Corentin Claeys Bouuaert

@ccb-lab.bsky.social

Group leader at UCLouvain exploring the mechanisms of DNA double-strand break formation and recombination during meiosis. Lab website: https://perso.uclouvain.be/corentin.claeys

Delighted to see our work now published at the EMBO Journal! Check also this concomitant paper by the Bai and Mirny labs with an orthogonal approach that aligns well with our measurements www.nature.com/articles/s41... Great system to study how SMCs facilitate/regulate target search in chromatin!

Condensin accelerates long-range intra-chromosomal interactions - Nature Communications

Long‑range chromosome encounters in cells are hard to quantify. Here, the authors induce artificial contacts in yeast and show that intra‑chromosomal interactions form faster than inter‑chromosomal on...

nature.com

The EMBO Journal@embojournal.org · 5mo ago

Condensin loop extrusion properties, roadblocks, and role in homology search @aurelepiazza.bsky.social et al show yeast condensin unidirectionally extrudes long chromatin loops & contributes to biasing donor selection during recombinational DNA break repair link.springer.com/article/10.1...

Excellent work from Yun Yan and HBD Prasada Rao unraveling yet again Small ubiquitin-like modifier (SUMO) in regulating loop–axis organization in mouse meiosis. @hunterlab.bsky.social biorxiv.org/content/10.6...

SUMO mediates the coordinate regulation of meiotic chromosome length and crossover rate

Meiotic prophase-I chromosomes are organized into linear arrays of chromatin loops anchored to proteinaceous axes that define the interaction interfaces for the pairing and synapsis of homologous chromosomes. Chromatin loop size and axial chromosome length are inversely correlated and vary widely both between and within species, including between the sexes. The molecular basis of this variation remains unclear. Here, we provide evidence that the small ubiquitin-like modifier, SUMO, regulates loop–axis organization in mouse meiosis. Our analysis shows that the longer axes of oocyte chromosomes contain more SUMO per unit length than the shorter axes of spermatocyte chromosomes. In mouse models, the loss of SUMO1 results in shorter axes and longer chromatin loops. Conversely, increased SUMO1 conjugation, caused by mutation of the SENP1 isopeptidase, produces longer axes with shorter loops. Axis length positively correlates with meiotic recombination. Accordingly, Sumo1 and Senp1 mutations respectively decrease and increase crossover frequency. These findings identify SUMO as a key regulator of meiotic chromosome architecture and suggest a molecular basis for the physiological variation in chromosome length and recombination rates seen among species, sexes, individuals, and individual meiocytes. ![Figure][1]</img> ### Competing Interest Statement The authors have declared no competing interest. Eunice Kennedy Shriver National Institute of Child Health and Human Development, https://ror.org/04byxyr05, R01HD109322 Guangdong Basic and Applied Basic Research Foundation, 2024A1515012907 DBT-Ramalingaswami, re-entry fellowship NIAB core grant, C0031 [1]: pending:yes

biorxiv.org

Nature suggests you use their "Manuscript Adviser" bot to get advice before submitting I uploaded the classic Watson & Crick paper about DNA structure, and the Adviser had this to say about one of the greatest paper endings of the century:

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✨New paper from the lab! ✨ We present a fun study aimed at characterizing the interaction between the H3K4me3 reader Spp1 and the meiotic double-strand break protein Mer2, and their relationship with DNA binding. We got some new insights and a few surprises.🧵 www.biorxiv.org/content/10.1...

Insights into the recruitment of the H3K4me3 reader Spp1 by the meiotic double-strand break protein Mer2

The formation of DNA double-strand breaks (DSBs) by Spo11 is tied to the loop-axis organization of meiotic chromosomes. Prior to DSB formation, chromatin loops marked by histone H3K4 trimethylation be...

biorxiv.org

We are hiring! We are looking for a motivated and enthusiastic postdoc to study mammalian DSB repair using innovative genomic approaches. Our lab is at the Curie Institute in Paris and offers vibrant scientific environnement and cutting edge platforms. Please repost or apply here: lnkd.in/eJ9q3QrR

Institut Curie hiring Postdoctoral Position in Mammalian DSB Repair (F/M) in Paris, Île-de-France, France | LinkedIn

Posted 8:04:09 PM. About UsInstitut Curie Research CenterInstitut Curie is a major player in the research and fight…See this and similar jobs on LinkedIn.

lnkd.in

We’re happy to present a new preprint from the lab, where we identify new mechanisms that drive the recruitment of Mre11 to recombination sites during meiosis. Work led by star student Priyanka Priyadarshini with help from colleagues and funded by the ERC and FNRS. www.biorxiv.org/content/10.1...

