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首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Biomolecular cryocrystallography: Structural changes during flash-cooling
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Biomolecular cryocrystallography: Structural changes during flash-cooling

机译:生物分子冷冻晶体学:急冷过程中的结构变化

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摘要

To minimize radiation damage, crystal structures of biological macromolecules are usually determined after rapid cooling to cryogenic temperatures, some 150-200 K below the normal physiological range, The biological relevance of such structures relies on the assumption that flash-cooling is sufficiently fast to kinetically trap the macromolecule and associated solvent in a room-temperature equilibrium state. To test this assumption, we use a two-state model to calculate the structural changes expected during rapid cooling of a typical protein crystal. The analysis indicates that many degrees of freedom in a flash-cooled protein crystal are quenched at temperatures near 200 K, where local conformational and association equilibria may be strongly shifted toward low-enthalpy states. Such cryoartifacts should be most important for strongly solvent-coupled processes, such as hydration of nonpolar cavities and surface regions, conformational switching of solvent-exposed side chains, and weak ligand binding. The dynamic quenching that emerges from the model considered here can also rationalize the glass transition associated with the atomic fluctuations in the protein.
机译:为了最大程度地降低辐射损害,通常在迅速冷却至低温(低于正常生理范围约150-200 K)后,才确定生物大分子的晶体结构。此类结构的生物学相关性基于以下假设:闪速冷却足以快速地动力学在室温平衡状态下捕获大分子和相关溶剂。为了验证这一假设,我们使用了一种二态模型来计算典型蛋白质晶体快速冷却期间预期的结构变化。分析表明,在200 K附近的温度下,快速冷却的蛋白晶体中的许多自由度被淬灭,在该温度下,局部构象和缔合平衡可能会强烈地转变为低焓态。对于高度溶剂偶联的过程,例如非极性空穴和表面区域的水合,暴露于溶剂的侧链的构象转换以及弱的配体结合,这种低温伪像对溶剂耦合最重要。从此处考虑的模型中得出的动态猝灭也可以使与蛋白质原子波动相关的玻璃化转变合理化。

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