Dhakshnamoorthy Balasundaresan, Ziervogel Brigitte K, Blachowicz Lydia, Roux Benoît
Department of Biochemistry and Molecular Biology, Gordon Center for Integrative Science, University of Chicago Chicago, IL 60637, USA.
J Am Chem Soc. 2013 Nov 6;135(44):16561-8. doi: 10.1021/ja407783a.
OmpF, a multiionic porin from Escherichia coli, is a useful protypical model system for addressing general questions about electrostatic interactions in the confinement of an aqueous molecular pore. Here, favorable anion locations in the OmpF pore were mapped by anomalous X-ray scattering of Br(–) ions from four different crystal structures and compared with Mg(2+) sites and Rb(+) sites from a previous anomalous diffraction study to provide a complete picture of cation and anion transfer paths along the OmpF channel. By comparing structures with various crystallization conditions, we find that anions bind in discrete clusters along the entire length of the OmpF pore, whereas cations find conserved binding sites with the extracellular, surface-exposed loops. Results from molecular dynamics simulations are consistent with the experimental data and help highlight the critical residues that preferentially contact either cations or anions during permeation. Analysis of these results provides new insights into the molecular mechanisms that determine ion selectivity in OmpF porin.
外膜孔蛋白F(OmpF)是一种来自大肠杆菌的多离子孔蛋白,是一个有用的典型模型系统,可用于解决有关水分子孔限制内静电相互作用的一般问题。在这里,通过对来自四种不同晶体结构的Br(–)离子进行反常X射线散射,绘制了OmpF孔中有利的阴离子位置,并与先前反常衍射研究中的Mg(2+)位点和Rb(+)位点进行比较,以提供沿OmpF通道的阳离子和阴离子转移路径的完整图景。通过比较不同结晶条件下的结构,我们发现阴离子沿OmpF孔的全长结合成离散簇,而阳离子在细胞外表面暴露的环上找到保守的结合位点。分子动力学模拟结果与实验数据一致,并有助于突出在渗透过程中优先与阳离子或阴离子接触的关键残基。对这些结果的分析为确定OmpF孔蛋白中离子选择性的分子机制提供了新的见解。