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Production, Crystallization, and Structure Determination of the IKK-binding Domain of NEMO
Published on: December 28, 2019
Structurally plastic NEMO and oligomerization prone IKK2 subunits define the behavior of human IKK2:NEMO complexes in
Myung Soo Ko1, Tapan Biswas2, Maria Carmen Mulero3
1Structural Biochemistry Laboratory, Department of Chemistry & Biochemistry, San Diego State University, 5500 Campanile Drive, San Diego, CA 92182-1030, United States; Department of Chemistry & Biochemistry, University of California, San Diego, 9500 Gilman Drive, La Jolla, CA 92093-0357, United States.
Insights
The NEMO/IKKγ subunit
Area of Science:
- Molecular Biology
- Structural Biology
- Biochemistry
Background:
- The IκB Kinase (IKK) complex regulates transcription factor NF-κB activity.
- IKK complex subunits include catalytic kinases (IKK1/IKKα, IKK2/IKKβ) and scaffolding NEMO/IKKγ.
- IKK subunits homo-oligomerize, influencing catalytic activity and NF-κB pathway activation.
Purpose of the Study:
- To investigate the solution behavior and structural dynamics of the NEMO/IKKγ subunit.
- To understand how NEMO influences the structural properties and oligomerization of the IKK complex.
Main Methods:
- Size-exclusion chromatography
- Multi-angle light scattering
- Analytical centrifugation
- Thermal denaturation analyses
Main Results:
- NEMO predominantly exists as a dimer in solution but exhibits complex dynamics due to its coiled-coil regions.
- These dynamics cause NEMO to appear as a larger particle in solution.
- Within the IKK2 complex, NEMO maintains its dynamic character and promotes IKK2 homo-oligomerization.
Conclusions:
- NEMO's structural plasticity is crucial for IKK complex regulation and NF-κB signaling.
- Understanding NEMO's dynamics clarifies its role in disease pathogenesis.
- Oligomerization-dependent phosphorylation of IKK2 is modulated by NEMO's structural properties.
Abstract:
The human IκB Kinase (IKK) is a multisubunit protein complex of two kinases and one scaffolding subunit that controls induction of transcription factor NF-κB activity. IKK behaves as an entity of aberrantly high apparent molecular weight in solution. Recent X-ray crystallographic and cryo-electron microscopy structures of individual catalytic subunits (IKK1/IKKα and IKK2/IKKβ) reveal that they are both stably folded dimeric proteins that engage in extensive homo-oligomerization through unique surfaces that are required for activation of their respective catalytic activities. The NEMO/IKKγ subunit is a predominantly coiled coil protein that is required for activation of IKK through the canonical NF-κB signaling pathway. Here we report size-exclusion chromatography, multi-angle light scattering, analytical centrifugation, and thermal denaturation analyses of full-length human recombinant NEMO as well as deletion and disease-linked variants. We observe that NEMO is predominantly a dimer in solution, although by virtue of its modular coiled coil regions NEMO exhibits complicated solution dynamics involving portions that are mutually antagonistic toward homodimerization. This behavior causes NEMO to behave as a significantly larger sized particle in solution. Analyses of NEMO in complex with IKK2 indicate that NEMO preserves this structurally dynamic character within the multisubuit complex and provides the complex-bound IKK2 further propensity toward homo-oligomerization. These observations provide critical information on the structural plasticity of NEMO subunit dimers which helps clarify its role in diseases and in IKK regulation through oligomerization-dependent phosphorylation of catalytic IKK2 subunit dimers.
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