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心肌特异性消融 GTPase RAD 可导致小鼠心脏产生适应性反应。

Myocardial-restricted ablation of the GTPase RAD results in a pro-adaptive heart response in mice.

机构信息

Department of Physiology.

Department of Physiology,; Gill Heart and Vascular Institute, and.

出版信息

J Biol Chem. 2019 Jul 12;294(28):10913-10927. doi: 10.1074/jbc.RA119.008782. Epub 2019 May 30.

Abstract

Existing therapies to improve heart function target β-adrenergic receptor (β-AR) signaling and Ca handling and often lead to adverse outcomes. This underscores an unmet need for positive inotropes that improve heart function without any adverse effects. The GTPase Ras associated with diabetes (RAD) regulates L-type Ca channel (LTCC) current (I). Global RAD-knockout mice (gRAD) have elevated Ca handling and increased cardiac hypertrophy, but RAD is expressed also in noncardiac tissues, suggesting the possibility that pathological remodeling is due also to noncardiac effects. Here, we engineered a myocardial-restricted inducible RAD-knockout mouse (RAD). Using an array of methods and techniques, including single-cell electrophysiological and calcium transient recordings, echocardiography, and radiotelemetry monitoring, we found that RAD deficiency results in a sustained increase of inotropy without structural or functional remodeling of the heart. I was significantly increased, with RAD loss conferring a β-AR-modulated phenotype on basal I Cardiomyocytes from RAD hearts exhibited enhanced cytosolic Ca handling, increased contractile function, elevated sarcoplasmic/endoplasmic reticulum calcium ATPase 2 (SERCA2a) expression, and faster lusitropy. These results argue that myocardial RAD ablation promotes a beneficial elevation in Ca dynamics, which would obviate a need for increased β-AR signaling to improve cardiac function.

摘要

现有的改善心脏功能的治疗方法靶向β-肾上腺素能受体(β-AR)信号和钙处理,并且经常导致不良后果。这突显出对正性肌力药的未满足需求,这些药物可以改善心脏功能而没有任何不良影响。与糖尿病相关的 Ras(RAD)调节 L 型钙通道(LTCC)电流(I)。全球 RAD 敲除小鼠(gRAD)具有升高的钙处理和增加的心脏肥大,但 RAD 也在非心脏组织中表达,这表明病理性重塑也可能归因于非心脏效应。在这里,我们构建了心肌特异性诱导 RAD 敲除小鼠(RAD)。使用一系列方法和技术,包括单细胞电生理和钙瞬变记录、超声心动图和无线电遥测监测,我们发现 RAD 缺乏导致心肌收缩力持续增加,而心脏没有结构或功能重塑。I 显著增加,RAD 缺失使基础 I 上的β-AR 调节表型。RAD 心脏的心肌细胞表现出增强的胞质钙处理、增强的收缩功能、升高的肌浆/内质网钙 ATP 酶 2(SERCA2a)表达和更快的舒张性。这些结果表明,心肌 RAD 消融促进了钙动力学的有益升高,这将避免需要增加β-AR 信号来改善心脏功能。

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