Xue Zhimin, Wu Danyu, Zhang Jiefang, Pan Yiwen, Kan Rongsheng, Gao Jing, Zhou Binquan
Department of Cardiology, Sir Run Run Shaw Hospital, Zhejiang University School of Medicine, Hangzhou, China.
Heliyon. 2023 Oct 20;9(11):e21309. doi: 10.1016/j.heliyon.2023.e21309. eCollection 2023 Nov.
BACKGROUND: Cardiomyocyte ischemia and hypoxia are important causes of oxidative stress damage and cardiomyocyte apoptosis in coronary heart disease (CHD). Epidemiological investigation has shown that eating more plant-based foods, such as vegetables and fruits, may significantly decrease the risk of CHD. As natural antioxidants, botanicals have fewer toxic side effects than chemical drugs and have great potential for development. Procyanidin B2 (PB2) is composed of flavan-3-ol and epicatechin and has been reported to have antioxidant and anti-inflammatory effects. However, whether PB2 exerts protective effects on hypoxic cardiomyocytes has remained unclear. This study aimed to explore the protective effect of PB2 against cardiomyocyte hypoxia and to provide new treatment strategies and ideas for myocardial ischemia and hypoxia in CHD. METHODS AND RESULTS: A hypoxic cardiomyocyte model was constructed, and a CCK-8 assay proved that PB2 had a protective effect on cardiomyocytes in a hypoxic environment. DCFH fluorescence staining, DHE staining, and BODIPY lipid oxidation assessment revealed that PB2 reduced the oxidative stress levels of cardiomyocytes under hypoxic conditions. TUNEL staining, Annexin V/PI fluorescence flow cytometry, and Western blot analysis of the expression of the apoptosis marker protein cleaved caspase-3 confirmed that PB2 reduced cardiomyocyte apoptosis under hypoxic conditions. JC-1 staining indicated that PB2 reduced the mitochondrial membrane potential of cardiomyocytes under hypoxia. In addition, transcriptomic analysis proved that the expression of 158 genes in cardiomyocytes was significantly changed after PB2 was added during hypoxia, of which 53 genes were upregulated and 105 genes were downregulated. GO enrichment analysis demonstrated that the activity of cytokines, extracellular matrix proteins and other molecules was changed significantly in the biological process category. KEGG enrichment analysis showed that the IL-17 signaling pathway and JAK-STAT signaling pathway underwent significant changes. We also performed metabolomic analysis and found that the levels of 51 metabolites were significantly changed after the addition of PB2 to cardiomyocytes during hypoxia. Among them, 39 metabolites exhibited increased levels, while 12 metabolites exhibited decreased levels. KEGG enrichment analysis showed that cysteine and methionine metabolism, arginine and proline metabolism and other metabolic pathways underwent remarkable changes. CONCLUSION: This study proves that PB2 can reduce the oxidative stress and apoptosis of cardiomyocytes during hypoxia to play a protective role. Transcriptomic and metabolomic analyses preliminarily revealed signaling pathways and metabolic pathways that are related to its protective mechanism. These findings lay a foundation for further research on the role of PB2 in the treatment of CHD and provide new ideas and new perspectives for research on PB2 in the treatment of other diseases.
背景:心肌细胞缺血缺氧是冠心病(CHD)中氧化应激损伤和心肌细胞凋亡的重要原因。流行病学调查显示,多食用植物性食物,如蔬菜和水果,可能会显著降低患冠心病的风险。作为天然抗氧化剂,植物提取物的毒副作用比化学药物少,具有很大的开发潜力。原花青素B2(PB2)由黄烷-3-醇和表儿茶素组成,据报道具有抗氧化和抗炎作用。然而,PB2是否对缺氧心肌细胞具有保护作用尚不清楚。本研究旨在探讨PB2对心肌细胞缺氧的保护作用,为冠心病心肌缺血缺氧提供新的治疗策略和思路。 方法与结果:构建缺氧心肌细胞模型,CCK-8检测证明PB2对缺氧环境下的心肌细胞具有保护作用。DCFH荧光染色、DHE染色和BODIPY脂质氧化评估显示,PB2降低了缺氧条件下心肌细胞的氧化应激水平。TUNEL染色、Annexin V/PI荧光流式细胞术以及凋亡标记蛋白cleaved caspase-3表达的Western blot分析证实,PB2降低了缺氧条件下的心肌细胞凋亡。JC-1染色表明,PB2降低了缺氧条件下心肌细胞的线粒体膜电位。此外,转录组分析证明,缺氧期间添加PB2后,心肌细胞中158个基因的表达发生了显著变化,其中53个基因上调,105个基因下调。GO富集分析表明,在生物过程类别中,细胞因子、细胞外基质蛋白等分子的活性发生了显著变化。KEGG富集分析表明,IL-17信号通路和JAK-STAT信号通路发生了显著变化。我们还进行了代谢组分析,发现缺氧期间向心肌细胞中添加PB2后,51种代谢物的水平发生了显著变化。其中,39种代谢物水平升高,12种代谢物水平降低。KEGG富集分析表明,半胱氨酸和蛋氨酸代谢、精氨酸和脯氨酸代谢等代谢途径发生了显著变化。 结论:本研究证明PB2可以降低缺氧时心肌细胞的氧化应激和凋亡,发挥保护作用。转录组和代谢组分析初步揭示了与其保护机制相关的信号通路和代谢途径。这些发现为进一步研究PB2在冠心病治疗中的作用奠定了基础,并为PB2在其他疾病治疗中的研究提供了新的思路和新的视角。
Zhonghua Xin Xue Guan Bing Za Zhi. 2020-12-24
Biomed Pharmacother. 2017-11-6
Immunity. 2019-4-16
Mol Immunol. 2019-1-17
J Am Coll Cardiol. 2017-7-25
J Transl Med. 2017-5-1
Cardiovasc Res. 2017-3-1
Biochim Biophys Acta. 2016-11
Molecules. 2015-11-27