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Screening Bioactive Nanoparticles in Phagocytic Immune Cells for Inhibitors of Toll-like Receptor Signaling
Published on: July 26, 2017
Sulforaphane suppresses oligomerization of TLR4 in a thiol-dependent manner
Hyung Sun Youn1, Yoon Sun Kim, Zee Yong Park
1Department of Biomedical Laboratory Science, College of Medical Sciences, Soonchunhyang University, Asan, Korea.
Abstract:
TLRs are pattern recognition receptors that detect invading microorganisms and nonmicrobial endogenous molecules to trigger immune and inflammatory responses during host defense and tissue repair. TLR activity is closely linked to the risk of many inflammatory diseases and immune disorders. Therefore, TLR signaling pathways can provide efficient therapeutic targets for chronic diseases. Sulforaphane (SFN), an isothiocyanate, has been well known for its anti-inflammatory activities. In this study, we investigated the modulation of TLR activity by SFN and the underlying mechanism. SFN suppressed ligand-induced and ligand-independent TLR4 activation because it prevented IL-1R-associated kinase-1 degradation, activation of NF-kappaB and IFN regulatory factor 3, and cyclooxygenase-2 expression induced by LPS or overexpression of TLR4. Receptor oligomerization, which is one of the initial and critical events of TLR4 activation, was suppressed by SFN, resulting in the downregulation of NF-kappaB activation. SFN formed adducts with cysteine residues in the extracellular domain of TLR4 as confirmed by liquid chromatography-tandem mass spectrometry analysis and the inhibitory effects of SFN on oligomerization and NF-kappaB activation were reversed by thiol donors (DTT and N-acetyl-L-cysteine). These suggest that the reactivity of SFN to sulfhydryl moiety contributes to its inhibitory activities. Blockade of TLR4 signaling by SFN resulted in the reduced production of inflammatory cytokines and the decreased dermal inflammation and edema in vivo in experimental inflammatory animal models. Collectively, our results demonstrated that SFN downregulated TLR4 signaling through the suppression of oligomerization process in a thiol-dependent manner. These present a novel mechanism for beneficial effects of SFN and a novel anti-inflammatory target in TLR4 signaling.
Insights
Sulforaphane (SFN) suppresses Toll-like receptor 4 (TLR4) activation by preventing receptor oligomerization, offering a novel therapeutic approach for inflammatory diseases.
Area of Science:
- Immunology
- Molecular Biology
- Pharmacology
Background:
- Toll-like receptors (TLRs) are crucial for immune responses and linked to inflammatory diseases.
- Therapeutic targeting of TLR signaling pathways holds promise for chronic conditions.
- Sulforaphane (SFN) is known for its anti-inflammatory properties.
Purpose of the Study:
- To investigate how SFN modulates Toll-like receptor 4 (TLR4) activity.
- To elucidate the underlying molecular mechanisms of SFN's action on TLR4.
- To assess the therapeutic potential of SFN in inflammatory conditions.
Main Methods:
- Investigated SFN's effect on ligand-induced and ligand-independent TLR4 activation.
- Analyzed the impact of SFN on key signaling molecules like IL-1R-associated kinase-1, NF-kappaB, and IFN regulatory factor 3.
- Utilized liquid chromatography-tandem mass spectrometry to confirm SFN adduct formation with TLR4 cysteine residues.
- Assessed the reversal of SFN's inhibitory effects using thiol donors.
- Evaluated SFN's efficacy in reducing inflammation and edema in vivo animal models.
Main Results:
- SFN suppressed TLR4 activation by inhibiting receptor oligomerization, NF-kappaB activation, and downstream inflammatory gene expression.
- SFN formed adducts with cysteine residues in the extracellular domain of TLR4.
- The inhibitory effects of SFN were dependent on its reactivity to sulfhydryl groups and were reversible with thiol donors.
- SFN treatment led to reduced inflammatory cytokine production and decreased dermal inflammation and edema in vivo.
Conclusions:
- SFN downregulates TLR4 signaling through a thiol-dependent mechanism, specifically by inhibiting receptor oligomerization.
- This study reveals a novel mechanism for SFN's anti-inflammatory effects.
- Targeting TLR4 signaling with SFN presents a promising therapeutic strategy for inflammatory diseases.
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