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Identifying and Visualizing Macromolecular Flexibility in Structural Biology

机译:识别和可视化结构生物学中的高分子柔性

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摘要

Structural biology comprises a variety of tools to obtain atomic resolution data for the investigation of macromolecules. Conventional structural methodologies including crystallography, NMR and electron microscopy often do not provide sufficient details concerning flexibility and dynamics, even though these aspects are critical for the physiological functions of the systems under investigation. However, the increasing complexity of the molecules studied by structural biology (including large macromolecular assemblies, integral membrane proteins, intrinsically disordered systems, and folding intermediates) continuously demands in-depth analyses of the roles of flexibility and conformational specificity involved in interactions with ligands and inhibitors. The intrinsic difficulties in capturing often subtle but critical molecular motions in biological systems have restrained the investigation of flexible molecules into a small niche of structural biology. Introduction of massive technological developments over the recent years, which include time-resolved studies, solution X-ray scattering, and new detectors for cryo-electron microscopy, have pushed the limits of structural investigation of flexible systems far beyond traditional approaches of NMR analysis. By integrating these modern methods with powerful biophysical and computational approaches such as generation of ensembles of molecular models and selective particle picking in electron microscopy, more feasible investigations of dynamic systems are now possible. Using some prominent examples from recent literature, we review how current structural biology methods can contribute useful data to accurately visualize flexibility in macromolecular structures and understand its important roles in regulation of biological processes.
机译:结构生物学包括多种工具,可获取用于研究大分子的原子分辨率数据。常规的结构方法,包括晶体学,NMR和电子显微镜,通常没有提供足够的灵活性和动力学细节,即使这些方面对于所研究系统的生理功能至关重要。但是,通过结构生物学研究的分子(包括大型大分子装配体,整体膜蛋白,内在无序的系统和折叠中间体)的复杂性不断提高,这要求对与配体和分子的相互作用涉及的柔韧性和构象特异性的作用进行深入分析。抑制剂。捕获生物系统中通常微妙但关键的分子运动的内在困难已将柔性分子的研究限制在结构生物学的小众市场。近年来引入的大规模技术发展包括时间分辨研究,溶液X射线散射以及用于冷冻电子显微镜的新型检测器,这些已经使对柔性系统进行结构研究的局限性远远超出了传统的NMR分析方法。通过将这些现代方法与强大的生物物理和计算方法(例如分子模型集合的生成和电子显微镜中的选择性粒子拾取)相集成,现在可以对动态系统进行更可行的研究。我们使用最新文献中的一些突出实例,回顾了当前的结构生物学方法如何能够贡献有用的数据,以准确地可视化大分子结构中的灵活性,并了解其在调控生物过程中的重要作用。

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