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Characterizing and predicting the functional and conformational diversity of seven-transmembrane proteins

机译:表征和预测七跨膜蛋白的功能和构象多样性

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The activation of seven-transmembrane receptors (7TMRs) allows cells to sense their environment and convert extracellular signals (like hormone binding) into intracellular signals (through G protein-coupled and/or β arrestin-coupled pathways). A single 7TMR is capable of transducing a wide spectrum of physiological responses inside a cell by coupling to these pathways. This intracellular pleiotropic action is enabled by multiple conformations exhibited by these receptors. Developments in membrane protein structure determination technologies have led to a rapid increase in crystal structures for many 7TMRs. Majority of these receptors have been crystallized in their inactive conformation and, for some, one of the many active conformations has also been crystallized. Given the topological constraints of a lipid bilayer that results in a single fold of seven almost parallel TM helices connected by mostly unstructured loops, these structures exhibit a diversity of conformations not only across the receptors but also across the different functional forms for receptors with structures for one of the functionally active conformations. Here we present a method to characterize this conformational diversity in terms of transmembrane helix topology (TMHTOP) parameters and how to use these helix orientation parameters to predict functionally-distinct multiple conformations for these receptors. The TMHTOP parameters enable a quantification of the structural changes that underlie 7TMR activation and also sheds a unique mechanistic light on the pleiotropic nature of these receptors. It provides a common language to describe the 7TMR activation mechanisms as well as differences across many receptors in terms of visually intuitive structural parameters. Protein structure prediction methods can use these parameters to describe 7TMR conformational ensembles, which coupled to experimental data can be used to develop testable hypotheses for the structural basis of 7TMR functions.
机译:七跨膜受体(7TMR)的激活使细胞能够感知环境并将细胞外信号(例如激素结合)转化为细胞内信号(通过G蛋白偶联和/或β抑制蛋白偶联途径)。单个7TMR能够通过与这些途径偶联,在细胞内传导广泛的生理反应。这些受体表现出的多种构象使这种细胞内的多效性作用成为可能。膜蛋白结构测定技术的发展已导致许多7TMR的晶体结构迅速增加。这些受体中的大多数已经以其非活性构象结晶,并且对于某些而言,许多活性构象之一也已经结晶。考虑到脂质双层的拓扑约束,导致几乎是由非结构化环连接的七个几乎平行的TM螺旋的单倍折叠,这些结构不仅在受体上而且在不同功能形式的受体上都具有多样性的构象,其中受体具有功能活性构象之一。在这里,我们提出了一种方法来表征跨膜螺旋拓扑(TMHTOP)参数的构象多样性,以及如何使用这些螺旋取向参数来预测这些受体的功能不同的多个构象。 TMHTOP参数能够量化构成7TMR激活基础的结构变化,并且也为这些受体的多效性提供了独特的机制。它提供了通用的语言来描述7TMR激活机制,以及许多受体在视觉上直观的结构参数方面的差异。蛋白质结构预测方法可以使用这些参数来描述7TMR构象集合,将其与实验数据相结合可以用来为7TMR功能的结构基础开发可检验的假设。

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