Berkeley Center for Structural Biology, Molecular Biophysics and Integrated Bioimaging Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720.
Department of Physiology, Johns Hopkins School of Medicine, Baltimore, Maryland 21205.
J Biol Chem. 2019 Sep 6;294(36):13327-13335. doi: 10.1074/jbc.RA119.009239. Epub 2019 Jul 18.
Regulated ion diffusion across biological membranes is vital for cell function. In a nanoscale ion channel, the active role of discrete water molecules in modulating hydrodynamic behaviors of individual ions is poorly understood because of the technical challenge of tracking water molecules through the channel. Here we report the results of a hydroxyl radical footprinting analysis of the zinc-selective channel ZIPB from the Gram-negative bacterium, Irradiating ZIPB by microsecond X-ray pulses activated water molecules to form covalent hydroxyl radical adducts at nearby residues, which were identified by bottom-up proteomics to detect residues that interact either with zinc or water in response to zinc binding. We found a series of residues exhibiting reciprocal changes in water accessibility attributed to alternating zinc and water binding. Mapping these residues to the previously reported crystal structure of ZIPB, we identified a water-reactive pathway that superimposed on a zinc translocation pathway consisting of two binuclear metal centers and an interim zinc-binding site. The cotranslocation of zinc and water suggested that pore-lining residues undergo a mode switch between zinc coordination and water binding to confer zinc mobility. The unprecedented details of water-mediated zinc transport identified here highlight an essential role of solvated waters in driving zinc coordination dynamics and transmembrane crossing.
调控生物膜中离子的扩散对于细胞功能至关重要。在纳米尺度的离子通道中,离散水分子在调节单个离子水动力行为方面的主动作用由于技术上难以跟踪水分子通过通道而尚未被充分理解。在此,我们报告了对革兰氏阴性菌 Irradiating ZIPB 进行羟基自由基足迹分析的结果,用微秒 X 射线脉冲辐照 ZIPB 可激活水分子,在附近的残基上形成共价羟基自由基加合物,通过自下而上的蛋白质组学检测到与锌或水相互作用的残基,以响应锌结合。我们发现了一系列残基,它们的水可及性呈相互交替变化,归因于锌和水的交替结合。将这些残基映射到先前报道的 ZIPB 晶体结构上,我们确定了一个水反应途径,该途径与由两个双核金属中心和一个中间锌结合位点组成的锌转运途径重叠。锌和水的共转运表明,孔衬里残基在锌配位和水结合之间发生模式转换,以赋予锌的迁移性。这里确定的水介导的锌转运的空前详细信息突出了溶剂化水在驱动锌配位动力学和跨膜转运中的重要作用。