Ozcan Cevher, Bienengraeber Martin, Hodgson Denice M, Mann Douglas L, Terzic Andre
Division of Cardiovascular Diseases, Department of Medicine, Mayo Clinic and Foundation, Guggenheim-7F, Rochester, MN 55905, USA.
J Mol Cell Cardiol. 2003 Sep;35(9):1161-6. doi: 10.1016/s0022-2828(03)00204-9.
Mitochondrial integrity is critical in the maintenance of bioenergetic homeostasis of the myocardium, with oxidative or metabolic challenge to mitochondria precipitating cell injury. In heart failure, where cardiac cells are exposed to elevated stress, mitochondrial vulnerability could contribute to the disease state. However, the mitochondrial response to stress is yet to be established in heart failure. Here, mitochondrial function and structure was evaluated prior and following stress using a transgenic (TG) model of heart failure, generated by cardiac overexpression of the cytokine TNFalpha. Compared to the wild type, mitochondria from TG failing hearts demonstrated impaired oxidative phosphorylation, mitochondrial DNA damage, reduced mitochondrial creatine kinase activity, abnormal calcium handling, and altered ultrastructure. Under anoxia/reoxygenation or calcium stress, mitochondria from failing hearts suffered exacerbated energetic failure with pronounced cytochrome c release. Thus, mitochondria from TNFalpha-TG failing hearts demonstrate structural and functional abnormalities, with reduced tolerance to stress manifested by impaired bioenergetics and increased susceptibility to injury. This abnormal vulnerability to stress underscores the impact of mitochondrial dysfunction in the pathobiology of heart failure.
线粒体完整性对于维持心肌生物能量稳态至关重要,线粒体受到氧化或代谢挑战会引发细胞损伤。在心力衰竭中,心脏细胞承受着升高的压力,线粒体的脆弱性可能导致疾病状态。然而,心力衰竭中线粒体对应激的反应尚未明确。在此,使用细胞因子TNFα在心脏中过表达产生的心力衰竭转基因(TG)模型,在应激前后评估线粒体功能和结构。与野生型相比,TG衰竭心脏的线粒体表现出氧化磷酸化受损、线粒体DNA损伤、线粒体肌酸激酶活性降低、钙处理异常和超微结构改变。在缺氧/复氧或钙应激下,衰竭心脏的线粒体能量衰竭加剧,细胞色素c释放明显。因此,TNFα-TG衰竭心脏的线粒体表现出结构和功能异常,对应激的耐受性降低,表现为生物能量学受损和对损伤的易感性增加。这种对应激的异常易感性突出了线粒体功能障碍在心力衰竭病理生物学中的影响。