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Computational Analysis of the Soluble Form of the Intracellular Chloride Ion Channel Protein CLIC1

机译:细胞内氯离子通道蛋白CLIC1的可溶性形式的计算分析

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The chloride intracellular channel (CLIC) family of proteins has the remarkable property of maintaining both a soluble form and an integral membrane form acting as an ion channel. The soluble form is structurally related to the glutathione-S-transferase family, and CLIC can covalently bind glutathione via an active site cysteine. We report approximately 0.6 μs of molecular dynamics simulations, encompassing the three possible ligand-bound states of CLIC1, using the structure of GSH-bound human CLIC1. Noncovalently bound GSH was rapidly released from the protein, whereas the covalently ligand-bound protein remained close to the starting structure over 0.25 μs of simulation. In the unliganded state, conformational changes in the vicinity of the glutathione-binding site resulted in reduced reactivity of the active site thiol. Elastic network analysis indicated that the changes in the unliganded state are intrinsic to the protein architecture and likely represent functional transitions. Overall, our results are consistent with a model of CLIC function in which covalent binding of glutathione does not occur spontaneously but requires interaction with another protein to stabilise the GSH binding site and/or transfer of the ligand. The results do not indicate how CLIC1 undergoes a radical conformational change to form a transmembrane chloride channel but further elucidate the mechanism by which CLICs are redox controlled.
机译:蛋白质的氯离子细胞内通道(CLIC)家族具有显着的特性,既可以保持可溶性形式又可以充当离子通道的完整膜形式。可溶形式在结构上与谷胱甘肽-S-转移酶家族有关,并且CLIC可以经由活性位点半胱氨酸共价结合谷胱甘肽。我们报告了大约0.6μs的分子动力学模拟,包括使用GSH结合的人类CLIC1的结构的CLIC1的三个可能的配体结合状态。非共价键结合的GSH从蛋白质中快速释放出来,而共价键配体结合的蛋白质在0.25μs的模拟时间内保持接近起始结构。在未结合状态下,谷胱甘肽结合位点附近的构象变化导致活性位点硫醇的反应性降低。弹性网络分析表明,未配体状态的变化是蛋白质结构所固有的,可能代表了功能性转变。总体而言,我们的结果与CLIC功能模型一致,在该模型中,谷胱甘肽的共价结合不是自发发生的,而是需要与另一种蛋白质相互作用才能稳定GSH结合位点和/或配体的转移。结果没有表明CLIC1如何经历自由基构象变化以形成跨膜氯化物通道,而是进一步阐明了CLIC受到氧化还原控制的机制。

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