Department of Pharmacology and Toxicology, National Institute of Pharmaceutical Education and Research (NIPER)-Hyderabad, Balanagar, Hyderabad, Telangana, 500037, India.
Mol Biol Rep. 2021 May;48(5):4721-4731. doi: 10.1007/s11033-021-06408-8. Epub 2021 May 22.
Diabetes mellitus (DM) is a chronic, metabolic condition characterized by excessive blood glucose that causes perturbations in physiological functioning of almost all the organs of human body. This devastating metabolic disease has its implications in cognitive decline, heart damage, renal, retinal and neuronal complications that severely affects quality of life and associated with decreased life expectancy. Mitochondria possess adaptive mechanisms to meet the cellular energy demand and combat cellular stress. In recent years mitochondrial homeostasis has been point of focus where several mechanisms regulating mitochondrial health and function are evaluated. Mitochondrial dynamics plays crucial role in maintaining healthy mitochondria in cell under physiological as well as stress condition. Mitochondrial dynamics and corresponding regulating mechanisms have been implicated in progression of metabolic disorders including diabetes and its complications. In current review we have discussed about role of mitochondrial dynamics under physiological and pathological conditions. Also, modulation of mitochondrial fission and fusion in diabetic complications are described. The available literature supports mitochondrial remodelling as reliable target for diabetic complications.
糖尿病(DM)是一种慢性代谢性疾病,其特征是血糖过高,导致人体几乎所有器官的生理功能紊乱。这种破坏性的代谢疾病会导致认知能力下降、心脏损伤、肾脏、视网膜和神经元并发症,严重影响生活质量,并与预期寿命缩短有关。线粒体具有适应机制来满足细胞的能量需求并对抗细胞应激。近年来,线粒体稳态已成为研究重点,评估了几种调节线粒体健康和功能的机制。线粒体动力学在维持生理和应激条件下细胞内健康线粒体方面起着至关重要的作用。线粒体动力学及其相应的调节机制与代谢紊乱(包括糖尿病及其并发症)的进展有关。在当前的综述中,我们讨论了线粒体动力学在生理和病理条件下的作用。还描述了糖尿病并发症中线粒体分裂和融合的调节。现有文献支持线粒体重塑作为糖尿病并发症的可靠靶点。