Unit 5: Sex Determination and Population Genetics - Practice Quiz

BTY551 — Genetics 60 Questions
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1 In mammals, which chromosome combination determines a male individual?

Mechanism of sex determination in mammals and Drosophila Easy
A.
B.
C.
D.

2 The gene primarily responsible for male development in mammals is located on which chromosome?

Mechanism of sex determination in mammals and Drosophila Easy
A. X chromosome
B. Chromosome 1
C. Chromosome 21
D. Y chromosome

3 In Drosophila, sex is determined by the ratio of:

Mechanism of sex determination in mammals and Drosophila Easy
A. Autosomes to Y chromosomes
B. Y chromosomes to X chromosomes
C. Total chromosomes to autosomes
D. X chromosomes to autosome sets

4 In Drosophila, an X:A ratio of produces which sex?

Mechanism of sex determination in mammals and Drosophila Easy
A. Intersex
B. Male
C. Sterile male
D. Female

5 In Drosophila, an X:A ratio of produces which sex?

Mechanism of sex determination in mammals and Drosophila Easy
A. Male
B. Female
C. Intersex
D. Metafemale

6 In birds, which sex is heterogametic?

Mechanism of sex determination in birds, fishes Easy
A. Female ()
B. Male ()
C. Female ()
D. Male ()

7 The male sex chromosome constitution in birds is:

Mechanism of sex determination in birds, fishes Easy
A.
B.
C.
D.

8 In many fishes, sex determination can be strongly influenced by which environmental factor?

Mechanism of sex determination in birds, fishes Easy
A. Light color
B. Body length
C. Salinity of blood
D. Temperature

9 Sex differentiation refers to:

Sex differentiation Easy
A. The random pairing of gametes
B. The doubling of sex chromosomes
C. Development of male or female characteristics after sex is determined
D. The loss of an X chromosome

10 In mammals, the undifferentiated gonad develops into a testis mainly under the influence of:

Sex differentiation Easy
A. The gene product
B. The W chromosome
C. Two X chromosomes
D. Estrogen alone

11 The Barr body observed in female mammalian cells represents:

Chromatin bodies Easy
A. An inactivated X chromosome
B. A duplicated autosome
C. The Y chromosome
D. An active X chromosome

12 How many Barr bodies are present in a normal human female (XX) somatic cell?

Chromatin bodies Easy
A.
B.
C.
D.

13 How many Barr bodies are found in a normal human male (XY) cell?

Chromatin bodies Easy
A.
B.
C.
D.

14 Dosage compensation in mammals ensures that:

Dosage compensation Easy
A. Males have twice the X gene products
B. The Y chromosome is duplicated
C. X-linked gene expression is equal in males and females
D. Autosomes are silenced

15 In mammals, dosage compensation is achieved by:

Dosage compensation Easy
A. Deleting the Y chromosome
B. Inactivation of one X chromosome in females
C. Duplicating autosomes in males
D. Doubling X expression in males

16 The Hardy-Weinberg equilibrium is expressed by which equation?

Hardy-Weinberg Law Easy
A.
B.
C.
D.

17 Which of the following is NOT a condition required for Hardy-Weinberg equilibrium?

Hardy-Weinberg Law Easy
A. Presence of natural selection
B. No migration
C. Random mating
D. No mutation

18 If the frequency of allele () is , what is the frequency of allele () in a two-allele system?

Genotypic and allelic frequencies Easy
A.
B.
C.
D.

19 Genetic drift has the greatest effect in populations that are:

Changes in allelic frequencies- Mutation, Migration, Selection, Genetic drift Easy
A. Randomly mating
B. Very large
C. Migrating frequently
D. Small

20 The movement of alleles between populations through the migration of individuals is called:

Changes in allelic frequencies- Mutation, Migration, Selection, Genetic drift Easy
A. Genetic drift
B. Mutation
C. Selection
D. Gene flow

21 In birds, the female is the heterogametic sex. If a bird species follows the ZW system, what is the chromosomal constitution of a female?

Mechanism of sex determination in birds, fishes Medium
A.
B.
C.
D.

22 Certain fish species can undergo natural sex reversal during their lifetime. This phenomenon best illustrates which type of sex determination?

Mechanism of sex determination in birds, fishes Medium
A. Environmental/labile sex determination
B. Genic balance determination
C. Strict ZW chromosomal determination
D. Haplodiploid determination

23 A human individual has the karyotype (Klinefelter syndrome). Why does this individual develop as phenotypically male?

Mechanism of sex determination in mammals and Drosophila Medium
A. Presence of the gene on the Y chromosome
B. Ratio of X chromosomes to autosomes
C. Higher number of X chromosomes
D. Absence of the Barr body

24 In Drosophila, an individual has 3 sets of autosomes (3A) and 2 X chromosomes. Using the genic balance theory, what is the expected phenotype?

Mechanism of sex determination in mammals and Drosophila Medium
A. Metafemale
B. Intersex
C. Normal female
D. Normal male

25 A Drosophila with an X:A ratio of (i.e., 3X : 2A) would be classified as which of the following?

Mechanism of sex determination in mammals and Drosophila Medium
A. Metafemale (superfemale)
B. Normal female
C. Intersex
D. Metamale

26 In mammalian sex differentiation, the Müllerian ducts regress in males primarily due to the action of which factor secreted by the developing testis?

