Keedy Daniel A, van den Bedem Henry, Sivak David A, Petsko Gregory A, Ringe Dagmar, Wilson Mark A, Fraser James S
Department of Bioengineering and Therapeutic Sciences and California Institute for Quantitative Biology, University of California, San Francisco, San Francisco, CA 94158, USA.
Joint Center for Structural Genomics, Stanford Synchrotron Radiation Lightsource, Stanford, CA 94025, USA.
Structure. 2014 Jun 10;22(6):899-910. doi: 10.1016/j.str.2014.04.016. Epub 2014 May 29.
Most macromolecular X-ray structures are determined from cryocooled crystals, but it is unclear whether cryocooling distorts functionally relevant flexibility. Here we compare independently acquired pairs of high-resolution data sets of a model Michaelis complex of dihydrofolate reductase (DHFR), collected by separate groups at both room and cryogenic temperatures. These data sets allow us to isolate the differences between experimental procedures and between temperatures. Our analyses of multiconformer models and time-averaged ensembles suggest that cryocooling suppresses and otherwise modifies side-chain and main-chain conformational heterogeneity, quenching dynamic contact networks. Despite some idiosyncratic differences, most changes from room temperature to cryogenic temperature are conserved and likely reflect temperature-dependent solvent remodeling. Both cryogenic data sets point to additional conformations not evident in the corresponding room temperature data sets, suggesting that cryocooling does not merely trap preexisting conformational heterogeneity. Our results demonstrate that crystal cryocooling consistently distorts the energy landscape of DHFR, a paragon for understanding functional protein dynamics.
大多数大分子的X射线结构是通过冷冻晶体确定的,但目前尚不清楚冷冻是否会扭曲功能相关的柔韧性。在这里,我们比较了二氢叶酸还原酶(DHFR)的米氏复合物模型独立获取的高分辨率数据集对,这些数据集由不同的研究小组分别在室温和低温下收集。这些数据集使我们能够分离实验过程之间以及温度之间的差异。我们对多构象体模型和时间平均系综的分析表明,冷冻会抑制并以其他方式改变侧链和主链的构象异质性,淬灭动态接触网络。尽管存在一些特殊差异,但从室温到低温的大多数变化是保守的,并且可能反映了温度依赖性的溶剂重塑。两个低温数据集都指向在相应室温数据集中不明显的其他构象,这表明冷冻不仅仅是捕获预先存在的构象异质性。我们的结果表明,晶体冷冻会持续扭曲DHFR的能量景观,DHFR是理解功能性蛋白质动力学的典范。