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Shibata, Munehiko

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Shibata

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Munehiko

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Shibata, Munehiko

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  • Publication

    Metabolism Supports Macrophage Activation

    (Frontiers Media S.A., 2017) Langston, P. Kent; Shibata, Munehiko; Horng, Tiffany

    Macrophages are found in most tissues of the body, where they have tissue- and context-dependent roles in maintaining homeostasis as well as coordinating adaptive responses to various stresses. Their capacity for specialized functions is controlled by polarizing signals, which activate macrophages by upregulating transcriptional programs that encode distinct effector functions. An important conceptual advance in the field of macrophage biology, emerging from recent studies, is that macrophage activation is critically supported by metabolic shifts. Metabolic shifts fuel multiple aspects of macrophage activation, and preventing these shifts impairs appropriate activation. These findings raise the exciting possibility that macrophage functions in various contexts could be regulated by manipulating their metabolism. Here, we review the rapidly evolving field of macrophage metabolism, discussing how polarizing signals trigger metabolic shifts and how these shifts enable appropriate activation and sustain effector activities. We also discuss recent studies indicating that the mitochondria are central hubs in inflammatory macrophage activation.

  • Publication

    Glycerol Phosphate Shuttle Enzyme GPD2 Regulates Macrophage Inflammatory Responses

    (Springer Science and Business Media LLC, 2019-08-05) Nambu, Aya; Shibata, Munehiko; Lei, Jiahui; Xu, Peining; Jiang, Helen; Horng, Tiffany; Langston, Kent; Jung, Jonathan; Aksoylar, Halil-Ibrahim; Doan, Mary; MacArthur, Michael; Gao, Xia; Kong, Yong; Chouchani, Edward; Locasale, Jason; Snyder, Nathaniel

    Macrophages are activated during microbial infection to coordinate inflammatory responses and host defense. Here we find that in macrophages activated by bacterial lipopolysaccharide (LPS), mitochondrial glycerol 3-phosphate dehydrogenase (GPD2) regulates glucose oxidation to drive inflammatory responses. GPD2, a component of the glycerol phosphate shuttle, boosts glucose oxidation to fuel the production of acetyl coenzyme A, acetylation of histones and induction of genes encoding inflammatory mediators. While acute exposure to LPS drives macrophage activation, prolonged exposure to LPS triggers tolerance to LPS, where macrophages induce immunosuppression to limit the detrimental effects of sustained inflammation. The shift in the inflammatory response is modulated by GPD2, which coordinates a shutdown of oxidative metabolism; this limits the availability of acetyl coenzyme A for histone acetylation at genes encoding inflammatory mediators and thus contributes to the suppression of inflammatory responses. Therefore, GPD2 and the glycerol phosphate shuttle integrate the extent of microbial stimulation with glucose oxidation to balance the beneficial and detrimental effects of the inflammatory response.