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Role of the Saccharomyces cerevisiae Rad53 Checkpoint Kinase in Signaling Double-Strand Breaks during the Meiotic Cell Cycle

机译:酿酒酵母Rad53检查点激酶在减数分裂细胞周期信号双链断裂中的作用

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DNA double-strand breaks (DSBs) can arise at unpredictable locations after DNA damage or in a programmed manner during meiosis. DNA damage checkpoint response to accidental DSBs during mitosis requires the Rad53 effector kinase, whereas the meiosis-specific Mek1 kinase, together with Red1 and Hop1, mediates the recombination checkpoint in response to programmed meiotic DSBs. Here we provide evidence that exogenous DSBs lead to Rad53 phosphorylation during the meiotic cell cycle, whereas programmed meiotic DSBs do not. However, the latter can trigger phosphorylation of a protein fusion between Rad53 and the Mec1-interacting protein Ddc2, suggesting that the inability of Rad53 to transduce the meiosis-specific DSB signals might be due to its failure to access the meiotic recombination sites. Rad53 phosphorylation/activation is elicited when unrepaired meiosis-specific DSBs escape the recombination checkpoint. This activation requires homologous chromosome segregation and delays the second meiotic division. Altogether, these data indicate that Rad53 prevents sister chromatid segregation in the presence of unrepaired programmed meiotic DSBs, thus providing a salvage mechanism ensuring genetic integrity in the gametes even in the absence of the recombination checkpoint.
机译:DNA双链断裂(DSB)可能在DNA损伤后或在减数分裂过程中以编程方式出现在不可预测的位置。对有丝分裂期间意外DSB的DNA损伤检查点响应需要Rad53效应激酶,而减数分裂特异的Mek1激酶与Red1和Hop1一起介导对编程的减数分裂DSB的重组检查点。在这里,我们提供证据表明外源DSB在减数分裂细胞周期中导致Rad53磷酸化,而程序化减数分裂DSB则不会。但是,后者可能触发Rad53和与Mec1相互作用的蛋白Ddc2之间的蛋白融合物的磷酸化,提示Rad53无法转导减数分裂特异的DSB信号可能是由于其无法进入减数分裂重组位点。当未修复的减数分裂特异的DSB脱离重组检查点时,引起Rad53磷酸化/激活。此激活需要同源染色体分离并延迟第二次减数分裂。总而言之,这些数据表明,Rad53可在未修复的程序性减数分裂DSB存在的情况下防止姐妹染色单体分离,因此即使在没有重组检查点的情况下,也提供了确保配子遗传完整性的挽救机制。

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