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IFNγ regulates NAD(+) metabolism to promote the respiratory burst in human monocytes

Interferon γ (IFNγ) is an essential and pleiotropic activator of human monocytes, but little is known about the changes in cellular metabolism required for IFNγ-induced activation. We sought to elucidate the mechanisms by which IFNγ reprograms monocyte metabolism to support its immunologic activitie...

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Autores principales: McCann, Katelyn J., Christensen, Stephen M., Colby, Devon H., McGuire, Peter J., Myles, Ian A., Zerbe, Christa S., Dalgard, Clifton L., Sukumar, Gauthaman, Leonard, Warren J., McCormick, Beth A., Holland, Steven M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Hematology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9631555/
https://www.ncbi.nlm.nih.gov/pubmed/35500221
http://dx.doi.org/10.1182/bloodadvances.2021005776
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author McCann, Katelyn J.
Christensen, Stephen M.
Colby, Devon H.
McGuire, Peter J.
Myles, Ian A.
Zerbe, Christa S.
Dalgard, Clifton L.
Sukumar, Gauthaman
Leonard, Warren J.
McCormick, Beth A.
Holland, Steven M.
author_facet McCann, Katelyn J.
Christensen, Stephen M.
Colby, Devon H.
McGuire, Peter J.
Myles, Ian A.
Zerbe, Christa S.
Dalgard, Clifton L.
Sukumar, Gauthaman
Leonard, Warren J.
McCormick, Beth A.
Holland, Steven M.
author_sort McCann, Katelyn J.
collection PubMed
description Interferon γ (IFNγ) is an essential and pleiotropic activator of human monocytes, but little is known about the changes in cellular metabolism required for IFNγ-induced activation. We sought to elucidate the mechanisms by which IFNγ reprograms monocyte metabolism to support its immunologic activities. We found that IFNγ increased oxygen consumption rates (OCR) in monocytes, indicative of reactive oxygen species generation by both mitochondria and nicotinamide adenine dinucleotide phosphate (NADPH) oxidase. Transcriptional profiling revealed that this oxidative phenotype was driven by IFNγ-induced reprogramming of NAD(+) metabolism, which is dependent on nicotinamide phosphoribosyltransferase (NAMPT)-mediated NAD(+) salvage to generate NADH and NADPH for oxidation by mitochondrial complex I and NADPH oxidase, respectively. Consistent with this pathway, monocytes from patients with gain-of-function mutations in STAT1 demonstrated higher-than-normal OCR, whereas chemical or genetic disruption of mitochondrial complex I (rotenone treatment or Leigh syndrome patient monocytes) or NADPH oxidase (diphenyleneiodonium treatment or chronic granulomatous disease [CGD] patient monocytes) reduced OCR. Interestingly, inhibition of NAMPT in healthy monocytes completely abrogated the IFNγ-induced oxygen consumption, comparable to levels observed in CGD monocytes. These data identify an IFNγ-induced, NAMPT-dependent, NAD(+) salvage pathway that is critical for IFNγ activation of human monocytes.
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spelling pubmed-96315552022-11-04 IFNγ regulates NAD(+) metabolism to promote the respiratory burst in human monocytes McCann, Katelyn J. Christensen, Stephen M. Colby, Devon H. McGuire, Peter J. Myles, Ian A. Zerbe, Christa S. Dalgard, Clifton L. Sukumar, Gauthaman Leonard, Warren J. McCormick, Beth A. Holland, Steven M. Blood Adv Phagocytes, Granulocytes, and Myelopoiesis Interferon γ (IFNγ) is an essential and pleiotropic activator of human monocytes, but little is known about the changes in cellular metabolism required for IFNγ-induced activation. We sought to elucidate the mechanisms by which IFNγ reprograms monocyte metabolism to support its immunologic activities. We found that IFNγ increased oxygen consumption rates (OCR) in monocytes, indicative of reactive oxygen species generation by both mitochondria and nicotinamide adenine dinucleotide phosphate (NADPH) oxidase. Transcriptional profiling revealed that this oxidative phenotype was driven by IFNγ-induced reprogramming of NAD(+) metabolism, which is dependent on nicotinamide phosphoribosyltransferase (NAMPT)-mediated NAD(+) salvage to generate NADH and NADPH for oxidation by mitochondrial complex I and NADPH oxidase, respectively. Consistent with this pathway, monocytes from patients with gain-of-function mutations in STAT1 demonstrated higher-than-normal OCR, whereas chemical or genetic disruption of mitochondrial complex I (rotenone treatment or Leigh syndrome patient monocytes) or NADPH oxidase (diphenyleneiodonium treatment or chronic granulomatous disease [CGD] patient monocytes) reduced OCR. Interestingly, inhibition of NAMPT in healthy monocytes completely abrogated the IFNγ-induced oxygen consumption, comparable to levels observed in CGD monocytes. These data identify an IFNγ-induced, NAMPT-dependent, NAD(+) salvage pathway that is critical for IFNγ activation of human monocytes. American Society of Hematology 2022-06-27 /pmc/articles/PMC9631555/ /pubmed/35500221 http://dx.doi.org/10.1182/bloodadvances.2021005776 Text en Licensed under Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0), permitting only noncommercial, nonderivative use with attribution. All other rights reserved.
spellingShingle Phagocytes, Granulocytes, and Myelopoiesis
McCann, Katelyn J.
Christensen, Stephen M.
Colby, Devon H.
McGuire, Peter J.
Myles, Ian A.
Zerbe, Christa S.
Dalgard, Clifton L.
Sukumar, Gauthaman
Leonard, Warren J.
McCormick, Beth A.
Holland, Steven M.
IFNγ regulates NAD(+) metabolism to promote the respiratory burst in human monocytes
title IFNγ regulates NAD(+) metabolism to promote the respiratory burst in human monocytes
title_full IFNγ regulates NAD(+) metabolism to promote the respiratory burst in human monocytes
title_fullStr IFNγ regulates NAD(+) metabolism to promote the respiratory burst in human monocytes
title_full_unstemmed IFNγ regulates NAD(+) metabolism to promote the respiratory burst in human monocytes
title_short IFNγ regulates NAD(+) metabolism to promote the respiratory burst in human monocytes
title_sort ifnγ regulates nad(+) metabolism to promote the respiratory burst in human monocytes
topic Phagocytes, Granulocytes, and Myelopoiesis
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9631555/
https://www.ncbi.nlm.nih.gov/pubmed/35500221
http://dx.doi.org/10.1182/bloodadvances.2021005776
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