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NF-κB-dependent Luciferase Activation and Quantification of Gene Expression in Salmonella Infected Tissue Culture Cells
Published on: January 12, 2020
Cobrotoxin inhibits NF-kappa B activation and target gene expression through reaction with NF-kappa B signal
Mi Hee Park1, Ho Seub Song, Ki Hyun Kim
1College of Pharmacy, Chungbuk National University, 48, Gaesin-dong, Heungduk-gu, Cheongju, Chungbuk 361-763, Korea.
Abstract:
Cobrotoxin is known to bind with cysteine residues of biological molecules such as nicotine acetylcholine receptor. Cobrotoxin may modify IKKs and p50 through protein-protein interaction since cysteine residues are present in the kinase domains of IKKalpha and IKKbeta and in the p50 of NF-kappaB. Our surface plasmon resonance analysis showed that cobrotoxin directly binds to p50 (K(d) = 1.54 x 10(-)(5) M), IKKalpha (K(d) = 3.94 x 10(-)(9) M) and IKKbeta (K(d) = 3.4 x 10(-)(8) M) with high binding affinity. Moreover, these protein-protein interactions suppressed the lipopolysaccharide (LPS, 1 microg/mL)- and the sodium nitroprusside (SNP, 200 microM)-induced DNA binding activity of NF-kappaB and NF-kappaB-dependent luciferase activity in astrocytes and Raw 264.7 macrophages. These inhibitory effects were correlated with the inhibition of IkappaB release and p50 translocation. Inhibition of NF-kappaB by cobrotoxin resulted in reductions in the LPS-induced expressions of COX-2, iNOS, cPLA(2), IL-4, and TNF-alpha in astrocytes and in COX-2 expression induced by SNP, LPS, and TNF-alpha in astrocytes. Moreover, these inhibitory effects of cobrotoxin were reversed by adding reducing agents, dithiothreitol and glutathione. In addition, cobrotoxin did not have any inhibitory effect on NF-kappaB activity in cells carrying mutant p50 (C62S), IKKalpha (C178A), and IKKbeta (C179A), with the exception of IKKbeta (K44A) mutant plasmid. Confocal microscopic analysis showed that cobrotoxin is uptaken into the nucleus of cells. These results demonstrate that cobrotoxin directly binds to the sulfhydryl groups of p50 and IKKs, and that this results in reduced IkappaB release and the translocation of p50, thereby inhibiting the activation of NF-kappaB.
Insights
Cobrotoxin directly binds to p50 and IKKs, inhibiting nuclear factor-kappa B (NF-kappaB) activation. This snake venom peptide suppresses inflammatory responses by blocking NF-kappaB signaling pathways.
Area of Science:
- Biochemistry
- Molecular Biology
- Immunology
Background:
- Cobrotoxin, a snake venom peptide, interacts with biological molecules.
- Nuclear factor-kappa B (NF-kappaB) is a key regulator of inflammatory and immune responses.
- Cysteine residues are crucial for protein interactions and function.
Purpose of the Study:
- To investigate the direct binding of cobrotoxin to NF-kappaB pathway components.
- To elucidate the mechanism by which cobrotoxin modulates NF-kappaB activation.
- To assess the impact of cobrotoxin on inflammatory gene expression.
Main Methods:
- Surface plasmon resonance (SPR) to determine binding affinities.
- Cell-based assays measuring NF-kappaB DNA binding and transcriptional activity.
- Analysis of inflammatory marker expression (COX-2, iNOS, etc.) via Western blot or ELISA.
- Confocal microscopy for cellular uptake studies.
Main Results:
- Cobrotoxin directly binds to p50, IKKalpha, and IKKbeta with high affinity.
- Cobrotoxin inhibits LPS- and SNP-induced NF-kappaB activation and downstream inflammatory gene expression.
- Inhibitory effects are dependent on cysteine residues and are reversible with reducing agents.
- Cobrotoxin is internalized into the cell nucleus.
Conclusions:
- Cobrotoxin directly targets NF-kappaB signaling components (p50, IKKs) via cysteine residue interactions.
- This interaction inhibits NF-kappaB activation, leading to reduced inflammatory mediator production.
- Cobrotoxin represents a potential therapeutic agent for inflammatory diseases.
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