Lesson 3.7.2.1
3.7.2.1 Allele frequency in populations Quiz: AQA Biology, Unit 7
20 questions
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Lesson 3.7.2.1, Allele frequency in populations: 20 multiple choice questions for the AQA Biology (7402), Unit 7: Genetics, populations, evolution and ecosystems, written with Revision Ninja.
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The 20 questions
-
What is a gene pool?
- The genotypes of all organisms in a single habitat
- The collection of chromosomes in a single gamete
- The set of genes carried by one individual
- The total set of alleles of all genes in a population
-
Which equation is the Hardy-Weinberg equation?
- p^2 + q^2 = 2pq
- p^2 + 2pq + q^2 = 1
- pq = 1 minus p
- p + q = 2
-
In the Hardy-Weinberg model, what does p represent?
- The frequency of the dominant allele
- The number of individuals in the population
- The frequency of the recessive allele
- The frequency of heterozygous carriers
-
The Hardy-Weinberg principle predicts that allele frequencies will:
- Remain constant from generation to generation under the stated conditions
- Increase steadily towards a frequency of 1 for the dominant allele
- Decrease by half each generation
- Change randomly with no predictable pattern
-
Which of these is NOT a condition for Hardy-Weinberg equilibrium?
- A large population size, which means that chance events have a very small effect on the frequencies of the alleles
- Strong directional selection acting on the population
- Random mating between individuals in the population, so every individual has an equal chance of pairing with any other
- No mutation occurring in the gene under study, so that the alleles present do not change between one generation and the next
-
A population is best defined as:
- All the organisms of different species living together in one habitat, forming a community that interacts through food webs and competition
- A group of organisms of the same species occupying a particular space at a particular time that can potentially interbreed
- A group of organisms that are physically separated by a barrier and so cannot interbreed with the rest of their species at all
- All the genes carried by the members of one species across the whole world, including every allele that exists in that species
-
What does q^2 represent in the Hardy-Weinberg equation?
- The frequency of the homozygous dominant genotype, the proportion of individuals carrying two dominant alleles
- The total frequency of all alleles in the population, which always adds up to two for every individual in the gene pool
- The frequency of heterozygous carriers, which is the proportion of individuals who carry one dominant and one recessive allele
- The frequency of the homozygous recessive genotype, which shows the recessive phenotype
-
The frequency of the recessive phenotype in a population is 0.04. What is the frequency of heterozygous carriers?
- 0.32
- 0.08
- 0.16
- 0.64
-
If q = 0.3, what is the frequency of the dominant allele p?
- 0.7
- 0.9
- 0.09
- 0.3
-
In a population of 1000 individuals, 250 show the recessive phenotype. How many are expected to be heterozygous carriers?
- 500
- 375
- 250
- 125
-
If p = 0.6, what is the expected frequency of the homozygous dominant genotype?
- 0.16
- 0.36
- 0.24
- 0.60
-
If q = 0.1, what is the expected frequency of heterozygotes?
- 0.01
- 0.81
- 0.18
- 0.09
-
Among 200 individuals, 32 show the recessive phenotype. What is the value of q?
- 0.6
- 0.32
- 0.4
- 0.16
-
Why do allele frequencies change by chance in small populations?
- Small populations always mate at random, so they change allele frequency through the random pairing of individuals in each generation
- Mutation occurs only in small populations, so the rate of new alleles is higher and the frequency of each allele rises quickly by chance
- Chance events cause random sampling error from one generation to the next, which is genetic drift
- Natural selection acts more strongly on small populations by definition
-
A dominant allele gives a survival advantage. What does this mean for Hardy-Weinberg equilibrium?
- Selection changes allele frequency, so the population departs from Hardy-Weinberg equilibrium
- The equilibrium is maintained because the advantage is always cancelled out
- Selection has no effect on allele frequency under Hardy-Weinberg
- The equation can only be used when no alleles are dominant
-
A researcher applies Hardy-Weinberg to a population in which mating is strongly non-random. What is the most accurate limitation?
- Non-random mating has no effect because allele frequencies are fixed
- Non-random mating alters genotype frequencies, so the predicted values may not be accurate
- Non-random mating only affects males, so the equation still holds for females
- Non-random mating always increases the frequency of the dominant allele to one
-
In a population with p = 0.7 and q = 0.3, what proportion of the dominant phenotype are heterozygotes?
- 0.30
- 0.46
- 0.49
- 0.42
-
Two random carriers of a recessive condition have a child. What is the probability that the child is affected?
- 1/4
- 1/2
- 1/16
- 1/10
-
A recessive condition has q = 0.01 in a population of 50 000 people. How many carriers are expected?
- 990
- 50
- 1980
- 100
-
The frequency of a dominant allele rises from 0.5 to 0.6 in one generation in a large population. Which process most likely explains this?
- Random mating with no selection
- Natural selection favouring the dominant allele
- Equal survival of both alleles in every generation
- Random genetic drift in a large population
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