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A novel cell-free mitochondrial fusion assay amenable for high-throughput screenings of fusion modulators

机译:适用于融合调节剂高通量筛选的新型无细胞线粒体融合测定

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Background Mitochondria are highly dynamic organelles whose morphology and position within the cell is tightly coupled to metabolic function. There is a limited list of essential proteins that regulate mitochondrial morphology and the mechanisms that govern mitochondrial dynamics are poorly understood. However, recent evidence indicates that the core machinery that governs mitochondrial dynamics is linked within complex intracellular signalling cascades, including apoptotic pathways, cell cycle transitions and nuclear factor kappa B activation. Given the emerging importance of mitochondrial plasticity in cell signalling pathways and metabolism, it is essential that we develop tools to quantitatively analyse the processes of fission and fusion. In terms of mitochondrial fusion, the field currently relies upon on semi-quantitative assays which, even under optimal conditions, are labour-intensive, low-throughput and require complex imaging techniques. Results In order to overcome these technical limitations, we have developed a new, highly quantitative cell-free assay for mitochondrial fusion in mammalian cells. This assay system has allowed us to establish the energetic requirements for mitochondrial fusion. In addition, our data reveal a dependence on active protein phosphorylation for mitochondrial fusion, confirming emerging evidence that mitochondrial fusion is tightly integrated within the global cellular response to signaling events. Indeed, we have shown that cytosol derived from cells stimulated with different triggers either enhance or inhibit the cell-free fusion reaction. Conclusions The adaptation of this system to high-throughput analysis will provide an unprecedented opportunity to identify and characterize novel regulatory factors. In addition, it provides a framework for a detailed mechanistic analysis of the process of mitochondrial fusion and the various axis of regulation that impinge upon this process in a wide range of cellular conditions. See Commentary: http://www.biomedcentral.com/1741-7007/8/99
机译:背景线粒体是高度动态的细胞器,其细胞内的形态和位置与代谢功能紧密相关。调节线粒体形态的必需蛋白质数量有限,而控制线粒体动力学的机制知之甚少。但是,最近的证据表明,控制线粒体动力学的核心机制与复杂的细胞内信号传导级联联系在一起,包括凋亡途径,细胞周期转换和核因子κB活化。鉴于线粒体可塑性在细胞信号通路和代谢中的重要性日渐重要,我们必须开发出定量分析裂变和融合过程的工具,这一点至关重要。就线粒体融合而言,该领域目前依赖于半定量测定,即使在最佳条件下,该测定也是劳动密集型,低通量且需要复杂的成像技术。结果为了克服这些技术局限性,我们开发了一种新的高度定量的无细胞测定方法,用于哺乳动物细胞中的线粒体融合。该测定系统使我们能够确定线粒体融合的能量需求。此外,我们的数据揭示了线粒体融合对活性蛋白磷酸化的依赖性,证实了新的证据表明线粒体融合紧密整合在全球细胞对信号事件的反应中。确实,我们已经表明,源自用不同触发物刺激的细胞的胞质溶胶可以增强或抑制无细胞融合反应。结论该系统适用于高通量分析将为鉴定和表征新型调控因子提供前所未有的机会。此外,它为线粒体融合过程的详细机理分析以及在广泛的细胞条件下影响该过程的各种调控轴提供了框架。见评论:http://www.biomedcentral.com/1741-7007/8/99

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