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From the Cover: Accessing protein conformational ensembles using room-temperature X-ray crystallography

机译:从封面开始:使用室温X射线晶体学研究蛋白质构象集合

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摘要

Modern protein crystal structures are based nearly exclusively on X-ray data collected at cryogenic temperatures (generally 100 K). The cooling process is thought to introduce little bias in the functional interpretation of structural results, because cryogenic temperatures minimally perturb the overall protein backbone fold. In contrast, here we show that flash cooling biases previously hidden structural ensembles in protein crystals. By analyzing available data for 30 different proteins using new computational tools for electron-density sampling, model refinement, and molecular packing analysis, we found that crystal cryocooling remodels the conformational distributions of more than 35% of side chains and eliminates packing defects necessary for functional motions. In the signaling switch protein, H-Ras, an allosteric network consistent with fluctuations detected in solution by NMR was uncovered in the room-temperature, but not the cryogenic, electron-density maps. These results expose a bias in structural databases toward smaller, overpacked, and unrealistically unique models. Monitoring room-temperature conformational ensembles by X-ray crystallography can reveal motions crucial for catalysis, ligand binding, and allosteric regulation.
机译:现代蛋白质晶体结构几乎完全基于在低温(通常为100 K)下收集的X射线数据。认为冷却过程在结构结果的功能解释中几乎没有引入偏差,因为低温温度对整体蛋白质骨架折叠的影响最小。相比之下,我们在这里显示出闪蒸冷却偏向于蛋白质晶体中先前隐藏的结构整体。通过使用用于电子密度采样,模型精炼和分子堆积分析的新计算工具分析30种不同蛋白质的可用数据,我们发现晶体低温冷却重塑了35%以上侧链的构象分布,并消除了功能性必需的堆积缺陷动作。室温下未发现信号转导蛋白H-Ras的变构网络,该变构网络与溶液中通过NMR检测到的波动一致,但未发现低温电子密度图。这些结果暴露了结构数据库中偏向更小,包装过多和不切实际的独特模型的偏见。通过X射线晶体学监测室温构象集合可以揭示对于催化,配体结合和变构调节至关重要的运动。

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