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NOTCH reprograms mitochondrial metabolism for proinflammatory macrophage activation
by
Punj, Vasu
, Lee, W.N. Paul
, Xu, Jun
, Guo, Tongsheng
, French, Samuel W.
, Chi, Feng
, Tsukamoto, Hidekazu
in
Animals
/ Biomedical research
/ Cell Line
/ Cell metabolism
/ Cytokines
/ Electron Transport - genetics
/ Endotoxemia - complications
/ Fatty Liver, Alcoholic - immunology
/ Fatty Liver, Alcoholic - metabolism
/ Fatty Liver, Alcoholic - pathology
/ Feedback, Physiological
/ Gene expression
/ Gene Expression Regulation
/ Genetic aspects
/ Genetic research
/ Genetic transcription
/ Glucose - metabolism
/ Inflammation - immunology
/ Inflammation - metabolism
/ Liver diseases
/ Liver Failure, Acute - etiology
/ Liver Failure, Acute - immunology
/ Liver Failure, Acute - metabolism
/ Liver Failure, Acute - pathology
/ Macrophage Activation - genetics
/ Macrophage Activation - physiology
/ Macrophages
/ Male
/ Metabolism
/ Mice
/ Mice, Inbred C57BL
/ Mice, Knockout
/ Microscopy
/ Mitochondria - metabolism
/ Mitochondrial DNA
/ Myeloid Cells - metabolism
/ Myeloid Cells - pathology
/ Nitric Oxide - metabolism
/ Oxidative Phosphorylation
/ Pilot projects
/ Properties
/ Protein Structure, Tertiary
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - antagonists & inhibitors
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - genetics
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - metabolism
/ Pyruvate Dehydrogenase Complex - metabolism
/ Reactive Oxygen Species - metabolism
/ Receptor, Notch1 - deficiency
/ Receptor, Notch1 - physiology
/ Rodents
/ Signal Transduction - physiology
/ Transcription, Genetic
/ Up-Regulation
2015
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NOTCH reprograms mitochondrial metabolism for proinflammatory macrophage activation
by
Punj, Vasu
, Lee, W.N. Paul
, Xu, Jun
, Guo, Tongsheng
, French, Samuel W.
, Chi, Feng
, Tsukamoto, Hidekazu
in
Animals
/ Biomedical research
/ Cell Line
/ Cell metabolism
/ Cytokines
/ Electron Transport - genetics
/ Endotoxemia - complications
/ Fatty Liver, Alcoholic - immunology
/ Fatty Liver, Alcoholic - metabolism
/ Fatty Liver, Alcoholic - pathology
/ Feedback, Physiological
/ Gene expression
/ Gene Expression Regulation
/ Genetic aspects
/ Genetic research
/ Genetic transcription
/ Glucose - metabolism
/ Inflammation - immunology
/ Inflammation - metabolism
/ Liver diseases
/ Liver Failure, Acute - etiology
/ Liver Failure, Acute - immunology
/ Liver Failure, Acute - metabolism
/ Liver Failure, Acute - pathology
/ Macrophage Activation - genetics
/ Macrophage Activation - physiology
/ Macrophages
/ Male
/ Metabolism
/ Mice
/ Mice, Inbred C57BL
/ Mice, Knockout
/ Microscopy
/ Mitochondria - metabolism
/ Mitochondrial DNA
/ Myeloid Cells - metabolism
/ Myeloid Cells - pathology
/ Nitric Oxide - metabolism
/ Oxidative Phosphorylation
/ Pilot projects
/ Properties
/ Protein Structure, Tertiary
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - antagonists & inhibitors
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - genetics
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - metabolism
/ Pyruvate Dehydrogenase Complex - metabolism
/ Reactive Oxygen Species - metabolism
/ Receptor, Notch1 - deficiency
/ Receptor, Notch1 - physiology
/ Rodents
/ Signal Transduction - physiology
/ Transcription, Genetic
/ Up-Regulation
2015
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NOTCH reprograms mitochondrial metabolism for proinflammatory macrophage activation
by
Punj, Vasu
, Lee, W.N. Paul
, Xu, Jun
, Guo, Tongsheng
, French, Samuel W.
