Completed Genetics & Molecular Biology Cells, Biochemistry & Physiology

Mechanics and execution of homologous recombination - biophysics to the organism

In plain English

AI plain-English summary

Every time a DNA double-strand break snaps through a cell’s genome, a protein called RAD51 must copy the correct genetic sequence from an intact chromosome to repair the damage. If this process—homologous recombination (HR)—fails, the result can be cancer, genetic disorders, or accelerated aging. Researchers know that RAD51 is controlled by a suite of helper and inhibitor proteins, but exactly how these regulators work at the molecular level has remained stubbornly unclear, because standard biochemical methods cannot capture the reaction’s fine details. The team has already built a set of cutting-edge biophysical tools that let them watch HR unfold at unprecedented resolution. They now plan to apply these tools to multiple regulators at once, revealing how the proteins cooperate or compete to steer repair. This is fundamental science—there is no immediate clinical application. But understanding the molecular mechanics of HR could eventually point to new drug targets for cancers that rely on faulty DNA repair, or explain why some people age faster than others. Similar fundamental work on DNA repair pathways has already led to blockbuster cancer therapies such as PARP inhibitors.

View original technical description
Homologous recombination (HR) is an essential mechanism for the repair of DNA double-strand breaks and damaged replication forks and is associated with genetic disorders, cancer and aging. HR repairs DNA damage by copying the correct genetic information from an intact chromosomal template, which is critically dependent on the recombinase RAD51. To ensure its timely and accurate completion, HR is positively and negatively regulated by RAD51 co-factors and anti-recombinases. How these HR regulators function at the molecular level remains poorly understood and represents a significant challenge to the field due to the lack of mechanistic resolution afforded by conventional bulk biochemical approaches. We recently pioneered several cutting-edge biophysical approaches to interrogate the HR reaction in unprecedented detail. Importantly, we demonstrated the power of integrating data from these complementary methodologies to uncover the mechanism of action of the Rad51 paralogs in modulating RAD51 to promote HR. The aim of our proposal is to extend this paradigm to study multiple different HR regulators to gain insights into how they work individually and how they act cooperatively during HR. Deciphering how HR regulators work will provide an improved understanding of the molecular mechanisms relevant to carcinogenesis and may present unique opportunities for therapeutic intervention.

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Researchers

Lumir Krejci (EPMC Awardee)Simon Boulton (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

A molecular understanding of homologous recombination in the context of chromatin
Structural analysis of Rad51 paralogues involved in recombinational DNA repair
Structural and biochemical characterization of pre-recombination complexes
RecombInsight: Discovery in Mammalian Homologous Recombination DNA Repair
Homologous Recombination at Human Centromeres: Friend or Foe?

Original classification

Collaborative Award in Science

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