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Pharmacologic or Genetic Targeting of Glutamine Synthetase Skews Macrophages toward an M1-like Phenotype and Inhibits Tumor Metastasis

Glutamine-synthetase (GS), the glutamine-synthesizing enzyme from glutamate, controls important events, including the release of inflammatory mediators, mammalian target of rapamycin (mTOR) activation, and autophagy. However, its role in macrophages remains elusive. We report that pharmacologic inhi...

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Autores principales: Palmieri, Erika M., Menga, Alessio, Martín-Pérez, Rosa, Quinto, Annamaria, Riera-Domingo, Carla, De Tullio, Giacoma, Hooper, Douglas C., Lamers, Wouter H., Ghesquière, Bart, McVicar, Daniel W., Guarini, Attilio, Mazzone, Massimiliano, Castegna, Alessandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5575233/
https://www.ncbi.nlm.nih.gov/pubmed/28813676
http://dx.doi.org/10.1016/j.celrep.2017.07.054
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author Palmieri, Erika M.
Menga, Alessio
Martín-Pérez, Rosa
Quinto, Annamaria
Riera-Domingo, Carla
De Tullio, Giacoma
Hooper, Douglas C.
Lamers, Wouter H.
Ghesquière, Bart
McVicar, Daniel W.
Guarini, Attilio
Mazzone, Massimiliano
Castegna, Alessandra
author_facet Palmieri, Erika M.
Menga, Alessio
Martín-Pérez, Rosa
Quinto, Annamaria
Riera-Domingo, Carla
De Tullio, Giacoma
Hooper, Douglas C.
Lamers, Wouter H.
Ghesquière, Bart
McVicar, Daniel W.
Guarini, Attilio
Mazzone, Massimiliano
Castegna, Alessandra
author_sort Palmieri, Erika M.
collection PubMed
description Glutamine-synthetase (GS), the glutamine-synthesizing enzyme from glutamate, controls important events, including the release of inflammatory mediators, mammalian target of rapamycin (mTOR) activation, and autophagy. However, its role in macrophages remains elusive. We report that pharmacologic inhibition of GS skews M2-polarized macrophages toward the M1-like phenotype, characterized by reduced intracellular glutamine and increased succinate with enhanced glucose flux through glycolysis, which could be partly related to HIF1α activation. As a result of these metabolic changes and HIF1α accumulation, GS-inhibited macrophages display an increased capacity to induce T cell recruitment, reduced T cell suppressive potential, and an impaired ability to foster endothelial cell branching or cancer cell motility. Genetic deletion of macrophagic GS in tumor-bearing mice promotes tumor vessel pruning, vascular normalization, accumulation of cytotoxic T cells, and metastasis inhibition. These data identify GS activity as mediator of the proangiogenic, immunosuppressive, and pro-metastatic function of M2-like macrophages and highlight the possibility of targeting this enzyme in the treatment of cancer metastasis.
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spelling pubmed-55752332017-09-06 Pharmacologic or Genetic Targeting of Glutamine Synthetase Skews Macrophages toward an M1-like Phenotype and Inhibits Tumor Metastasis Palmieri, Erika M. Menga, Alessio Martín-Pérez, Rosa Quinto, Annamaria Riera-Domingo, Carla De Tullio, Giacoma Hooper, Douglas C. Lamers, Wouter H. Ghesquière, Bart McVicar, Daniel W. Guarini, Attilio Mazzone, Massimiliano Castegna, Alessandra Cell Rep Article Glutamine-synthetase (GS), the glutamine-synthesizing enzyme from glutamate, controls important events, including the release of inflammatory mediators, mammalian target of rapamycin (mTOR) activation, and autophagy. However, its role in macrophages remains elusive. We report that pharmacologic inhibition of GS skews M2-polarized macrophages toward the M1-like phenotype, characterized by reduced intracellular glutamine and increased succinate with enhanced glucose flux through glycolysis, which could be partly related to HIF1α activation. As a result of these metabolic changes and HIF1α accumulation, GS-inhibited macrophages display an increased capacity to induce T cell recruitment, reduced T cell suppressive potential, and an impaired ability to foster endothelial cell branching or cancer cell motility. Genetic deletion of macrophagic GS in tumor-bearing mice promotes tumor vessel pruning, vascular normalization, accumulation of cytotoxic T cells, and metastasis inhibition. These data identify GS activity as mediator of the proangiogenic, immunosuppressive, and pro-metastatic function of M2-like macrophages and highlight the possibility of targeting this enzyme in the treatment of cancer metastasis. Cell Press 2017-08-15 /pmc/articles/PMC5575233/ /pubmed/28813676 http://dx.doi.org/10.1016/j.celrep.2017.07.054 Text en © 2017 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Palmieri, Erika M.
Menga, Alessio
Martín-Pérez, Rosa
Quinto, Annamaria
Riera-Domingo, Carla
De Tullio, Giacoma
Hooper, Douglas C.
Lamers, Wouter H.
Ghesquière, Bart
McVicar, Daniel W.
Guarini, Attilio
Mazzone, Massimiliano
Castegna, Alessandra
Pharmacologic or Genetic Targeting of Glutamine Synthetase Skews Macrophages toward an M1-like Phenotype and Inhibits Tumor Metastasis
title Pharmacologic or Genetic Targeting of Glutamine Synthetase Skews Macrophages toward an M1-like Phenotype and Inhibits Tumor Metastasis
title_full Pharmacologic or Genetic Targeting of Glutamine Synthetase Skews Macrophages toward an M1-like Phenotype and Inhibits Tumor Metastasis
title_fullStr Pharmacologic or Genetic Targeting of Glutamine Synthetase Skews Macrophages toward an M1-like Phenotype and Inhibits Tumor Metastasis
title_full_unstemmed Pharmacologic or Genetic Targeting of Glutamine Synthetase Skews Macrophages toward an M1-like Phenotype and Inhibits Tumor Metastasis
title_short Pharmacologic or Genetic Targeting of Glutamine Synthetase Skews Macrophages toward an M1-like Phenotype and Inhibits Tumor Metastasis
title_sort pharmacologic or genetic targeting of glutamine synthetase skews macrophages toward an m1-like phenotype and inhibits tumor metastasis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5575233/
https://www.ncbi.nlm.nih.gov/pubmed/28813676
http://dx.doi.org/10.1016/j.celrep.2017.07.054
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