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GRK2 氨基末端的一种肽可引起心肌肥厚,而在压力超负荷后可引起心脏保护。

A peptide of the amino-terminus of GRK2 induces hypertrophy and yet elicits cardioprotection after pressure overload.

机构信息

Department of Cardiovascular & Metabolic Sciences, Lerner Research Institute, Cleveland Clinic, Cleveland, OH 44195, USA.

Center for Translational Medicine, Temple University, Philadelphia, PA 19140, USA.

出版信息

J Mol Cell Cardiol. 2021 May;154:137-153. doi: 10.1016/j.yjmcc.2021.01.004. Epub 2021 Feb 4.

Abstract

G protein-coupled receptor (GPCR) kinase 2 (GRK2) expression and activity are elevated early on in response to several forms of cardiovascular stress and are a hallmark of heart failure. Interestingly, though, in addition to its well-characterized role in regulating GPCRs, mounting evidence suggests a GRK2 "interactome" that underlies a great diversity in its functional roles. Several such GRK2 interacting partners are important for adaptive and maladaptive myocyte growth; therefore, an understanding of domain-specific interactions with signaling and regulatory molecules could lead to novel targets for heart failure therapy. Herein, we subjected transgenic mice with cardiac restricted expression of a short, amino terminal fragment of GRK2 (βARKnt) to pressure overload and found that unlike their littermate controls or previous GRK2 fragments, they exhibited an increased left ventricular wall thickness and mass prior to cardiac stress that underwent proportional hypertrophic growth to controls after acute pressure overload. Importantly, despite this enlarged heart, βARKnt mice did not undergo the expected transition to heart failure observed in controls. Further, βARKnt expression limited adverse left ventricular remodeling and increased cell survival signaling. Proteomic analysis to identify βARKnt binding partners that may underlie the improved cardiovascular phenotype uncovered a selective functional interaction of both endogenous GRK2 and βARKnt with AKT substrate of 160 kDa (AS160). AS160 has emerged as a key downstream regulator of insulin signaling, integrating physiological and metabolic cues to couple energy demand to membrane recruitment of Glut4. Our preliminary data indicate that in βARKnt mice, cardiomyocyte insulin signaling is improved during stress, with a coordinate increase in spare respiratory activity and ATP production without metabolite switching. Surprisingly, these studies also revealed a significant decrease in gonadal fat weight, equivalent to human abdominal fat, in male βARKnt mice at baseline and following cardiac stress. These data suggest that the enhanced AS160-mediated signaling in the βARKnt mice may ameliorate pathological cardiac remodeling through direct modulation of insulin signaling within cardiomyocytes, and translate these to beneficial effects on systemic metabolism.

摘要

G 蛋白偶联受体激酶 2(GRK2)的表达和活性在多种心血管应激早期升高,是心力衰竭的标志。有趣的是,除了其在调节 GPCR 方面的特征外,越来越多的证据表明 GRK2 存在一个“相互作用组”,这为其功能角色的多样性提供了基础。几个这样的 GRK2 相互作用伙伴对于适应性和失调性心肌细胞生长很重要;因此,对与信号和调节分子的特定结构域相互作用的理解可能会为心力衰竭治疗提供新的靶点。在此,我们对心脏特异性表达 GRK2 的短氨基末端片段(βARKnt)的转基因小鼠进行了压力超负荷处理,发现与它们的同窝对照或以前的 GRK2 片段不同,它们在心脏应激前表现出左心室壁厚度和质量增加,并且在急性压力超负荷后经历了与对照组成比例的肥大生长。重要的是,尽管心脏增大,βARKnt 小鼠并没有经历对照中观察到的心力衰竭的预期转变。此外,βARKnt 表达限制了左心室重构的不良和增加了细胞存活信号。为了确定可能导致心血管表型改善的βARKnt 结合伙伴,我们进行了蛋白质组学分析,结果发现内源性 GRK2 和βARKnt 与 AKT 底物 160 kDa(AS160)选择性地相互作用。AS160 已成为胰岛素信号的关键下游调节剂,它整合生理和代谢线索,将能量需求与 Glut4 的膜募集联系起来。我们的初步数据表明,在βARKnt 小鼠中,应激期间心肌细胞胰岛素信号得到改善,同时伴有备用呼吸活性和 ATP 产生的协调增加,而代谢物没有转换。令人惊讶的是,这些研究还表明,在心脏应激前后,雄性βARKnt 小鼠的生殖腺脂肪重量(相当于人类腹部脂肪)显著下降。这些数据表明,βARKnt 小鼠中增强的 AS160 介导的信号转导可能通过直接调节心肌细胞内的胰岛素信号来改善病理性心脏重构,并将这些转化为对全身代谢的有益影响。

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