Department of Neurology and Neurosurgery, Montreal Neurological Institute, McGill University, Montreal, QC, Canada.
Wellcome Centre for Mitochondrial Research, Translational and Clinical Research Institute, Newcastle University, Newcastle upon Tyne, UK.
Trends Neurosci. 2023 Feb;46(2):137-152. doi: 10.1016/j.tins.2022.12.001. Epub 2023 Jan 10.
Efforts to understand how mitochondrial dysfunction contributes to neurodegeneration have primarily focussed on the role of mitochondria in neuronal energy metabolism. However, progress in understanding the etiological nature of emerging mitochondrial functions has yielded new ideas about the mitochondrial basis of neurological disease. Studies aimed at deciphering how mitochondria signal through interorganellar contacts, vesicular trafficking, and metabolic transmission have revealed that mitochondrial regulation of immunometabolism, cell death, organelle dynamics, and neuroimmune interplay are critical determinants of neural health. Moreover, the homeostatic mechanisms that exist to protect mitochondrial health through turnover via nanoscale proteostasis and lysosomal degradation have become integrated within mitochondrial signalling pathways to support metabolic plasticity and stress responses in the nervous system. This review highlights how these distinct mitochondrial pathways converge to influence neurological health and contribute to disease pathology.
人们努力研究线粒体功能障碍如何导致神经退行性变,主要集中在线粒体在神经元能量代谢中的作用。然而,对新兴线粒体功能的病因本质的理解方面的进展,为神经系统疾病的线粒体基础提供了新的思路。旨在破译线粒体如何通过细胞器间接触、囊泡运输和代谢传递进行信号传递的研究表明,线粒体对免疫代谢、细胞死亡、细胞器动态和神经免疫相互作用的调节,是神经健康的关键决定因素。此外,通过纳米级蛋白质稳态和溶酶体降解的 turnover 来保护线粒体健康的体内平衡机制,已整合到线粒体信号通路中,以支持神经系统的代谢可塑性和应激反应。这篇综述强调了这些不同的线粒体途径如何汇聚影响神经健康并导致疾病病理。