Lesson 3.2.4.1
3.2.4.1 Antigens and cell-surface recognition Quiz: AQA Biology, Unit 2
20 questions
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Lesson 3.2.4.1, Antigens and cell-surface recognition: 20 multiple choice questions for the AQA Biology (7402), Unit 2: Cells, written with Revision Ninja.
Host it live on the board and students join with a game code on their own devices, or revise alone with Free Play. The answers are revealed in the game.
The 20 questions
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Which description best defines an antigen?
- A molecule, often a protein on a cell surface, that the immune system recognises as foreign or non-self.
- A protein secreted by plasma cells that binds to and neutralises free toxins in blood plasma.
- A short sequence of three bases on mRNA that codes for a specific amino acid.
- A type of white blood cell that engulfs and digests pathogens by phagocytosis in tissues.
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Which of these can the immune system identify using molecules on the surface of cells?
- Only abnormal body cells, because toxins and pathogens carry no surface molecules.
- Only pathogens, because all body cells carry the same surface molecules.
- Pathogens, cells from other members of the same species, abnormal body cells and toxins.
- Only cells from other species, because cells of the same species are always identical.
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Why does the influenza virus cause repeated infections in the same population over time?
- Its antigens are identical each year, so immunity is never gained against it.
- It is a prokaryote, so it divides by binary fission and avoids all immune responses.
- Its DNA is copied by reverse transcription, so it cannot be recognised as a virus.
- Its surface antigens vary, so antibodies from earlier infections may not bind effectively.
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Which feature of a foreign cell would be recognised as non-self by a person's immune system?
- Different glycoproteins on the cell surface compared with the person's own cells.
- Identical glycoproteins on the cell surface to the person's own cells.
- A cell wall made of cellulose, which is found in all human tissues.
- A nucleus that contains DNA, which is found in all human cells.
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An abnormal body cell, such as a cancer cell, can be recognised by the immune system. What is the basis of this recognition?
- The cell releases large quantities of glucose, which signals an immune response.
- Changed or abnormal molecules on the cell surface act as antigens.
- The cell loses its nucleus, which is detected by antibodies in the blood.
- The cell stops producing any proteins, which makes it invisible to the immune system.
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A toxin released by a bacterium acts as an antigen. Which response is most likely?
- Red blood cells respond by producing toxins that neutralise the bacterium.
- B lymphocytes respond by producing antibodies that bind to the toxin.
- Neutrophils respond by producing haemoglobin that binds the toxin molecules.
- Glucose is hydrolysed into toxins that are then absorbed by the liver.
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Which description of antigen variability best explains why vaccines may need to be updated regularly?
- Vaccines lose their antigens within a few hours of being injected into the body.
- Pathogens with changing antigens may no longer be recognised by the immunity from an earlier vaccine.
- Vaccines cause the pathogen to replicate faster, reducing the immunity produced.
- Pathogens lose their surface antigens when exposed to ordinary sunlight and air.
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Which molecule is most directly involved in identifying a cell as self or non-self?
- A glycoprotein on the outer surface of the cell membrane.
- A phospholipid molecule inside the hydrophobic core of the membrane.
- A cellulose microfibril in the cell wall of the cell.
- A tRNA molecule carrying an amino acid in the cytoplasm.
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A pathogen has an antigen that is not recognised by antibodies made against a previous strain. What is the most likely effect on disease?
- The person may become ill again because the immune response to the new antigen starts slowly.
- The antibodies from the earlier strain are converted into the new strain's antigen.
- The person becomes immune to all strains at once, because antigens do not change.
- The pathogen is destroyed immediately by lysozymes in the blood before any response.
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Phagocytes engulf pathogens. Which molecules are then used to destroy the ingested pathogens?
- Lysozymes, which break down the cell walls of ingested bacteria.
- Cellulose, which surrounds the pathogen and digests it into glucose.
- Plasmids, which carry resistance genes that destroy the pathogen.
- Histone proteins, which package the pathogen DNA into chromosomes.
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Which statement about antigens and the body's own cells is correct?
- The body's own cells carry no antigens, so the immune system cannot identify them.
- The body's own cells carry antigens that are identical to all pathogen antigens.
- The body's own cells carry only foreign antigens, which the immune system attacks.
- The body's own cells normally carry self antigens that the immune system does not attack.
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A researcher finds that two strains of a bacterium have different surface glycoproteins. What does this suggest about their immune recognition?
- The strains cannot be recognised by any immune response because glycoproteins are lost.
- The strains must be identical in antigenicity, because glycoproteins are never different.
- The strains may be recognised as different antigens, so antibodies to one strain may not bind to the other.
- The strains will always be destroyed by the same antibodies, because glycoproteins are shared.
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Which two activities of the immune system are described as involving antigen recognition by cell-surface molecules?
- Phagocytosis of pathogens and the response of lymphocytes to foreign antigens.
- Osmosis of water and active transport of sodium ions across membranes.
- Transcription of mRNA and translation of polypeptides on ribosomes.
- Digestion of starch in the mouth and absorption of glucose in the ileum.
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A vaccine contains antigens from a pathogen. Why does the vaccine not cause the disease itself?
- The antigens are not able to cause disease, so they stimulate immunity without causing full infection.
- The antigens are converted to glucose in the liver, which prevents the disease from spreading.
- The antigens are removed from the membrane of the pathogen before injection occurs.
- The antigens are digested by the stomach so they never reach the bloodstream at all.
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A researcher tests whether a surface molecule acts as an antigen. Which result would best support that it is an antigen?
- The molecule is found in every cell in the body and is never recognised as foreign.
- The molecule triggers antibody production in an immune response when introduced into the body.
- The molecule is broken down by amylase in the mouth before it can enter the bloodstream.
- The molecule dissolves in water and passes freely through the phospholipid bilayer.
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Which feature of a cell surface molecule allows the immune system to identify its owner?
- Its specific shape and sequence of amino acids and sugars that is unique to the cell's type.
- Its ability to hydrolyse ATP and release energy for the cell's metabolic processes.
- Its ability to pass through the cell membrane by simple diffusion with no restriction.
- Its ability to carry oxygen molecules to the mitochondria in the cell cytoplasm.
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Which statement explains why an antibody made against one antigen will not destroy a different pathogen?
- Antibodies are made in red blood cells, which cannot reach pathogens in tissues.
- Antibodies have binding sites that are specific to one antigen shape.
- Antibodies are digested by lysozymes before they can reach any pathogen in the body.
- Antibodies only destroy pathogens that have already been ingested by phagocytes.
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Abnormal cells are more likely to be destroyed by the immune system when which of these occurs?
- They display altered antigens on their surface that differ from the body's normal self antigens.
- They display identical antigens to all normal body cells in the same tissue.
- They have no nucleus, so their DNA cannot be recognised by any antibody.
- They lack any cell-surface glycoproteins, which makes them easier to identify.
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A student states that the immune system could never identify a cell from another person of the same species. Evaluate this claim.
- The claim is correct, because only pathogens carry surface molecules that the immune system detects.
- The claim is incorrect, because cells from other individuals can carry different surface molecules that act as non-self antigens.
- The claim is correct, because all cells of one species carry exactly the same molecules.
- The claim is partly correct, because only red blood cells can be identified by their surface molecules.
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A pathogen's antigen varies between strains. Which conclusion is best supported?
- Antigen variation has no effect on vaccine protection because antibodies bind all antigens.
- A vaccine against one strain gives complete protection against all strains of the pathogen.
- Antigen variation only affects bacteria, not viruses, so vaccines always work equally well.
- A vaccine against one strain may give reduced protection against a different strain of the same pathogen.
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