打开希望酚:通过AMPK激活对抗心脏肥厚的有效盟友。

IF 5 2区 医学 Q1 NUTRITION & DIETETICS
Nutrients Pub Date : 2025-09-22 DOI:10.3390/nu17183025
Jinhong Chen, Mengyuan Wang, Zhongzheng Zhang, Chongkai Fang, Haowen Zhuang, Jiaqi Zhao, Tianyu Wang, Junyan Wang, Chun Li, Chunping Fang
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引用次数: 0

摘要

背景:线粒体能量代谢异常是心肌肥厚发生发展的关键因素。希望酚(HP)是天然多酚白藜芦醇的四聚体,具有比白藜芦醇更高的生物活性,但其在心脏肥厚中的具体作用及其潜在机制尚不清楚。方法:通过体内和体外实验,探讨希望酚对心肌肥厚的保护作用及其机制。在体内实验中,采用主动脉横缩术(TAC)诱导小鼠心肌肥厚;采用HE、Masson、WGA染色观察心肌变化,ELISA检测动物血清指标,细胞热移实验(CETSA)验证希望酚与AMPK的相互作用。在体外实验中,利用血管紧张素II (Ang II)诱导HL-1心肌细胞肥大,并利用AMPK特异性抑制剂化合物C来证实AMPK通路的作用。结果:在体内实验中,tac诱导的小鼠心肌肥厚表现为左心室腔增大,射血分数降低;经HE、Masson、WGA染色证实,希望酚能恢复心肌细胞形态,减轻纤维化。动物血清ELISA结果显示,希望酚能改善TAC小鼠代谢紊乱。此外,CETSA证实了希望酚与AMPK之间的直接相互作用。在体外实验中,希望酚通过激活AMPK通路,降低Ang ii诱导的HL-1心肌细胞肥大和凋亡,增强线粒体膜电位,降低活性氧(ROS)水平;此外,ampk特异性抑制剂化合物C阻断了这些作用。这表明希望酚的心脏保护作用主要是由AMPK激活介导的。结论:希望酚对心肌肥厚的保护作用高度依赖于AMPK信号通路的激活,CETSA和分子对接支持希望酚与AMPK的直接结合;该途径通过AMPK改善线粒体功能障碍,从而减轻压力过载引起的心力衰竭。这一发现确定了希望酚在预防和治疗心力衰竭方面有进一步发展的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unlocking Hopeaphenol: A Potent Ally Against Cardiac Hypertrophy via AMPK Activation.

Background: Abnormal mitochondrial energy metabolism is a key factor in the development and progression of cardiac hypertrophy. Hopeaphenol (HP), a tetramer of the natural polyphenol resveratrol, exhibits higher biological activity than resveratrol, but its specific role in cardiac hypertrophy and underlying mechanisms remains unclear. Methods: This study explored the protective effect and mechanism of hopeaphenol on cardiac hypertrophy through in vivo and in vitro experiments. In in vivo experiments, transverse aortic constriction (TAC) was used to induce cardiac hypertrophy in mice; HE, Masson, and WGA staining were applied to observe myocardial changes, ELISA was used to detect animal serum indicators, and the Cellular Thermal Shift Assay (CETSA) was conducted to verify the interaction between hopeaphenol and AMPK. In in vitro experiments, angiotensin II (Ang II) was used to induce hypertrophy of HL-1 cardiomyocytes, and the AMPK-specific inhibitor Compound C was employed to confirm the role of the AMPK pathway. Results: In in vivo experiments, TAC-induced cardiac hypertrophy in mice was characterized by left ventricular cavity enlargement and decreased ejection fraction; hopeaphenol treatment significantly improved these cardiac function indices, and HE, Masson, and WGA staining confirmed that hopeaphenol could restore cardiomyocyte morphology and reduce fibrosis. ELISA results of animal serum showed that hopeaphenol could improve metabolic disorders in TAC mice. Furthermore, CETSA confirmed a direct interaction between hopeaphenol and AMPK. In in vitro experiments, hopeaphenol reduced Ang II-induced hypertrophy and apoptosis of HL-1 cardiomyocytes, enhanced mitochondrial membrane potential, and decreased reactive oxygen species (ROS) levels by activating the AMPK pathway; moreover, the AMPK-specific inhibitor Compound C blocked these effects. This suggests that hopeaphenol's cardioprotective effect is largely mediated by AMPK activation. Conclusions: The protective effect of hopeaphenol on cardiac hypertrophy is highly dependent on the activation of the AMPK signaling pathway, with CETSA and molecular docking supporting direct binding between hopeaphenol and AMPK; this pathway improves mitochondrial dysfunction through AMPK, thereby alleviating heart failure caused by pressure overload. This finding identifies hopeaphenol as a potential candidate for further development in the prevention and treatment of heart failure.

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来源期刊
Nutrients
Nutrients NUTRITION & DIETETICS-
CiteScore
9.20
自引率
15.30%
发文量
4599
审稿时长
16.74 days
期刊介绍: Nutrients (ISSN 2072-6643) is an international, peer-reviewed open access advanced forum for studies related to Human Nutrition. It publishes reviews, regular research papers and short communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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