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Cooper, T. J.

Publications and source records attributed to Cooper, T. J..

2 recordsLinked to original sources

Separable roles of the DNA damage response kinase Mec1(ATR) and its activator Rad24(RAD17) within the regulation of meiotic recombination

During meiosis, programmed DNA double-strand breaks (DSBs) are formed by the topoisomerase-like enzyme, Spo11, activating the DNA damage response (DDR) kinase Mec1ATR via the checkpoint clamp loader, Rad24RAD17. At single loci, loss of Mec1 and Rad24 activity alters Spo11-dependent DSB formation and recombination outcome, but their genome-wide roles have not been examined in detail. Here we utilise two distinct methods to characterise the roles Mec1 and Rad24 play in meiotic recombination--deletion of the mismatch repair protein, Msh2, and control of meiotic prophase length via regulation of the Ndt80 transcription factor--to enable genome-wide mapping of meiotic progeny. In line with previous studies, we observe a reduction in the frequency of recombination upon deletion of RAD24--driven by a shortened prophase. By contrast, loss of Mec1 function increases recombination frequency, consistent with its role in DSB trans-interference. Despite this difference in recombination rate, complex, multi-chromatid events initiated by closely spaced DSBs--a rare event in wild type cells--occur more frequently in the absence of either Rad24 or Mec1, suggesting a loss of spatial regulation at the level of DSB formation. We further demonstrate that Mec1 and Rad24 also have important, yet distinct, roles in the spatial regulation of crossovers (COs). Specifically, excess DSBs forming in the absence of Mec1 are disproportionately channelled into the non-crossover (NCO) and non-interfering CO pathways, reducing the global strength of interference without an explicit change in the frequency of interfering COs. In direct contrast, loss of Rad24 weakens interference via a reduction in the apparent number of interfering COs--similar, but less extreme, to the phenotype of ZMM mutants such as zip3{Delta}. Collectively, our results highlight novel and unique roles for Rad24 within meiotic recombination--beyond those mediated by activation of Mec1--and describe new roles for the DDR in several important aspects of meiosis.

genetics

Mismatch repair impedes meiotic crossover interference

Sequence divergence, mediated by the anti-recombinogenic activity of mismatch repair (MMR), forms a barrier to meiotic recombination and in turn the formation of viable gametes. However, rather than MMR acting as a non-specific impediment to meiotic recombination, here we provide evidence that at regions of greater sequence divergence MMR preferentially suppresses interfering (class I) crossovers (COs). Specifically, as measured in two Saccharomyces cerevisiae hybrids containing thousands of DNA-sequence polymorphisms, removal of MMR components increases both the frequency of CO formation and the uniformity of the observed CO distribution. At fine scale, CO positions are skewed away from polymorphic regions in MMR-proficient cells, but, critically, not when members of the class I CO pathway, MSH4 or ZIP3, are inactivated. These findings suggest that class I COs are more sensitive to heteroduplex DNA arising during recombination. Simulations and analysis of Zip3 foci on meiotic chromosomes support roles for Msh2 both early and late in the class I CO maturation process. Collectively, our observations highlight an unexpected interaction between DNA sequence divergence, MMR, and meiotic class I CO control, thereby intimately linking the regulation of CO numbers and their distribution to pathways contributing to reproductive isolation and eventual speciation.

genetics