cell containing genomic DNA and plasmids
ⓑ. The sample is a eukaryotic cell whose nucleus was lost during disruption
ⓒ. The sample is a plant cell containing damaged plastids
ⓓ. The sample is an animal cell containing a centrosome
403. Use the two cellular arrangements described below. Cell P has an outer glycocalyx, a wall, a plasma membrane, a nucleoid, plasmids, \(70S\) ribosomes and pili. Cell Q has only a plasma membrane at its outer living boundary, a membrane-bound nucleus, mitochondria, ER and a membrane-covered flagellum with a \(9+2\) axoneme. Which interpretation is most accurate?
ⓐ. P and Q possess the same organisational plan but differ only in their surface coverings
ⓑ. P is eukaryotic because it possesses both hereditary DNA and protein-synthesising ribosomes
ⓒ. P is prokaryotic and Q eukaryotic; their flagella have different structural plans
ⓓ. Q is prokaryotic because its membrane-covered flagellum is used for locomotion
404. Cell P possesses a cellulose-containing wall, plasmodesmata, chloroplasts and a large central vacuole. Cell Q lacks a wall and plastids but possesses centrioles and numerous microvilli. Both cells contain mitochondria, ER, Golgi apparatus and ribosomes. The most accurate conclusion is:
ⓐ. P is prokaryotic, while Q is eukaryotic
ⓑ. P is a typical plant cell, while Q is a typical animal cell
ⓒ. P and Q are both plant cells with different surface modifications
ⓓ. P and Q are both animal cells because they contain mitochondria
405. A cell diagram shows an outer rigid boundary, an inner plasma membrane, chloroplasts, mitochondria, a nucleus and a large vacuole enclosed by a tonoplast. Channels cross the outer boundary to connect the cell with its neighbours. The cell is best identified as:
ⓐ. A typical plant cell with plasmodesmata
ⓑ. A typical animal cell with microvilli
ⓒ. A bacterium with pili and gas vacuoles
ⓓ. A fungal cell containing chloroplasts
406. Examine the following plant-animal comparison records.
RecordFeatureProposed distribution
PPlasma membraneShared by plant and animal cells
QLarge central vacuoleCharacteristic of a typical mature plant cell
RCentriolesCommonly associated with a typical animal cell
SMitochondriaExclusive to animal cells
The record requiring correction is:
ⓐ. P
ⓑ. Q
ⓒ. R
ⓓ. S
407. A typical plant cell is treated with enzymes that remove its wall. Its plasma membrane, nucleus, mitochondria and large vacuole remain intact, but the particular tissue examined contains no developed chloroplasts. Which conclusion is most justified?
ⓐ. the treated cell should be reclassified as prokaryotic because the wall is absent
ⓑ. the treated cell should be reclassified as animal because developed chloroplasts are absent
ⓒ. Removing the wall does not alter the cell's plant origin or eukaryotic organisation
ⓓ. retention of a large vacuole is sufficient to classify the treated cell as fungal
408. Arrange the following events in the pathway of a newly synthesised secretory protein. P. Translation on a ribosome attached to rough ER Q. Entry into an ER-derived transport vesicle R. Arrival at the Golgi cis face S. Modification and movement toward the Golgi trans face T. Delivery in a vesicle to the plasma membrane
ⓐ. P → Q → R → S → T
ⓑ. R → P → Q → T → S
ⓒ. P → S → R → Q → T
ⓓ. Q → P → R → T → S
409. Assertion: Blocking vesicle release from the Golgi trans face can cause processed secretory products to accumulate within the Golgi apparatus. Reason: The trans face is the principal site at which ER-derived vesicles first enter the Golgi stack.
ⓐ. Both Assertion and Reason are true, and Reason correctly explains the Assertion
ⓑ. Both Assertion and Reason are true, but Reason does not explain the Assertion
ⓒ. Assertion is true, but Reason is false; the Reason cannot explain the Assertion
ⓓ. Assertion is false, but Reason is true; the Reason cannot explain the Assertion
410. A graph plots radioactive label intensity against time for four locations after a short pulse labels a newly synthesised secretory protein. The RER curve peaks first, the cis-Golgi curve peaks next, the trans-Golgi curve peaks later, and the extracellular-medium curve rises last. The trend most strongly supports:
ⓐ. independent synthesis of the labelled protein at each recorded cellular location
ⓑ. sequential transfer from RER through cis- and trans-Golgi before secretion
ⓒ. reverse uptake from extracellular medium through Golgi cisternae into RER
ⓓ. direct RER release while Golgi labelling reflects separate protein synthesis
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