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Ropars, V.

Publications and source records attributed to Ropars, V..

6 recordsLinked to original sources

Restriction on Ku's Inward Translocation Caps Telomere Ends

Safeguarding chromosome ends against fusions via nonhomologous end joining (NHEJ) is essential for preserving genome integrity. Paradoxically, the conserved NHEJ core factor Ku binds telomere ends. How it is prevented from promoting NHEJ remains unclear, as does the mechanism that allows Ku to coexist with telomere-protective DNA binding proteins, e.g., Rap1 in Saccharomyces cerevisiae. Here, we reveal a direct role for Rap1 in the inhibition of Kus NHEJ function at telomeres. A single Rap1 molecule bound near a DNA end inhibits NHEJ in vivo without disrupting Ku presence. Consistent with this, Rap1 and Ku form a complex on short DNA duplexes in vitro. Cryo-EM and molecular modelling analysis of this complex shows that Rap1 obstructs Kus inward translocation on DNA - an essential step for NHEJ at broken ends. Nanopore sequencing of telomere fusions confirms the importance of this pathway in protecting native telomere ends. Collectively, our findings uncover a mechanism of telomere end protection mediated by restricting Kus inward translocation, a functional switch that prevents promiscuous NHEJ repair at telomeres.

molecular biology↗

DNA polymerase Lambda is anchored within the NHEJ synaptic complex via Ku70/80

Non-homologous end joining (NHEJ) is the predominant pathway by which double-strand DNA breaks (DSBs) are repaired in mammals. To enable final break closure, various NHEJ end-processing factors respond to the chemistry of the damaged DNA ends. Amongst these factors is DNA polymerase lambda (Pol {lambda}), a member of the Pol X family. How members of the Pol X family engage with the NHEJ complex is unknown. Here, we present cryo-EM structures of Pol {lambda} in complex with the Ku70/80 DSB sensor whilst engaged with the DNA-PK holoenzyme in a long-range synaptic complex. These structures reveal a specific interaction site between Ku70/80 and the Pol {lambda} BRCT domain. The functionality of this interaction is assessed by generating point mutations on either side of the Pol {lambda} BRCT:Ku70/80 interface. Using these mutants in two orthogonal assays in cells (live protein recruitment at biphoton laser-damaged nuclear sites and transfection with an original gap-filling reporter plasmid) defines the molecular basis and essentiality of the BRCT domain for the recruitment and activity of the Pol {lambda} within the NHEJ complex. Ultimately, these data explain the role of this interaction in cell survival to DSBs. Finally, we propose a unified model for the interaction of the three Pol X family members bearing BRCT domains with the same site of Ku70/80.

biochemistry↗

Ku-binding motifs in RAG2, XLF, PAXX and MRI support functional redundancy during V(D)J recombination

The interaction of several partners with Ku through Ku-binding motifs (KBMs) in their sequences governs their enrolment in NHEJ repair complexes. Here, we first established more specifically the function of KBMs in V(D)J recombination as the molecular basis of functional redundancy between XLF and the NHEJ proteins MRI and PAXX. Then, given the functional redundancy between RAG2 and XLF, we explored the hypothesis of a KBM-mediated interaction between RAG2 and Ku. Through sequence alignment and biophysical methods, we identified a KBM at the C-terminus of RAG2 (R2CT) that mediates its interaction with Ku both in vitro and in cellulo. Notably, we showed that R2CT/Ku interaction is independent of the RAG nuclease activity. Finally, we demonstrated that the respective KBMs of RAG2 and XLF support their functional redundancy for V(D)J recombination.

molecular biology↗

Disordered regions and folded modules in CAF-1 promote histone deposition in S. pombe

Genome and epigenome integrity in eukaryotes depends on the proper coupling of histone deposition with DNA synthesis. This process relies on the evolutionary conserved histone chaperone CAF-1 for which the links between structure and functions are still a puzzle. While studies of the S. cerevisiae CAF-1 complex enabled to propose a model for the histone deposition mechanism, we still lack a framework to demonstrate its generality and in particular, how its interaction with the polymerase accessory factor PCNA is operating. Here, we reconstituted a complete SpCAF-1 from fission yeast. We characterized its dynamic structure using NMR, SAXS and molecular modeling together with in vitro and in vivo functional studies on rationally designed interaction mutants. Importantly, we identify the unfolded nature of the acidic domain which folds up when binding to histones. We also show how the long KER helix mediates DNA binding and stimulates SpCAF-1 association with PCNA. Our study highlights how the organization of CAF-1 comprising both disordered regions and folded modules enables the dynamics of multiple interactions to promote synthesis-coupled histone deposition essential for its DNA replication, heterochromatin maintenance, and genome stability functions.

biochemistry↗

The FIGNL1-FIRRM complex is required to complete meiotic recombination in the mouse and prevents massive DNA damage-independent RAD51 and DMC1 loading

During meiosis, nucleoprotein filaments of the strand exchange proteins RAD51 and DMC1 are crucial for repairing SPO11-generated DNA double-strand breaks (DSBs) by homologous recombination (HR). A balanced activity of positive and negative RAD51/DMC1 regulators ensures proper recombination. Fidgetin-like 1 (FIGNL1) was previously shown to negatively regulate RAD51 in human cells. However, FIGNL1s role during meiotic recombination in mammals remains unknown. Here, we deciphered the meiotic functions of FIGNL1 and FIGNL1 Interacting Regulator of Recombination and Mitosis (FIRRM) using male germline-specific conditional knock-out (cKO) mouse models. Both FIGNL1 and FIRRM are required for completing meiotic prophase in mouse spermatocytes. Despite efficient recruitment of DMC1 on ssDNA at meiotic DSB hotspots, the formation of late recombination intermediates is defective in Firrm cKO and Fignl1 cKO spermatocytes. Moreover, the FIGNL1-FIRRM complex limits RAD51 and DMC1 accumulation on intact chromatin, independently from the formation of SPO11-catalyzed DSBs. Purified human FIGNL1{Delta}N alters the RAD51/DMC1 nucleoprotein filament structure and inhibits strand invasion in vitro. Thus, this complex might regulate RAD51 and DMC1 association at sites of meiotic DSBs to promote proficient strand invasion and processing of recombination intermediates.

genetics↗

BRCA2-HSF2BP Oligomeric Ring Disassembly by BRME1 Promotes Homologous Recombination

In meiotic homologous recombination (HR), BRCA2 facilitates loading of the recombinases RAD51 and DMC1 at the sites of double-strand breaks. The HSF2BP-BRME1 complex interacts with BRCA2 to support its function in meiotic HR. In somatic cancer cells ectopically producing HSF2BP, DNA damage can trigger HSF2BP-dependent degradation of BRCA2, which prevents HR. Here we show that, upon binding to BRCA2, HSF2BP assembles into a large ring-shaped 24-mer consisting of three interlocked octameric rings. Addition of BRME1 leads to dissociation of this ring structure, and cancels the disruptive effect of HSF2BP on cancer cell resistance to DNA damage. It also prevents BRCA2 degradation during inter-strand DNA crosslink repair in Xenopus egg extracts. We propose that the control of HSF2BP-BRCA2 oligomerization by BRME1 ensures timely assembly of the ring complex that concentrates BRCA2 and controls its turnover, thus promoting meiotic HR.

biochemistry↗