Lesson 3.4.4.1
3.4.4.1 Natural selection, adaptation and antibiotic resistance Quiz: AQA Biology, Unit 4
20 questions
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Lesson 3.4.4.1, Natural selection, adaptation and antibiotic resistance: 20 multiple choice questions for the AQA Biology (7402), Unit 4: Genetic information, variation and relationships, written with Revision Ninja.
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The 20 questions
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What is genetic diversity within a population?
- The number of different alleles of genes in the population.
- The total number of individuals that are present in the population at one time.
- The number of base pairs in the genome of a single individual in the population.
- The number of chromosomes that are present in a single cell of the population.
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Why is genetic diversity important for natural selection to occur?
- It removes all harmful alleles from the population, so no individual is ever selected against.
- It ensures that every individual in the population has exactly the same alleles, so selection is fast.
- It provides variation in alleles, so some individuals may be better suited to a changing environment.
- It ensures that mutation never occurs, so the population does not change over time.
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Which statement describes the principle of natural selection?
- Individuals acquire new alleles during their lifetime and pass them to all offspring in the next generation.
- Individuals with harmful alleles always have increased reproductive success, so the allele spreads quickly.
- Individuals with advantageous alleles have increased reproductive success, so the allele becomes more common over generations.
- All individuals have the same reproductive success regardless of their alleles, so no selection occurs.
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In natural selection, what happens to a new allele that benefits its possessor in a particular environment?
- It is inherited by members of the next generation and increases in frequency over many generations.
- It is converted into a harmful allele by the environment, which removes it from the population.
- It is inherited only by the individual that possesses it and is lost when that individual dies.
- It is removed from the population in the next generation because it is always harmful.
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Which statement describes directional selection?
- Selection removes all variation from the population, so every individual becomes identical over time.
- Selection favours one extreme of a range of phenotypes, shifting the population mean in one direction.
- Selection favours the middle of a range of phenotypes, so the extremes are removed from the population.
- Selection favours individuals with two different alleles, so the population becomes genetically mixed.
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Which statement describes stabilising selection?
- Selection favours the intermediate phenotype, so the extremes are removed from the population.
- Selection favours one extreme phenotype, so the population mean shifts in one direction.
- Selection has no effect on phenotypes, because stabilising selection involves only mutations.
- Selection favours the most extreme phenotypes on both sides, so the mean is never stable.
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Human birth weight is an example of which type of selection, and why?
- Directional selection, because birth weight is determined only by the number of alleles in the mother.
- Stabilising selection, because birth weight is determined only by the environment and not by genes.
- Stabilising selection, because very low and very high birth weights have lower survival than average weights.
- Directional selection, because birth weight has steadily increased in every population over time.
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Which statement describes an adaptation that can result from natural selection?
- A feature that appears only in individuals that have been exposed to a particular antibiotic.
- A change in the chromosome number that happens only in individuals with no alleles at all.
- An anatomical, physiological or behavioural feature that improves survival or reproduction in an environment.
- A change in an individual's alleles during its lifetime in response to the environment.
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Which of these is an example of an anatomical adaptation?
- The habit of an animal migrating to warmer areas during the winter months each year.
- The ability of an animal to produce extra haemoglobin when it moves to high altitude.
- The learned habit of a bird in using a tool to open a food container.
- The thick fur of a polar animal, which reduces heat loss in cold conditions.
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Random mutation can result in new alleles of a gene. What is the main role of random mutation in natural selection?
- It ensures that every new allele is advantageous, so selection always favours the mutant individuals.
- It produces new alleles only in response to the environment, so mutations are always adaptive.
- It removes existing alleles from the population so that selection can act on the remaining individuals only.
- It creates the new alleles on which selection can act, although most mutations are harmful.
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A bacterial culture is grown and the number of cells is recorded over several hours. Why is a logarithmic scale useful for these data?
- Log scales show the mass of bacteria directly, which is not possible on a linear scale.
- Bacterial numbers are always below 10, so a log scale is needed only for very small numbers.
- Bacterial numbers grow exponentially, so a log scale gives a clearer and more manageable representation of the data.
- Bacterial numbers grow in a straight line, so a log scale is never needed for the data.
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A population of bacteria contains a resistant allele at low frequency. An antibiotic is then applied. What is the most likely result over several generations?
- The resistant allele is converted to a susceptible allele, because the antibiotic acts directly on the DNA.
- The frequency of the resistant allele increases, because resistant bacteria survive and reproduce more successfully.
- The frequency of the resistant allele decreases, because the antibiotic kills all resistant bacteria first.
- The frequency of the resistant allele is unchanged, because antibiotics do not affect bacterial alleles at all.
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A student claims that natural selection causes individuals to evolve during their lifetime. Evaluate this claim.
- The claim is right, because each individual adapts to its environment by changing its alleles during its life.
- The claim is wrong, because natural selection acts on populations over generations, not on changes within an individual's lifetime.
- The claim is right, because natural selection only occurs when individual organisms learn new behaviours.
- The claim is partly right, because selection acts within a lifetime only in organisms that reproduce by binary fission.
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A population has a large amount of genetic diversity. Which outcome is most likely if the environment changes suddenly?
- All individuals survive equally, because diversity removes all differences in survival between individuals.
- Some individuals are more likely to carry alleles that help them survive, so the population can adapt more easily.
- The population becomes uniform, because genetic diversity causes every individual to have the same alleles.
- No individuals survive, because diversity makes every individual less fit to face any environmental change.
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Which feature of an organism is an example of a behavioural adaptation?
- The waxy cuticle on the leaves of a desert plant, which reduces water loss through the epidermis.
- The hump of a camel, which stores fat that can be used as a source of energy and water.
- Nocturnal feeding in an animal that lives in a hot desert, reducing water loss during the day.
- The enlarged kidneys of a desert mammal, which concentrate urine and conserve water.
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Which two types of adaptation are described alongside anatomical adaptations in the specification?
- Physiological and behavioural adaptations.
- Digestive and circulatory adaptations.
- Reproductive and developmental adaptations.
- Genetic and chemical adaptations.
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A population of insects shows body lengths with the smallest and largest individuals most often killed by predators. Which type of selection is operating?
- Directional selection, because the largest body length is always favoured by predators.
- No selection, because predators do not cause differences in survival between insects.
- Directional selection, because the smallest body length is always favoured by predators.
- Stabilising selection, because the intermediate body length is favoured.
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A new allele reduces disease in a species only in one environment and has no effect in another. What is the most likely outcome?
- It increases equally in all environments, because advantage does not depend on the environment.
- It is removed in all environments immediately, because new alleles are always harmful to the population.
- It increases in frequency in the environment where it is advantageous, but not in the other.
- It is converted into the old allele in every environment, because alleles cannot change over time.
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A student claims that all adaptations are physical structures. Evaluate this claim.
- The claim is right, because only anatomical features can be passed on to offspring.
- The claim is right, because behaviour cannot be an adaptation, only a learned response.
- The claim is wrong, because adaptations can also be physiological or behavioural.
- The claim is partly right, because physiological adaptations are never inherited by the next generation.
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A bird population has beak lengths of 10 to 20 mm. A drought removes most of the small seeds, so birds with large beaks survive better. What change over generations is expected?
- The mean beak length shifts towards smaller values, because small beaks are always favoured by selection.
- The mean beak length stays the same, because the drought affects only seeds and not the birds.
- Beak length becomes more variable, because selection always increases variation in a population.
- The mean beak length shifts towards larger values, through directional selection.
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