Department of Pathology, University of Alabama at Birmingham, Birmingham, AL 35294, USA.
Biochem Soc Trans. 2013 Feb 1;41(1):127-33. doi: 10.1042/BST20120231.
Mitochondrial dysfunction is associated with a broad range of pathologies including diabetes, ethanol toxicity, metabolic syndrome and cardiac failure. It is now becoming clear that maintaining mitochondrial quality through a balance between biogenesis, reserve capacity and mitophagy is critical in determining the response to metabolic or xenobiotic stress. In diseases associated with metabolic stress, such as Type II diabetes and non-alcoholic and alcoholic steatosis, the mitochondria are subjected to multiple 'hits' such as hypoxia and oxidative and nitrative stress, which can overwhelm the mitochondrial quality control pathways. In addition, the underlying mitochondrial genetics that evolved to accommodate high-energy demand, low-calorie supply environments may now be maladapted to modern lifestyles (low-energy demand, high-calorie environments). The pro-oxidant and pro-inflammatory environment of a sedentary western lifestyle has been associated with modified redox cell signalling pathways such as steatosis, hypoxic signalling, inflammation and fibrosis. These data suggest that loss of mitochondrial quality control is intimately associated with the aberrant activation of redox cell signalling pathways under pathological conditions. In the present short review, we discuss evidence from alcoholic liver disease supporting this concept, the insights obtained from experimental models and the application of bioenergetic-based therapeutics in the context of maintaining mitochondrial quality.
线粒体功能障碍与多种病理学相关,包括糖尿病、乙醇毒性、代谢综合征和心力衰竭。现在越来越清楚的是,通过生物发生、储备能力和线粒体自噬之间的平衡来维持线粒体质量对于决定对代谢或外源性应激的反应至关重要。在与代谢应激相关的疾病中,如 2 型糖尿病和非酒精性及酒精性脂肪变性,线粒体受到多种“打击”,如缺氧、氧化和硝化应激,这可能使线粒体质量控制途径不堪重负。此外,为适应高能需求、低能量供应环境而进化的潜在线粒体遗传学,现在可能无法适应现代生活方式(低能量需求、高能量环境)。久坐不动的西方生活方式的促氧化剂和促炎环境与异常的氧化还原细胞信号通路有关,如脂肪变性、缺氧信号、炎症和纤维化。这些数据表明,线粒体质量控制的丧失与病理条件下氧化还原细胞信号通路的异常激活密切相关。在本综述中,我们讨论了酒精性肝病的证据支持这一概念,以及从实验模型中获得的见解,并在维持线粒体质量的背景下应用基于生物能的治疗方法。