Yi Hong, Cao Zhijian, Yin Shijin, Dai Chao, Wu Yingliang, Li Wenxin
State Key Laboratory of Virology, College of Life Sciences, Wuhan University, Wuhan, Hubei 430072, People's Republic of China.
J Proteome Res. 2007 Feb;6(2):611-20. doi: 10.1021/pr060368g.
Potassium channels show a huge variability in the affinity when recognizing enormous bioactive peptides, and the elucidation of their recognition mechanism remains a great challenge due to an undetermined peptide-channel complex structure. Here, we employed combined computation methods to study the specific binding of BeKm-1 peptide to the hERG potassium channel, which is an essential determinant of the long-QT syndrome. By the use of a segment-assembly homology modeling method, the closed-state hERG structure containing unusual longer S5P linker was successfully constructed. It has a "petunia" shape, while four "petals" of symmetrically distributed S5P segments always decentralize. Starting from the hERG and BeKm-1 structures, a considerably reasonable BeKm-1-hERG complex structure was then screened out and identified by protein-protein docking, molecular dynamics (MD) simulations, and calculation of relative binding free energies. The validity of this predicted complex was further assessed by computational alanine-scanning, with the results correlating reasonably well with experimental data. In the novel complex structure, four considerably flexible S5P linkers are far from the BeKm-1 peptide. The BeKm-1 mainly uses its helical region to associate the channel outer vestibule, except for the S5P linker region; however, structural analysis further implies this neutral pore region with wiggling S5P linker is highly beneficial to the binding of BeKm-1 with lower positive charges. The most critical Lys18 of BeKm-1 plugs its side chain into the channel selectivity filter, while the secondarily important Arg20 forms three hydrogen bonds with spatially neighboring residues in the hERG channel. Different from the classical peptide-K+ channel interaction mainly induced by electrostatic interaction, a synergetic effect of the electrostatic and van der Waals interactions was found to mediate the molecular recognition between BeKm-1 and the hERG channel. And this specific binding process is revealed to be a dynamic change of reduction of binding free energy and conformational rearrangement mainly in the interface of both BeKm-1 and the hERG channel. All these structural and energy features yield deep insights on the high selective binding mechanism of hERG-specific peptides, present a diversity of peptide-K+ channel interactions, and also provide important clues to further study structure-function relationships of the hERG channel.
钾通道在识别大量生物活性肽时表现出巨大的亲和力变异性,由于肽 - 通道复合物结构尚未确定,阐明其识别机制仍然是一个巨大的挑战。在此,我们采用联合计算方法研究BeKm - 1肽与hERG钾通道的特异性结合,hERG钾通道是长QT综合征的一个重要决定因素。通过使用片段组装同源建模方法,成功构建了包含异常长的S5P连接子的hERG关闭状态结构。它呈“矮牵牛花”形状,而对称分布的S5P片段的四个“花瓣”总是分散开。从hERG和BeKm - 1结构出发,通过蛋白质 - 蛋白质对接、分子动力学(MD)模拟以及相对结合自由能的计算,筛选并确定了一个相当合理的BeKm - 1 - hERG复合物结构。通过计算丙氨酸扫描进一步评估了这种预测复合物的有效性,结果与实验数据具有相当好的相关性。在新的复合物结构中,四个相当灵活的S5P连接子远离BeKm - 1肽。除了S5P连接子区域外,BeKm - 1主要利用其螺旋区域与通道外前庭结合;然而,结构分析进一步表明,这个带有摆动S5P连接子的中性孔区域对带有较低正电荷的BeKm - 1的结合非常有利。BeKm - 1最关键的Lys18将其侧链插入通道选择性过滤器,而次要重要的Arg20与hERG通道中空间相邻的残基形成三个氢键。与主要由静电相互作用诱导的经典肽 - K⁺通道相互作用不同,发现静电相互作用和范德华相互作用的协同效应介导了BeKm - 1与hERG通道之间的分子识别。并且这种特异性结合过程被揭示为主要在BeKm - 1和hERG通道界面处结合自由能降低和构象重排的动态变化。所有这些结构和能量特征为hERG特异性肽的高选择性结合机制提供了深入见解,呈现了肽 - K⁺通道相互作用的多样性,也为进一步研究hERG通道的结构 - 功能关系提供了重要线索。