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运动诱导的生理性心脏肥大中的能量代谢

Energy Metabolism in Exercise-Induced Physiologic Cardiac Hypertrophy.

作者信息

Xiang Kefa, Qin Zhen, Zhang Huimin, Liu Xia

机构信息

Department of Clinical Pharmacy, School of Pharmacy, Second Military Medical University, Shanghai, China.

出版信息

Front Pharmacol. 2020 Jul 29;11:1133. doi: 10.3389/fphar.2020.01133. eCollection 2020.

Abstract

Physiologic hypertrophy of the heart preserves or enhances systolic function without interstitial fibrosis or cell death. As a unique form of physiological stress, regular exercise training can trigger the adaptation of cardiac muscle to cause physiological hypertrophy, partly due to its ability to improve cardiac metabolism. In heart failure (HF), cardiac dysfunction is closely associated with early initiation of maladaptive metabolic remodeling. A large amount of clinical and experimental evidence shows that metabolic homeostasis plays an important role in exercise training, which is conducive to the treatment and recovery of cardiovascular diseases. Potential mechanistic targets for modulation of cardiac metabolism have become a hot topic at present. Thus, exploring the energy metabolism mechanism in exercise-induced physiologic cardiac hypertrophy may produce new therapeutic targets, which will be helpful to design novel effective strategies. In this review, we summarize the changes of myocardial metabolism (fatty acid metabolism, carbohydrate metabolism, and mitochondrial adaptation), metabolically-related signaling molecules, and probable regulatory mechanism of energy metabolism during exercise-induced physiological cardiac hypertrophy.

摘要

心脏的生理性肥大可维持或增强收缩功能,而无间质纤维化或细胞死亡。作为一种独特的生理应激形式,规律的运动训练可引发心肌适应性改变,导致生理性肥大,部分原因在于其改善心脏代谢的能力。在心力衰竭(HF)中,心脏功能障碍与早期发生的适应性不良的代谢重塑密切相关。大量临床和实验证据表明,代谢稳态在运动训练中起重要作用,这有利于心血管疾病的治疗和恢复。调节心脏代谢的潜在机制靶点已成为当前的热门话题。因此,探索运动诱导的生理性心脏肥大中的能量代谢机制可能会产生新的治疗靶点,这将有助于设计新的有效策略。在本综述中,我们总结了运动诱导的生理性心脏肥大过程中心肌代谢(脂肪酸代谢、碳水化合物代谢和线粒体适应)的变化、代谢相关信号分子以及能量代谢的可能调节机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/37c8/7403221/747aca08661a/fphar-11-01133-g001.jpg

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