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The role of Chl1 DNA helicase in cohesion deposition and establishment.

机译:Chl1 DNA解旋酶在凝聚沉积和建立中的作用。

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摘要

Sister chromatid cohesion is crucial for the accurate transmission of genetic material during cell division. The conserved family of cohesin proteins that mediate sister chromatid tethering reactions require Scc2, Scc4 for chromatin association and Eco1 for conversion to a tethering competent state. The mechanism by which cohesin proteins mediate cohesion establishment between newly replicated sister chromatids remains elusive. Popular models posit that cohesins loaded in front of the replication fork is modified by Eco1 and conformational changes in the cohesin complex allows the replication fork to pass through cohesin barriers thereby converting cohesins into a cohesion competent state to enable capture of replicated sister chromatids. This study provides new evidence that challenges previous notions of cohesion establishment.;I use genetic and biochemical studies that link Eco1 with the Okazaki fragment maturation endonuclease Fen1. Furthermore I show genetic and physical interactions between Fen1 and the DNA helicase Chl1, which was previously identified to interact with Eco1 and play a role in sister chromatid cohesion. A detailed investigation of the Chl1 DNA helicase and its role in sister chromatid cohesion revealed its role in regulating cohesin and Scc2 deposition specifically during the S phase. Taken together, my studies suggest a new model of cohesion establishment wherein cohesins loaded in the S phase is modified by Eco1 behind the replication fork and mediates cohesion establishment. Further analysis of Chl1 also revealed the role of Chl1 in the deposition of condensin proteins. My results identify a novel link between the molecular mechanisms of sister chromatid cohesion with DNA condensation and suggests that these cellular processes are linked temporally and mechanistically. Detailed analysis of the Chl1 helicase reveals important novel functions in DNA metabolism and facilitates a better understanding of its clinically important human homologues, hChlR1 and BACH1.
机译:姐妹染色单体的内聚对于细胞分裂过程中遗传物质的准确传递至关重要。介导姐妹染色单体束缚反应的黏附蛋白保守家族需要Scc2,Scc4用于染色质缔合,而Eco1则需要转变为束缚感受态。粘着蛋白蛋白介导新复制的姐妹染色单体之间的粘着建立的机制仍然难以捉摸。流行的模型认为,复制叉前的黏附素被Eco1修饰,黏附素复合物中的构象变化使复制叉能够穿过黏附素屏障,从而将黏附素转化成具有黏合力的状态,从而能够捕获复制的姐妹染色单体。这项研究提供了新的证据,挑战了以前建立凝聚力的概念。;我使用了将Eco1与Okazaki片段成熟内切核酸酶Fen1联系起来的遗传和生化研究。此外,我还显示了Fen1与DNA解旋酶Chl1之间的遗传和物理相互作用,该酶先前已被确定与Eco1相互作用并在姐妹染色单体内聚中发挥作用。 Chl1 DNA解旋酶的详细研究及其在姐妹染色单体内聚中的作用揭示了其在调节黏着蛋白和Scc2沉积中的作用,特别是在S期。综上所述,我的研究提出了一种新的凝聚力建立模型,其中在S阶段加载的凝聚素在复制叉后被Eco1修饰并介导凝聚力建立。对Chl1的进一步分析还揭示了Chl1在凝缩蛋白沉积中的作用。我的研究结果确定了姐妹染色单体内聚力与DNA缩合的分子机制之间的新颖联系,并暗示这些细胞过程在时间和机理上是相互联系的。 Chl1解旋酶的详细分析揭示了DNA代谢中的重要新功能,并有助于更好地了解其临床上重要的人类同源物hChlR1和BACH1。

著录项

  • 作者

    Rudra, Soumya.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Biology Molecular.;Chemistry Biochemistry.;Biology Genetics.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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