Department of Biotechnology, School of Bio Sciences and Technology (SBST), Vellore Institute of Technology, Vellore, 632014, India.
Medical Laboratory Technology Department, College of Applied Medical Sciences, Jazan University, Jazan, 45142, Saudi Arabia.
Curr Neuropharmacol. 2023;21(6):1433-1449. doi: 10.2174/1570159X21666230303123555.
Mitochondria regulate multiple aspects of neuronal development, physiology, plasticity, and pathology through their regulatory roles in bioenergetic, calcium, redox, and cell survival/death signalling. While several reviews have addressed these different aspects, a comprehensive discussion focussing on the relevance of isolated brain mitochondria and their utilities in neuroscience research has been lacking. This is relevant because the employment of isolated mitochondria rather than their in situ functional evaluation, offers definitive evidence of organelle-specificity, negating the interference from extra mitochondrial cellular factors/signals. This mini-review was designed primarily to explore the commonly employed in organello analytical assays for the assessment of mitochondrial physiology and its dysfunction, with a particular focus on neuroscience research. The authors briefly discuss the methodologies for biochemical isolation of mitochondria, their quality assessment, and cryopreservation. Further, the review attempts to accumulate the key biochemical protocols for in organello assessment of a multitude of mitochondrial functions critical for neurophysiology, including assays for bioenergetic activity, calcium and redox homeostasis, and mitochondrial protein translation. The purpose of this review is not to examine each and every method or study related to the functional assessment of isolated brain mitochondria, but rather to assemble the commonly used protocols of in organello mitochondrial research in a single publication. The hope is that this review will provide a suitable platform aiding neuroscientists to choose and apply the required protocols and tools to address their particular mechanistic, diagnostic, or therapeutic question dealing within the confines of the research area of mitochondrial patho-physiology in the neuronal perspective.
线粒体通过其在能量代谢、钙、氧化还原和细胞存活/死亡信号中的调节作用,调节神经元发育、生理、可塑性和病理学的多个方面。虽然有几篇综述已经讨论了这些不同的方面,但缺乏对专注于分离脑线粒体及其在神经科学研究中的应用的综合讨论。这是相关的,因为使用分离的线粒体而不是对其进行原位功能评估,可以提供细胞器特异性的明确证据,排除了来自线粒体以外的细胞因素/信号的干扰。本综述主要旨在探讨用于评估线粒体生理学及其功能障碍的常用细胞器分析测定法,特别关注神经科学研究。作者简要讨论了生化分离线粒体的方法、其质量评估和冷冻保存。此外,该综述试图积累用于细胞器评估对神经生理学至关重要的多种线粒体功能的关键生化方案,包括生物能量活性、钙和氧化还原平衡以及线粒体蛋白翻译的测定。本综述的目的不是检查与分离脑线粒体功能评估相关的每一种方法或研究,而是将细胞器线粒体研究中常用的方案汇集在一篇出版物中。希望本综述将为神经科学家提供一个合适的平台,帮助他们选择和应用所需的方案和工具,以解决他们在神经元视角下线粒体病理生理学研究领域内的特定机制、诊断或治疗问题。