Lifestyle Factors, Mitochondrial Dynamics, and Neuroprotection

Katheryn Broman, Abigail U. Davis, J. May, Han-A Park
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引用次数: 1

Abstract

The brain requires vast amounts of energy to carry out neurotransmission; indeed, it is responsible for approximately one-fifth of the body’s energy consumption. Therefore, in order to understand functions of brain cells under both normal and pathological conditions, it is critical to elucidate dynamics of intracellular energy. The mitochondrion is the key intercellular organelle that controls neuronal energy and survival. Numerous studies have reported a correlation between altered mitochondrial function and brain-associated diseases; thus mitochondria may serve as a promising target for treating these conditions. In this chapter, we will discuss the mechanisms of mitochondrial production, movement, and degradation in order to understand accessibility of energy during physiological and pathological conditions of the brain. While research targeting molecular dynamics is promising, translation into clinical relevance based on bench research is challenging. For these reasons, we will also summarize lifestyle factors, including interventions and chronic comorbidities that disrupt mitochondrial dynamics. By determining lifestyle factors that are readily accessible, we can propose a new viewpoint for a synergistic and translational approach for neuroprotection.
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生活方式因素、线粒体动力学和神经保护
大脑需要大量的能量来进行神经传递;事实上,它消耗了人体大约五分之一的能量。因此,为了了解正常和病理条件下脑细胞的功能,阐明细胞内能量的动态是至关重要的。线粒体是控制神经元能量和存活的关键细胞间细胞器。许多研究报告了线粒体功能改变与脑相关疾病之间的相关性;因此,线粒体可能是治疗这些疾病的一个有希望的靶点。在本章中,我们将讨论线粒体的产生、运动和降解机制,以便了解大脑生理和病理状态下能量的可及性。虽然以分子动力学为目标的研究很有希望,但基于实验研究的临床相关性的转化是具有挑战性的。由于这些原因,我们还将总结生活方式因素,包括干预和慢性合并症,破坏线粒体动力学。通过确定容易获得的生活方式因素,我们可以为神经保护的协同和转化方法提出新的观点。
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