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基于结构的模拟揭示了G蛋白偶联受体激活的协同动力学。

Structure-based simulations reveal concerted dynamics of GPCR activation.

作者信息

Leioatts Nicholas, Suresh Pooja, Romo Tod D, Grossfield Alan

机构信息

Department of Biochemistry and Biophysics, University of Rochester Medical Center, Rochester, New York, 14642.

出版信息

Proteins. 2014 Oct;82(10):2538-51. doi: 10.1002/prot.24617. Epub 2014 Jun 9.

Abstract

G protein-coupled receptors (GPCRs) are a vital class of proteins that transduce biological signals across the cell membrane. However, their allosteric activation mechanism is not fully understood; crystal structures of active and inactive receptors have been reported, but the functional pathway between these two states remains elusive. Here, we use structure-based (Gō-like) models to simulate activation of two GPCRs, rhodopsin and the β₂ adrenergic receptor (β₂AR). We used data-derived reaction coordinates that capture the activation mechanism for both proteins, showing that activation proceeds through quantitatively different paths in the two systems. Both reaction coordinates are determined from the dominant concerted motions in the simulations so the technique is broadly applicable. There were two surprising results. First, the main structural changes in the simulations were distributed throughout the transmembrane bundle, and not localized to the obvious areas of interest, such as the intracellular portion of Helix 6. Second, the activation (and deactivation) paths were distinctly nonmonotonic, populating states that were not simply interpolations between the inactive and active structures. These transitions also suggest a functional explanation for β₂AR's basal activity: it can proceed through a more broadly defined path during the observed transitions.

摘要

G蛋白偶联受体(GPCRs)是一类重要的蛋白质,可跨细胞膜转导生物信号。然而,其变构激活机制尚未完全明确;虽然已报道了活性和非活性受体的晶体结构,但这两种状态之间的功能途径仍不清楚。在此,我们使用基于结构的(类Gō)模型来模拟两种GPCRs(视紫红质和β₂肾上腺素能受体(β₂AR))的激活过程。我们使用从数据得出的反应坐标来捕捉这两种蛋白质的激活机制,结果表明在这两个系统中激活过程通过数量上不同的路径进行。两个反应坐标均由模拟中的主要协同运动确定,因此该技术具有广泛的适用性。有两个令人惊讶的结果。首先,模拟中的主要结构变化分布在整个跨膜束中,而非局限于明显的感兴趣区域,如螺旋6的细胞内部分。其次,激活(和失活)路径明显是非单调的,存在一些状态并非简单地是无活性和活性结构之间的插值。这些转变也为β₂AR的基础活性提供了一种功能解释:在观察到的转变过程中,它可以通过更宽泛定义的路径进行。

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