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Asymmetric Ligand Binding Facilitates Conformational Transitions in Pentameric Ligand-Gated Ion Channels

机译:不对称配体绑定有助于在五聚体配体门通道中的构象过渡

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摘要

The anesthetic propofol inhibits the currents of the homo-pentameric ligand-gated ion channel GLIC, yet the crystal structure of GLIC with five propofol molecules bound symmetrically shows an open-channel conformation. To address this dilemma and determine if symmetry of propofol binding sites affects the channel conformational transition, we performed a total of 1.5 As of molecular dynamics simulations for different GLIC systems with propofol occupancies of 0, 1, 2, 3, and 5. GLIC without propofol binding or with five propofol molecules bound symmetrically showed similar channel conformation and hydration status over multiple replicates of 100-ns simulations. In contrast, asymmetric binding to one, two or three equivalent sites in different subunits accelerated the channel dehydration, which was accompanied by increased conformational heterogeneity of the pore and shifted the lateral and radial tilting angles of the pore-lining TM2 towards a closed-channel conformation. The results differentiate two groups of systems based on the propofol binding symmetry. The difference between symmetric and asymmetric groups is correlated with the variance in the propofol-binding cavity adjacent to the hydrophobic gate and the force imposed by the bound propofol. Asymmetrically bound propofol produced greater variance in the cavity size that could further elevate the conformation heterogeneity. The force trajectory generated by propofol in each subunit over the course of a simulation exhibits an ellipsoidal shape, which has the larger component tangential to the pore. Asymmetric propofol binding creates an unbalanced force that expedites the channel conformation transitions. The findings from this study not only suggest that asymmetric binding underlies the propofol functional inhibition of GLIC, but also advocate for the role of symmetry breaking in facilitating channel conformational transitions.
机译:麻醉中的异丙酚抑制了均五聚体配体门控离子通道GLIC的电流,但是具有五个对称结合的异丙酚分子的GLIC的晶体结构显示出一个开放通道构象。为了解决这个难题并确定丙泊酚结合位点的对称性是否影响通道构象转变,我们对丙泊酚占用率为0、1、2、3和5的不同GLIC系统进行了总计1.5 As的分子动力学模拟。在100 ns模拟的多次重复中,丙泊酚的结合或与五个对称结合的丙泊酚分子的通道构象和水合状态相似。相反,与不同亚基中的一个,两个或三个等价位点的不对称结合加速了通道脱水,这伴随着孔的构象异质性增加,并使孔衬TM2的横向和径向倾斜角移向了封闭通道构象。结果基于异丙酚结合对称性区分了两组系统。对称基团和不对称基团之间的差异与邻近疏水门的异丙酚结合腔的变化以及结合的异丙酚所施加的力有关。不对称结合的异丙酚在腔体尺寸上产生更大的变化,这可能进一步提高构象异质性。在模拟过程中,丙泊酚在每个亚基中产生的作用力轨迹呈现椭圆形,该椭圆形具有与孔隙相切的较大分量。异丙酚的不对称结合会产生不平衡的力,从而加速通道构象转变。这项研究的发现不仅表明不对称结合是丙泊酚对GLIC功能抑制的基础,而且还提倡对称性破坏在促进通道构象转变中的作用。

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