Faraldo-Gómez José D, Kutluay Esin, Jogini Vishwanath, Zhao Yanxiang, Heginbotham Lise, Roux Benoît
Institute for Molecular Pediatric Sciences and Department of Biochemistry and Molecular Biology, Gordon Center for Integrative Sciences, University of Chicago, 929 East 57th Street, Chicago, IL 60637, USA.
J Mol Biol. 2007 Jan 19;365(3):649-62. doi: 10.1016/j.jmb.2006.09.069. Epub 2006 Sep 29.
The mechanism of intracellular blockade of the KcsA potassium channel by tetrabutylammonium (TBA) is investigated through functional, structural and computational studies. Using planar-membrane electrophysiological recordings, we characterize the binding kinetics as well as the dependence on the transmembrane voltage and the concentration of the blocker. It is found that the apparent affinity of the complex is significantly greater than that of any of the eukaryotic K(+) channels studied previously, and that the off-rate increases with the applied transmembrane voltage. In addition, we report a crystal structure of the KcsA-TBA complex at 2.9 A resolution, with TBA bound inside the large hydrophobic cavity located at the center of the channel, consistent with the results of previous functional and structural studies. Of particular interest is the observation that the presence of TBA has a negligible effect on the channel structure and on the position of the potassium ions occupying the selectivity filter. Inspection of the electron density corresponding to TBA suggests that the ligand may adopt more than one conformation in the complex, though the moderate resolution of the data precludes a definitive interpretation on the basis of the crystallographic refinement methods alone. To provide a rationale for these observations, we carry out an extensive conformational sampling of an atomic model of TBA bound in the central cavity of KcsA, using the Hamiltonian replica-exchange molecular dynamics simulation method. Comparison of the simulated and experimental density maps indicates that the latter does reflect at least two distinct binding orientations of TBA. The simulations show also that the relative population of these binding modes is dependent on the ion configuration occupying the selectivity filter, thus providing a clue to the nature of the voltage-dependence of the binding kinetics.
通过功能、结构和计算研究,对四丁基铵(TBA)对KcsA钾通道的细胞内阻断机制进行了研究。利用平面膜片电生理记录,我们表征了结合动力学以及对跨膜电压和阻断剂浓度的依赖性。结果发现,该复合物的表观亲和力明显高于先前研究的任何真核K(+)通道,且解离速率随施加的跨膜电压增加而增加。此外,我们报告了分辨率为2.9 Å的KcsA-TBA复合物晶体结构,TBA结合在位于通道中心的大疏水腔内,这与先前的功能和结构研究结果一致。特别有趣的是,观察到TBA的存在对通道结构和占据选择性过滤器的钾离子位置的影响可忽略不计。对与TBA对应的电子密度的检查表明,配体在复合物中可能采取不止一种构象,尽管数据的中等分辨率排除了仅基于晶体学精修方法进行明确解释的可能性。为了解释这些观察结果,我们使用哈密顿复制交换分子动力学模拟方法,对结合在KcsA中心腔内的TBA原子模型进行了广泛的构象采样。模拟密度图与实验密度图的比较表明,后者确实反映了TBA至少两种不同的结合取向。模拟还表明,这些结合模式的相对丰度取决于占据选择性过滤器的离子构型,从而为结合动力学的电压依赖性本质提供了线索。