TY - JOUR
T1 - Network integration of parallel metabolic and transcriptional data reveals metabolic modules that regulate macrophage polarization
AU - Jha, Abhishek K.
AU - Huang, Stanley Ching Cheng
AU - Sergushichev, Alexey
AU - Lampropoulou, Vicky
AU - Ivanova, Yulia
AU - Loginicheva, Ekaterina
AU - Chmielewski, Karina
AU - Stewart, Kelly M.
AU - Ashall, Juliet
AU - Everts, Bart
AU - Pearce, Edward J.
AU - Driggers, Edward M.
AU - Artyomov, Maxim N.
N1 - Publisher Copyright:
© 2015 Elsevier Inc.
PY - 2015/3/17
Y1 - 2015/3/17
N2 - Macrophage polarization involves a coordinated metabolic and transcriptional rewiring that is only partially understood. By using an integrated high-throughput transcriptional-metabolic profiling and analysis pipeline, we characterized systemic changes during murine macrophage M1 and M2 polarization. M2 polarization was found to activate glutamine catabolism and UDP-GlcNAc-associated modules. Correspondingly, glutamine deprivation or inhibition of N-glycosylation decreased M2 polarization and production of chemokine CCL22. In M1 macrophages, we identified a metabolic break at Idh, the enzyme that converts isocitrate to alpha-ketoglutarate, providing mechanistic explanation for TCA cycle fragmentation. 13C-tracer studies suggested the presence of an active variant of the aspartate-arginosuccinate shunt that compensated for this break. Consistently, inhibition of aspartate-aminotransferase, a key enzyme of the shunt, inhibited nitric oxide and interleukin-6 production in M1 macrophages, while promoting mitochondrial respiration. This systems approach provides a highly integrated picture of the physiological modules supporting macrophage polarization, identifying potential pharmacologic control points for both macrophage phenotypes.
AB - Macrophage polarization involves a coordinated metabolic and transcriptional rewiring that is only partially understood. By using an integrated high-throughput transcriptional-metabolic profiling and analysis pipeline, we characterized systemic changes during murine macrophage M1 and M2 polarization. M2 polarization was found to activate glutamine catabolism and UDP-GlcNAc-associated modules. Correspondingly, glutamine deprivation or inhibition of N-glycosylation decreased M2 polarization and production of chemokine CCL22. In M1 macrophages, we identified a metabolic break at Idh, the enzyme that converts isocitrate to alpha-ketoglutarate, providing mechanistic explanation for TCA cycle fragmentation. 13C-tracer studies suggested the presence of an active variant of the aspartate-arginosuccinate shunt that compensated for this break. Consistently, inhibition of aspartate-aminotransferase, a key enzyme of the shunt, inhibited nitric oxide and interleukin-6 production in M1 macrophages, while promoting mitochondrial respiration. This systems approach provides a highly integrated picture of the physiological modules supporting macrophage polarization, identifying potential pharmacologic control points for both macrophage phenotypes.
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U2 - 10.1016/j.immuni.2015.02.005
DO - 10.1016/j.immuni.2015.02.005
M3 - Article
C2 - 25786174
AN - SCOPUS:84924935721
SN - 1074-7613
VL - 42
SP - 419
EP - 430
JO - Immunity
JF - Immunity
IS - 3
ER -