Repair of intermediate structures produced at DNA interstrand cross-links in Saccharomyces cerevisiae
P J McHugh1, W R Sones, J A Hartley
1CRC Drug-DNA Interactions Research Group, Department of Oncology, Royal Free and University College Medical School, University College London, London W1P 8BT, United Kingdom. p.mchugh@ucl.ac.uk
Abstract:
Bifunctional alkylating agents and other drugs which produce DNA interstrand cross-links (ICLs) are among the most effective antitumor agents in clinical use. In contrast to agents which produce bulky adducts on only one strand of the DNA, the cellular mechanisms which act to eliminate DNA ICLs are still poorly understood, although nucleotide excision repair is known to play a crucial role in an early repair step. Using haploid Saccharomyces cerevisiae strains disrupted for genes central to the recombination, nonhomologous end-joining (NHEJ), and mutagenesis pathways, all these activities were found to be involved in the repair of nitrogen mustard (mechlorethamine)- and cisplatin-induced DNA ICLs, but the particular pathway employed is cell cycle dependent. Examination of whole chromosomes from treated cells using contour-clamped homogenous electric field electrophoresis revealed the intermediate in the repair of ICLs in dividing cells, which are mostly in S phase, to be double-strand breaks (DSBs). The origin of these breaks is not clear since they were still efficiently induced in nucleotide excision and base excision repair-deficient, mismatch repair-defective, rad27 and mre11 disruptant strains. In replicating cells, RAD52-dependent recombination and NHEJ both act to repair the DSBs. In contrast, few DSBs were observed in quiescent cells, and recombination therefore seems dispensable for repair. The activity of the Rev3 protein (DNA polymerase zeta) is apparently more important for the processing of intermediates in stationary-phase cells, since rev3 disruptants were more sensitive in this phase than in the exponential growth phase.
Insights
DNA interstrand cross-links (ICLs) are repaired by multiple pathways, including recombination and nonhomologous end-joining (NHEJ), which are cell cycle dependent. Double-strand breaks are key intermediates in this repair process.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA interstrand cross-links (ICLs) are induced by effective anticancer drugs.
- Cellular mechanisms for eliminating ICLs are not fully understood, though nucleotide excision repair is involved.
- Recombination, nonhomologous end-joining (NHEJ), and mutagenesis pathways are implicated in ICL repair.
Purpose of the Study:
- To investigate the cellular mechanisms involved in repairing DNA interstrand cross-links (ICLs).
- To determine the cell cycle dependency of ICL repair pathways.
- To identify intermediates in the ICL repair process.
Main Methods:
- Utilized haploid Saccharomyces cerevisiae strains with disruptions in key repair genes.
- Employed contour-clamped homogenous electric field electrophoresis to analyze whole chromosomes.
- Assessed sensitivity of gene disruptants in different cell cycle phases.
Main Results:
- Recombination and NHEJ pathways repair nitrogen mustard- and cisplatin-induced ICLs in a cell cycle-dependent manner.
- Double-strand breaks (DSBs) are intermediates in ICL repair in dividing cells.
- Recombination is dispensable for ICL repair in quiescent cells, while Rev3 protein (DNA polymerase zeta) is important.
Conclusions:
- ICL repair involves multiple pathways that are regulated by the cell cycle.
- DSBs are critical intermediates, particularly in dividing cells.
- Different repair mechanisms are employed based on cell cycle status and specific DNA damage.
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