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Identification of dynamical hinge points of the L1 ligase molecular switch

机译:L1连接酶分子开关的动态铰链点的识别

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摘要

The L1 ligase is an in vitro selected ribozyme that uses a noncanonically base-paired ligation site to catalyze regioselectively and regiospecifically the 5′ to 3′ phosphodiester bond ligation, a reaction relevant to origin of life hypotheses that invoke an RNA world scenario. The L1 ligase crystal structure revealed two different conformational states that were proposed to represent the active and inactive forms. It remains an open question as to what degree these two conformers persist as stable conformational intermediates in solution, and along what pathway are they able to interconvert. To explore these questions, we have performed a series of molecular dynamics simulations in explicit solvent of the inactive–active conformational switch in L1 ligase. Four simulations were performed departing from both conformers in both the reactant and product states, in addition to a simulation where local unfolding in the active state was induced. From these simulations, along with crystallographic data, a set of four virtual torsion angles that span two evolutionarily conserved and restricted regions were identified as dynamical hinge points in the conformational switch transition. The ligation site visits three distinct states characterized by hydrogen bond patterns that are correlated with the formation of specific contacts that may promote catalysis. The insights gained from these simulations contribute to a more detailed understanding of the coupled catalytic/conformational switch mechanism of L1 ligase that may facilitate the design and engineering of new catalytic riboswitches.
机译:L1连接酶是一种体外选择的核酶,它使用非规范的碱基配对连接位点选择性地和区域特异性地催化5'至3'磷酸二酯键的连接,这是一种与生命起源有关的反应,可引发RNA世界。 L1连接酶晶体结构揭示了两个不同的构象状态,被提议代表活性和非活性形式。关于这两个构象异构体在溶液中作为稳定构象中间体在多大程度上持续存在以及它们能够沿着什么途径进行相互转化,仍然是一个悬而未决的问题。为探讨这些问题,我们在L1连接酶中非活性-构象转换的显式溶剂中进行了一系列分子动力学模拟。除了在活性状态下引起局部展开的模拟之外,还进行了四个在反应物和产物状态下均偏离构象异构体的模拟。从这些模拟中,连同晶体学数据,将跨越两个进化保守和受限区域的一组四个虚拟扭转角确定为构象转换过渡中的动态铰链点。连接位点访问以氢键模式为特征的三个不同状态,该氢键模式与可促进催化作用的特定接触的形成相关。从这些模拟中获得的见解有助于更详细地了解L1连接酶的催化/构象转换机理,这可能有助于新的催化核糖开关的设计和工程化。

著录项

  • 来源
    《RNA》 |2010年第4期|769-780|共12页
  • 作者单位

    Biomedical Informatics and Computational Biology, University of Minnesota, Minneapolis, Minnesota 55455, USA|Department of Chemistry, University of Minnesota at Minneapolis, Minneapolis, Minnesota 55455, USA;

    Biomedical Informatics and Computational Biology, University of Minnesota, Minneapolis, Minnesota 55455, USA|Department of Chemistry, University of Minnesota at Minneapolis, Minneapolis, Minnesota 55455, USA;

    IBM and Biomedical Informatics and Computational Biology, University of Minnesota, Rochester, Minnesota 55901, USA;

    Department of Chemistry and Biochemistry, University of California at Santa Cruz, Santa Cruz, California 95064, USA|Center for the Molecular Biology of RNA, Sinsheimer Laboratories, University of California at Santa Cruz, Santa Cruz, California 95064, USA;

    Department of Chemistry and Biochemistry, University of California at Santa Cruz, Santa Cruz, California 95064, USA|Center for the Molecular Biology of RNA, Sinsheimer Laboratories, University of California at Santa Cruz, Santa Cruz, California 95064, USA;

    Department of Chemistry, University of Minnesota at Minneapolis, Minneapolis, Minnesota 55455, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    RNA world hypothesis; riboswitch; conformational transition;

    机译:RNA世界假说;核糖开关;构象转变;

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