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Inflammatory responses induced by lipopolysaccharide are amplified in primary human monocytes but suppressed in
Vernon Seow1, Junxian Lim, Abishek Iyer
1Institute for Molecular Bioscience, University of Queensland, Brisbane, Queensland 4072, Australia.
Abstract:
Monocytes and macrophages are important innate immune cells equipped with danger-sensing receptors, including complement and Toll-like receptors. Complement protein C5a, acting via C5aR, is shown in this study to differentially modulate LPS-induced inflammatory responses in primary human monocytes versus macrophages. Whereas C5a enhanced secretion of LPS-induced IL-6 and TNF from primary human monocytes, C5a inhibited these responses while increasing IL-10 secretion in donor-matched human monocyte-derived macrophages differentiated by GM-CSF or M-CSF. Gαi/c-Raf/MEK/ERK signaling induced by C5a was amplified in macrophages but not in monocytes by LPS. Accordingly, the Gαi inhibitor pertussis toxin and MEK inhibitor U0126 blocked C5a inhibition of LPS-induced IL-6 and TNF production from macrophages. This synergy was independent of IL-10, PI3K, p38, JNK, and the differentiating agent. Furthermore, C5a did not inhibit IL-6 production from macrophages induced by other TLR agonists that are selective for Toll/IL-1R domain-containing adapter inducing IFN-β (polyinosinic-polycytidylic acid) or MyD88 (imiquimod), demonstrating selectivity for C5a regulation of LPS responses. Finally, suppression of proinflammatory cytokines IL-6 and TNF in macrophages did not compromise antimicrobial activity; instead, C5a enhanced clearance of the Gram-negative bacterial pathogen Salmonella enterica serovar Typhimurium from macrophages. C5aR is thus a regulatory switch that modulates TLR4 signaling via the Gαi/c-Raf/MEK/ERK signaling axis in human macrophages but not monocytes. The differential effects of C5a are consistent with amplifying monocyte proinflammatory responses to systemic danger signals, but attenuating macrophage cytokine responses (without compromising microbicidal activity), thereby restraining inflammatory responses to localized infections.
Insights
Complement protein C5a differentially regulates inflammatory responses in monocytes and macrophages. C5a enhances monocyte inflammation but suppresses macrophage inflammatory cytokine production while boosting antimicrobial activity.
Area of Science:
- Immunology
- Cell Biology
- Molecular Signaling
Background:
- Monocytes and macrophages are key innate immune cells employing complement and Toll-like receptors for danger sensing.
- The complement protein C5a, signaling through C5aR, plays a critical role in modulating immune responses.
Purpose of the Study:
- To investigate the differential effects of C5a on lipopolysaccharide (LPS)-induced inflammatory responses in human monocytes versus macrophages.
- To elucidate the underlying signaling pathways and specificity of C5a-mediated regulation.
Main Methods:
- Primary human monocytes and monocyte-derived macrophages (differentiated by GM-CSF or M-CSF) were stimulated with LPS and C5a.
- Cytokine secretion (IL-6, TNF, IL-10) was measured.
- Signaling pathways (Gαi/c-Raf/MEK/ERK, PI3K, p38, JNK) were analyzed using inhibitors (pertussis toxin, U0126).
- Macrophage antimicrobial activity against Salmonella Typhimurium was assessed.
Main Results:
- C5a enhanced LPS-induced IL-6 and TNF secretion in monocytes but inhibited these in macrophages, increasing IL-10 in the latter.
- LPS amplified C5a-induced Gαi/c-Raf/MEK/ERK signaling in macrophages, but not monocytes.
- C5a inhibition of LPS-induced cytokines in macrophages was blocked by pertussis toxin and U0126.
- C5a's regulatory effect on LPS responses was selective, not affecting other Toll-like receptor agonists.
- Macrophage microbicidal activity against Salmonella Typhimurium was enhanced by C5a.
Conclusions:
- C5a acts as a regulatory switch modulating Toll-like receptor 4 signaling via the Gαi/c-Raf/MEK/ERK pathway in human macrophages, but not monocytes.
- C5a amplifies monocyte inflammatory responses while attenuating macrophage cytokine production, thereby restraining inflammation during localized infections without compromising antimicrobial function.
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