Lesson 6.2.2
6.2.2 How TB and HIV infect human cells Quiz: Pearson Edexcel Biology A (Salters-Nuffield), Unit 6
20 questions
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Lesson 6.2.2, How TB and HIV infect human cells: 20 multiple choice questions for the Pearson Edexcel Biology A (Salters-Nuffield) (9BI0), Unit 6: Immunity, Infection and Forensics, written with Revision Ninja.
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The 20 questions
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Mycobacterium tuberculosis is best described as:
- A virus that infects helper T cells and destroys them over several months
- A bacterium that can survive and multiply inside host macrophages
- A protist that is transmitted by mosquitoes and infects red blood cells
- A fungus that grows on the skin and releases toxins into the bloodstream
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HIV is a virus that infects which cells in the human body?
- Neurones in the brain, which carry impulses along long axons to the muscles
- Red blood cells, which carry haemoglobin and lack a nucleus in mature form
- Platelets, which are fragments of megakaryocytes involved in blood clotting
- Helper T cells, which carry the CD4 receptor on their surface
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How does HIV enter a helper T cell?
- By passing through the nuclear pores of the T cell without interacting with its surface
- By attaching to the cell wall of the T cell, which contains peptidoglycan that HIV can bind
- By being engulfed by phagocytosis and then digesting the membrane of the T cell from inside
- By binding its glycoprotein to CD4 and co-receptors on the cell surface, then fusing its envelope with the membrane
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Reverse transcriptase is an enzyme used by HIV to:
- Make a DNA copy of its RNA genome inside the host cell
- Break down the host cell membrane so that the virus can leave the cell by budding
- Attach the viral envelope to the host cell membrane by forming disulfide bonds
- Synthesise protein from its RNA using the host cell ribosomes in the cytoplasm
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After HIV integrates into host DNA, the infected cell can:
- Divide by binary fission, so that the virus is copied into two new bacterial cells
- Lose its nucleus and become a red blood cell that carries the virus in its haemoglobin
- Produce new viral RNA and proteins
- Stop all protein synthesis permanently, so that no further virus can be made from it
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Why do people with untreated HIV often develop opportunistic infections late in the disease?
- Because HIV releases a toxin that makes the body reject all medicines given by doctors
- Because the number of helper T cells falls
- Because HIV causes all white blood cells to produce too much antibody, which damages the tissues
- Because HIV makes the bacteria in the gut more dangerous, so they invade the bloodstream
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Tuberculosis causes symptoms partly because of the immune response to the bacteria. Which structure does the immune system form around infected macrophages?
- A granuloma, a mass of immune cells that walls off the infection but can damage lung tissue
- A capsid, a protein coat that encloses the bacteria and prevents any further spread
- A biofilm, a mat of bacteria that protects the infected lung from all immune responses
- A plasmid, a small circle of DNA that carries resistance genes to every antibiotic
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Which symptom of tuberculosis is most directly linked to lung infection?
- Swelling of the lymph nodes in the neck caused by blood clots in the veins
- A rash that spreads across the skin and fades within a single day
- A persistent cough, sometimes producing blood-stained sputum
- Sudden loss of hearing caused by damage to the cochlea in the inner ear
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Why is HIV described as a retrovirus?
- Because it reproduces by binary fission in the same way as bacteria
- Because it is able to infect plants and animals with equal efficiency
- Because it uses reverse transcriptase to copy its RNA into DNA
- Because it contains a peptidoglycan wall that is resistant to most antibiotics
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Which statement about HIV and TB infection is correct?
- TB is caused by a bacterium that can be treated with antibiotics, whereas HIV is a virus that cannot be cured by antibiotics
- TB and HIV are both viruses, so both can be cured by a single course of antibiotics
- TB and HIV are both caused by bacteria, so both can be treated effectively with penicillin
- HIV is a bacterium and TB is a virus, so antibiotics work against HIV but not TB
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Which feature of HIV allows it to evade the immune system by changing its surface?
