Kuznetsov Andrey V, Kunz Wolfram S, Saks Valdur, Usson Yves, Mazat Jean-Pierre, Letellier Thierry, Gellerich Frank N, Margreiter Raimund
Department of Transplant Surgery, University Hospital Innsbruck, Austria.
Anal Biochem. 2003 Aug 15;319(2):296-303. doi: 10.1016/s0003-2697(03)00326-9.
Long-term preservation of muscle mitochondria for consequent functional analysis is an important and still unresolved challenge in the clinical study of metabolic diseases and in the basic research of mitochondrial physiology. We here present a method for cryopreservation of mitochondria in various muscle types including human biopsies. Mitochondrial function was analyzed after freeze-thawing permeabilized muscle fibers using glycerol and dimethyl sulfoxide as cryoprotectant. Using optimal freeze-thawing conditions, high rates of adenosine 5(')-diphosphate-stimulated respiration and high respiratory control were observed, showing intactness of mitochondrial respiratory function after cryopreservation. Measurement of adenosine 5(')-triphosphate (ATP) formation showed normal rates of ATP synthesis and ATP/O ratios. Intactness of the outer mitochondrial membrane and functional coupling between mitochondrial creatine kinase and oxidative phosphorylation were verified by respiratory cytochrome c and creatine tests. Simultaneous confocal imaging of mitochondrial flavoproteins and nicotinamide adenine dinucleotide revealed normal intracellular arrangement and metabolic responses of mitochondria after freeze-thawing. The method therefore permits, after freezing and long-term storage of muscle samples, mitochondrial function to be estimated and energy metabolism to be monitored in situ. This will significantly expand the scope for screening and exchange of human biopsy samples between research centers, thus providing a new basis for functional analysis of mitochondrial defects in various diseases.
长期保存肌肉线粒体以便后续进行功能分析,这在代谢疾病的临床研究以及线粒体生理学的基础研究中都是一项重要且尚未解决的挑战。我们在此介绍一种用于冷冻保存包括人类活检样本在内的各种肌肉类型中线粒体的方法。使用甘油和二甲基亚砜作为冷冻保护剂,对冻融后的通透化肌纤维的线粒体功能进行了分析。在最佳冻融条件下,观察到较高的腺苷5′-二磷酸刺激呼吸速率和较高的呼吸控制率,表明冷冻保存后线粒体呼吸功能完好。腺苷5′-三磷酸(ATP)生成的测量显示ATP合成速率和ATP/O比值正常。通过呼吸细胞色素c和肌酸试验验证了线粒体外膜的完整性以及线粒体肌酸激酶与氧化磷酸化之间的功能偶联。线粒体黄素蛋白和烟酰胺腺嘌呤二核苷酸的同步共聚焦成像显示冻融后线粒体的细胞内排列和代谢反应正常。因此,该方法允许在肌肉样本冷冻和长期保存后,原位评估线粒体功能并监测能量代谢。这将显著扩大研究中心之间人类活检样本的筛选和交换范围,从而为各种疾病中线粒体缺陷的功能分析提供新的基础。