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MEF2 Is an In Vivo Immune-Metabolic Switch

Infections disturb metabolic homeostasis in many contexts, but the underlying connections are not completely understood. To address this, we use paired genetic and computational screens in Drosophila to identify transcriptional regulators of immunity and pathology and their associated target genes a...

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Autores principales: Clark, Rebecca I., Tan, Sharon W.S., Péan, Claire B., Roostalu, Urmas, Vivancos, Valérie, Bronda, Kévin, Pilátová, Martina, Fu, Jingqi, Walker, David W., Berdeaux, Rebecca, Geissmann, Frédéric, Dionne, Marc S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3807682/
https://www.ncbi.nlm.nih.gov/pubmed/24075010
http://dx.doi.org/10.1016/j.cell.2013.09.007
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author Clark, Rebecca I.
Tan, Sharon W.S.
Péan, Claire B.
Roostalu, Urmas
Vivancos, Valérie
Bronda, Kévin
Pilátová, Martina
Fu, Jingqi
Walker, David W.
Berdeaux, Rebecca
Geissmann, Frédéric
Dionne, Marc S.
author_facet Clark, Rebecca I.
Tan, Sharon W.S.
Péan, Claire B.
Roostalu, Urmas
Vivancos, Valérie
Bronda, Kévin
Pilátová, Martina
Fu, Jingqi
Walker, David W.
Berdeaux, Rebecca
Geissmann, Frédéric
Dionne, Marc S.
author_sort Clark, Rebecca I.
collection PubMed
description Infections disturb metabolic homeostasis in many contexts, but the underlying connections are not completely understood. To address this, we use paired genetic and computational screens in Drosophila to identify transcriptional regulators of immunity and pathology and their associated target genes and physiologies. We show that Mef2 is required in the fat body for anabolic function and the immune response. Using genetic and biochemical approaches, we find that MEF2 is phosphorylated at a conserved site in healthy flies and promotes expression of lipogenic and glycogenic enzymes. Upon infection, this phosphorylation is lost, and the activity of MEF2 changes—MEF2 now associates with the TATA binding protein to bind a distinct TATA box sequence and promote antimicrobial peptide expression. The loss of phosphorylated MEF2 contributes to loss of anabolic enzyme expression in Gram-negative bacterial infection. MEF2 is thus a critical transcriptional switch in the adult fat body between metabolism and immunity.
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spelling pubmed-38076822013-10-25 MEF2 Is an In Vivo Immune-Metabolic Switch Clark, Rebecca I. Tan, Sharon W.S. Péan, Claire B. Roostalu, Urmas Vivancos, Valérie Bronda, Kévin Pilátová, Martina Fu, Jingqi Walker, David W. Berdeaux, Rebecca Geissmann, Frédéric Dionne, Marc S. Cell Article Infections disturb metabolic homeostasis in many contexts, but the underlying connections are not completely understood. To address this, we use paired genetic and computational screens in Drosophila to identify transcriptional regulators of immunity and pathology and their associated target genes and physiologies. We show that Mef2 is required in the fat body for anabolic function and the immune response. Using genetic and biochemical approaches, we find that MEF2 is phosphorylated at a conserved site in healthy flies and promotes expression of lipogenic and glycogenic enzymes. Upon infection, this phosphorylation is lost, and the activity of MEF2 changes—MEF2 now associates with the TATA binding protein to bind a distinct TATA box sequence and promote antimicrobial peptide expression. The loss of phosphorylated MEF2 contributes to loss of anabolic enzyme expression in Gram-negative bacterial infection. MEF2 is thus a critical transcriptional switch in the adult fat body between metabolism and immunity. Cell Press 2013-10-10 /pmc/articles/PMC3807682/ /pubmed/24075010 http://dx.doi.org/10.1016/j.cell.2013.09.007 Text en © 2013 The Authors https://creativecommons.org/licenses/by/3.0/ Open Access under CC BY 3.0 (https://creativecommons.org/licenses/by/3.0/) license
spellingShingle Article
Clark, Rebecca I.
Tan, Sharon W.S.
Péan, Claire B.
Roostalu, Urmas
Vivancos, Valérie
Bronda, Kévin
Pilátová, Martina
Fu, Jingqi
Walker, David W.
Berdeaux, Rebecca
Geissmann, Frédéric
Dionne, Marc S.
MEF2 Is an In Vivo Immune-Metabolic Switch
title MEF2 Is an In Vivo Immune-Metabolic Switch
title_full MEF2 Is an In Vivo Immune-Metabolic Switch
title_fullStr MEF2 Is an In Vivo Immune-Metabolic Switch
title_full_unstemmed MEF2 Is an In Vivo Immune-Metabolic Switch
title_short MEF2 Is an In Vivo Immune-Metabolic Switch
title_sort mef2 is an in vivo immune-metabolic switch
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3807682/
https://www.ncbi.nlm.nih.gov/pubmed/24075010
http://dx.doi.org/10.1016/j.cell.2013.09.007
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