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Validation of macromolecular flexibility in solution by small-angle X-ray scattering (SAXS)

机译:小角度X射线散射(SAXS)验证溶液中的高分子柔性

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摘要

The dynamics of macromolecular conformations are critical to the action of cellular networks. Solution X-ray scattering studies, in combination with macromolecular X-ray crystallography (MX) and nuclear magnetic resonance (NMR), strive to determine complete and accurate states of macromolecules, providing novel insights describing allosteric mechanisms, supramolecular complexes, and dynamic molecular machines. This review addresses theoretical and practical concepts, concerns, and considerations for using these techniques in conjunction with computational methods to productively combine solution-scattering data with high-resolution structures. I discuss the principal means of direct identification of macromolecular flexibility from SAXS data followed by critical concerns about the methods used to calculate theoretical SAXS profiles from high-resolution structures. The SAXS profile is a direct interrogation of the thermodynamic ensemble and techniques such as, for example, minimal ensemble search (MES), enhance interpretation of SAXS experiments by describing the SAXS profiles as population-weighted thermodynamic ensembles. I discuss recent developments in computational techniques used for conformational sampling, and how these techniques provide a basis for assessing the level of the flexibility within a sample. Although these approaches sacrifice atomic detail, the knowledge gained from ensemble analysis is often appropriate for developing hypotheses and guiding biochemical experiments. Examples of the use of SAXS and combined approaches with X-ray crystallography, NMR, and computational methods to characterize dynamic assemblies are presented.
机译:大分子构象的动力学对细胞网络的作用至关重要。溶液X射线散射研究与大分子X射线晶体学(MX)和核磁共振(NMR)结合,力求确定大分子的完整和准确状态,提供描述变构机制,超分子复合物和动态分子机器的新颖见解。这篇综述阐述了将这些技术与计算方法结合使用以有效地将解决方案散射数据与高分辨率结构结合起来的理论和实践概念,关注点和考虑因素。我讨论了从SAXS数据直接识别大分子柔性的主要方法,然后是对用于从高分辨率结构计算理论SAXS轮廓的方法的严重关注。 SAXS配置文件是对热力学集合的直接询问,诸如最小集成搜索(MES)之类的技术通过将SAXS配置文件描述为人口加权的热力学集合来增强SAXS实验的解释。我将讨论用于构象抽样的计算技术的最新发展,以及这些技术如何为评估样本中的灵活性水平提供基础。尽管这些方法牺牲了原子细节,但从集成分析中获得的知识通常适合于发展假设和指导生化实验。给出了使用SAXS以及结合X射线晶体学,NMR和计算方法来表征动态装配的方法的示例。

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