首页> 美国卫生研究院文献>other >Two steps forward one step back: determining XPD helicase mechanism by single-molecule fluorescence and high-resolution optical tweezers
【2h】

Two steps forward one step back: determining XPD helicase mechanism by single-molecule fluorescence and high-resolution optical tweezers

机译:前进两步退后一步:通过单分子荧光和高分辨率光学镊子确定XPD解旋酶的机理

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

XPD-like helicases constitute a prominent DNA helicase family critical for many aspects of genome maintenance. These enzymes share a unique structural feature, an auxiliary domain stabilized by an iron-sulphur (FeS) cluster, and a 5′-3′ polarity of DNA translocation and duplex unwinding. Biochemical analyses alongside two single-molecule approaches, total internal reflection fluorescence microscopy and high-resolution optical tweezers, have shown how the unique structural features of XPD helicase and its specific patterns of substrate interactions tune the helicase for its specific cellular function and shape its molecular mechanism. The FeS domain forms a duplex separation wedge and contributes to an extended DNA binding site. Interaction within this site position the helicase in an orientation to unwind the duplex, control the helicase rate, and verify the integrity of the translocating strand. Consistent with its cellular role, processivity of XPD is limited and is defined by an idiosyncratic stepping kinetics. DNA duplex separation occurs in single base pair steps punctuated by frequent backward steps and conformational rearrangements of the protein-DNA complex. As such, the helicase in isolation mainly stabilizes spontaneous base pair opening and exhibits a limited ability to unwind stable DNA duplexes. The presence of a cognate ssDNA binding protein converts XPD into a vigorous helicase by destabilizing the upstream dsDNA as well as by trapping the unwound strands. Remarkably, the two proteins can co-exist on the same DNA strand without competing for binding. The current model of the XPD unwinding mechanism will be discussed along with possible modifications to this mechanism by the helicase interacting partners and unique features of such bio-medically important XPD-like helicases as FANCJ (BACH1), RTEL1 and CHLR1 (DDX11).
机译:XPD样解旋酶构成了一个重要的DNA解旋酶家族,对基因组维护的许多方面至关重要。这些酶具有独特的结构特征,通过铁-硫(FeS)簇稳定的辅助结构域以及DNA易位和双链解绕的5'-3'极性。生化分析以及两种单分子方法,全内反射荧光显微镜和高分辨率光学镊子,已显示XPD解旋酶的独特结构特征及其底物相互作用的特定模式如何调节解旋酶的特定细胞功能并塑造其分子机制。 FeS结构域形成双链体分离楔,并有助于扩展DNA结合位点。在该位点内的相互作用将解旋酶定位于展开双链体,控制解旋酶速率并验证易位链完整性的方向。与它的细胞作用一致,XPD的合成能力受到限制,并由特异步进动力学定义。 DNA双链体分离发生在单碱基对步骤中,该步骤被蛋白质-DNA复合物的频繁向后步骤和构象重排所打断。因此,分离中的解旋酶主要稳定自发碱基对的开放,并且解旋稳定DNA双链体的能力有限。同源的ssDNA结合蛋白的存在通过使上游dsDNA不稳定以及捕获解链来将XPD转化为有力的解旋酶。值得注意的是,这两种蛋白质可以共存于同一条DNA链上,而不会竞争结合。将讨论XPD展开机制的当前模型,以及解旋酶相互作用伙伴对该机制的可能修改,以及诸如FANCJ(BACH1),RTEL1和CHLR1(DDX11)等具有生物医学意义的XPD类解旋酶的独特功能。

著录项

  • 期刊名称 other
  • 作者

    Maria Spies;

  • 作者单位
  • 年(卷),期 -1(20),-1
  • 年度 -1
  • 页码 58–70
  • 总页数 27
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号