Department of Cardiology, China-Japan Union Hospital, Jilin University, Changchun, 130033, China.
Department of Cardiology, the affiliated hospital of Beihua University, Jilin, China.
Int J Med Sci. 2018 Mar 8;15(5):517-527. doi: 10.7150/ijms.22454. eCollection 2018.
Uncoupling protein 2 (UCP2) is primarily expressed in the myocardium and is closely related to myocardial ischemia/reperfusion injury and myocardial metabolism. To explore the effects and the mechanisms of UCP2 on atorvastatin-mediated myocardium protection, the rat model of myocardial ischemia was established by ligation of the left anterior descending coronary arteries (LADs). The rats were divided into the sham operation (SO) group, myocardial infarction (MI) group and MI-atorvastatin group. The study that atorvastatin reduced myocardial remodeling and improved the disturbed myocardial energy metabolism after MI. Furthermore, the mechanisms of myocardial metabolic remodeling affected by atorvastatin were explored. The atorvastatin group showed a significantly decreased expression of UCP2 mRNA and protein. Furthermore, the primary rat cardiomyocytes were cultured and treated with angiotensin II (Ang II) to induce cardiomyocyte hypertrophy. The results showed that in the atorvastatin group, the surface area of the cardiomyocytes, the total protein content per unit of cells, and the expression of the UCP2 protein were significantly decreased. These data suggested that atorvastatin significantly attenuated the myocardial remodeling by downregulating the expression of UCP2 that was found to improve the myocardial energy metabolism, inhibit myocardial hypertrophy, and eventually reduce myocardial remodeling.
解偶联蛋白 2(UCP2)主要表达于心肌组织,与心肌缺血/再灌注损伤和心肌代谢密切相关。为了探讨 UCP2 对阿托伐他汀介导的心肌保护作用及其机制,结扎大鼠左前降支冠状动脉(LAD)建立心肌缺血模型。将大鼠分为假手术(SO)组、心肌梗死(MI)组和 MI-阿托伐他汀组。研究发现阿托伐他汀可减轻心肌重构,改善 MI 后紊乱的心肌能量代谢。进一步探讨了阿托伐他汀影响心肌代谢重构的机制。阿托伐他汀组 UCP2 mRNA 和蛋白表达明显降低。此外,原代大鼠心肌细胞用血管紧张素 II(Ang II)处理诱导心肌细胞肥大。结果显示,在阿托伐他汀组,心肌细胞表面积、单位细胞总蛋白含量和 UCP2 蛋白表达明显降低。这些数据表明,阿托伐他汀通过下调 UCP2 的表达显著减轻心肌重构,改善心肌能量代谢,抑制心肌肥大,最终减少心肌重构。