Sex differentiation Medium
A. Anti-Müllerian hormone (AMH)
B. Estrogen
C. Follicle-stimulating hormone
D. Testosterone

27 In humans, the bipotential gonad develops into a testis rather than an ovary because of the expression of which gene during the critical window of development?

Sex differentiation Medium
A.
B.
C.
D.

28 How many Barr bodies would be expected in the somatic cells of a human female with the karyotype ?

Chromatin bodies Medium
A. 0
B. 1
C. 3
D. 2

29 A Barr body represents which of the following in mammalian female cells?

Chromatin bodies Medium
A. A duplicated Y chromosome
B. A fused pair of autosomes
C. A condensed, transcriptionally inactive X chromosome
D. An active X chromosome undergoing replication

30 Dosage compensation in Drosophila is achieved by which mechanism, in contrast to mammals?

Dosage compensation Medium
A. Inactivation of one X in females
B. Deletion of one X in males
C. Hypertranscription (doubling) of the single male X chromosome
D. Duplication of autosomes in females

31 In mammals, the initiation of X-chromosome inactivation is controlled by the expression of which non-coding RNA?

Dosage compensation Medium
A. protein
B. RNA
C.
D.

32 In a population at Hardy-Weinberg equilibrium, the frequency of the recessive homozygote () is . What is the frequency of the dominant allele ()?

Hardy-Weinberg Law Medium
A.
B.
C.
D.

33 Which of the following conditions must be satisfied for a population to remain at Hardy-Weinberg equilibrium?

Hardy-Weinberg Law Medium
A. Directional selection favoring one allele
B. No mutation, migration, selection, drift, and random mating
C. Continuous gene flow between subpopulations
D. Small population size with assortative mating

34 For an autosomal gene at HWE with and , what is the expected frequency of heterozygotes in the population?

Hardy-Weinberg Law Medium
A.
B.
C.
D.

35 In a sample of 100 individuals, 36 are , 48 are , and 16 are . What is the allelic frequency of the allele?

Genotypic and allelic frequencies Medium
A.
B.
C.
D.

36 A population has allele frequencies and . If the observed heterozygote frequency is , what does this indicate compared to HWE expectation?

Genotypic and allelic frequencies Medium
A. Perfect agreement with HWE
B. The alleles are not segregating
C. Heterozygote deficiency (fewer heterozygotes than expected)
D. Heterozygote excess

37 The forward mutation rate () from allele to is much smaller than the effect of selection. What does this imply about mutation as an evolutionary force?

Changes in allelic frequencies- Mutation, Migration, Selection, Genetic drift Medium
A. Mutation reverses selection instantly
B. Mutation alone changes allele frequencies very slowly
C. Mutation rapidly fixes alleles in one generation
D. Mutation eliminates genetic variation

38 A large population receives migrants each generation such that migrants make up a fraction of the population. If the allele frequency in migrants is and in residents is , what is the new resident frequency after one round of migration?

Changes in allelic frequencies- Mutation, Migration, Selection, Genetic drift Medium
A.
B.
C.
D.

39 A recessive lethal allele is subject to complete selection against homozygotes (). Why does this allele persist in the population for many generations?

Changes in allelic frequencies- Mutation, Migration, Selection, Genetic drift Medium
A. Migration continuously restores it
B. It mutates back to dominant each generation
C. It is hidden in heterozygous carriers
D. Selection cannot act on recessive alleles

40 Genetic drift has the strongest effect on allele frequencies under which of the following conditions?

Changes in allelic frequencies- Mutation, Migration, Selection, Genetic drift Medium
A. Strong directional selection
B. Very large population size
C. High migration rate
D. Small population size

41 In Drosophila, an individual has the chromosomal constitution with two sets of autosomes (). Based on the genic balance theory, what is the expected phenotypic sex?

Mechanism of sex determination in mammals and Drosophila Hard
A. Metamale (X:A ratio )
B. Normal male (X:A ratio )
C. Normal female (X:A ratio )
D. Intersex (X:A ratio between and )

42 A phenotypically female human is found to be with a mutation causing sex reversal. Which molecular defect most directly explains this Swyer syndrome phenotype?

Mechanism of sex determination in mammals and Drosophila Hard
A. Duplication of the DAX1 locus reduced to a single copy
B. Loss-of-function mutation in the SRY gene on the Y chromosome
C. Complete deletion of the X-linked androgen receptor gene
D. Gain-of-function of the SOX9 enhancer region

43 In birds (ZW system), which observation provides the strongest evidence that a gene-dosage mechanism (via the Z-linked DMRT1) rather than a dominant W-linked factor drives male determination?

Mechanism of sex determination in birds, fishes Hard
A. birds with reduced DMRT1 dosage show feminization of gonads
B. Triploid birds are invariably fully fertile males
C. Removal of the W chromosome produces sterile but phenotypically female birds
D. females always carry a functional SRY homolog on the W

44 Many fishes exhibit temperature-dependent or environmental sex determination overriding genetic cues. Which scenario best illustrates that environmental sex determination can override an XY genotype in fish?

