Mitochondrial Dysfunction in Cardiovascular Diseases

被引:0
作者
Yang, Han-Mo [1 ]
机构
[1] Seoul Natl Univ Hosp, Dept Internal Med, Div Cardiol, Seoul 03080, South Korea
基金
新加坡国家研究基金会;
关键词
mitochondrial dysfunction; cardiovascular disease; oxidative stress; mitochondrial dynamics; OXIDATIVE STRESS; ISCHEMIA-REPERFUSION; HEART-FAILURE; ENDOTHELIAL FUNCTION; CARDIAC ISCHEMIA; FREE-RADICALS; VITAMIN-E; ANTIOXIDANT; METABOLISM; BIOLOGY;
D O I
10.3390/ijms26051917
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Mitochondrial dysfunction is increasingly recognized as a central contributor to the pathogenesis of cardiovascular diseases (CVDs), including heart failure, ischemic heart disease, hypertension, and cardiomyopathy. Mitochondria, known as the powerhouses of the cell, play a vital role in maintaining cardiac energy homeostasis, regulating reactive oxygen species (ROS) production and controlling cell death pathways. Dysregulated mitochondrial function results in impaired adenosine triphosphate (ATP) production, excessive ROS generation, and activation of apoptotic and necrotic pathways, collectively driving the progression of CVDs. This review provides a detailed examination of the molecular mechanisms underlying mitochondrial dysfunction in CVDs, including mutations in mitochondrial DNA (mtDNA), defects in oxidative phosphorylation (OXPHOS), and alterations in mitochondrial dynamics (fusion, fission, and mitophagy). Additionally, the role of mitochondrial dysfunction in specific cardiovascular conditions is explored, highlighting its impact on endothelial dysfunction, myocardial remodeling, and arrhythmias. Emerging therapeutic strategies targeting mitochondrial dysfunction, such as mitochondrial antioxidants, metabolic modulators, and gene therapy, are also discussed. By synthesizing recent advances in mitochondrial biology and cardiovascular research, this review aims to enhance understanding of the role of mitochondria in CVDs and identify potential therapeutic targets to improve cardiovascular outcomes.
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页数:18
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共 158 条
  • [91] Valko M., Leibfritz D., Moncol J., Cronin M.T., Mazur M., Telser J., Free radicals and antioxidants in normal physiological functions and human disease, Int. J. Biochem. Cell Biol, 39, pp. 44-84, (2007)
  • [92] Dhalla N.S., Temsah R.M., Netticadan T., Role of oxidative stress in cardiovascular diseases, J. Hypertens, 18, pp. 655-673, (2000)
  • [93] Wu L.L., Chiou C.C., Chang P.Y., Wu J.T., Urinary 8-OHdG: A marker of oxidative stress to DNA and a risk factor for cancer, atherosclerosis and diabetics, Clin. Chim. Acta, 492, pp. 88-95, (2019)
  • [94] Dikalov S.I., Ungvari Z., Role of mitochondrial oxidative stress in hypertension, Am. J. Physiol. Heart Circ. Physiol, 317, pp. H1079-H1088, (2019)
  • [95] Camici P.G., Crea F., Coronary microvascular dysfunction, N. Engl. J. Med, 356, pp. 830-840, (2007)
  • [96] Schwarz K., Siddiqi N., Singh S., Neil C.J., Dawson D.K., Frenneaux M.P., The role of imaging in the assessment of mitochondrial function in heart failure, JACC Cardiovasc. Imaging, 11, pp. 1868-1878, (2018)
  • [97] Hansson N.H., Tolbod L.P., Harms H.J., Wiggers H., Kim W.Y., Hansen E., Zaremba T., Frokiaer J., Jakobsen S., Sorensen J., Et al., Myocardial oxygen consumption and efficiency in patients with cardiac amyloidosis measured with 11C-acetate PET, J. Nucl. Cardiol, 26, pp. 1972-1981, (2019)
  • [98] Bottomley P.A., Panjrath G.S., Lai S., Hirsch G.A., Wu K., Najjar S.S., Steinberg A., Gerstenblith G., Weiss R.G., Metabolic rates of ATP transfer through creatine kinase (CK flux) predict clinical heart failure events and death, Sci. Transl. Med, 5, (2013)
  • [99] Davidson S.M., Duchen M.R., Imaging mitochondrial calcium signalling with fluorescent probes: From single organelles to whole hearts, Methods, 121–122, pp. 66-74, (2017)
  • [100] Zhang J., Li X., Mueller M., Wang Y., Zong C., Deng N., Vondriska T.M., Liem D.A., Yang J.I., Korge P., Et al., Systematic characterization of the murine mitochondrial proteome using functionally validated cardiac mitochondria, Proteomics, 8, pp. 1564-1575, (2008)