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Advancements in macromolecular crystallography: from past to present

机译:大分子晶体学的进步:从过去到现在

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Protein Crystallography or Macromolecular Crystallography (MX) started as a new discipline of science with the pioneering work on the determination of the protein crystal structures by John Kendrew in 1958 and Max Perutz in 1960. The incredible achievements in MX are attributed to the development of advanced tools, methodologies, and automation in every aspect of the structure determination process, which have reduced the time required for solving protein structures from years to a few days, as evident from the tens of thousands of crystal structures of macromolecules available in PDB. The advent of brilliant synchrotron sources, fast detectors, and novel sample delivery methods has shifted the paradigm from static structures to understanding the dynamic picture of macromolecules; further propelled by X-ray Free Electron Lasers (XFELs) that explore the femtosecond regime. The revival of the Laue diffraction has also enabled the understanding of macromolecules through time-resolved crystallography. In this review, we present some of the astonishing method-related and technological advancements that have contributed to the progress of MX. Even with the rapid evolution of several methods for structure determination, the developments in MX will keep this technique relevant and it will continue to play a pivotal role in gaining unprecedented atomic-level details as well as revealing the dynamics of biological macromolecules. With many exciting developments awaiting in the upcoming years, MX has the potential to contribute significantly to the growth of modern biology by unraveling the mechanisms of complex biological processes as well as impacting the area of drug designing.
机译:蛋白质晶体学或大分子晶体学(MX)最初是一门新的科学学科,当时约翰·肯德鲁(John Kendrew)于1958年在确定蛋白质晶体结构方面的开创性工作,1960年和麦克斯·佩鲁茨(Max Perutz)和1960年的麦克斯·佩鲁茨(Max Perutz)。在结构确定过程的各个方面的工具,方法和自动化,从数以万计的大分子晶体结构中可以明显看出,这将蛋白质结构从数年降低到几天,从而将蛋白质结构的时间缩短到了几天。辉煌的同步源,快速检测器和新型样品输送方法的出现使范式从静态结构转变为理解大分子的动态图片。由探索飞秒制度的X射线无电子激光器(XFELS)进一步推动。 LAUE衍射的复兴也使人们能够通过时间分辨的晶体学对大分子的理解。在这篇综述中,我们介绍了一些与MX进步相关的令人惊讶的方法相关和技术进步。即使有几种用于确定结构的方法的快速发展,MX中的发展也将保持这种技术相关,并且它将继续在获得前所未有的原子层细节以及揭示生物学上的大分子的动力学方面发挥关键作用。在接下来的几年中,随着许多激动人心的发展等待,MX有可能通过揭示复杂生物学过程的机制以及影响药物设计领域来为现代生物学的增长做出重大贡献。

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