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Assaying Protein Kinase Activity with Radiolabeled ATP
Published on: May 26, 2017
The Ser(186) phospho-acceptor site within ERK4 is essential for its ability to interact with and activate PRAK/MK5
Maria Perander1, Espen Aberg, Bjarne Johansen
1Department of Pharmacology, Institute of Medical Biology, University of Tromsø, N-9037 Tromsø, Norway.
Abstract:
ERK (extracellular-signal-regulated kinase) 4 [MAPK (mitogen-activated protein kinase) 4] and ERK3 (MAPK6) are atypical MAPKs. One major difference between these proteins and the classical MAPKs is substitution of the conserved T-X-Y motif within the activation loop by a single phospho-acceptor site within an S-E-G motif. In the present study we report that Ser(186) of the S-E-G motif in ERK4 is phosphorylated in vivo. Kinase-dead ERK4 is also phosphorylated on Ser(186), indicating that an ERK4 kinase, rather than autophosphorylation, is responsible. Co-expression of MK5 [MAPK-activated protein kinase 5; also known as PRAK (p38-regulated/activated kinase)], a physiological target of ERK4, increases phosphorylation of Ser(186). This is not dependent on MK5 activity, but does require interaction between ERK4 and MK5 suggesting that MK5 binding either prevents ERK4 dephosphorylation or facilitates ERK4 kinase activity. ERK4 mutants in which Ser(186) is replaced with either an alanine residue or a phospho-mimetic residue (glutamate) are unable to activate MK5 and Ser(186) is also required for cytoplasmic anchoring of MK5. Both defects seem to reflect an impaired ability of the ERK4 mutants to interact with MK5. We find that there are at least two endogenous pools of wild-type ERK4. One form exhibits reduced mobility when analysed using SDS/PAGE. This is due to MK5-dependent phosphorylation and only this retarded ERK4 species is both phosphorylated on Ser(186) and co-immunoprecipitates with wild-type MK5. We conclude that binding between ERK4 and MK5 facilitates phosphorylation of Ser(186) and stabilization of the ERK4-MK5 complex. This results in phosphorylation and activation of MK5, which in turn phosphorylates ERK4 on sites other than Ser(186) resulting in the observed mobility shift.
Insights
Extracellular-signal-regulated kinase 4 (ERK4) phosphorylation at Ser(186) is mediated by MAPK-activated protein kinase 5 (MK5) binding, which is crucial for MK5 activation and ERK4 complex stabilization.
Area of Science:
- Cellular Biology
- Molecular Biology
- Signal Transduction
Background:
- Atypical MAPKs like ERK4 (MAPK4) and ERK3 (MAPK6) differ from classical MAPKs by lacking a conserved T-X-Y activation motif.
- ERK4 and ERK3 possess a unique S-E-G motif with a single phospho-acceptor site, distinguishing their activation mechanisms.
Purpose of the Study:
- To investigate the in vivo phosphorylation of ERK4 at Ser(186) within its S-E-G motif.
- To elucidate the role of MAPK-activated protein kinase 5 (MK5) in ERK4 phosphorylation and activation.
Main Methods:
- In vivo phosphorylation analysis of ERK4, including kinase-dead mutants.
- Co-expression studies with MK5 to assess its effect on ERK4 phosphorylation.
- Site-directed mutagenesis of ERK4 at Ser(186) to alanine or glutamate residues.
- Analysis of ERK4-MK5 complex formation and MK5 cytoplasmic localization.
Main Results:
- Ser(186) of ERK4 is phosphorylated in vivo, independent of autophosphorylation, with MK5 binding enhancing this phosphorylation.
- ERK4 mutants at Ser(186) exhibit impaired MK5 activation and cytoplasmic anchoring, indicating Ser(186) is critical for MK5 interaction.
- MK5-dependent phosphorylation of ERK4 leads to a mobility shift in SDS/PAGE, forming a stabilized ERK4-MK5 complex.
Conclusions:
- Binding of MK5 to ERK4 facilitates Ser(186) phosphorylation and stabilizes the complex, leading to MK5 activation.
- Phosphorylation of Ser(186) is essential for ERK4's ability to activate MK5 and for MK5's proper localization.
- The interaction between ERK4 and MK5 is a key regulatory step in this atypical MAPK pathway.
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