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Synchrotron radiation as a tool for macromolecular X-Ray Crystallography: A ⅩⅪ century perspective

机译:同步辐射作为大分子X射线晶体学的工具:Aⅹⅺ世纪的观点

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Intense X-rays available at powerful synchrotron beamlines provide macromolecular crystallographers with an incomparable tool for investigating biological phenomena on an atomic scale. The resulting insights into the mechanism's underlying biological processes have played an essential role and shaped biomedical sciences during the last 30 years, considered the "golden age" of structural biology. In this review, we analyze selected aspects of the impact of synchrotron radiation on structural biology. Synchrotron beamlines have been used to determine over 70% of all macromolecular structures deposited into the Protein Data Bank (PDB). These structures were deposited by over 13,000 different research groups. Interestingly, despite the impressive advances in synchrotron technologies, the median resolution of macromolecular structures determined using synchrotrons has remained constant throughout the last 30 years, at about 2 A. Similarly, the median times from the data collection to the deposition and release have not changed significantly. We describe challenges to reproducibility related to recording all relevant data and metadata during the synchrotron experiments, including diffraction images. Finally, we discuss some of the recent opinions suggesting a diminishing importance of X-ray crystallography due to impressive advances in Cryo-EM and theoretical modeling. We believe that synchrotrons of the future will increasingly evolve towards a life science center model, where X-ray crystallography, Cryo-EM, other experimental and computational resources, and knowledge are encompassed within a versatile research facility. The recent response of crystallographers to the COVID-19 pandemic suggests that X-ray crystallography conducted at synchrotron beamlines will continue to play an essential role in structural biology and drug discovery for years to come.
机译:强大的同步辐射束线的强烈X射线提供高分子晶体计数器,具有对原子规模上的生物现象进行研究的无与伦比的工具。在过去30年中,导致机制的潜在生物过程的洞察力在过去30年中发挥了重要作用和形状的生物医学科学,被认为是结构生物学的“黄金时代”。在本综述中,我们分析了同步辐射对结构生物学的影响的选定方面。 Synchrotron Bearlines已用于确定沉积在蛋白质数据库(PDB)中的所有大分子结构的70%以上。这些结构被超过13,000个不同的研究组沉积。有趣的是,尽管Synchrotron技术的令人印象深刻,但在过去30年中,使用同步调节确定的大分子结构的中位数仍然是持续的,在大约2 A.同样地,从数据收集到沉积和释放的中位数时期没有改变显着地。我们描述了与在同步调节期间记录所有相关数据和元数据相关的重复性的挑战,包括衍射图像。最后,我们讨论了最近的一些意见,这表明由于Cryo-EM和理论建模的令人印象深刻的进步,X射线晶体学的重要性减少。我们认为未来的同步将越来越发展地发展到生命科学中心模式,其中X射线晶体学,Cryo-EM,其他实验和计算资源以及知识包括在多功能的研究设施中。最近的晶体计到Covid-19大流行的反应表明,在同步辐射线线上进行的X射线晶体学会将在未来几年中继续在结构生物学和药物发现中发挥重要作用。

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