Recruitment of Mre11 to recombination sites during meiosis

The Mre11 nuclease, part of the conserved MRX complex involved in the repair of DNA double-strand breaks (DSBs), is also essential to initiate meiotic recombination in budding yeast by promoting Spo11-induced DSBs. Recruitment of Mre11 to meiotic DSB sites depends on Rec114-Mei4 and Mer2 (RMM) that organize the meiotic DSB machinery by a mechanism involving biomolecular condensation. Here, we explored the role of Mre11 during meiosis and its relationship to RMM condensation. We show that both Mre11 and MRX complexes form DNA-dependent, hexanediol sensitive condensates in vitro. In vivo, Mre11 assembles into DNA damage-dependent foci in vegetative cells and DSB-independent foci in meiotic cells. In vitro condensates and in vivo foci both depend on the C-terminal intrinsically-disordered region (IDR) of Mre11. Importantly, while the Mre11 IDR is dispensable for vegetative DNA repair it is essential during meiosis. The C-terminus of Mre11 forms a short alpha-helix that binds a conserved region of Mer2, and mutating residues within this interface reduces Mre11 foci and DSB formation. Finally, we identified a SUMO-interacting motif within the Mre11 IDR that enhances recruitment of Mre11 during meiosis and facilitates DSB formation. This work identifies multiple mechanisms that collaborate to recruit Mre11 during meiosis to initiate recombination. ### Competing Interest Statement The authors have declared no competing interest. European Research Council, 802525 Fonds National de la Recherche Scientifique, Bruxelles, BE, T.0031.22 Research Council VUB, SRP95, OZR3939 National Institute of Health, US, R01GM074223

biorxiv.org

We’re happy to present a new preprint from the lab, where we identify new mechanisms that drive the recruitment of Mre11 to recombination sites during meiosis. Work led by star student Priyanka Priyadarshini with help from colleagues and funded by the ERC and FNRS. www.biorxiv.org/content/10.1...

Recruitment of Mre11 to recombination sites during meiosis

The Mre11 nuclease, part of the conserved MRX complex involved in the repair of DNA double-strand breaks (DSBs), is also essential to initiate meiotic recombination in budding yeast by promoting Spo11-induced DSBs. Recruitment of Mre11 to meiotic DSB sites depends on Rec114-Mei4 and Mer2 (RMM) that organize the meiotic DSB machinery by a mechanism involving biomolecular condensation. Here, we explored the role of Mre11 during meiosis and its relationship to RMM condensation. We show that both Mre11 and MRX complexes form DNA-dependent, hexanediol sensitive condensates in vitro. In vivo, Mre11 assembles into DNA damage-dependent foci in vegetative cells and DSB-independent foci in meiotic cells. In vitro condensates and in vivo foci both depend on the C-terminal intrinsically-disordered region (IDR) of Mre11. Importantly, while the Mre11 IDR is dispensable for vegetative DNA repair it is essential during meiosis. The C-terminus of Mre11 forms a short alpha-helix that binds a conserved region of Mer2, and mutating residues within this interface reduces Mre11 foci and DSB formation. Finally, we identified a SUMO-interacting motif within the Mre11 IDR that enhances recruitment of Mre11 during meiosis and facilitates DSB formation. This work identifies multiple mechanisms that collaborate to recruit Mre11 during meiosis to initiate recombination. ### Competing Interest Statement The authors have declared no competing interest. European Research Council, 802525 Fonds National de la Recherche Scientifique, Bruxelles, BE, T.0031.22 Research Council VUB, SRP95, OZR3939 National Institute of Health, US, R01GM074223

biorxiv.org

Please see our latest paper on the role of EXO1 in meiosis: "EXO1 promotes the meiotic MLH1-MLH3 endonuclease through conserved interactions with MLH1, MSH4 and DNA". Congratulations to both first authors, Megha Roy and Aurore Sanchez and thanks to all our collaborators!

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