- The presence of a thick peptidoglycan wall that hides the viral surface from antibodies
- The fixed capsid shape, which is identical in every virus particle and cannot be altered
- The rapid mutation of its envelope glycoproteins
- The use of host ribosomes to make proteins that look identical to those of the host
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In a lab study, the number of helper T cells in an HIV-infected patient falls from 800 to 200 per microlitre over several years. Which conclusion is best supported?
- The patient's antibody level must have fallen to zero, because antibodies are made by helper T cells
- The patient's red blood cell count must have risen, which indicates a successful response
- The patient has developed complete immunity to HIV, so the virus can no longer replicate
- The patient's immune response is weakened, making infection by opportunistic pathogens more likely
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Which is the best reason why TB treatment usually requires several antibiotics given over months?
- The bacteria produce a capsid that blocks the antibiotic from reaching the cell wall in every case
- The antibiotics only work for a few hours, so they must be taken every day for several months
- The antibiotics must wait for the immune system to produce antibodies before they become effective
- The bacteria can survive inside macrophages and some strains resist drugs
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Which process allows HIV to spread from one infected cell to another?
- Phagocytosis of the infected cell by a neutrophil, which carries the virus to the bloodstream
- Budding of new virus particles from the infected cell, followed by infection of neighbouring cells
- Binary fission of the infected cell, which produces daughter cells that carry the virus
- Spore formation within the infected cell, which allows the virus to survive outside the body
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Which statement evaluates the claim that HIV is easily destroyed outside the body?
- The claim is correct, since HIV can survive indefinitely in soil and water and infects plants
- The claim is incomplete, since HIV is fragile in the environment but is transmitted through direct contact with infected body fluids
- The claim is correct, since HIV survives for years on surfaces and remains infectious in the air
- The claim is incorrect, since HIV can only be transmitted by mosquitoes and never by body fluids
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Which of these describes the replication of HIV inside an infected cell?
- RNA is converted to DNA, integrated into the host genome, then transcribed to make viral RNA and proteins
- DNA is copied into RNA which is then translated directly into the capsid protein in the cell nucleus
- The host cell divides by binary fission, and each daughter cell receives a complete viral genome
- Peptidoglycan is synthesised and then cut into fragments that form the new virus particles
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Which cells in the lungs does Mycobacterium tuberculosis commonly infect and survive within?
- Neurones in the lung tissue, which transmit signals from the diaphragm to the rest of the chest
- Red blood cells in the alveolar capillaries, which lack a nucleus in their mature form
- Alveolar macrophages, where it can resist destruction and multiply inside phagosomes
- Epithelial cells in the skin, which form the outer protective barrier of the entire body
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Which sequence best describes the progression of untreated HIV infection?
- A long period of immunity, then a rise in helper T cell numbers, then a short acute infection
- Death within one week of infection, with no phase of acute infection or latency at all
- AIDS first, then acute infection, then full clearance of the virus by the immune system
- Acute infection, then a long period of clinical latency, then falling helper T cell counts leading to AIDS
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Each infected cell produces 10 new HIV particles per day. How many new particles are produced by 50 infected cells over 3 days?
- 1,500 particles, since 10 x 50 x 3 = 1,500
- 150 particles, since 10 x 50 = 500 and 500 divided by 3 is about 167
- 500 particles, since 10 x 50 = 500 and the 3 days do not change the total
- 15,000 particles, since 10 x 50 x 3 x 10 gives the total when multiplied by ten again
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Which evidence is the strongest indication that a person has active tuberculosis rather than latent infection?
- A raised white blood cell count alone, which is a non-specific sign of many types of infection
- Symptoms together with a positive sputum culture showing the bacteria are being released from the lungs
- A positive skin or blood test with no symptoms, since this always indicates active disease
- A clear chest X-ray taken on a single day, which proves that no bacteria are present in the body
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