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Dwivedi, H. K.

Publications and source records attributed to Dwivedi, H. K..

2 recordsLinked to original sources

Distinct complexes of RAD51 paralogs participate in different fork protection pathways

Error-free genome duplication is critical for cellular homeostasis and genome maintenance. Stalled forks undergo remodeling during replication stress, and unprotected forks undergo degradation by nucleases. RAD51 paralogs are evolutionarily conserved essential proteins for genome maintenance with diverse roles ranging from homologous recombination (HR) to replication stress responses. However, the mechanisms underlying their participation in fork maintenance remain unclear. Here, we demonstrate that the RAD51 paralogs do not participate in the canonical SMARCAL1-BRCA2 axis of fork protection. Instead, RAD51D-XRCC2 (DX2) and RAD51C-XRCC3 (CX3) complexes protect forks remodeled by the FBH1 helicase, whereas the RAD51B-RAD51C (BC) subcomplex but not BRCA2 safeguards forks remodeled by the FANCM translocase, revealing a new FANCM-mediated pathway of fork remodeling which is protected by the BC sub-complex. Mechanistically, we show that FANCM-mediated fork reversal is RAD51-dependent and generates substrates for MRE11-, EXO1-, and DNA2-mediated degradation in the absence of RAD51B/C. Our findings establish the participation of the RAD51 paralogs in multiple fork protection pathways in a fork-remodeler-specific manner, highlighting the existence of several independent fork remodeling and protection mechanisms for maintaining genomic stability under replication stress.

cell biology↗

RNF20-mediated H2B monoubiquitination protects stalled forks and promotes fork restart

Chromatin modifications play an important role in transcription, DNA replication and repair. Nonetheless, whether histone modifications regulate replication stress responses remains obscure. Here, we show that RNF20 localizes to and promotes H2B monoubiquitination (H2Bub) at replicating sites. Knockdown of RNF20 leads to degradation of stalled forks by MRE11 nuclease, which can be rescued by inhibition of MRE11 and co-depletion of SMARCAL1/HLTF/ZRANB3 fork remodelers. RNF20 facilitates the loading of RAD51 and RAD51C at the stalled fork sites and participates in the same pathway of RAD51/RAD51C-mediated fork protection and restart. Analyses with the RING domain and phosphorylation-deficient mutants of RNF20 showed that its catalytic activity and ATR/ATM-mediated phosphorylation are essential for its role in replication stress responses. Notably, treatment of RNF20-depleted cells with chromatin relaxing agents rescue the fork protection and restart defects. Collectively, our studies uncover the role of RNF20-mediated H2Bub in regulating the chromatin dynamics to safeguard the replicating genomes.

molecular biology↗