Unit 4: Patterns of inheritance, sex-linked genetics and genetic mutations - Subjective Questions

GPB203 — Principles Of Genetics • Practice Questions with Detailed Answers

20 questions

1

Define multiple alleles and explain how they differ from ordinary Mendelian alleles. Illustrate your answer with a suitable example.

2

Explain pleiotropism and pseudoalleles. Distinguish between the two concepts with examples.

3

Describe the inheritance of the human ABO blood group system. Include the genotypes, phenotypes, dominance relationships, and possible offspring from each parental combination.

4

What is the Rh blood group system? Explain its inheritance and discuss the genetic basis of hemolytic disease of the newborn.

5

Explain the chromosomal mechanism of sex determination in humans and compare it with the XO, ZW, and haplodiploid systems.

6

Define sex-linked inheritance and explain the inheritance of an X-linked recessive trait using hemophilia or red-green color blindness as an example.

7

Explain X-linked dominant inheritance and compare it with X-linked recessive inheritance.

8

What are sex-limited and sex-influenced traits? Explain their differences with suitable examples.

9

State the basic laws of probability used in genetic analysis and show how they can be applied to predict the outcome of a dihybrid cross.

10

Explain the chi-square test and derive its use in determining whether observed genetic data fit an expected Mendelian ratio.

11

A monohybrid cross is expected to produce a phenotypic ratio. In a progeny of 160 individuals, 125 show the dominant phenotype and 35 show the recessive phenotype. Perform a chi-square test at the 5% significance level.

12

Define mutation and explain its importance in genetics and evolution.

13

Classify mutations on the basis of their origin, the type of cell affected, and the level of genetic organization involved.

14

Describe the main types of gene mutations, including substitution, insertion, deletion, silent, missense, nonsense, and frameshift mutations.

15

Explain chromosomal mutations and describe deletion, duplication, inversion, and translocation with their possible genetic consequences.

16

What are genomic mutations? Explain aneuploidy and polyploidy, including their origin and biological significance.

17

Describe the major methods used for inducing mutations in organisms.

18

Classify mutagenic agents and explain how physical and chemical mutagens damage genetic material.

19

Explain the mechanism of mutation induction by ultraviolet radiation, ionizing radiation, and ethyl methanesulfonate.

20

Distinguish between spontaneous and induced mutations. Discuss the factors that influence the frequency and detection of induced mutations.