Neuroscience and Signalling Laboratory, Institute of Biomedicine (iBiMED), Department of Medical Sciences, University of Aveiro, Portugal.
Medical Sciences Department, University of Aveiro, Portugal.
FEBS Lett. 2022 May;596(9):1095-1110. doi: 10.1002/1873-3468.14298. Epub 2022 Feb 3.
Mitochondria are associated with various cellular activities critical to homeostasis, particularly in the nervous system. The plastic architecture of the mitochondrial network and its dynamic structure play crucial roles in ensuring that varying energetic demands are rapidly met to maintain neuronal and axonal energy homeostasis. Recent evidence associates aging and neurodegeneration with anomalous neuronal metabolism as age-dependent alterations of neuronal metabolism are now believed to occur prior to neurodegeneration. The brain has a high energy demand, which makes it particularly sensitive to mitochondrial dysfunction. Distinct cellular events causing oxidative stress or disruption of metabolism and mitochondrial homeostasis can trigger a neuropathology. This review explores the bioenergetic hypothesis for the neurodegenerative pathomechanisms, discussing factors leading to age-related brain hypometabolism and its contribution to cognitive decline. Recent research on the mitochondrial network in healthy nervous system cells, its response to stress, and how it is affected by pathology, as well as current contributions to novel therapeutic approaches will be highlighted.
线粒体与许多对维持内稳态至关重要的细胞活动有关,尤其是在神经系统中。线粒体网络的可塑性结构及其动态结构在确保快速满足不同的能量需求以维持神经元和轴突能量内稳态方面起着关键作用。最近的证据将衰老和神经退行性变与异常神经元代谢联系起来,因为现在认为神经元代谢的年龄依赖性改变发生在神经退行性变之前。大脑的能量需求很高,这使其特别容易受到线粒体功能障碍的影响。导致氧化应激或代谢和线粒体内稳态破坏的不同细胞事件会引发神经病理学。本综述探讨了神经退行性变发病机制的生物能量假说,讨论了导致与年龄相关的大脑低代谢及其对认知能力下降的贡献的因素。还将重点介绍健康神经系统细胞中线粒体网络的最新研究、其对压力的反应以及病理对其的影响,以及目前对新治疗方法的贡献。