Lesson 3.2.1.2.1
3.2.1.2.1 Prokaryotic cells and viruses Quiz: AQA Biology, Unit 2
20 questions
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Lesson 3.2.1.2.1, Prokaryotic cells and viruses: 20 multiple choice questions for the AQA Biology (7402), Unit 2: Cells, written with Revision Ninja.
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The 20 questions
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How is the DNA of a prokaryotic cell arranged?
- As many short linear molecules attached to the cell membrane only
- As a double helix held within mitochondria
- As linear chromosomes enclosed within a nucleus, bound to histone proteins
- As a single circular DNA molecule free in the cytoplasm, not associated with proteins
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What is the main chemical component of the cell wall of a bacterium?
- Chitin, a polysaccharide
- Phospholipid bilayer
- Cellulose, a polysaccharide
- Murein, a glycoprotein
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What is a plasmid in a prokaryotic cell?
- A membrane-bound organelle that makes ATP by aerobic respiration in the cytoplasm of the cell
- A small, circular DNA molecule separate from the main circular chromosome
- A linear chromosome containing histone proteins that is found within a nucleus in the cell
- A flagellum used for movement through liquids by the rotation of a protein filament in the cell
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What is the outer protein coat of a virus particle called?
- Capsid
- Murein
- Cytoplasm
- Flagellum
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Why are viruses described as acellular?
- They contain many organelles that are able to make proteins and lipids independently of host cells
- They have no cell structure, such as a cell membrane, cytoplasm or ribosomes of their own
- They are the smallest living cells, with a nucleus and a full set of membrane-bound organelles inside
- They have a cell wall made of murein, which prevents them from dividing and makes them very rigid
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What is the function of an attachment protein on a virus particle?
- It produces ATP for the virus using host cell mitochondria
- It digests the cell wall of the host cell using hydrolytic enzymes
- It forms a flagellum that moves the virus through water
- It binds to complementary receptors on the surface of a host cell
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Prokaryotic ribosomes are smaller than eukaryotic ribosomes. Which statement is correct about this?
- Prokaryotic ribosomes are membrane-bound, while eukaryotic ribosomes are free
- Prokaryotic ribosomes are found only in the nucleus, while eukaryotic ribosomes are in the cytoplasm
- Prokaryotic ribosomes are 80S, while eukaryotic ribosomes are 70S
- Prokaryotic ribosomes are 70S, while eukaryotic ribosomes are 80S
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A virus enters a host cell and injects its nucleic acid. What happens next?
- The host cell's machinery replicates the viral nucleic acid and makes new virus particles
- The host cell's nucleus is destroyed and the virus is released as a spore
- The virus makes its own ribosomes and uses them to divide
- The virus divides by binary fission inside the host cell
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Antibiotics that inhibit murein synthesis are effective against bacteria. Why do they have no effect on viruses?
- Viruses carry murein in their capsid, which protects the virus particle from the antibiotic completely
- Viruses are eukaryotic cells, so they are unaffected by all antibiotics that act on any kind of cell
- Viruses have no cell wall and no murein, so there is nothing for these antibiotics to act upon
- Viruses have a cell wall that is far too thick for the antibiotic molecules to penetrate into the cell
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Antibiotics that block 70S ribosomes do not usually harm human cells. Why?
- Human cells contain no ribosomes in their cytoplasm, so the antibiotic has no target site to act on
- Human cells have a nuclear envelope that stops the antibiotic from entering the cell's cytoplasm
- Human cells have murein walls that resist the antibiotic and prevent it from entering the cell
- Human cytoplasmic ribosomes are 80S, so they differ in structure from the bacterial 70S ribosomes
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A bacterium is 2 micrometres long. What is its length in millimetres?
- 0.02 mm
- 0.2 mm
- 0.002 mm
- 2000 mm
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Which structure is found in a prokaryotic cell but is absent from a virus particle?
- Genetic material
- An attachment protein
- Ribosomes
- A capsid
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Viruses carry genetic material that may be DNA or RNA. What does this show about virus structure?
- All viruses carry RNA as their genetic material, and DNA is found only inside a nucleus
- All viruses carry DNA as their genetic material, and RNA is found only within the host cells
- Viruses carry neither DNA nor RNA, but a protein that is able to replicate itself inside the cell
- The type of nucleic acid varies between viruses, so the genetic material is not always DNA
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Why are viruses not considered to undergo cell division by binary fission?
- They are too small to contain any DNA or RNA, so they cannot divide into two new particles
- They are non-living and cannot replicate themselves, so the host cell must make their components
- They have a cell wall that prevents the division process from starting in the particle
- They divide only once inside each host cell, using their own ribosomes to make the new particles
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Explain how a bacterial plasmid can be passed between bacteria during binary fission, and why daughter cells may receive different numbers of copies.
- Plasmids replicate only after division has finished, so the daughter cells receive none of them at first
- Plasmids are passed between cells only when the chromosome is absent, so each daughter gets exactly one copy each time
- Plasmids replicate with the chromosome, and during division the cytoplasm divides with a variable number of plasmid copies in each daughter
- Plasmids are always divided equally between the daughter cells because they are physically linked to the chromosome
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Explain why the specific shape of a virus attachment protein means a virus usually infects only certain types of cell.
- The attachment protein fits complementary receptor molecules on particular host cell surfaces
- The attachment protein digests every cell type it contacts, so it can only infect those cells that survive
- The attachment protein is identical in all viruses, so it binds any cell
- The attachment protein makes the host cell produce only one type of receptor
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Explain how a prokaryotic cell can carry out aerobic respiration despite having no mitochondria.
- Prokaryotes respire using their circular DNA, which is able to produce ATP directly without any enzymes
- Enzymes for respiration are located in the cytoplasm and the cell-surface membrane, which carry out the reactions
- Prokaryotes respire in their flagella, which contain all of the enzymes that are needed for the process
- Prokaryotes use their murein walls as a source of energy, which is released by respiration in the wall
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A student claims that viruses are living because they contain genetic material. Which evaluation is correct?
- Incorrect, because having genetic material alone is not enough, as viruses cannot reproduce or metabolise without a host cell
- Correct, because viruses carry out respiration within their capsid, which releases energy for replication
- Incorrect, because viruses have ribosomes that make new virus particles from amino acids in the capsid
- Correct, because all living organisms are defined only by the fact that they carry genetic material in cells
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A researcher finds that a new bacterium has a flagellum and a capsule. Which feature is most likely to help the bacterium escape the immune system?
- The circular DNA, which stores information that stops the immune system
- The flagellum, which allows the bacterium to swim away from the immune cells
- The cell wall of murein, which prevents phagocytes from engulfing the cell
- The capsule, which surrounds the cell and can help it evade recognition
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Explain why the presence of a single circular DNA molecule free in the cytoplasm is still sufficient for a prokaryote to function.
- The circular DNA is held inside the nucleus, which controls all of the cell's functions in the cytoplasm
- The circular DNA is replicated only once in each cell cycle, so the cell uses an incomplete set of genes
- The circular chromosome carries the essential genes, and gene expression occurs in the cytoplasm without a nuclear membrane
- The circular DNA is held in the cell wall, which releases the genes into the cytoplasm as they are needed
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