首页> 外文期刊>Mechanisms of Ageing and Development >Checkpoint kinase phosphorylation in response to endogenous oxidative DNA damage in repair-deficient stationary-phase Saccharomyces cerevisiae.
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Checkpoint kinase phosphorylation in response to endogenous oxidative DNA damage in repair-deficient stationary-phase Saccharomyces cerevisiae.

机译:修复缺陷固定相酿酒酵母中响应内源性氧化DNA损伤的检查点激酶磷酸化。

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摘要

Stationary-phase Saccharomyces cerevisiae can serve as a model for post-mitotic cells of higher eukaryotes. Phosphorylation and activation of the checkpoint kinase Rad53 was observed after more than 2 days of culture if two major pathways of oxidative DNA damage repair, base excision repair (BER) and nucleotide excision repair (NER), are inactive. The wild type showed a low degree of Rad53 phosphorylation when the incubation period was drastically increased. In the ber ner strain, Rad53 phosphorylation can be abolished by inclusion of antioxidants or exclusion of oxygen. Furthermore, this modification and enhanced mutagenesis in extended stationary phase were absent in rho degrees strains, lacking detectable mitochondrial DNA. This checkpoint response is therefore thought to be dependent on reactive oxygen species originating from mitochondrial respiration. There was no evidence for progressive overall telomere shortening during stationary-phase incubation. Since Rad50 (of the MRN complex) and Mec1 (the homolog of ATR) were absolutely required for the observed checkpoint response, we assume that resected random double-strand breaks are the critical lesion. Single-strand resection may be accelerated by unrepaired oxidative base damage in the vicinity of a double-strand break.
机译:稳定期酿酒酵母可以作为高等真核生物有丝分裂后细胞的模型。如果氧化DNA损伤修复,碱基切除修复(BER)和核苷酸切除修复(NER)的两个主要途径均失活,则在培养2天以上后,观察到了检查点激酶Rad53的磷酸化和激活。当潜伏期急剧增加时,野生型显示出低水平的Rad53磷酸化。在伯纳氏菌中,Rad53的磷酸化可通过加入抗氧化剂或排除氧气来消除。此外,这种修饰和突变在延长的固定相中不存在于rho度菌株中,缺乏可检测的线粒体DNA。因此,该检查点响应被认为取决于源自线粒体呼吸的活性氧。没有证据表明在固定相孵育过程中总的端粒缩短。由于观察到的检查点反应绝对需要Rad50(MRN复合体的)和Mec1(ATR的同源物),因此我们假定切除的随机双链断裂是关键病变。双链断裂附近未修复的氧化性碱损伤可能会加速单链切除。

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