, Chi, Feng
, Tsukamoto, Hidekazu
in
Animals
/ Biomedical research
/ Cell Line
/ Cell metabolism
/ Cytokines
/ Electron Transport - genetics
/ Endotoxemia - complications
/ Fatty Liver, Alcoholic - immunology
/ Fatty Liver, Alcoholic - metabolism
/ Fatty Liver, Alcoholic - pathology
/ Feedback, Physiological
/ Gene expression
/ Gene Expression Regulation
/ Genetic aspects
/ Genetic research
/ Genetic transcription
/ Glucose - metabolism
/ Inflammation - immunology
/ Inflammation - metabolism
/ Liver diseases
/ Liver Failure, Acute - etiology
/ Liver Failure, Acute - immunology
/ Liver Failure, Acute - metabolism
/ Liver Failure, Acute - pathology
/ Macrophage Activation - genetics
/ Macrophage Activation - physiology
/ Macrophages
/ Male
/ Metabolism
/ Mice
/ Mice, Inbred C57BL
/ Mice, Knockout
/ Microscopy
/ Mitochondria - metabolism
/ Mitochondrial DNA
/ Myeloid Cells - metabolism
/ Myeloid Cells - pathology
/ Nitric Oxide - metabolism
/ Oxidative Phosphorylation
/ Pilot projects
/ Properties
/ Protein Structure, Tertiary
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - antagonists & inhibitors
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - genetics
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - metabolism
/ Pyruvate Dehydrogenase Complex - metabolism
/ Reactive Oxygen Species - metabolism
/ Receptor, Notch1 - deficiency
/ Receptor, Notch1 - physiology
/ Rodents
/ Signal Transduction - physiology
/ Transcription, Genetic
/ Up-Regulation
2015
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NOTCH reprograms mitochondrial metabolism for proinflammatory macrophage activation
Journal Article
NOTCH reprograms mitochondrial metabolism for proinflammatory macrophage activation
2015
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Overview
Metabolic reprogramming is implicated in macrophage activation, but the underlying mechanisms are poorly understood. Here, we demonstrate that the NOTCH1 pathway dictates activation of M1 phenotypes in isolated mouse hepatic macrophages (HMacs) and in a murine macrophage cell line by coupling transcriptional upregulation of M1 genes with metabolic upregulation of mitochondrial oxidative phosphorylation and ROS (mtROS) to augment induction of M1 genes. Enhanced mitochondrial glucose oxidation was achieved by increased recruitment of the NOTCH1 intracellular domain (NICD1) to nuclear and mitochondrial genes that encode respiratory chain components and by NOTCH-dependent induction of pyruvate dehydrogenase phosphatase 1 (Pdp1) expression, pyruvate dehydrogenase activity, and glucose flux to the TCA cycle. As such, inhibition of the NOTCH pathway or Pdp1 knockdown abrogated glucose oxidation, mtROS, and M1 gene expression. Conditional NOTCH1 deficiency in the myeloid lineage attenuated HMac M1 activation and inflammation in a murine model of alcoholic steatohepatitis and markedly reduced lethality following endotoxin-mediated fulminant hepatitis in mice. In vivo monocyte tracking further demonstrated the requirement of NOTCH1 for the migration of blood monocytes into the liver and subsequent M1 differentiation. Together, these results reveal that NOTCH1 promotes reprogramming of mitochondrial metabolism for M1 macrophage activation.
Publisher
American Society for Clinical Investigation
Subject
/ Electron Transport - genetics
/ Fatty Liver, Alcoholic - immunology
/ Fatty Liver, Alcoholic - metabolism
/ Fatty Liver, Alcoholic - pathology
/ Liver Failure, Acute - etiology
/ Liver Failure, Acute - immunology
/ Liver Failure, Acute - metabolism
/ Liver Failure, Acute - pathology
/ Macrophage Activation - genetics
/ Macrophage Activation - physiology
/ Male
/ Mice
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - antagonists & inhibitors
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - genetics
/ Pyruvate Dehydrogenase (Lipoamide)-Phosphatase - metabolism
/ Pyruvate Dehydrogenase Complex - metabolism
/ Reactive Oxygen Species - metabolism
/ Receptor, Notch1 - deficiency
/ Receptor, Notch1 - physiology
/ Rodents
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