首页> 美国卫生研究院文献>Biophysical Journal >Modeling the structure of agitoxin in complex with the Shaker K+ channel: a computational approach based on experimental distance restraints extracted from thermodynamic mutant cycles.
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Modeling the structure of agitoxin in complex with the Shaker K+ channel: a computational approach based on experimental distance restraints extracted from thermodynamic mutant cycles.

机译:用Shaker K +通道模拟agitoxin的复杂结构:一种基于从热力学突变周期中提取的实验距离限制的计算方法。

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摘要

Computational methods are used to determine the three-dimensional structure of the Agitoxin (AgTx2)-Shaker complex. In a first stage, a large number of models of the complex are generated using high temperature molecular dynamics, accounting for side chain flexibility with distance restraints deduced from thermodynamic analysis of double mutant cycles. Four plausible binding mode candidates are found using this procedure. In a second stage, the quality and validity of the resulting complexes is assessed by examining the stability of the binding modes during molecular dynamics simulations with explicit water molecules and by calculating the binding free energies of mutant proteins using a continuum solvent representation and comparing with experimental data. The docking protocol and the continuum solvent model are validated using the Barstar-Barnase and the lysozyme-antibody D1.2 complexes, for which there are high-resolution structures as well as double mutant data. This combination of computational methods permits the identification of two possible structural models of AgTx2 in complex with the Shaker K+ channel, additional structural analysis providing further evidence in favor of a single model. In this final complex, the toxin is bound to the extracellular entrance of the channel along the pore axis via a combination of hydrophobic, hydrogen bonding, and electrostatic interactions. The magnitude of the buried solvent accessible area corresponding to the protein-protein contact is on the order of 1000 A with roughly similar contributions from each of the four subunits. Some side chains of the toxin adopt different conformation than in the experimental solution structure, indicating the importance of an induced-fit upon the formation of the complex. In particular, the side chain of Lys-27, a residue highly conserved among scorpion toxins, points deep into the pore with its positively charge amino group positioned at the outer binding site for K+. Specific site-directed mutagenesis experiments are suggested to verify and confirm the structure of the toxin-channel complex.
机译:使用计算方法确定Agitoxin(AgTx2)-Shaker复合物的三维结构。在第一阶段,使用高温分子动力学生成大量的复合物模型,考虑到侧链的柔性,并从双突变体循环的热力学分析得出距离限制。使用此过程找到了四个可能的绑定模式候选对象。在第二阶段,通过检查分子动力学模拟中显式水分子的结合模式的稳定性,并使用连续溶剂表示法计算突变蛋白的结合自由能,并与实验进行比较,来评估所得复合物的质量和有效性。数据。使用Barstar-Barnase和溶菌酶-抗体D1.2复合物验证了对接规程和连续溶剂模型,这些复合物具有高分辨率结构和双突变数据。这种计算方法的组合允许识别与Shaker K +通道复杂的两种AgTx2可能的结构模型,另外的结构分析提供了支持单个模型的进一步证据。在这种最终的复合物中,毒素通过疏水,氢键和静电相互作用的结合,沿着孔轴与通道的细胞外入口结合。对应于蛋白质-蛋白质接触的掩埋溶剂可及区域的大小约为1000 A,四个亚基的每一个的贡献大致相似。毒素的一些侧链采用与实验溶液结构不同的构象,表明诱导配合对复合物形成的重要性。尤其是,Lys-27的侧链是在蝎子毒素中高度保守的残基,其正电荷氨基位于K +的外部结合位点,指向孔深处。建议进行特定的定点诱变实验,以验证并确认毒素通道复合物的结构。

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