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配体与 AMP 激活的蛋白激酶活性位点的结合介导了对激活环去磷酸化的保护。

Ligand binding to the AMP-activated protein kinase active site mediates protection of the activation loop from dephosphorylation.

机构信息

Department of Microbiology and Molecular Genetics, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania 15261, USA.

出版信息

J Biol Chem. 2013 Jan 4;288(1):89-98. doi: 10.1074/jbc.M112.422659. Epub 2012 Nov 26.

Abstract

The AMP-activated protein kinase (AMPK) is a conserved signaling molecule in a pathway that maintains adenosine triphosphate homeostasis. Recent studies have suggested that low energy adenylate ligands bound to one or more sites in the γ subunit of AMPK promote the formation of an active, phosphatase-resistant conformation. We propose an alternative model in which the kinase domain association with the heterotrimer core results in activation of the kinase catalytic activity, whereas low energy adenylate ligands bound in the kinase active site promote phosphatase resistance. Purified Snf1 α subunit with a conservative, single amino acid substitution in the kinase domain is protected from dephosphorylation by adenosine diphosphate in the complete absence of the β and γ subunits. Staurosporine, a compound known to bind to the active site of many protein kinases, mediates strong protection from dephosphorylation to yeast and mammalian AMPK enzymes. The analog-sensitive Snf1-I132G protein but not wild type Snf1 exhibits protection from dephosphorylation when bound by the adenosine analog 2NM-PP1 in vitro and in vivo. These data demonstrate that ligand binding to the Snf1 active site can mediate phosphatase resistance. Finally, Snf1 kinase with an amino acid substitution at the interface of the kinase domain and the heterotrimer core exhibits normal regulation of phosphorylation in vivo but greatly reduced Snf1 kinase activity, supporting a model in which kinase domain association with the heterotrimer core is needed for kinase activation.

摘要

AMP 激活的蛋白激酶 (AMPK) 是一种在维持三磷酸腺苷 (ATP) 平衡的途径中保守的信号分子。最近的研究表明,与 AMPK γ 亚基的一个或多个位点结合的低能量腺嘌呤核苷酸配体促进了具有磷酸酶抗性的活性构象的形成。我们提出了一个替代模型,其中激酶结构域与异三聚体核心的结合导致激酶催化活性的激活,而在激酶活性位点结合的低能量腺嘌呤核苷酸配体促进了磷酸酶抗性。在完全缺乏β和γ亚基的情况下,带有激酶结构域保守单一氨基酸取代的纯化 Snf1α亚基被二磷酸腺苷保护免受去磷酸化。已知与许多蛋白激酶的活性位点结合的化合物 staurosporine 介导对酵母和哺乳动物 AMPK 酶的强烈去磷酸化保护。与野生型 Snf1 相比,对腺苷类似物 2NM-PP1 具有敏感性的 Snf1-I132G 蛋白在体外和体内结合时表现出对去磷酸化的保护。这些数据表明,配体与 Snf1 活性位点的结合可以介导磷酸酶抗性。最后,在激酶结构域和异三聚体核心的界面处具有氨基酸取代的 Snf1 激酶在体内表现出正常的磷酸化调节,但 Snf1 激酶活性大大降低,支持这样一种模型,即激酶结构域与异三聚体核心的结合对于激酶激活是必需的。

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