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Published on: November 2, 2018
The IRAK-M death domain: a tale of three surfaces
Berke Gürkan1,2, Hessel Poelman3,4, Liza Pereverzeva1,2
1Center of Experimental and Molecular Medicine, Amsterdam UMC Location University of Amsterdam, Amsterdam, Netherlands.
Abstract:
The anti-inflammatory interleukin-1 receptor associated kinase-M (IRAK-M) is a negative regulator of MyD88/IRAK-4/IRAK-1 signaling. However, IRAK-M has also been reported to activate NF-κB through the MyD88/IRAK-4/IRAK-M myddosome in a MEKK-3 dependent manner. Here we provide support that IRAK-M uses three surfaces of its Death Domain (DD) to activate NF-κB downstream of MyD88/IRAK-4/IRAK-M. Surface 1, with central residue Trp74, binds to MyD88/IRAK-4. Surface 2, with central Lys60, associates with other IRAK-M DDs to form an IRAK-M homotetramer under the MyD88/IRAK-4 scaffold. Surface 3; with central residue Arg97 is located on the opposite side of Trp74 in the IRAK-M DD tetramer, lacks any interaction points with the MyD88/IRAK-4 complex. Although the IRAK-M DD residue Arg97 is not directly involved in the association with MyD88/IRAK-4, Arg97 was responsible for 50% of the NF-κB activation though the MyD88/IRAK-4/IRAK-M myddosome. Arg97 was also found to be pivotal for IRAK-M's interaction with IRAK-1, and important for IRAK-M's interaction with TRAF6. Residue Arg97 was responsible for 50% of the NF-κB generated by MyD88/IRAK-4/IRAK-M myddosome in IRAK-1/MEKK3 double knockout cells. By structural modeling we found that the IRAK-M tetramer surface around Arg97 has excellent properties that allow formation of an IRAK-M homo-octamer. This model explains why mutation of Arg97 results in an IRAK-M molecule with increased inhibitory properties: it still binds to myddosome, competing with myddosome IRAK-1 binding, while resulting in less NF-κB formation. The findings further identify the structure-function properties of IRAK-M, which is a potential therapeutic target in inflammatory disease.
Insights
Interleukin-1 receptor associated kinase-M (IRAK-M) activates NF-κB via its Death Domain (DD) through specific surfaces. Residue Arg97 is key for NF-κB activation and interactions, influencing inflammatory signaling pathways.
Area of Science:
- Immunology
- Molecular Biology
- Structural Biology
Background:
- Interleukin-1 receptor associated kinase-M (IRAK-M) is an anti-inflammatory protein that negatively regulates MyD88/IRAK-4/IRAK-1 signaling.
- IRAK-M has been shown to activate NF-κB through the MyD88/IRAK-4/IRAK-M myddosome in a MEKK-3 dependent manner.
Purpose of the Study:
- To elucidate the structural mechanisms by which IRAK-M activates NF-κB.
- To identify specific residues and surfaces of the IRAK-M Death Domain (DD) involved in NF-κB activation and protein interactions.
Main Methods:
- Site-directed mutagenesis of IRAK-M Death Domain (DD) residues.
- Analysis of NF-κB activation in cells with specific IRAK-M mutations and knockouts.
- Structural modeling of IRAK-M oligomerization.
Main Results:
- IRAK-M utilizes three surfaces of its DD to activate NF-κB downstream of MyD88/IRAK-4/IRAK-M.
- Surface 1 (Trp74) binds MyD88/IRAK-4; Surface 2 (Lys60) facilitates IRAK-M homotetramer formation.
- Surface 3 (Arg97) is crucial for NF-κB activation (50% contribution), IRAK-1 interaction, and TRAF6 interaction, even without direct MyD88/IRAK-4 binding.
Conclusions:
- The IRAK-M DD tetramer, particularly the Arg97 surface, promotes NF-κB activation through interactions with IRAK-1 and TRAF6.
- Structural modeling suggests IRAK-M homo-octamer formation, explaining how Arg97 mutations enhance inhibitory properties by competing with IRAK-1 binding.
- IRAK-M's structure-function properties highlight its potential as a therapeutic target for inflammatory diseases.
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