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Haversat, J.

Publications and source records attributed to Haversat, J..

2 recordsLinked to original sources

Skp1 proteins are structural components of the synaptonemal complex in C. elegans

The synaptonemal complex (SC) is a hallmark of meiotic prophase that plays a crucial role in regulating crossovers between homologous chromosomes. Here, we demonstrate that two Skp1-related proteins in C. elegans, SKR-1 and SKR-2, serve as structural components of the SC, independent of their canonical functions within the Skp1-Cul1-F-box (SCF) ubiquitin ligase complex. SKR-1 and SKR-2 localize to the central region of the SC, and synapsis requires their dimerization through a hydrophobic interface that overlaps with the binding sites for CUL-1 and F-box proteins. Using in vitro reconstitution and in vivo analysis of mutant proteins, we show that SKR proteins interact with the other SC proteins using their C-terminal helices to form a soluble complex, which likely represents a basic building block for SC assembly. Our findings demonstrate how conserved Skp1 proteins are repurposed as part of the SC and may provide insight into how synapsis is coupled to cell cycle progression.

cell biology↗

Robust designation of meiotic crossover sites by CDK-2 through phosphorylation of the MutSγ complex

Crossover formation is essential for proper segregation of homologous chromosomes during meiosis. Here we show that C. elegans Cyclin-dependent kinase 2 (CDK-2) forms a complex with cyclin-like protein COSA-1 and supports crossover formation by promoting conversion of meiotic double-strand breaks (DSBs) into crossover-specific recombination intermediates. Further, we identify MutS{gamma} component MSH-5 as a CDK-2 phosphorylation target. MSH-5 has a disordered C-terminal tail that contains 13 potential CDK phosphosites and is required to concentrate crossover-promoting proteins at recombination sites. Phosphorylation of the MSH-5 tail appears dispensable in a wild- type background, but when MutS{gamma} activity is partially compromised, crossover formation and retention of CDK-2/COSA-1 at recombination sites are exquisitely sensitive to phosphosite loss. Our data support a model in which robustness of crossover designation reflects a positive feedback mechanism involving CDK-2-mediated phosphorylation and scaffold-like properties of the MSH-5 C-terminal tail, features that combine to promote full recruitment and activity of crossover-promoting complexes.

cell biology↗