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Human topoisomerases and DNA geometry: Putting a positive twist on enzyme action.

机译:人类拓扑异构酶和DNA几何形状:对酶的作用产生积极影响。

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摘要

Topoisomerases play critical roles in maintaining DNA topology during cellular processes such as DNA replication in eukaryotes. Movement of the replication machinery through the double helix induces positive supercoiling ahead of the fork and precatenanes behind it. Because topoisomerase I and II create transient single- and double-stranded DNA breaks, respectively, it has been assumed that topoisomerase I relaxes the positive supercoils while topoisomerase II resolves precatenanes.; In contrast to this proposed segregation of function, models for anticancer drug action place topoisomerase II ahead of replication forks. This discrepancy raises the question of whether eukaryotic type II topoisomerases have normal physiological functions ahead of DNA tracking systems. If so, then positively supercoiled DNA might be the preferred substrate for human topoisomerase IIalpha, the isoform involved in replicative processes. Therefore, the work described in this dissertation compared the activities of human topoisomerases on positively and negatively supercoiled DNA in the absence and presence of anticancer drugs, and explored the mechanisms by which topoisomerase II recognizes DNA supercoil geometry.; First, this work characterized the abilities of human topoisomerase IIalpha and beta to relax positively and negatively supercoiled DNA. Topoisomerase IIalpha, but not beta, displayed characteristics that suggest it has the potential to relieve torsional stress ahead of approaching DNA tracking systems efficiently and safely.; Second, this work examined the effects of positive DNA supercoiling on topoisomerase-mediated DNA cleavage and response to anticancer agents. Results indicate that DNA supercoil geometry has a profound influence on topoisomerase II-mediated DNA scission and that topoisomerase I may be an intrinsically more lethal target for anticancer drugs than either type II enzyme.; Lastly, this work explored the mechanism by which topoisomerase II recognizes DNA supercoil geometry. Results suggest that the enzyme recognizes supercoil geometry in a bimodal fashion that involves elements in the N-terminal or central domain for cleavage and the variable C-terminal domain for relaxation. This ability has implications for the catalytic function of topoisomerase II and may account for some of the differences in the physiological roles played by distinct type II enzymes.
机译:拓扑异构酶在维持细胞过程(如真核生物中的DNA复制)过程中的DNA拓扑结构中起关键作用。复制机械通过双螺旋的运动会在前叉前产生正的超螺旋,并在其后发生儿茶素。因为拓扑异构酶I和II分别产生瞬时的单链和双链DNA断裂,所以已经假定拓扑异构酶I可以使阳性超螺旋松弛,而拓扑异构酶II可以分解儿茶素。与提议的功能分离相反,抗癌药物作用模型将拓扑异构酶II置于复制叉之前。这种差异提出了一个问题,即在DNA跟踪系统之前,真核II型拓扑异构酶是否具有正常的生理功能。如果是这样,那么阳性超螺旋DNA可能是人类拓扑异构酶IIalpha(参与复制过程的同种型)的首选底物。因此,本文描述的工作比较了在不存在和存在抗癌药的情况下人类拓扑异构酶对正负超螺旋DNA的活性,并探讨了拓扑异构酶II识别DNA超螺旋几何结构的机制。首先,这项工作表征了人类拓扑异构酶IIalpha和beta放松正负超螺旋DNA的能力。拓扑异构酶IIalpha(而非beta)显示出的特征表明,它有可能在有效,安全地接近DNA跟踪系统之前缓解扭转压力。其次,这项工作检查了阳性DNA超螺旋对拓扑异构酶介导的DNA裂解和对抗癌药反应的影响。结果表明,DNA超螺旋的几何形状对拓扑异构酶II介导的DNA断裂具有深远的影响,并且拓扑异构酶I可能比任何一种II型酶在本质上更具有杀伤力。最后,这项工作探讨了拓扑异构酶II识别DNA超螺旋几何的机制。结果表明,该酶以双峰方式识别超螺旋几何结构,其中涉及N末端或中央结构域中的元​​素进行切割,而可变C末端结构域中的元​​素进行松弛。这种能力对拓扑异构酶II的催化功能有影响,并且可以解释不同II型酶发挥的生理作用中的某些差异。

著录项

  • 作者

    McClendon, A. Kathleen.;

  • 作者单位

    Vanderbilt University.;

  • 授予单位 Vanderbilt University.;
  • 学科 Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

  • 入库时间 2022-08-17 11:41:04

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