Department of Physics, Faculty of Science and Technology, Keio University, 3-14-1 Hiyoshi, Kanagawa 223-8522, Japan.
Biophys Chem. 2011 Dec;159(2-3):237-46. doi: 10.1016/j.bpc.2011.07.001. Epub 2011 Jul 13.
The structures of proteins in crystals are fixed by molecular interactions with neighboring molecules, except in non-contacting flexible regions. Thus, it is difficult to imagine what conformational changes occur in solution. However, if molecular interactions can be changed by manipulating molecular packing in crystals, it may be possible to visualize conformational responses of proteins at atomic resolution by diffraction experiments. For this purpose, it is suitable to control the molecular packing in protein crystals by changing the volume of solvent channels through variation of the environmental relative humidity. Here, we studied conformational responses of hen egg white lysozyme (HEWL) in the tetragonal crystal by X-ray diffraction experiments using a humidity-control apparatus, which provided air flow of 20-98%rh at 298 K. First, we monitored the lattice parameters and crystalline order during dehydration and rehydration of HEWL crystal between 61 and 94%rh at 300 K. Then two crystal structures at a resolution of 2.1 Å using diffraction data obtained at 84.2 and 71.9%rh were determined to discuss the conformational responses of HEWL against the external perturbation induced by changes in molecular packing. The structure at 71.9%rh displayed a closure movement that was likely induced by the molecular contacts formed during dehydration and could be approximated by ten low-frequency normal modes for the crystal structure obtained at 84.2%rh. In addition, we observed reorganization of hydration structures at the molecular interfaces between symmetry neighbors. These findings suggest that humidity-controlled X-ray crystallography is an effective tool to investigate the responses of inherent intramolecular motions of proteins to external perturbations.
晶体中蛋白质的结构通过与相邻分子的分子相互作用固定,除了非接触式柔性区域。因此,很难想象溶液中会发生什么样的构象变化。然而,如果可以通过操纵晶体中的分子堆积来改变分子相互作用,那么通过衍射实验观察蛋白质的构象响应可能成为可能。为此,通过改变环境相对湿度来改变溶剂通道的体积来控制蛋白质晶体中的分子堆积是合适的。在这里,我们使用湿度控制装置通过 X 射线衍射实验研究了鸡卵清溶菌酶(HEWL)在四方晶体中的构象响应,该装置在 298 K 下提供 20-98%rh 的气流。首先,我们监测了 HEWL 晶体在 300 K 下在 61%至 94%rh 之间脱水和再水合过程中的晶格参数和晶体有序性。然后,我们使用在 84.2%和 71.9%rh 下获得的衍射数据确定了两个分辨率为 2.1 Å 的晶体结构,以讨论 HEWL 对由分子堆积变化引起的外部干扰的构象响应。在 71.9%rh 下的结构显示出关闭运动,这可能是由脱水过程中形成的分子接触引起的,并且可以通过在 84.2%rh 下获得的晶体结构的十个低频正常模式来近似。此外,我们观察到在对称相邻分子之间的分子界面处的水合结构的重新组织。这些发现表明,湿度控制 X 射线晶体学是研究蛋白质固有分子内运动对外部干扰的响应的有效工具。