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X射线辐射诱导蛋白质中的协同原子运动。

X-ray-radiation-induced cooperative atomic movements in protein.

作者信息

Petrova Tatiana, Lunin Vladimir Y, Ginell Stephan, Hazemann Isabelle, Lazarski Krzysztof, Mitschler André, Podjarny Alberto, Joachimiak Andrzej

机构信息

Structural Biology Center, Biosciences Division, Argonne National Laboratory, Argonne, IL 60439, USA.

出版信息

J Mol Biol. 2009 Apr 17;387(5):1092-105. doi: 10.1016/j.jmb.2009.02.030. Epub 2009 Feb 20.

Abstract

X-rays interact with biological matter and cause damage. Proteins and other macromolecules are damaged primarily by ionizing X-ray photons and secondarily by reactive radiolytic chemical species. In particular, protein molecules are damaged during X-ray diffraction experiments with protein crystals, which is, in many cases, a serious hindrance to structure solution. The local X-ray-induced structural changes of the protein molecule have been studied using a number of model systems. However, it is still not well understood whether these local chemical changes lead to global structural changes in protein and what the mechanism is. We present experimental evidence at atomic resolution indicating the movement of large parts of the protein globule together with bound water molecules in the early stages of radiation damage to the protein crystal. The data were obtained from a crystal cryocooled to approximately 100 K and diffracting to 1 A. The movement of the protein structural elements occurs simultaneously with the decarboxylation of several glutamate and aspartate residues that mediate contacts between moving protein structural elements and with the rearrangement of the water network. The analysis of the anisotropy of atomic displacement parameters reveals that the observed atomic movements occur at different rates in different unit cells of the crystal. Thus, the examination of the cooperative atomic movement enables us to better understand how radiation-induced local chemical and structural changes of the protein molecule eventually lead to disorder in protein crystals.

摘要

X射线与生物物质相互作用并造成损伤。蛋白质和其他大分子主要受到X射线电离光子的损伤,其次受到放射性分解产生的活性化学物质的损伤。特别是,在蛋白质晶体的X射线衍射实验过程中蛋白质分子会受到损伤,这在许多情况下严重阻碍了结构解析。人们已经使用多种模型系统研究了蛋白质分子局部的X射线诱导结构变化。然而,这些局部化学变化是否会导致蛋白质的整体结构变化以及其机制是什么,目前仍未完全清楚。我们提供了原子分辨率的实验证据,表明在蛋白质晶体辐射损伤的早期阶段,蛋白质球状体的大部分区域与结合的水分子一起发生了移动。这些数据来自于冷却至约100K并能衍射至1埃分辨率的晶体。蛋白质结构元件的移动与几个谷氨酸和天冬氨酸残基的脱羧反应同时发生,这些残基介导了移动的蛋白质结构元件之间的接触,并且与水网络的重排同时发生。对原子位移参数各向异性的分析表明,在晶体的不同晶胞中,观察到的原子移动速率不同。因此,对协同原子运动的研究使我们能够更好地理解蛋白质分子的辐射诱导局部化学和结构变化最终如何导致蛋白质晶体的无序化。

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