DOI: 10.1002/bies.70173 ISSN: 0265-9247

Mechanisms That Govern Recombinase Fidelity Control During Eukaryotic Homologous Recombination

Ilayda Korkmaz, J. Brooks Crickard

ABSTRACT

Homologous recombination (HR) is a DNA double‐strand break repair pathway that preserves genome integrity by restoring genetic information lost through programmed or spontaneous DNA damage. As a template‐directed process, HR identifies homologous DNA sequences to accurately repair broken chromosomes while minimizing inappropriate recombination events. Central to this process are the RecA‐family recombinases. Most eukaryotes use Rad51 during mitosis and meiosis and Dmc1 during meiosis to locate and pair homologous DNA sequences. To ensure high‐fidelity repair, eukaryotes have evolved regulatory protein networks that control recombinase filament assembly, organization, and strand exchange. Here, we review recent advances in understanding how recombinase filament length, architecture, and dynamics influence the fidelity and outcome of homologous recombination. We discuss their distinct roles in mitotic and meiotic recombination and propose how evolution has shaped filament properties to regulate interactions between donor and recipient DNA templates and promote accurate genome maintenance.

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