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瞬时受体电位香草酸 1 型(TRPV1)离子通道中功能重要的氨基酸残基——当前突变数据概述。

Functionally important amino acid residues in the transient receptor potential vanilloid 1 (TRPV1) ion channel--an overview of the current mutational data.

机构信息

Institute of Pharmaceutical Analysis, Faculty of Pharmacy, University of Szeged, Szeged, Hungary.

出版信息

Mol Pain. 2013 Jun 22;9:30. doi: 10.1186/1744-8069-9-30.

Abstract

This review aims to create an overview of the currently available results of site-directed mutagenesis studies on transient receptor potential vanilloid type 1 (TRPV1) receptor. Systematization of the vast number of data on the functionally important amino acid mutations of TRPV1 may provide a clearer picture of this field, and may promote a better understanding of the relationship between the structure and function of TRPV1. The review summarizes information on 112 unique mutated sites along the TRPV1, exchanged to multiple different residues in many cases. These mutations influence the effect or binding of different agonists, antagonists, and channel blockers, alter the responsiveness to heat, acid, and voltage dependence, affect the channel pore characteristics, and influence the regulation of the receptor function by phosphorylation, glycosylation, calmodulin, PIP2, ATP, and lipid binding. The main goal of this paper is to publish the above mentioned data in a form that facilitates in silico molecular modelling of the receptor by promoting easier establishment of boundary conditions. The better understanding of the structure-function relationship of TRPV1 may promote discovery of new, promising, more effective and safe drugs for treatment of neurogenic inflammation and pain-related diseases and may offer new opportunities for therapeutic interventions.

摘要

本文旨在综述瞬时受体电位香草酸亚型 1(TRPV1)受体的定点突变研究的现有成果。对 TRPV1 功能重要的氨基酸突变的大量数据进行系统整理,可以更清楚地了解该领域的情况,并促进更好地理解 TRPV1 的结构与功能之间的关系。本文综述了 TRPV1 上 112 个独特突变位点的信息,这些位点在许多情况下被替换为多种不同的残基。这些突变影响不同激动剂、拮抗剂和通道阻断剂的作用或结合,改变对热、酸和电压的敏感性,影响通道孔特性,并影响受体功能的磷酸化、糖基化、钙调蛋白、PIP2、ATP 和脂质结合的调节。本文的主要目的是以促进更容易建立边界条件的方式,将上述数据以方便受体计算机分子建模的形式发表。更好地了解 TRPV1 的结构-功能关系,可以促进发现新的、有前途的、更有效和更安全的治疗神经源性炎症和与疼痛相关疾病的药物,并为治疗干预提供新的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/796d/3707783/3dc4d4aa64a9/1744-8069-9-30-1.jpg

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