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Classically activated mouse macrophages produce methylglyoxal that induces a TLR4- and RAGE-independent
Daniel Prantner1, Shreeram Nallar1, Katharina Richard1
1Department of Microbiology and Immunology, University of Maryland, School of Medicine, Baltimore, Maryland, USA.
Abstract:
The highly reactive compound methylglyoxal (MG) can cause direct damage to cells and tissues by reacting with cellular macromolecules. MG has been identified as a biomarker associated with increased sepsis-induced mortality. Patients undergoing septic shock have significantly elevated circulating MG levels compared to postoperative patients and healthy controls. Furthermore, MG has been implicated in the development of type II diabetes mellitus and Alzheimer's disease. Because MG is generated during glycolysis, we hypothesized that MG may be produced by classically activated (M1) macrophages, possibly contributing to the inflammatory response. LPS and IFN-γ-treated macrophages acquired an M1 phenotype (as evidenced by M1 markers and enhanced glycolysis) and formed MG adducts, MG-H1, MG-H2, and MG-H3, which were detected using antibodies specific for MG-modified proteins (methylglyoxal 5-hydro-5-methylimidazolones). MG adducts were also increased in the lungs of LPS-treated mice. Macrophages treated with LPS and IFN-γ also exhibited decreased expression of glyoxalase 1 (Glo1), an enzyme that metabolizes MG. Concentrations of exogenous, purified MG > 0.5 mM were toxic to macrophages; however, a nontoxic dose of 0.3 mM induced TNF-α and IL-1β, albeit to a lesser extent than LPS stimulation. Despite prior evidence that MG adducts may signal through "receptor for advanced glycation endproducts" (RAGE), MG-mediated cell death and cytokine induction by exogenous MG was RAGE-independent in primary macrophages. Finally, RAGE-deficient mice did not exhibit a significant survival advantage following lethal LPS injection. Overall, our evidence suggests that MG may be produced by M1 macrophages during sepsis, following IFN-γ-dependent down-regulation of Glo1, contributing to over-exuberant inflammation.
Insights
Methylglyoxal (MG), a reactive compound, is produced by M1 macrophages during sepsis, contributing to inflammation. Its production is linked to decreased glyoxalase 1 (Glo1) and elevated inflammatory markers, impacting sepsis mortality.
Area of Science:
- Immunology
- Biochemistry
- Pathophysiology
Background:
- Methylglyoxal (MG) is a reactive compound damaging cellular macromolecules and is a biomarker for increased sepsis mortality.
- Elevated circulating MG levels are observed in septic shock patients.
- MG is implicated in type II diabetes mellitus and Alzheimer's disease.
Purpose of the Study:
- To investigate if classically activated (M1) macrophages produce methylglyoxal (MG).
- To determine MG's role in the inflammatory response during sepsis.
- To explore the involvement of glyoxalase 1 (Glo1) and the receptor for advanced glycation endproducts (RAGE) in MG-mediated effects.
Main Methods:
- Macrophages were treated with LPS and IFN-γ to induce an M1 phenotype.
- MG adducts (MG-H1, MG-H2, MG-H3) were detected using specific antibodies.
- Glyoxalase 1 (Glo1) expression and cytokine induction (TNF-α, IL-1β) were measured.
- RAGE-deficient mice were used to assess RAGE's role in MG-mediated effects.
Main Results:
- LPS and IFN-γ-treated macrophages exhibited M1 markers and enhanced glycolysis, producing MG adducts.
- MG adducts were increased in the lungs of LPS-treated mice.
- Macrophages showed decreased Glo1 expression upon LPS and IFN-γ treatment.
- Exogenous MG induced TNF-α and IL-1β in macrophages in a RAGE-independent manner.
- RAGE-deficient mice showed no survival advantage after LPS injection.
Conclusions:
- M1 macrophages produce methylglyoxal (MG) during sepsis, potentially exacerbating inflammation.
- IFN-γ-dependent down-regulation of Glo1 contributes to MG production in M1 macrophages.
- MG's inflammatory effects in this context appear to be RAGE-independent.
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