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Long Route or Shortcut? A Molecular Dynamics Study of Traffic of Thiocholine within the Active-Site Gorge of Acetylcholinesterase

机译:长途还是捷径?乙酰胆碱酯酶活性位点内硫代胆碱运输的分子动力学研究

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摘要

The principal role of acetylcholinesterase is termination of nerve impulse transmission at cholinergic synapses, by rapid hydrolysis of the neurotransmitter acetylcholine to acetate and choline. Its active site is buried at the bottom of a deep and narrow gorge, at the rim of which is found a second anionic site, the peripheral anionic site. The fact that the active site is so deeply buried has raised cogent questions as to how rapid traffic of substrate and products occurs in such a confined environment. Various theoretical and experimental approaches have been used to solve this problem. Here, multiple conventional molecular dynamics simulations have been performed to investigate the clearance of the product, thiocholine, from the active-site gorge of acetylcholinesterase. Our results indicate that thiocholine is released from the peripheral anionic site via random pathways, while three exit routes appear to be favored for its release from the active site, namely, along the axis of the active-site gorge, and through putative back- and side-doors. The back-door pathway is that via which thiocholine exits most frequently. Our results are in good agreement with kinetic and kinetic-crystallography studies. We propose the use of multiple molecular dynamics simulations as a fast yet accurate complementary tool in structural studies of enzymatic trafficking.
机译:乙酰胆碱酯酶的主要作用是通过神经递质乙酰胆碱快速水解为乙酸盐和胆碱,终止胆碱能突触处的神经冲动传递。它的活性位点埋在深而窄的峡谷底部,在其边缘发现了第二个阴离子位点,即外围阴离子位点。活性位点被如此深深地掩埋这一事实引起了令人信服的问题,即在如此狭窄的环境中基材和产品的快速运输是​​如何发生的。已经使用各种理论和实验方法来解决该问题。在这里,已经进行了多个常规的分子动力学模拟,以研究产物乙酰胆碱从乙酰胆碱酯酶的活性位点清除后的清除率。我们的结果表明,硫代胆碱通过随机途径从周围的阴离子位点释放,而三种出口途径似乎是从活性位点释放的首选途径,即沿活性位点峡谷的轴,并通过假定的反向和反向释放。侧门。后门途径是硫胆碱最常离开的途径。我们的结果与动力学和动力学晶体学研究非常吻合。我们建议在酶运输的结构研究中使用多种分子动力学模拟作为快速而准确的补充工具。

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