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使用 Percoll 密度梯度离心法纯化功能性小鼠骨骼肌线粒体。

Purification of functional mouse skeletal muscle mitochondria using percoll density gradient centrifugation.

机构信息

MaineHealth Institute for Research, 81 Research Drive, Scarborough, ME, United States of America.

Graduate School of Biomedical Sciences and Engineering, University of Maine, Orono, ME, United States of America.

出版信息

BMC Res Notes. 2023 Sep 30;16(1):243. doi: 10.1186/s13104-023-06519-4.

Abstract

OBJECTIVE

Our goal was to isolate purified mitochondria from mouse skeletal muscle using a Percoll density gradient and to assess bioenergetic function and purity via Seahorse Extracellular Flux (XF) Analyses and mass spectrometry.

RESULTS

Mitochondria isolated from murine quadriceps femoris skeletal muscle using a Percoll density gradient method allowed for minimally contaminated preparations with time from tissue harvest to mitochondrial isolation and quantification in about 3-4 h. Percoll purification from 100 to 200 mg fresh tissue yielded ~ 200-400 ug protein. Mitochondrial bioenergetics evaluated using the Seahorse XFe96 analyzer, a high-throughput respirometry platform, showed optimum mitochondrial input at 500 ng with respiratory control ratio ranging from 3.9 to 7.1 using various substrates demonstrating a high degree of functionality. Furthermore, proteomic analysis of Percoll-enriched mitochondria isolated from skeletal muscle using this method showed significant enrichment of mitochondrial proteins indicating high sample purity. This study established a methodology that ensures sufficient high quality mitochondria for downstream analyses such as mitochondrial bioenergetics and proteomics.

摘要

目的

本研究旨在使用 Percoll 密度梯度法从鼠骨骼肌中分离纯化线粒体,并通过 Seahorse 细胞外通量(XF)分析和质谱法评估其生物能量学功能和纯度。

结果

使用 Percoll 密度梯度法从鼠股四头肌骨骼肌中分离的线粒体,可在组织收获至线粒体分离和定量的 3-4 小时内,获得最小污染的制备物。从 100 至 200mg 新鲜组织中纯化 Percoll,可获得约 200-400ug 蛋白。使用 Seahorse XFe96 分析仪(一种高通量呼吸仪平台)评估线粒体生物能量学,以 500ng 的最佳线粒体输入量,呼吸控制比范围为 3.9 至 7.1,使用各种底物显示出高度的功能。此外,使用该方法从骨骼肌中分离的 Percoll 富集线粒体进行蛋白质组学分析表明,线粒体蛋白显著富集,表明样品纯度高。本研究建立了一种方法,可确保获得足够数量的高质量线粒体用于下游分析,如线粒体生物能量学和蛋白质组学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9415/10544150/a63375cb582c/13104_2023_6519_Fig1_HTML.jpg

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