测定海马试验中分离过氧化物酶体氧化能力的方法学。

Journal of biological methods Pub Date : 2022-06-08 eCollection Date: 2022-01-01 DOI:10.14440/jbm.2022.374
Brittany A Stork, Adam Dean, Brian York
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引用次数: 1

摘要

细胞能量的调节是一个复杂的过程,需要多个细胞器的协同作用。从历史上看,研究的重点是了解细胞能量的利用和生产已经压倒性地集中在线粒体。虽然线粒体占细胞内能量生产的大部分,但它们本身无法维持细胞的可变能量需求。过氧化物酶体最近作为补充和改善线粒体性能的次级代谢细胞器出现。虽然线粒体和过氧化物酶体在结构上是不同的细胞器,但它们具有关键的功能相似性,这使得有可能重新利用最初用于线粒体评估的现成工具,以一种新的方式询问过氧化物酶体的代谢功能。为此,我们在此报告了使用Agilent Seahorse®系统分离、纯化和实时代谢评估β-氧化过氧化物酶体的程序。当这些方案一起使用时,为测量过氧化物酶体对细胞和有机体代谢的贡献提供了一种直接、可重复和高度可量化的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Methodology for measuring oxidative capacity of isolated peroxisomes in the Seahorse assay.

The regulation of cellular energetics is a complex process that requires the coordinated function of multiple organelles. Historically, studies focused on understanding cellular energy utilization and production have been overwhelmingly concentrated on the mitochondria. While mitochondria account for the majority of intracellular energy production, they alone are incapable of maintaining the variable energetic demands of the cell. The peroxisome has recently emerged as a secondary metabolic organelle that complements and improves mitochondrial performance. Although mitochondria and peroxisomes are structurally distinct organelles, they share key functional similarities that allows for the potential to repurpose readily available tools initially developed for mitochondrial assessment to interrogate peroxisomal metabolic function in a novel manner. To this end, we report here on procedures for the isolation, purification and real-time metabolic assessment of peroxisomal β-oxidation using the Agilent Seahorse® system. When used together, these protocols provide a straightforward, reproducible and highly quantifiable method for measuring the contributions of peroxisomes to cellular and organismal metabolism.

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