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Role of mitochondrial dysfunction and dysregulation of Ca2+ homeostasis in the pathophysiology of insulin resistance and type 2 diabetes

机译:线粒体功能障碍和Ca2 +稳态失调在胰岛素抵抗和2型糖尿病的病理生理中的作用

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摘要

Metabolic diseases such as obesity, type 2 diabetes (T2D) and insulin resistance have attracted great attention from biomedical researchers and clinicians because of the astonishing increase in its prevalence. Decrease in the capacity of oxidative metabolism and mitochondrial dysfunction are a major contributor to the development of these metabolic disorders. Recent studies indicate that alteration of intracellular Ca2+ levels and downstream Ca2+-dependent signaling pathways appear to modulate gene transcription and the activities of many enzymes involved in cellular metabolism. Ca2+ uptake into mitochondria modulates a number of Ca2+-dependent proteins and enzymes participating in fatty acids metabolism, tricarboxylic acid cycle, oxidative phosphorylation and apoptosis in response to physiological and pathophysiological conditions. Mitochondrial calcium uniporter (MCU) complex has been identified as a major channel located on the inner membrane to regulate Ca2+ transport into mitochondria. Recent studies of MCU complex have increased our understanding of the modulation of mitochondrial function and retrograde signaling to the nucleus via regulation of the mitochondrial Ca2+ level. Mitochondria couple cellular metabolic state by regulating not only their own Ca2+ levels, but also influence the entire network of cellular Ca2+ signaling. The mitochondria-associated ER membranes (MAMs), which are specialized structures between ER and mitochondria, are responsible for efficient communication between these organelles. Defects in the function or structure of MAMs have been observed in affected tissue cells in metabolic disease or neurodegenerative disorders. We demonstrated that dysregulation of intracellular Ca2+ homeostasis due to mitochondrial dysfunction or defects in the function of MAMs are involved in the pathogenesis of insulin insensitivity and T2D. These observations suggest that mitochondrial dysfunction and disturbance of Ca2+ homeostasis warrant further studies to assist the development of therapeutics for prevention and medication of insulin resistance and T2D.
机译:肥胖,2型糖尿病(T2D)和胰岛素抵抗等代谢性疾病由于其患病率的惊人提高而引起了生物医学研究人员和临床医生的高度关注。氧化代谢能力的降低和线粒体功能障碍是导致这些代谢疾病的主要因素。最近的研究表明,细胞内Ca 2 + 水平和下游Ca 2 + 依赖性信号通路的改变似乎可以调节基因转录和参与细胞代谢的许多酶的活性。 Ca 2 + 吸收到线粒体中可调节许多Ca 2 + 依赖性蛋白和酶,参与脂肪酸代谢,三羧酸循环,氧化磷酸化和细胞凋亡和病理生理状况。线粒体钙单向转运体(MCU)被认为是调节内膜中Ca 2 + 向线粒体转运的主要通道。最近对MCU复合物的研究增加了我们对线粒体功能调节和通过调节线粒体Ca 2 + 水平向核逆行信号的理解。线粒体不仅通过调节自身的Ca 2 + 水平来耦合细胞代谢状态,而且还影响整个细胞Ca 2 + 信号传导网络。线粒体相关的ER膜(MAMs)是ER和线粒体之间的特殊结构,负责这些细胞器之间的有效通讯。在代谢性疾病或神经退行性疾病中,在受影响的组织细胞中已观察到MAM功能或结构的缺陷。我们证明,由于线粒体功能障碍或MAM功能缺陷引起的细胞内Ca 2 + 稳态失调与胰岛素敏感性和T2D的发病有关。这些观察结果表明线粒体功能障碍和Ca 2 + 体内稳态紊乱值得进一步研究,以协助开发预防和治疗胰岛素抵抗和T2D的疗法。

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