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Oligopeptide Competition Assay for Phosphorylation Site Determination
Published on: May 18, 2017
A structural basis for IκB kinase 2 activation via oligomerization-dependent trans auto-phosphorylation
Smarajit Polley1, De-Bin Huang, Arthur V Hauenstein
1Department of Chemistry & Biochemistry, University of California-San Diego, La Jolla, California, United States of America.
Insights
The study reveals how human IκB kinase 2 (hIKK2) activates by forming higher-order structures. Oligomerization of hIKK2 dimers promotes trans auto-phosphorylation, crucial for NF-κB pathway signaling.
Area of Science:
- Molecular Biology
- Structural Biology
- Cell Signaling
Background:
- Activation of IκB kinase (IKK) is essential for NF-κB signaling.
- The exact mechanism of IKK activation remains unclear.
- NF-κB plays a critical role in immune responses and cellular processes.
Purpose of the Study:
- To elucidate the structural basis of human IKK2 (hIKK2) activation.
- To understand how catalytic IKK subunits become transcriptionally active.
- To investigate the role of oligomerization in IKK2 activation.
Main Methods:
- X-ray crystallography to determine the structure of active hIKK2.
- Biochemical assays to study hIKK2 dimerization and oligomerization in solution.
- Site-directed mutagenesis to identify key interaction surfaces for activation.
Main Results:
- The crystal structure of active hIKK2 reveals open dimeric conformations allowing higher-order oligomerization.
- hIKK2 dimers reversibly oligomerize in solution.
- Mutagenesis identified critical surfaces for hIKK2 activation via oligomerization and trans auto-phosphorylation.
Conclusions:
- hIKK2 activation involves transient oligomerization of dimers through specific interfaces.
- This oligomerization facilitates trans auto-phosphorylation, a key step in NF-κB pathway activation.
- The findings explain rapid phosphorylation amplification of IKK2 independent of upstream kinases.
Abstract:
Activation of the IκB kinase (IKK) is central to NF-κB signaling. However, the precise activation mechanism by which catalytic IKK subunits gain the ability to induce NF-κB transcriptional activity is not well understood. Here we report a 4 Å x-ray crystal structure of human IKK2 (hIKK2) in its catalytically active conformation. The hIKK2 domain architecture closely resembles that of Xenopus IKK2 (xIKK2). However, whereas inactivated xIKK2 displays a closed dimeric structure, hIKK2 dimers adopt open conformations that permit higher order oligomerization within the crystal. Reversible oligomerization of hIKK2 dimers is observed in solution. Mutagenesis confirms that two of the surfaces that mediate oligomerization within the crystal are also critical for the process of hIKK2 activation in cells. We propose that IKK2 dimers transiently associate with one another through these interaction surfaces to promote trans auto-phosphorylation as part of their mechanism of activation. This structure-based model supports recently published structural data that implicate strand exchange as part of a mechanism for IKK2 activation via trans auto-phosphorylation. Moreover, oligomerization through the interfaces identified in this study and subsequent trans auto-phosphorylation account for the rapid amplification of IKK2 phosphorylation observed even in the absence of any upstream kinase.
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