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Method for Efficient Refolding and Purification of Chemoreceptor Ligand Binding Domain
Published on: December 12, 2017
Critical role of RelB serine 368 for dimerization and p100 stabilization
Harald Jakob Maier1, Ralf Marienfeld, Thomas Wirth
1Department of Physiological Chemistry, Ulm University, Ulm 89081, Germany.
Insights
RelB
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Nuclear Factor kappa B (NFkappaB) proteins regulate immune responses and cell survival.
- RelB-containing NFkappaB complexes exhibit unique nuclear localization in mature B cells.
- Post-translational modifications are hypothesized to influence RelB nuclear activity.
Purpose of the Study:
- To investigate the role of serine 368 in RelB function.
- To determine the impact of RelB serine 368 modification on NFkappaB family dimerization.
- To elucidate the effect of RelB on p100 processing and stability.
Main Methods:
- Utilized murine S107 plasmacytoma cells lacking endogenous RelB.
- Generated and analyzed wild-type RelB and serine 368 mutants.
- Assessed RelB dimerization, nuclear import, and p100 processing dynamics.
Main Results:
- Serine 368 is crucial for RelB dimerization with NFkappaB family members, not nuclear import.
- Mutating serine 368 in RelB and RelA impaired dimerization.
- Functional RelB inhibited p100 processing and prolonged p100 half-life, unlike serine 368 mutants.
Conclusions:
- RelB serine 368 phosphorylation is critical for NFkappaB complex formation and regulates p100 processing.
- RelB acts as an inhibitor of p100 to p52 conversion, potentially via signal-dependent mechanisms.
- Findings reveal a novel regulatory role for RelB in NFkappaB pathway dynamics.
Abstract:
In mature B cells RelB-containing complexes are constitutively present in the nucleus, and they are less susceptible to inhibitory kappaB proteins. In most other cell types inhibitory kappaB proteins prevent nuclear translocation and activation of NFkappaB. We reasoned that this characteristic might be because of post-translational modifications of RelB. In Drosophila, signal-dependent phosphorylation of the Rel homologue Dorsal at serine 317 has been shown to be critical for nuclear import. The evolutionary conservation of this serine prompted us to analyze the function of the corresponding site in RelB. As a model system we used the murine S107 plasmacytoma cell line, which lacks endogenous RelB expression. Analysis of S107 cells expressing wild type RelB and serine 368 mutants reveals that serine 368 is not required for nuclear import but that it is critical for RelB dimerization with other members of the NFkappaB family. Similar effects were obtained when the conserved serine in RelA was mutated. We further demonstrate that expression of functional RelB, but not of serine 368 mutants, severely reduces p52 generation and strongly increases expression of the p52 precursor, p100. Wild type RelB, but not mutant RelB, prolonged p100 half-life. We therefore suggest an inhibitory effect of RelB on p100 processing, which is possibly regulated in a signal-dependent manner.
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