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bioRxiv · 10.1101/2020.02.12.946293

Regulation of the MLH1-MLH3 endonuclease in meiosis

Abstract

During prophase of the first meiotic division, cells deliberately break their DNA. These DNA breaks are repaired by homologous recombination, which facilitates proper chromosome segregation and enables reciprocal exchange of DNA segments between homologous chromosomes, thus promoting genetic diversity in the progeny1. A successful completion of meiotic recombination requires nucleolytic processing of recombination intermediates. Genetic and cellular data implicated a pathway dependent on the putative MLH1-MLH3 (MutL{gamma}) nuclease in generating crossovers, but mechanisms that lead to its activation were unclear2-4. Here, we have biochemically reconstituted key elements of this pro-crossover pathway. First, we show that human MSH4-MSH5 (MutS{gamma}), which was known to support crossing over5-7, binds branched recombination intermediates and physically associates with MutL{gamma}. This helps stabilize the ensemble at joint molecule structures and adjacent dsDNA. Second, we show that MutS{gamma} directly stimulates DNA cleavage by the MutL{gamma} endonuclease, which demonstrates a novel and unexpected function for MutS{gamma} in triggering crossing-over. Third, we find that MutL{gamma} activity is further stimulated by EXO1, but only when MutS{gamma} is present. Fourth, we also identify the replication factor C (RFC) and the proliferating cell nuclear antigen (PCNA) as additional components of the nuclease ensemble, and show that S. cerevisiae strains expressing PIP box-mutated MutL{gamma} present striking defects in forming crossovers. Finally, we show that the MutL{gamma}-MutS{gamma}-EXO1-RFC-PCNA nuclease ensemble preferentially cleaves DNA with Holliday junctions, but shows no canonical resolvase activity. Instead, the multilayered nuclease ensemble likely processes meiotic recombination intermediates by nicking dsDNA adjacent to junction points8. Since DNA nicking by MutL{gamma} is dependent on its co-factors, the asymmetric distribution of MutS{gamma} and RFC/PCNA on meiotic recombination intermediates may drive biased DNA cleavage. This unique mode of MutL{gamma} nuclease activation might explain crossover-specific processing of Holliday junctions within the meiotic chromosomal context3, 9.

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BibTeXRIS

Cannavo, E., Sanchez, A., Anand, R., Ranjha, L., Hugener, J., Adam, C., Acharya, A., Weyland, N., Aran-Guiu, X., Charbonnier, J.-B., Hoffman, E. R., Borde, V., Matos, J., Cejka, P.. 2020-02-13. Regulation of the MLH1-MLH3 endonuclease in meiosis. https://doi.org/10.1101/2020.02.12.946293

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