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Updated: Aug 9, 2026

Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
Distinct binding determinants for ERK2/p38alpha and JNK map kinases mediate catalytic activation and substrate
D N Slack1, O M Seternes, M Gabrielsen
1Imperial Cancer Research Fund Molecular Pharmacology Unit, Biomedical Research Centre, Level 5, Ninewells Hospital, Dundee DD1 9SY, Scotland, United Kingdom.
Abstract:
Mitogen-activated protein (MAP) kinase phosphatase 1 (MKP-1/CL100) is an inducible nuclear dual specificity protein phosphatase that can dephosphorylate and inactivate both mitogen- and stress-activated protein kinases in vitro and in vivo. However, the molecular mechanism responsible for the substrate selectivity of MKP-1 is unknown. In addition, it has been suggested that the signal transducers and activators of transcription 1 (STAT1) transcription factor is a physiological non-MAP kinase substrate for MKP-1. We have used the yeast two-hybrid assay to demonstrate that MKP-1 is able to interact selectively with the extracellular signal-regulated kinase 1/2 (ERK1/2), p38alpha, and c-Jun NH(2)-terminal kinase (JNK) MAP kinase isoforms. Furthermore, this binding is accompanied by catalytic activation of recombinant MKP-1 protein in vitro, and these end points show an absolute correlation with MKP-1 substrate selectivity in vivo. In contrast, MKP-1 does not interact with STAT1. Recombinant STAT1 does not cause catalytic activation of MKP-1; nor does MKP-1 block tyrosine phosphorylation of STAT1 in vivo. Both binding and catalytic activation of MKP-1 are abrogated by mutation of a conserved docking site in ERK2, p38alpha, and JNK1 MAP kinases. Within MKP-1, MAP kinase binding is mediated by the amino-terminal noncatalytic domain of the protein. However, mutation of a conserved cluster of positively charged residues within this domain abolishes the binding and activation of MKP-1 by ERK2 and p38alpha but not JNK1, indicating that there are distinct binding determinants for these MAP kinase isoforms. We conclude that the substrate selectivity of MKP-1 is determined by specific protein-protein interactions coupled with catalytic activation of the phosphatase and that these interactions are restricted to members of the MAP kinase family of enzymes.
Insights
Mitogen-activated protein kinase phosphatase 1 (MKP-1) selectively binds and activates specific MAP kinase family members. This interaction, not with STAT1, determines MKP-1 substrate selectivity through distinct binding determinants.
Area of Science:
- Molecular Biology
- Cell Signaling
- Enzymology
Background:
- Mitogen-activated protein kinase phosphatase 1 (MKP-1) is a nuclear dual specificity phosphatase.
- MKP-1 dephosphorylates and inactivates both mitogen- and stress-activated protein kinases.
- The molecular mechanism of MKP-1 substrate selectivity is not fully understood.
Purpose of the Study:
- To investigate the molecular mechanism of MKP-1 substrate selectivity.
- To determine if MKP-1 interacts with STAT1.
- To identify the binding determinants for MAP kinase interaction with MKP-1.
Main Methods:
- Yeast two-hybrid assay to assess protein-protein interactions.
- In vitro catalytic activation assays using recombinant MKP-1.
- In vivo phosphorylation assays.
- Site-directed mutagenesis of MAP kinases and MKP-1.
Main Results:
- MKP-1 selectively interacts with extracellular signal-regulated kinase 1/2 (ERK1/2), p38alpha, and c-Jun NH(2)-terminal kinase (JNK) MAP kinase isoforms.
- Binding to these MAP kinases correlates with catalytic activation of MKP-1 and its substrate selectivity in vivo.
- MKP-1 does not interact with STAT1, nor does it affect STAT1 phosphorylation.
- Distinct binding determinants within MKP-1 mediate interactions with different MAP kinase isoforms.
Conclusions:
- MKP-1 substrate selectivity is determined by specific protein-protein interactions with MAP kinases.
- These interactions are coupled with catalytic activation of MKP-1.
- The binding and activation mechanisms are specific to the MAP kinase family and involve distinct determinants for different isoforms.
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