Class 11 Biology | 100 Biological Classification MCQs
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Biological Classification MCQs with Answers – Part 2 (Class 11 Biology)

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101. A methane-producing prokaryote is detected in waterlogged marsh sediment with little available oxygen. It most likely belongs to:
ⓐ. halophilic archaebacteria
ⓑ. methanogenic archaebacteria
ⓒ. photosynthetic eubacteria
ⓓ. thermoacidophilic archaebacteria
102. Match each archaebacterial group with its characteristic habitat or association. A Column II entry is used once.
Column IColumn II
P. Halophiles1. Hot acidic springs
Q. Thermoacidophiles2. Highly saline environments
R. Methanogens3. Marshes and ruminant guts
ⓐ. P-1, Q-3, R-2
ⓑ. P-3, Q-2, R-1
ⓒ. P-2, Q-1, R-3
ⓓ. P-2, Q-3, R-1
103. Samples from three sites give the following observations.
SiteDominant conditionDetected archaebacterial group
PExtremely saline waterHalophiles
QHot acidic springThermoacidophiles
RMarsh producing methaneMethanogens
The strongest conclusion is that:
ⓐ. each group is linked to a characteristic habitat
ⓑ. every archaebacterium must survive equally well at all three sites
ⓒ. methane production is the defining feature of halophiles
ⓓ. salinity alone identifies thermoacidophiles
104. A student describes all archaebacteria as organisms restricted to hot springs. The description should be revised since archaebacteria also include:
ⓐ. only cellulose-walled plants of saline habitats
ⓑ. halophiles and methane-producing methanogens
ⓒ. only photosynthetic protists from freshwater
ⓓ. animal parasites lacking prokaryotic organisation
105. Archaebacteria can survive in harsh habitats partly due to:
ⓐ. replacement of prokaryotic organisation by eukaryotic cells
ⓑ. complete absence of any outer cellular boundary
ⓒ. universal formation of multicellular tissues
ⓓ. a wall structure differing from that of other bacteria
106. An archaebacterium survives in an extreme habitat partly through its distinctive wall organisation. If that wall adaptation is severely disrupted while the cell remains prokaryotic, the most direct prediction is:
ⓐ. automatic conversion of the cell into a eukaryote
ⓑ. gain of a cellulose wall typical of green plants
ⓒ. unchanged tolerance because walls have no relation to habitat survival
ⓓ. reduced ability to withstand the extreme environmental condition
107. An archaebacterial population survives in a highly saline habitat, whereas a typical bacterium with a different wall structure fails under the same conditions. The observation most directly supports:
ⓐ. identical tolerance despite differences in wall structure
ⓑ. wall structure contributes to survival in harsh habitats
ⓒ. salinity alone determines survival regardless of wall structure
ⓓ. wall composition changes only after prolonged salt exposure
108. A claim states that walls of archaebacteria and eubacteria are structurally identical, so habitat tolerance cannot differ between them. This claim conflicts with the observation that:
ⓐ. archaebacterial walls differ and support extreme-habitat survival
ⓑ. eubacteria lack cell walls and survive only as intracellular parasites
ⓒ. archaebacteria possess multicellular tissue-level organisation
ⓓ. eubacteria are eukaryotic but archaebacteria are prokaryotic
109. Four conclusions are proposed after archaebacteria are observed in an extreme habitat. I. Their wall differs from that of other bacteria. II. The wall difference is associated with survival in harsh conditions. III. Every archaebacterium must inhabit the same extreme environment. IV. Detailed wall chemistry can be inferred without further evidence.
ⓐ. Only II, III and IV are correct; I is false
ⓑ. Only I, II and III are correct; IV is false
ⓒ. Only I and II are correct; III and IV are false
ⓓ. I, II, III and IV are all correct statements
110. Methanogens are commonly found in the digestive tract of:
ⓐ. photosynthetic green algae
ⓑ. terrestrial green plants
ⓒ. cows and buffaloes
ⓓ. marine planktonic diatoms
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