Mechanism of sex determination in birds, fishes Hard
A. Salinity changes convert zygotes into karyotypes
B. The chromosome is deleted at high temperature preventing testis formation
C. Cold temperature triggers SRY expression in embryos
D. High rearing temperature masculinizes genetic females into functional males

45 In a individual with complete androgen insensitivity syndrome (CAIS), why do external genitalia develop as female despite the presence of testes?

Sex differentiation Hard
A. Testes fail to secrete anti-Müllerian hormone (AMH)
B. Target tissues cannot respond to testosterone/DHT due to a defective androgen receptor
C. Excess aromatase converts all androgens into estrogen prenatally
D. The SRY gene is silenced, preventing testis formation

46 During mammalian sex differentiation, regression of the Müllerian ducts in males depends primarily on which secreted factor, and from which cells?

Sex differentiation Hard
A. Dihydrotestosterone from Sertoli cells
B. Anti-Müllerian hormone from Sertoli cells
C. Inhibin from Leydig cells
D. Testosterone from Leydig cells

47 A buccal smear from a patient shows two Barr bodies per nucleus. Which karyotype is most consistent with this finding?

Chromatin bodies Hard
A.
B.
C.
D.

48 In neutrophils of a normal human female, the inactivated X often appears as a small drumstick-shaped appendage. Which statement about this structure and X-inactivation is correct?

Chromatin bodies Hard
A. It represents the same heterochromatic inactive X seen as a Barr body in interphase nuclei
B. It corresponds to the active X that escapes methylation
C. It is a condensed autosome unrelated to X-inactivation
D. It appears only in males with an extra Y chromosome

49 Mammals and Drosophila both achieve dosage compensation but by opposite strategies. Which pairing correctly describes each mechanism?

Dosage compensation Hard
A. Both upregulate the single X in the heterogametic sex
B. Mammals double transcription of the female X; Drosophila inactivates one male X
C. Mammals inactivate one X in females; Drosophila doubles transcription of the single male X
D. Both inactivate one X in the homogametic sex

50 The XIST long non-coding RNA is central to mammalian X-inactivation. Which statement most accurately describes its action?

Dosage compensation Hard
A. XIST encodes a protein that methylates autosomal promoters
B. XIST prevents inactivation by blocking Polycomb recruitment
C. XIST is expressed from and coats the future inactive X in cis, recruiting silencing complexes
D. XIST is transcribed from the active X and silences the other X in trans

51 For an X-linked recessive allele with frequency , what is the ratio of affected males to affected females in a large random-mating population at equilibrium?

Hardy-Weinberg Law Hard
A.
B.
C.
D.

52 In a population at Hardy-Weinberg equilibrium, the frequency of homozygous recessives is . If a random-mating error introduces complete positive assortative mating for this locus for one generation, what happens to the heterozygote frequency?

Hardy-Weinberg Law Hard
A. It increases above
B. It decreases below the equilibrium value of
C. It remains exactly
D. It becomes zero immediately

53 A codominant locus (M/N) shows MM, MN, and NN individuals in a sample of . Which conclusion about the allele frequencies and equilibrium is correct?

Genotypic and allelic frequencies Hard
A. , from raw genotype proportions
B. , , indicating a null allele
C. , , and observed genotype counts fit HWE expectations
D. , , but there is a significant heterozygote excess

54 A recessive lethal allele causes death only in homozygotes before reproduction. Starting from , what is the allele frequency after one generation of selection ()?

Genotypic and allelic frequencies Hard
A.
B.
C.
D.

55 A locus has forward mutation rate (A→a) and back mutation rate (a→A). What is the equilibrium frequency of allele under mutation pressure alone?

Changes in allelic frequencies- Mutation Hard
A.
B.
C.
D.

56 For a deleterious recessive allele maintained by mutation-selection balance with mutation rate and selection coefficient , what is the approximate equilibrium allele frequency?

Changes in allelic frequencies- Mutation Hard
A.
B.
C.
D.

57 An island population has allele frequency . Each generation, a fraction of the island consists of migrants from a mainland where . What is the island allele frequency after one generation of migration?

Changes in allelic frequencies- Migration Hard
A.
B.
C.
D.

58 At a locus with heterozygote advantage, the fitnesses are , , . What is the stable equilibrium frequency of allele ?

Changes in allelic frequencies- Selection Hard
A.
B.
C.
D.

59 Which statement best distinguishes the long-term effect of genetic drift in a small isolated population from that of directional selection?

Genetic drift Hard
A. Drift can fix or lose alleles randomly regardless of their fitness effects
B. Drift has no effect on allele frequencies in finite populations
C. Drift preferentially fixes only advantageous alleles
D. Drift always increases heterozygosity over time

60 A newly arisen neutral mutation appears as a single copy in a diploid population of effective size . What is its probability of eventual fixation by genetic drift?

Genetic drift Hard
A.
B.
C.
D.