| Literature DB >> 33421363 |
Ondrej Belan1, Consuelo Barroso2, Artur Kaczmarczyk3, Roopesh Anand1, Stefania Federico4, Nicola O'Reilly4, Matthew D Newton3, Erik Maeots5, Radoslav I Enchev5, Enrique Martinez-Perez2, David S Rueda6, Simon J Boulton7.
Abstract
Homologous recombination (HR) is an essential DNA double-strand break (DSB) repair mechanism, which is frequently inactivated in cancer. During HR, RAD51 forms nucleoprotein filaments on RPA-coated, resected DNA and catalyzes strand invasion into homologous duplex DNA. How RAD51 displaces RPA and assembles into long HR-proficient filaments remains uncertain. Here, we employed single-molecule imaging to investigate the mechanism of nematode RAD-51 filament growth in the presence of BRC-2 (BRCA2) and RAD-51 paralogs, RFS-1/RIP-1. BRC-2 nucleates RAD-51 on RPA-coated DNA, whereas RFS-1/RIP-1 acts as a "chaperone" to promote 3' to 5' filament growth via highly dynamic engagement with 5' filament ends. Inhibiting ATPase or mutation in the RFS-1 Walker box leads to RFS-1/RIP-1 retention on RAD-51 filaments and hinders growth. The rfs-1 Walker box mutants display sensitivity to DNA damage and accumulate RAD-51 complexes non-functional for HR in vivo. Our work reveals the mechanism of RAD-51 nucleation and filament growth in the presence of recombination mediators.Entities:
Keywords: BRCA2; DNA repair; Rad51 nucleoprotein filaments; Rad51 paralogs; homologous recombination; single molecule approaches
Mesh:
Substances:
Year: 2021 PMID: 33421363 PMCID: PMC7941204 DOI: 10.1016/j.molcel.2020.12.020
Source DB: PubMed Journal: Mol Cell ISSN: 1097-2765 Impact factor: 17.970