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P2Y受体的分子结构:诱变、建模与化学探针

Molecular Structure of P2Y Receptors: Mutagenesis, Modeling, and Chemical Probes.

作者信息

Jacobson Kenneth A, Jayasekara M P Suresh, Costanzi Stefano

机构信息

Molecular Recognition Section, Laboratory of Bioorganic Chemistry, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bldg. 8A, Rm. B1A-19, Bethesda, Maryland 20892-0810, USA.

出版信息

Wiley Interdiscip Rev Membr Transp Signal. 2012 Sep 12;1(6). doi: 10.1002/wmts.68.

Abstract

There are eight subtypes of P2Y receptors (P2YRs) that are activated, and in some cases inhibited, by a range of extracellular nucleotides. These nucleotides are ubiquitous, but their extracellular concentration can rise dramatically in response to hypoxia, ischemia, or mechanical stress, injury, and release through channels and from vesicles. Two subclasses of P2YRs were defined based on clustering of sequences, second messengers, and receptor sequence analysis. The numbering system for P2YR subtypes is discontinuous; i.e., P2Y(1-14)Rs have been defined, but six of the intermediate-numbered cloned receptor sequences (e.g., P2y(3), P2y(5), P2y(7-10)) are not functional mammalian nucleotide receptors. Of these two clusters, the P2Y(12-14) subtypes couple via Gα(i) to inhibit adenylate cyclase, while the remaining subtypes couple through Gα(q) to activate phospholipase C. Collectively, the P2YRs respond to both purine and pyrimidine nucleotides, in the form of 5'-mono- and dinucleotides and nucleoside-5'-diphosphosugars. In recent years, the medicinal chemistry of P2Y receptors has advanced significantly, to provide selective agonists and antagonists for many but not all of the subtypes. Ligand design has been aided by insights from structural probing using molecular modelling and mutagenesis. Currently, the molecular modelling of the receptors is effectively based on the X-ray structure of the CXCR4 receptor, which is the closest to the P2Y receptors among all the currently crystallized receptors in terms of sequence similarity. It is now a challenge to develop novel and selective P2YR ligands for disease treatment (although antagonists of the P2Y(12)R are already widely used as antithrombotics).

摘要

P2Y受体(P2YRs)有八种亚型,可被一系列细胞外核苷酸激活,某些情况下也会受到抑制。这些核苷酸广泛存在,但其细胞外浓度可因缺氧、缺血、机械应激、损伤以及通过通道和囊泡释放而急剧升高。基于序列聚类、第二信使和受体序列分析定义了P2YRs的两个亚类。P2YR亚型的编号系统是不连续的;即已定义了P2Y(1 - 14)Rs,但六个中间编号的克隆受体序列(如P2y(3)、P2y(5)、P2y(7 - 10))并非功能性的哺乳动物核苷酸受体。在这两个簇中,P2Y(12 - 14)亚型通过Gα(i)偶联以抑制腺苷酸环化酶,而其余亚型通过Gα(q)偶联以激活磷脂酶C。总体而言,P2YRs对嘌呤和嘧啶核苷酸均有反应,形式为5'-单核苷酸和二核苷酸以及核苷-5'-二磷酸糖。近年来,P2Y受体的药物化学取得了显著进展,为许多但并非所有亚型提供了选择性激动剂和拮抗剂。配体设计借助了分子建模和诱变的结构探测所提供的见解。目前,受体的分子建模实际上是基于CXCR4受体的X射线结构,就序列相似性而言,它是所有当前已结晶的受体中与P2Y受体最接近的。开发用于疾病治疗的新型选择性P2YR配体目前是一项挑战(尽管P2Y(12)R拮抗剂已被广泛用作抗血栓药物)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/022c/3547624/40cf25645103/nihms405846f1a.jpg

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