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Conformational Dynamics of the Ligand-Binding Domain of Inward Rectifier K Channels as Revealed by Molecular Dynamics Simulations: Toward an Understanding of Kir Channel Gating

机译:分子动力学模拟揭示的内向整流子K通道配体结合域的构象动力学:对Kir通道门控的理解

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摘要

Inward rectifier (Kir) potassium channels are characterized by two transmembrane helices per subunit, plus an intracellular C-terminal domain that controls channel gating in response to changes in concentration of various ligands. Based on the crystal structure of the tetrameric C-terminal domain of Kir3.1, it is possible to build a homology model of the ATP-binding C-terminal domain of Kir6.2. Molecular dynamics simulations have been used to probe the dynamics of Kir C-terminal domains and to explore the relationship between their dynamics and possible mechanisms of channel gating. Multiple simulations, each of 10 ns duration, have been performed for Kir3.1 (crystal structure) and Kir6.2 (homology model), in both their monomeric and tetrameric forms. The Kir6.2 simulations were performed with and without bound ATP. The results of the simulations reveal comparable conformational stability for the crystal structure and the homology model. There is some decrease in conformational flexibility when comparing the monomers with the tetramers, corresponding mainly to the subunit interfaces in the tetramer. The β-phosphate of ATP interacts with the side chain of K185 in the Kir6.2 model and simulations. The flexibility of the Kir6.2 tetramer is not changed greatly by the presence of bound ATP, other than in two loop regions. Principal components analysis of the simulated dynamics suggests loss of symmetry in both the Kir3.1 and Kir6.2 tetramers, consistent with “dimer-of-dimers” motion of subunits in C-terminal domains of the corresponding Kir channels. This is suggestive of a gating model in which a transition between exact tetrameric symmetry and dimer-of-dimers symmetry is associated with a change in transmembrane helix packing coupled to gating of the channel. Dimer-of-dimers motion of the C-terminal domain tetramer is also supported by coarse-grained (anisotropic network model) calculations. It is of interest that loss of exact rotational symmetry has also been suggested to play a role in gating in the bacterial Kir homolog, KirBac1.1, and in the nicotinic acetylcholine receptor channel.
机译:内向整流器(Kir)钾离子通道的特征是每个亚基两个跨膜螺旋,以及一个细胞内C末端结构域,该结构域响应各种配体浓度的变化控制通道门控。基于Kir3.1的四聚体C末端结构域的晶体结构,可以建立Kir6.2的ATP结合C末端结构域的同源性模型。分子动力学模拟已用于探测Kir C末端域的动力学,并探讨其动力学与通道门控可能机制之间的关系。已针对Kir3.1(晶体结构)和Kir6.2(同源性模型)以单体和四聚体形式进行了多次仿真,每次持续10 ns。在有和没有结合ATP的条件下进行Kir6.2模拟。仿真结果表明,该晶体结构和同源模型具有相当的构象稳定性。当将单体与四聚体进行比较时,构象柔韧性有所降低,主要对应于四聚体中的亚基界面。在Kir6.2模型和仿真中,ATP的β-磷酸与K185的侧链相互作用。除了两个环区域外,结合ATP的存在不会大大改变Kir6.2四聚体的柔韧性。对模拟动力学的主成分分析表明,Kir3.1和Kir6.2四聚体均失去对称性,这与相应Kir通道C端结构域中亚基的“二聚体二聚体”运动一致。这暗示了门控模型,其中精确的四聚体对称性与二聚体二聚体对称性之间的过渡与与通道的门控偶联的跨膜螺旋堆积的变化相关。粗粒(各向异性网络模型)计算也支持C端域四聚体的二聚体运动。令人感兴趣的是,也已经提出精确旋转对称性的丧失在细菌Kir同源物KirBac1.1和烟碱乙酰胆碱受体通道的门控中起作用。

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