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G蛋白激活β-肾上腺素能受体激酶的机制。

Mechanism of beta-adrenergic receptor kinase activation by G proteins.

作者信息

Kim C M, Dion S B, Benovic J L

机构信息

Department of Pharmacology, Jefferson Cancer Institute, Thomas Jefferson University, Philadelphia, Pennsylvania 19107.

出版信息

J Biol Chem. 1993 Jul 25;268(21):15412-8.

PMID:8393441
Abstract

The beta-adrenergic receptor kinase (beta-ARK) specifically phosphorylates the activated form of various G protein-coupled receptors such as the beta 2-adrenergic receptor (beta 2-AR). Recently, G protein beta gamma subunits have been demonstrated to activate beta-ARK-mediated receptor phosphorylation. To further elucidate beta-ARK/G protein interactions, we have developed a direct binding assay. The direct binding of [35S]methionine-labeled beta-ARK to either brain Gi/Go or beta gamma subunits was rapid and saturable with similar Kd values of approximately 58 and approximately 32 nM, respectively. Both heterotrimeric G proteins and beta gamma subunits enhanced the initial rate of beta 2-AR and rhodopsin phosphorylation approximately 10-fold. Kinetic studies demonstrate that beta gamma enhances beta-ARK-mediated beta 2-AR phosphorylation both by decreasing the Km for the beta 2-AR approximately 4-fold and increasing the stoichiometry of phosphorylation from approximately 4 to approximately 11 mol/mol. An agonist- and ATP-dependent binding of beta-ARK to the reconstituted beta 2-AR was also demonstrated. In addition, beta-ARK binding was enhanced in the presence of both the activated beta 2-AR and beta gamma subunits suggesting the formation of a transient ternary complex consisting of beta-ARK, beta gamma, and beta 2-AR. Overall, these studies suggest that the specific association of beta-ARK with heterotrimeric G proteins may play an important role in promoting receptor/kinase interaction and subsequent receptor phosphorylation.

摘要

β-肾上腺素能受体激酶(β-ARK)特异性地磷酸化各种G蛋白偶联受体的活化形式,如β2-肾上腺素能受体(β2-AR)。最近,已证明G蛋白βγ亚基可激活β-ARK介导的受体磷酸化。为了进一步阐明β-ARK与G蛋白的相互作用,我们开发了一种直接结合测定法。[35S]甲硫氨酸标记的β-ARK与脑Gi/Go或βγ亚基的直接结合迅速且具有饱和性,其Kd值分别约为58 nM和约32 nM。异源三聚体G蛋白和βγ亚基均使β2-AR和视紫红质磷酸化的初始速率提高了约10倍。动力学研究表明,βγ通过将β2-AR的Km降低约4倍并将磷酸化的化学计量从约4增加到约11 mol/mol来增强β-ARK介导的β2-AR磷酸化。还证明了β-ARK与重组β2-AR的激动剂和ATP依赖性结合。此外,在活化的β2-AR和βγ亚基均存在的情况下,β-ARK的结合增强,这表明形成了由β-ARK、βγ和β2-AR组成的瞬时三元复合物。总体而言,这些研究表明β-ARK与异源三聚体G蛋白的特异性结合可能在促进受体/激酶相互作用及随后的受体磷酸化中起重要作用。

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