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Updated: Jul 19, 2026

A Guide to Production, Crystallization, and Structure Determination of Human IKK1/α
Published on: November 2, 2018
Hyperactive variants of p38alpha induce, whereas hyperactive variants of p38gamma suppress, activating protein
Nadav Askari1, Ron Diskin, Michal Avitzour
1Department of Biological Chemistry, The Alexander Silberman Institute of Life Sciences, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.
Abstract:
The p38 family of kinases is a subgroup of the mitogen-activated protein kinase family. It is composed of four isoforms and is involved in critical biological processes as well as in inflammatory diseases. The exact unique role of each p38 isoform in these processes is not understood well. To approach this question we have been developing intrinsically active variants of p38s. Recently we described a series of mutants of the human p38alpha, which were spontaneously active as recombinant proteins purified from Escherichia coli cells. We show here that some of these mutants are spontaneously active in several mammalian cells in culture. The spontaneous activity of some mutants is higher than the activity of the fully activated wild type counterpart. We further produced mutants of the other p38 isoforms and found that p38beta(D176A), p38gamma(D179A), p38delta(D176A), and p38delta(F324S) are spontaneously active in vivo. The active mutants are also spontaneously phosphorylated. To test whether the mutants actually fulfill downstream duties of p38 proteins, we tested their effect on activating protein 1(AP-1)-mediated transcription. Active mutants of p38alpha induced AP-1-driven reporter genes, as well as the c-jun and c-fos promoters. An active variant of p38gamma suppressed AP-1-mediated transcription. When active variants of p38alpha and p38gamma were co-expressed, AP-1 activity was not induced, showing that p38gamma is dominant over p38alpha with respect to AP-1 activation. Thus, intrinsically active variants that are spontaneously active in vivo have been obtained for all p38 isoforms. These variants have disclosed different effects of each isoform on AP-1 activity.
Insights
Researchers created intrinsically active p38 kinase variants to study their roles in biological processes and inflammatory diseases. These active mutants reveal distinct isoform functions, particularly in regulating activating protein 1 (AP-1) transcription.
Area of Science:
- Molecular Biology
- Cell Signaling
- Kinase Biology
Background:
- The p38 kinase family, a subgroup of mitogen-activated protein kinases, comprises four isoforms involved in crucial biological processes and inflammatory diseases.
- The specific roles of each p38 isoform remain incompletely understood.
Purpose of the Study:
- To develop intrinsically active variants of all p38 kinase isoforms.
- To investigate the unique in vivo functions of each p38 isoform, particularly concerning activating protein 1 (AP-1) mediated transcription.
Main Methods:
- Engineering and characterizing spontaneously active mutants of p38 isoforms (p38α, p38β, p38γ, p38δ).
- Assessing mutant activity and phosphorylation in mammalian cells.
- Evaluating the impact of active mutants on AP-1-driven reporter gene and promoter activity (c-jun, c-fos).
Main Results:
- Several p38α mutants exhibited spontaneous activity in vitro and in vivo, exceeding fully activated wild-type p38α.
- Intrinsically active mutants were generated for p38β, p38γ, and p38δ isoforms.
- Active p38α mutants induced AP-1 transcription, while active p38γ suppressed it.
- p38γ demonstrated dominance over p38α in regulating AP-1 activity when co-expressed.
Conclusions:
- Intrinsically active variants for all p38 kinase isoforms were successfully generated and demonstrated spontaneous activity in vivo.
- These active variants provide valuable tools for dissecting the distinct biological roles of p38 isoforms.
- The study revealed isoform-specific effects on AP-1 activity, highlighting p38γ's dominant inhibitory role over p38α.
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