| Literature DB >> 35385329 |
Nabil J Alkayed1,2, Zhiping Cao1,2, Zu Yuan Qian1,2, Shanthi Nagarajan2,3, Xuehong Liu2, Jonathan W Nelson2, Fuchun Xie4, Bingbing Li4, Wei Fan1,2, Lijuan Liu1,2, Marjorie R Grafe5, Catherine M Davis1,2, Xiangshu Xiao4,2, Anthony P Barnes2, Sanjiv Kaul2.
Abstract
Arachidonic acid metabolites epoxyeicosatrienoates (EETs) and hydroxyeicosatetraenoates (HETEs) are important regulators of myocardial blood flow and coronary vascular resistance (CVR), but their mechanisms of action are not fully understood. We applied a chemoproteomics strategy using a clickable photoaffinity probe to identify G protein-coupled receptor 39 (GPR39) as a microvascular smooth muscle cell (mVSMC) receptor selective for two endogenous eicosanoids, 15-HETE and 14,15-EET, which act on the receptor to oppose each other's activity. The former increases mVSMC intracellular calcium via GPR39 and augments coronary microvascular resistance, and the latter inhibits these actions. Furthermore, we find that the efficacy of both ligands is potentiated by zinc acting as an allosteric modulator. Measurements of coronary perfusion pressure (CPP) in GPR39-null hearts using the Langendorff preparation indicate the receptor senses these eicosanoids to regulate microvascular tone. These results implicate GPR39 as an eicosanoid receptor and key regulator of myocardial tissue perfusion. Our findings will have a major impact on understanding the roles of eicosanoids in cardiovascular physiology and disease and provide an opportunity for the development of novel GPR39-targeting therapies for cardiovascular disease.Entities:
Keywords: EETs; GPCR; GPR39; HETEs; eicosanoids
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Year: 2022 PMID: 35385329 PMCID: PMC9255704 DOI: 10.1152/ajpcell.00454.2021
Source DB: PubMed Journal: Am J Physiol Cell Physiol ISSN: 0363-6143 Impact factor: 5.282