Regulation of the MLH1–MLH3 endonuclease in meiosis

被引:0
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作者
Elda Cannavo
Aurore Sanchez
Roopesh Anand
Lepakshi Ranjha
Jannik Hugener
Céline Adam
Ananya Acharya
Nicolas Weyland
Xavier Aran-Guiu
Jean-Baptiste Charbonnier
Eva R. Hoffmann
Valérie Borde
Joao Matos
Petr Cejka
机构
[1] Università della Svizzera italiana (USI),Institute for Research in Biomedicine, Faculty of Biomedical Sciences
[2] Eidgenössische Technische Hochschule (ETH),Department of Biology, Institute of Biochemistry
[3] Institut Curie,Institute of Molecular Cancer Research
[4] PSL Research University,DNRF Center for Chromosome Stability, Department of Cellular and Molecular Medicine, Faculty of Health and Medical Sciences
[5] CNRS UMR3244,undefined
[6] Paris Sorbonne Université,undefined
[7] University of Zürich,undefined
[8] Genome Damage and Stability Centre,undefined
[9] School of Life Sciences,undefined
[10] University of Sussex,undefined
[11] I2BC,undefined
[12] iBiTec-S,undefined
[13] CEA,undefined
[14] CNRS UMR 9198,undefined
[15] Université Paris-Sud,undefined
[16] Université Paris Sud,undefined
[17] University of Copenhagen,undefined
来源
Nature | 2020年 / 586卷
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摘要
During prophase of the first meiotic division, cells deliberately break their DNA1. These DNA breaks are repaired by homologous recombination, which facilitates proper chromosome segregation and enables the reciprocal exchange of DNA segments between homologous chromosomes2. A pathway that depends on the MLH1–MLH3 (MutLγ) nuclease has been implicated in the biased processing of meiotic recombination intermediates into crossovers by an unknown mechanism3–7. Here we have biochemically reconstituted key elements of this pro-crossover pathway. We show that human MSH4–MSH5 (MutSγ), which supports crossing over8, binds branched recombination intermediates and associates with MutLγ, stabilizing the ensemble at joint molecule structures and adjacent double-stranded DNA. MutSγ directly stimulates DNA cleavage by the MutLγ endonuclease. MutLγ activity is further stimulated by EXO1, but only when MutSγ is present. Replication factor C (RFC) and the proliferating cell nuclear antigen (PCNA) are additional components of the nuclease ensemble, thereby triggering crossing-over. Saccharomyces cerevisiae strains in which MutLγ cannot interact with PCNA present defects in forming crossovers. Finally, the MutLγ–MutSγ–EXO1–RFC–PCNA nuclease ensemble preferentially cleaves DNA with Holliday junctions, but shows no canonical resolvase activity. Instead, it probably processes meiotic recombination intermediates by nicking double-stranded DNA adjacent to the junction points9. As DNA nicking by MutLγ depends on its co-factors, the asymmetric distribution of MutSγ and RFC–PCNA on meiotic recombination intermediates may drive biased DNA cleavage. This mode of MutLγ nuclease activation might explain crossover-specific processing of Holliday junctions or their precursors in meiotic chromosomes4.
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页码:618 / 622
页数:4
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