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Published on: July 27, 2021
Cross-link structure affects replication-independent DNA interstrand cross-link repair in mammalian cells
Erica M Hlavin1, Michael B Smeaton, Anne M Noronha
1Department of Biochemistry and Molecular Biology, Bloomberg School of Public Health, Johns Hopkins University, 615 North Wolfe Street, Baltimore, Maryland 21205, USA.
Abstract:
DNA interstrand cross-links (ICLs) are cytotoxic products of common anticancer drugs and cellular metabolic processes, whose mechanism(s) of repair remains poorly understood. In this study, we show that cross-link structure affects ICL repair in nonreplicating reporter plasmids that contain a mispaired N(4)C-ethyl-N(4)C (C-C), N3T-ethyl-N3T (T-T), or N1I-ethyl-N3T (I-T) ICL. The T-T and I-T cross-links obstruct the hydrogen bond face of the base and mimic the N1G-ethyl-N3C ICL created by bis-chloroethylnitrosourea, whereas the C-C cross-link does not interfere with base pair formation. Host-cell reactivation (HCR) assays in human and hamster cells showed that repair of these ICLs primarily involves the transcription-coupled nucleotide excision repair (TC-NER) pathway. Repair of the C-C ICL was 5-fold more efficient than repair of the T-T or I-T ICLs, suggesting the latter cross-links hinder lesion bypass following initial ICL unhooking. The level of luciferase expression from plasmids containing a C-C cross-link remnant on either the transcribed or nontranscribed strand increased in NER-deficient cells, indicating NER involvement occurs at a step prior to remnant removal, whereas expression from similar T-T remnant plasmids was inhibited in NER-deficient cells, demonstrating NER is required for remnant removal. Sequence analysis of repaired plasmids showed a high proportion of C residues inserted at the site of the T-T and I-T cross-links, and HCR assays showed that Rev1 was likely responsible for these insertions. In contrast, both C and G residues were inserted at the C-C cross-link site, and Rev1 was not required for repair, suggesting replicative or other translesion polymerases can bypass the C-C remnant.
Insights
DNA interstrand cross-links (ICLs) are repaired by the transcription-coupled nucleotide excision repair (TC-NER) pathway. Cross-link structure impacts repair efficiency, with C-C ICLs repaired more effectively than T-T or I-T ICLs.
Area of Science:
- Molecular Biology
- DNA Repair Mechanisms
- Cancer Therapeutics
Background:
- DNA interstrand cross-links (ICLs) are cytotoxic DNA lesions.
- ICLs are induced by anticancer drugs and cellular metabolism.
- The precise mechanisms of ICL repair are not fully understood.
Purpose of the Study:
- To investigate how different DNA interstrand cross-link structures affect repair.
- To elucidate the role of the transcription-coupled nucleotide excision repair (TC-NER) pathway in ICL repair.
- To identify polymerases involved in ICL processing and bypass.
Main Methods:
- Host-cell reactivation (HCR) assays in human and hamster cells.
- Analysis of reporter plasmids containing defined ICL structures (C-C, T-T, I-T).
- NER-deficient cell lines and sequence analysis of repaired plasmids.
Main Results:
- TC-NER is the primary pathway for repairing C-C, T-T, and I-T ICLs.
- C-C ICLs are repaired 5-fold more efficiently than T-T or I-T ICLs.
- Rev1 polymerase is involved in inserting cytosine residues at T-T and I-T ICL sites, while other polymerases handle C-C ICLs.
Conclusions:
- ICL structure significantly influences repair pathway choice and efficiency.
- TC-NER pathway plays a crucial role in removing ICLs.
- Different translesion polymerases are recruited depending on the ICL structure for bypass or repair.
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