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伊伐布雷定在心脏重构中的治疗用途和分子方面:综述。

Therapeutic Use and Molecular Aspects of Ivabradine in Cardiac Remodeling: A Review.

机构信息

Department of Pharmacology, Faculty of Medicine, Universiti Kebangsaan Malaysia, Kuala Lumpur 56000, Malaysia.

Department of Medicine, Faculty of Medicine, Universiti Kebangsaan Malaysia, Kuala Lumpur 56000, Malaysia.

出版信息

Int J Mol Sci. 2023 Feb 1;24(3):2801. doi: 10.3390/ijms24032801.

Abstract

Cardiac remodeling can cause ventricular dysfunction and progress to heart failure, a cardiovascular disease that claims many lives globally. Ivabradine, a funny channel (I) inhibitor, is used in patients with chronic heart failure as an adjunct to other heart failure medications. This review aims to gather updated information regarding the therapeutic use and mechanism of action of ivabradine in heart failure. The drug reduces elevated resting heart rate, which is linked to increased morbidity and mortality in patients with heart failure. Its use is associated with improved cardiac function, structure, and quality of life in the patients. Ivabradine exerts several pleiotropic effects, including an antiremodeling property, which are independent of its principal heart-rate-reducing effects. Its suppressive effects on cardiac remodeling have been demonstrated in animal models of cardiac remodeling and heart failure. It reduces myocardial fibrosis, apoptosis, inflammation, and oxidative stress as well as increases autophagy in the animals. It also modulates myocardial calcium homeostasis, neurohumoral systems, and energy metabolism. However, its role in improving heart failure remains unclear. Therefore, elucidating its molecular mechanisms is imperative and would aid in the design of future studies.

摘要

心脏重构可导致心室功能障碍,并进展为心力衰竭,这是一种在全球范围内导致许多人死亡的心血管疾病。伊伐布雷定是一种 funny channel (I) 抑制剂,用于慢性心力衰竭患者,作为其他心力衰竭药物的辅助治疗。本综述旨在收集伊伐布雷定在心力衰竭中的治疗用途和作用机制的最新信息。该药物可降低静息心率,而静息心率升高与心力衰竭患者的发病率和死亡率增加有关。它的使用与改善心力衰竭患者的心脏功能、结构和生活质量相关。伊伐布雷定具有多种多效性作用,包括抗重构作用,这与其主要的降低心率作用无关。在心脏重构和心力衰竭的动物模型中已经证明了它对心脏重构的抑制作用。它减少心肌纤维化、细胞凋亡、炎症和氧化应激,并增加动物的自噬。它还调节心肌钙稳态、神经激素系统和能量代谢。然而,它在改善心力衰竭方面的作用仍不清楚。因此,阐明其分子机制至关重要,这将有助于未来研究的设计。

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