Unit 4: DNA Repair Mechanisms and Homologous Recombination - Subjective Questions

BTY426 — Cell And Molecular Biology • Practice Questions with Detailed Answers

20 questions

1

Define direct repair and explain the molecular mechanism of photoreactivation by DNA photolyase in the repair of pyrimidine dimers.

2

Explain the molecular characterization and mechanism of action of O⁶-methylguanine-DNA methyltransferase (MGMT) as an example of direct repair.

3

Describe the mechanism of Base Excision Repair (BER) and the role of DNA glycosylases in single-strand damage repair.

4

Explain the mechanism of Nucleotide Excision Repair (NER) and distinguish between its global genome (GG-NER) and transcription-coupled (TC-NER) subpathways.

5

Describe the mechanism of Mismatch Repair (MMR) in E. coli. How does the system distinguish the newly synthesized strand from the template strand?

6

Compare and contrast the two major pathways for repair of double-strand DNA breaks (DSBs): Non-Homologous End Joining (NHEJ) and Homologous Recombination (HR).

7

Explain the Holliday Model of homologous recombination. Illustrate the key steps including the formation and resolution of the Holliday junction.

8

Describe the RecBCD pathway of homologous recombination in E. coli, emphasizing the role of Chi (χ) sites and the RecA protein.

9

Distinguish between homologous recombination and site-specific recombination with respect to sequence requirements, enzymes involved, and biological outcomes.

10

Explain the Cre/LoxP recombination system. Describe the structure of the LoxP site and the mechanism of Cre-mediated recombination.

11

What is translesion synthesis (TLS)? Explain how specialized DNA polymerases enable replication past DNA lesions and why this process is error-prone.

12

Describe the SOS response in E. coli and explain the roles of RecA and LexA in regulating this DNA damage response.

13

Explain the Double-Strand Break Repair (DSBR) model of homologous recombination proposed by Szostak et al. How does it differ from the original Holliday model?

14

Explain the role of the RuvA, RuvB, and RuvC proteins in the branch migration and resolution of the Holliday junction in E. coli.

15

Define gene conversion and explain how it arises during homologous recombination through the formation of heteroduplex DNA and mismatch repair.

16

Describe the process of bacteriophage λ integration into the E. coli chromosome as an example of conserved site-specific recombination. Explain the roles of integrase (Int), IHF, and the att sites.

17

Explain the mechanism of long-patch and short-patch Base Excision Repair (BER) and describe the conditions under which each pathway is used.

18

Distinguish between conserved site-specific recombination (tyrosine recombinases) and the serine recombinase family, with examples of each mechanism.

19

Explain the role of the MRN complex (Mre11-Rad50-Nbs1) and end resection in the initiation of homologous recombination for double-strand break repair.

20

Describe the various applications of the Cre/LoxP recombination system in molecular biology and genetic engineering. Explain the concept of a conditional (tissue-specific) knockout.