Functional multi-organelle units control inflammatory lipid metabolism of macrophages

IF 17.3 1区 生物学 Q1 CELL BIOLOGY Nature Cell Biology Pub Date : 2024-07-05 DOI:10.1038/s41556-024-01457-0
Julia A. Zimmermann, Kerstin Lucht, Manuel Stecher, Chahat Badhan, Katharina M. Glaser, Maximilian W. Epple, Lena R. Koch, Ward Deboutte, Thomas Manke, Klaus Ebnet, Frauke Brinkmann, Olesja Fehler, Thomas Vogl, Ev-Marie Schuster, Anna Bremser, Joerg M. Buescher, Angelika S. Rambold
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Abstract

Eukaryotic cells contain several membrane-separated organelles to compartmentalize distinct metabolic reactions. However, it has remained unclear how these organelle systems are coordinated when cells adapt metabolic pathways to support their development, survival or effector functions. Here we present OrgaPlexing, a multi-spectral organelle imaging approach for the comprehensive mapping of six key metabolic organelles and their interactions. We use this analysis on macrophages, immune cells that undergo rapid metabolic switches upon sensing bacterial and inflammatory stimuli. Our results identify lipid droplets (LDs) as primary inflammatory responder organelle, which forms three- and four-way interactions with other organelles. While clusters with endoplasmic reticulum (ER) and mitochondria (mitochondria–ER–LD unit) help supply fatty acids for LD growth, the additional recruitment of peroxisomes (mitochondria–ER–peroxisome–LD unit) supports fatty acid efflux from LDs. Interference with individual components of these units has direct functional consequences for inflammatory lipid mediator synthesis. Together, we show that macrophages form functional multi-organellar units to support metabolic adaptation and provide an experimental strategy to identify organelle-metabolic signalling hubs. Zimmermann et al. present OrgaPlexing, an imaging pipeline mapping metabolic organelles and their interactions. They find changes in mitochondria, ER, peroxisome and lipid droplet dynamics that impact macrophage inflammatory lipid mediator synthesis.

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多细胞器功能单元控制巨噬细胞的炎症脂质代谢。
真核细胞包含多个膜分离细胞器,用于分隔不同的代谢反应。然而,当细胞调整代谢途径以支持其发育、存活或效应功能时,这些细胞器系统是如何协调的仍不清楚。在这里,我们介绍一种多光谱细胞器成像方法--OrgaPlexing,用于全面绘制六个关键代谢细胞器及其相互作用的图谱。我们将这种分析用于巨噬细胞,这种免疫细胞在感受到细菌和炎症刺激后会迅速进行新陈代谢转换。我们的研究结果发现,脂滴(LDs)是主要的炎症反应器细胞器,它与其他细胞器形成三向和四向相互作用。与内质网(ER)和线粒体(线粒体-ER-LD 单元)组成的簇有助于为 LD 的生长提供脂肪酸,而过氧物酶体(线粒体-ER-过氧物酶体-LD 单元)的额外招募则支持脂肪酸从 LD 流出。干扰这些单元的各个组成部分会直接影响炎症脂质介质的合成。综上所述,我们表明巨噬细胞形成了功能性多细胞器单元以支持代谢适应,并提供了一种实验策略来识别细胞器-代谢信号枢纽。
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来源期刊
Nature Cell Biology
Nature Cell Biology 生物-细胞生物学
CiteScore
28.40
自引率
0.90%
发文量
219
审稿时长
3 months
期刊介绍: Nature Cell Biology, a prestigious journal, upholds a commitment to publishing papers of the highest quality across all areas of cell biology, with a particular focus on elucidating mechanisms underlying fundamental cell biological processes. The journal's broad scope encompasses various areas of interest, including but not limited to: -Autophagy -Cancer biology -Cell adhesion and migration -Cell cycle and growth -Cell death -Chromatin and epigenetics -Cytoskeletal dynamics -Developmental biology -DNA replication and repair -Mechanisms of human disease -Mechanobiology -Membrane traffic and dynamics -Metabolism -Nuclear organization and dynamics -Organelle biology -Proteolysis and quality control -RNA biology -Signal transduction -Stem cell biology
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