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Screening Bioactive Nanoparticles in Phagocytic Immune Cells for Inhibitors of Toll-like Receptor Signaling
Published on: July 26, 2017
Signaling crosstalk during sequential TLR4 and TLR9 activation amplifies the inflammatory response of mouse
Dominic De Nardo1, Christine M De Nardo, Thao Nguyen
1Arthritis and Inflammation Research Centre and Cooperative Research Centre for Chronic Inflammatory Diseases, Department of Medicine, The University of Melbourne, Royal Melbourne Hospital, Parkville, Victoria, Australia.
Abstract:
The TLR family of pattern recognition receptors is largely responsible for meditating the activation of macrophages by pathogens. Because macrophages may encounter multiple TLR ligands during an infection, signaling crosstalk between TLR pathways is likely to be important for the tailoring of inflammatory reactions to pathogens. Here, we show that rather than inducing tolerance, LPS pretreatment primed the inflammatory response (e.g., TNF production) of mouse bone marrow-derived macrophages (BMM) to the TLR9 ligand, CpG DNA. The priming effects of LPS, which correlated with enhanced Erk1/2, JNK, and p38 MAPK activation, appeared to be mediated via both c-Fms-dependent and -independent mechanisms. LPS pretreatment and inhibition of the M-CSF receptor, c-Fms, with GW2580 had comparable effects on CpG DNA-induced Erk1/2 and p38 MAPK activation. However, c-Fms inhibition did not enhance CpG DNA-induced JNK activation; also, the levels of TNF produced were significantly lower than those from LPS-primed BMM. Thus, the priming effects of LPS on TLR9 responses appear to be largely mediated via the c-Fms-independent potentiation of JNK activity. Indeed, inhibition of JNK abrogated the enhanced production of TNF by LPS-pretreated BMM. The c-Fms-dependent priming effects of LPS are unlikely to be a consequence of the inhibitory constraints of M-CSF signaling on TLR9 expression being relieved by LPS; instead, LPS may exert its priming effects via signaling molecules downstream of TLR9. In summary, our findings highlight the importance of signaling crosstalk between TLRs, as well as between TLRs and c-Fms, in regulating the inflammatory reaction to pathogens.
Insights
Lipopolysaccharide (LPS) pretreatment enhances macrophage inflammatory responses to TLR9 ligands, contrary to tolerance. This priming effect is primarily mediated by JNK activation, highlighting crucial crosstalk between Toll-like receptors (TLRs) and c-Fms signaling.
Area of Science:
- Immunology
- Cellular Signaling
- Inflammation Research
Background:
- Toll-like receptors (TLRs) mediate macrophage activation by pathogens.
- Macrophages encounter diverse TLR ligands during infection, necessitating complex signaling interactions.
- Understanding TLR signaling crosstalk is vital for tailoring inflammatory responses.
Purpose of the Study:
- To investigate the effect of lipopolysaccharide (LPS) pretreatment on macrophage responses to TLR9 ligands.
- To elucidate the signaling mechanisms underlying LPS-induced priming of TLR9 responses.
- To determine the roles of c-Fms and mitogen-activated protein kinases (MAPKs) in this crosstalk.
Main Methods:
- Primary mouse bone marrow-derived macrophages (BMM) were pretreated with LPS.
- Cells were subsequently stimulated with the TLR9 ligand, CpG DNA.
- Activation of Erk1/2, JNK, and p38 MAPK pathways was assessed; TNF production was measured; c-Fms inhibition using GW2580 was employed.
Main Results:
- LPS pretreatment primed BMM to CpG DNA, enhancing TNF production, rather than inducing tolerance.
- Priming correlated with enhanced Erk1/2, JNK, and p38 MAPK activation.
- LPS priming effects on TLR9 responses were largely mediated by c-Fms-independent JNK activation; c-Fms inhibition partially affected MAPK activation but not JNK potentiation.
Conclusions:
- LPS pretreatment potentiates TLR9-mediated inflammatory responses, primarily through c-Fms-independent JNK activation.
- Signaling crosstalk between TLRs and the M-CSF receptor (c-Fms) is critical for regulating inflammatory reactions.
- These findings underscore the complexity of immune receptor signaling in response to microbial challenges.
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