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Di Biagi, L.

Publications and source records attributed to Di Biagi, L..

2 recordsLinked to original sources

A double-ring of human RAD52 remodels replication forks restricting fork reversal

Human RAD521,2 is a multifunctional DNA repair protein involved in several cellular events that support genome stability including protection of stalled DNA replication forks from excessive degradation3-7. In its gatekeeper role, RAD52 binds to and stabilizes stalled replication forks during replication stress protecting them from reversal by SMARCAL15. The structural and molecular mechanism of the RAD52-mediated fork protection remains elusive. Here, using P1 nuclease sensitivity, biochemical and single-molecule analyses we show that RAD52 dynamically remodels replication forks through its strand exchange activity. The presence of the ssDNA binding protein RPA at the fork modulates the kinetics of the strand exchange without impeding the reaction outcome. Mass photometry and single-particle cryo-electron microscopy show that the replication fork promotes a unique nucleoprotein structure containing head-to-head arrangement of two undecameric RAD52 rings with an extended positively charged surface that accommodates all three arms of the replication fork. We propose that the formation and continuity of this surface is important for the strand exchange reaction and for competition with SMARCAL1. One Sentence SummaryUsing cryo-EM, biochemical and single-molecule approaches we show that the structure of stalled DNA replication fork promotes a unique two-ring organization of human RAD52 protein which remodels the fork via DNA strand exchange.

biochemistry↗

RAD52 prevents accumulation of Polalpha-dependent replication gaps at perturbed replication forks in human cells

Replication gaps can arise as a consequence of perturbed DNA replication, and their accumulation might undermine the stability of the genome. Loss of RAD52, a protein involved in the regulation of fork reversal, promotes accumulation of parental ssDNA gaps during replication perturbation. Here, we demonstrate that this is due to the engagement of Pol downstream of the extensive degradation of perturbed replication forks after their reversal and is not dependent on PrimPol. Pol is hyper-recruited at parental ssDNA in the absence of RAD52, and this recruitment is dependent on fork reversal enzymes and RAD51. Of note, we report that the interaction between Pol and RAD51 is stimulated by RAD52 inhibition, and Pol-dependent gap accumulation requires formation of the RAD51 nucleoprotein filaments. Our data indicate that the RAD51/Pol-dependent repriming is essential to support fork progression, limit DNA damage and improve viability of RAD52-deficient cells when replication is perturbed. Altogether, this study shows that RAD51/Pol-dependent repriming is a genuine fork recovery mechanism activated to overcome loss of RAD52 function at replication forks.

cell biology↗