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Studies of checkpoint responses caused by endogenous oxidative DNA damage in DNA repair deficient Saccharomyces cerevisiae.

机译:在DNA修复缺陷型酿酒酵母中由内源性氧化DNA损伤引起的检查点响应的研究。

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摘要

In this dissertation project, I aimed to study checkpoint response of stationary phase yeast to DNA damage caused by basal oxidative stress. My study was focused on the regulation of Rad53 phosphorylation in different repair deficient strains of yeast. Rad53 plays decisive roles in cell cycle progression, cell death and transcriptional regulation of repair proteins to a plethora of DNA insults, including oxidative DNA damage. Rad53 activity is upregulated by phosphorylation, generating Rad53 species of various degrees of phosphorylation.;I have measured steady state levels of Rad53 phosphorylation by western blotting following SDS-polyacrylamide gel electrophoresis at different intervals in stationary phase, in various mutant backgrounds. To address the possible contribution of different repair pathways to endogenous DNA damage, I utilized two different sets of DNA repair deficient strains such as those deficient in Base excision repair (BER) and nucleotide excision repair (NER), and other set was deficient in Ku protein and NER. Interestingly, in both BERNER and Yku70rad4 strains, Rad53 phosphorylation was evident in stationary phase that is after 2 days, 4 days and 6 days but not in logarithmic phase. This covalent modification disappears after phosphatase treatment. This Rad53 modification was absent in their respective rho0 mutants, which lack mitochondrial DNA, indicating involvement of mitochondrial ROS in this checkpoint response. We analyzed mutants of different checkpoint proteins for Rad53 phosphorylation. Exclusive involvement of Rad17, Rad50 and Mec1 kinase in Rad53 phosphorylation strongly suggests processed DNA double strand breaks as critical lesions in BERNER cells. Analysis of Yku70 and NER deficient strain showed involvement of ssDNA, which is most likely at telomeres. This study consents with the model of unrepaired oxidative base damage, which can accelerate the appearance of single stranded DNA in the vicinity of double strand breaks (DSBs) or at telomeres.
机译:在本研究项目中,我旨在研究固定相酵母对基础氧化应激引起的DNA损伤的检查点反应。我的研究集中在酵母不同修复缺陷菌株中Rad53磷酸化的调控上。 Rad53在细胞周期进程,细胞死亡以及修复蛋白对多种DNA损伤(包括氧化DNA损伤)的转录调控中起决定性作用。 Rad53的活性通过磷酸化上调,生成各种磷酸化程度的Rad53物种。我在不同的突变背景下,在固定相中以不同间隔通过SDS-聚丙烯酰胺凝胶电泳后,通过蛋白质印迹法测量了Rad53磷酸化的稳态水平。为了解决不同修复途径对内源性DNA损伤的可能贡献,我利用了两套不同的DNA修复缺陷株,例如碱基切除修复(BER)和核苷酸切除修复(NER)缺乏的菌株,另一组缺乏Ku缺失修复。蛋白质和NER。有趣的是,在BERNER和Yku70rad4菌株中,Rad53磷酸化在静止期(分别在2天,4天和6天后)均很明显,而在对数期则没有。这种共价修饰在磷酸酶处理后消失。在它们各自的rho0突变体中缺少该Rad53修饰,它们缺少线粒体DNA,表明线粒体ROS参与了该检查点响应。我们分析了不同检查点蛋白的Rad53磷酸化突变体。 Rad17,Rad50和Mec1激酶在Rad53磷酸化中的独特参与强烈暗示,加工过的DNA双链断裂是BERNER细胞中的关键病变。对Yku70和NER缺陷型菌株的分析显示ssDNA参与,这很可能发生在端粒。这项研究与未修复的氧化性碱基破坏模型相吻合,该模型可以加速单链DNA在双链断裂(DSB)附近或端粒附近的出现。

著录项

  • 作者

    Pawar, Vaibhav.;

  • 作者单位

    University of North Texas Health Science Center at Fort Worth.;

  • 授予单位 University of North Texas Health Science Center at Fort Worth.;
  • 学科 Biology Molecular.;Biology Cell.;Biology Genetics.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 163 p.
  • 总页数 163
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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