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Tyrosine nitration of IkappaBalpha: a novel mechanism for NF-kappaB activation
Vasily A Yakovlev1, Igor J Barani, Christopher S Rabender
1Department of Radiation Oncology, Massey Cancer Center, Virginia Commonwealth University, Richmond, Virginia 23298, USA.
Abstract:
The NF-kappaB family of transcription factors is an important component of stress-activated cytoprotective signal transduction pathways. Previous studies demonstrated that some activation mechanisms require phosphorylation, ubiquitination, and degradation of the inhibitor protein, IkappaBalpha. Herein, it is demonstrated that ionizing radiation in the therapeutic dose range stimulates NF-kappaB activity by a mechanism in which IkappaBalpha tyrosine 181 is nitrated as a consequence of constitutive NO* synthase activation, leading to dissociation of intact IkappaBalpha from NF-kappaB. This mechanism does not appear to require IkappaBalpha kinase-dependent phosphorylation or proteolytic degradation of IkappaBalpha. Tyrosine 181 is involved in several noncovalent interactions with the p50 subunit of NF-kappaB stabilizing the IkappaBalpha-NF-kappaB complex. Evaluation of hydropathic interactions of the IkappaBalpha-p50 complex on the basis of the crystal structure of the complex is consistent with nitration disrupting these interactions and dissociating the IkappaBalpha-NF-kappaB complex. Tyrosine nitration is not commonly studied in the context of signal transduction. However, these results indicate that tyrosine nitration is an important post-translational regulatory modification for NF-kappaB activation and possibly for other signaling molecules modulated by mild and transient oxidative and nitrosative stresses.
Insights
Ionizing radiation activates NF-kappaB signaling by nitrating IkappaBalpha, causing its dissociation from NF-kappaB without degradation. This tyrosine nitration is a novel regulatory mechanism for NF-kappaB activation.
Area of Science:
- Molecular Biology
- Cell Signaling
- Biochemistry
Background:
- Nuclear Factor kappa B (NF-kappaB) is crucial in stress-activated cytoprotective pathways.
- Canonical NF-kappaB activation involves IkappaBalpha phosphorylation, ubiquitination, and degradation.
Purpose of the Study:
- To investigate the mechanism of NF-kappaB activation by ionizing radiation.
- To explore the role of IkappaBalpha modification beyond phosphorylation and degradation.
Main Methods:
- Analysis of NF-kappaB activity following ionizing radiation exposure.
- Investigation of IkappaBalpha modifications, specifically tyrosine nitration at position 181.
- Structural evaluation of the IkappaBalpha-NF-kappaB complex to assess interaction disruption.
Main Results:
- Ionizing radiation stimulates NF-kappaB activity via a novel mechanism.
- IkappaBalpha tyrosine 181 nitration, driven by nitric oxide synthase, causes IkappaBalpha dissociation from NF-kappaB.
- This pathway bypasses the need for IkappaBalpha kinase-dependent phosphorylation and degradation.
Conclusions:
- Tyrosine nitration of IkappaBalpha is a significant post-translational modification regulating NF-kappaB activation.
- This finding expands the understanding of signal transduction, highlighting tyrosine nitration's role in response to oxidative and nitrosative stress.
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