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S1P 受体结合和激活的分子机制。

Molecular Mechanism of S1P Binding and Activation of the S1P Receptor.

出版信息

J Chem Inf Model. 2019 Oct 28;59(10):4402-4412. doi: 10.1021/acs.jcim.9b00642. Epub 2019 Oct 15.

DOI:10.1021/acs.jcim.9b00642
PMID:31589433
Abstract

Sphingosine-1-phosphate (S1P) is a lipidic mediator in mammals that functions either as a second messenger or as a ligand. In the latter case, it is transported by its HDL-associated apoM carrier and circulated in blood where it binds to specific S1P receptors on cell membranes and induces downstream reactions. Although S1P signaling pathways are essential for many biological processes, they are poorly understood at the molecular level. Here, the solved crystal structures of the S1P receptor were used to evaluate molecular dynamics (MD) simulations to generate greater detailed molecular insights into the mechanism of S1P signaling. The MD simulations provided observations at the coarse-grained and atomic levels indicating that S1P may access the receptor binding pocket directly from solvents. Lifting of the bulky N-terminal cap region of the receptor precedes initial S1P binding. Glu121 guides S1P penetration, and together with Arg292 is responsible for the stabilization of S1P in the binding pocket, which is consistent with experimental predictions. The complete binding of S1P is followed by receptor activation, wherein Trp269 moves toward the transmembrane helix (TM) 7, resulting in the formation of an enhanced hydrogen bond network in the lower region of TM7. The distance between TM3 and TM6 is subsequently increased, resulting in the opening of the intracellular binding pocket that enables G protein binding. Further analysis of the force distribution network in the receptor yielded a detailed molecular understanding of the signal transmission network that is activated upon agonist binding.

摘要

鞘氨醇-1-磷酸(S1P)是哺乳动物中的一种脂质介质,既可以作为第二信使,也可以作为配体发挥作用。在后一种情况下,它由其与 HDL 相关的载脂蛋白 M(apoM)载体运输,并在血液中循环,在血液中与细胞膜上的特定 S1P 受体结合,并诱导下游反应。尽管 S1P 信号通路对许多生物过程至关重要,但它们在分子水平上的了解甚少。在这里,使用已解决的 S1P 受体晶体结构来评估分子动力学(MD)模拟,以更详细地了解 S1P 信号转导的机制。MD 模拟提供了在粗粒度和原子水平上的观察结果,表明 S1P 可能直接从溶剂进入受体结合口袋。受体的庞大 N 端帽区域的提升先于初始 S1P 结合。Glu121 引导 S1P 穿透,与 Arg292 一起负责将 S1P 稳定在结合口袋中,这与实验预测一致。S1P 的完全结合随后是受体的激活,其中 Trp269 向跨膜螺旋(TM)7 移动,导致 TM7 下部区域形成增强的氢键网络。随后,TM3 和 TM6 之间的距离增加,导致细胞内结合口袋打开,从而允许 G 蛋白结合。进一步分析受体中的力分布网络,获得了关于激动剂结合后激活的信号转导网络的详细分子理解。

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