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Taking a molecular motor for a spin: helicase mechanism studied by spin labeling and PELDOR

机译:以分子马达旋转:通过旋转标记和PELDOR研究的解旋酶机理

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摘要

The complex molecular motions central to the functions of helicases have long attracted attention. Protein crystallography has provided transformative insights into these dynamic conformational changes, however important questions about the true nature of helicase configurations during the catalytic cycle remain. Using pulsed EPR (PELDOR or DEER) to measure interdomain distances in solution, we have examined two representative helicases: PcrA from superfamily 1 and XPD from superfamily 2. The data show that PcrA is a dynamic structure with domain movements that correlate with particular functional states, confirming and extending the information gleaned from crystal structures and other techniques. XPD in contrast is shown to be a rigid protein with almost no conformational changes resulting from nucleotide or DNA binding, which is well described by static crystal structures. Our results highlight the complimentary nature of PELDOR to crystallography and the power of its precision in understanding the conformational changes relevant to helicase function.
机译:长期以来,解旋酶功能的核心是复杂的分子运动。蛋白质晶体学为这些动态构象变化提供了变革性的见解,然而,有关催化循环过程中解旋酶构型的真实性质的重要问题仍然存在。使用脉冲EPR(PELDOR或DEER)测量溶液中的域间距离,我们检查了两种代表性解旋酶:超家族1的PcrA和超家族2的XPD。数据显示,PcrA是一种动态结构,其域运动与特定的功能状态相关,确认并扩展了从晶体结构和其他技术中收集的信息。相反,XPD被证明是一种刚性蛋白质,几乎没有因核苷酸或DNA结合而引起的构象变化,这在静态晶体结构中已得到很好的描述。我们的结果突出了PELDOR与晶体学的互补性质,以及其在理解与解旋酶功能相关的构象变化中的精确能力。

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