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关于阐明血管紧张素 -(1 - 7)的体内抗心律失常作用及其相关细胞机制的新见解。

New insights into the elucidation of angiotensin-(1-7) in vivo antiarrhythmic effects and its related cellular mechanisms.

作者信息

Joviano-Santos Julliane Vasconcelos, Santos-Miranda Artur, Joca Humberto Cavalcante, Cruz Jader Santos, Ferreira Anderson José

机构信息

Department of Morphology, Institute of Biological Sciences, Federal University of Minas Gerais, Belo Horizonte, MG, Brazil.

Department of Biochemistry and Immunology, Institute of Biological Sciences, Federal University of Minas Gerais, Belo Horizonte, MG, Brazil.

出版信息

Exp Physiol. 2016 Dec 1;101(12):1506-1516. doi: 10.1113/EP085884. Epub 2016 Nov 16.

Abstract

What is the central question of this study? Recently, there have been many studies exploring the biological effects of angiotensin-(1-7), which has been proved to have cardioprotective actions. However, the effects of this peptide on cardiac arrhythmias in vivo and details regarding its mechanism of action are still undetermined. What is the main finding and its importance? We investigated protective effects of angiotensin-(1-7) on cardiac arrhythmias in vivo, which were not properly explored in terms of cellular mechanisms. To verify effects of angiotensin-(1-7), we used different but complementary experimental approaches. Our data provide new evidence on the cellular mechanism and an in vivo demonstration of the acute antiarrhythmic effect of angiotensin-(1-7). Angiotensin-(1-7) [Ang-(1-7)] has been proved to have cardioprotective effects. However, the effects of this peptide on cardiac arrhythmias in vivo and details regarding its mechanism of action are still undetermined. The aim of this study was to investigate the protective effects of Ang-(1-7) against cardiac arrhythmias, its in vivo effects and cellular mechanism of action. We analysed the ECG upon inducement of arrhythmias in vivo in rats using a combination of halothane and adrenaline. To analyse the effects of Ang-(1-7) on cells, fresh mouse ventricular cardiomyocytes were isolated. The cardiomyocytes were superfused with a solution containing halothane and isoprenaline as a model to induce arrhythmias and used in three different approaches, namely a contractility assay, patch-clamp technique and confocal microscopy. The in vivo ECG showed that the injection of Ang-(1-7) (4 nm i.v.) significantly reduced cardiac arrhythmias [before, 49 ± 43 arrhythmic events versus after Ang-(1-7), 16 ± 14 arrhythmic events]. This effect was blocked by injection of A-779 and l-NAME, without changes in haemodynamic parameters. In addition, contractility experiments showed that Ang-(1-7) significantly decreased the number of arrhythmic events without changing the fractional shortening. This protection was associated with a reduction of the action potential repolarization and membrane hyperpolarization. Moreover, Ang-(1-7) decreased the number of calcium waves without any changes in the amplitude of the calcium transient, despite a significant reduction in the decay rate. Our data provide new evidence on the cellular mechanism together with an in vivo demonstration of the antiarrhythmic effects of Ang-(1-7).

摘要

本研究的核心问题是什么?最近,有许多研究探讨了血管紧张素-(1-7)的生物学效应,已证实其具有心脏保护作用。然而,这种肽对体内心律失常的影响及其作用机制的细节仍未明确。主要发现及其重要性是什么?我们研究了血管紧张素-(1-7)对体内心律失常的保护作用,此前在细胞机制方面尚未对其进行充分探索。为验证血管紧张素-(1-7)的作用,我们采用了不同但互补的实验方法。我们的数据为细胞机制提供了新证据,并在体内证明了血管紧张素-(1-7)的急性抗心律失常作用。血管紧张素-(1-7)[Ang-(1-7)]已被证明具有心脏保护作用。然而,这种肽对体内心律失常的影响及其作用机制的细节仍未明确。本研究的目的是研究Ang-(1-7)对心律失常的保护作用、其体内作用及细胞作用机制。我们使用氟烷和肾上腺素联合诱导大鼠体内心律失常,并分析心电图。为分析Ang-(1-7)对细胞的影响,分离了新鲜的小鼠心室心肌细胞。将心肌细胞用含有氟烷和异丙肾上腺素的溶液进行灌流,以此作为诱导心律失常的模型,并用于三种不同的方法,即收缩性测定、膜片钳技术和共聚焦显微镜检查。体内心电图显示,静脉注射Ang-(1-7)(4 nM)可显著减少心律失常[注射前,心律失常事件为49±43次,注射Ang-(1-7)后为16±14次]。注射A-779和L-NAME可阻断这种作用,且血流动力学参数无变化。此外,收缩性实验表明,Ang-(1-7)可显著减少心律失常事件的数量,而不改变缩短分数。这种保护作用与动作电位复极化的减少和膜超极化有关。此外,尽管钙瞬变衰减率显著降低,但Ang-(1-7)减少了钙波的数量,而钙瞬变幅度无任何变化。我们的数据为细胞机制提供了新证据,并在体内证明了Ang-(1-7)的抗心律失常作用。

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