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Oligopeptide Competition Assay for Phosphorylation Site Determination
Published on: May 18, 2017
Identification of novel phosphorylation sites in MSK1 by precursor ion scanning MS
Claire E McCoy1, Andrew macdonald, Nick A Morrice
1MRC Protein Phosphorylation Unit, School of Life Sciences, University of Dundee, Dundee DD1 5EH, Scotland, UK.
Abstract:
MSK1 (mitogen- and stress-activated kinase 1) is a dual kinase domain protein that acts downstream of the ERK1/2 (extracellular-signal-regulated kinase 1/2) and p38 MAPK (mitogen-activated protein kinase) signalling pathways in cells. MSK1, and its related isoform MSK2, phosphorylate the transcription factors CREB (cAMP-response-element-binding protein) and ATF1 (activating transcription factor 1), and the chromatin proteins histone H3 and HMGN1 (high-mobility-group nucleosomal-binding protein 1) in response to either mitogenic stimulation or cellular stress. MSK1 activity is tightly regulated in cells, and activation requires the phosphorylation of MSK1 by either ERK1/2 or p38a. This results in activation of the C-terminal kinase domain, which then phosphorylates further sites in MSK1, leading to the activation of the N-terminal kinase domain and phosphorylation of substrates. Here, we use precursor ion scanning MS to identify five previously unknown sites in MSK1: Thr630, Ser647, Ser657, Ser695 and Thr700. One of these sites, Thr700, was found to be a third site in MSK1 phosphorylated by the upstream kinases ERK1/2 and p38a. Mutation of Thr700 resulted in an increased basal activity of MSK1, but this could be further increased by stimulation with PMA or UV-C radiation. Surprisingly, however, mutation of Thr700 resulted in a dramatic loss of Thr581 phosphorylation, a site essential for activity. Mutation of Thr700 and Thr581 to an alanine residue resulted in an inactive kinase, while mutation of both sites to an aspartic acid residue resulted in a kinase with a significant basal activity that could not be further stimulated. Together these results are consistent with a mechanism by which Thr700 phosphorylation relieves the inhibition of MSK1 by a C-terminal autoinhibitory helix and helps induce a conformational shift that protects Thr581 from dephosphorylation.
Insights
Mitogen- and stress-activated kinase 1 (MSK1) activity is regulated by phosphorylation. New sites were identified, including Thr700, which impacts MSK1 activity and stability by affecting Thr581 phosphorylation.
Area of Science:
- Molecular Biology
- Cell Signaling
- Kinase Regulation
Background:
- MSK1 (mitogen- and stress-activated kinase 1) is a key kinase in cellular responses to mitogenic and stress stimuli.
- It phosphorylates transcription factors and chromatin proteins, integrating extracellular signals.
- MSK1 activation is a complex process involving upstream kinases like ERK1/2 and p38 MAPK.
Purpose of the Study:
- To identify novel phosphorylation sites in MSK1 using mass spectrometry.
- To investigate the functional consequences of phosphorylating these new sites, particularly Thr700.
- To elucidate the regulatory mechanism of MSK1 activity and its interaction with Thr581.
Main Methods:
- Precursor ion scanning mass spectrometry (MS) was employed to identify unknown phosphorylation sites.
- Site-directed mutagenesis was used to alter specific phosphorylation residues (e.g., Thr700, Thr581).
- Kinase activity assays were performed on wild-type and mutant MSK1 under various stimulation conditions.
Main Results:
- Five novel MSK1 phosphorylation sites were identified: Thr630, Ser647, Ser657, Ser695, and Thr700.
- Thr700 was confirmed as a site phosphorylated by ERK1/2 and p38a.
- Mutation of Thr700 increased basal MSK1 activity but dramatically reduced Thr581 phosphorylation, essential for activity.
Conclusions:
- Phosphorylation at Thr700 plays a critical role in regulating MSK1 activity.
- Thr700 phosphorylation appears to relieve autoinhibition by a C-terminal helix and stabilizes the active conformation by protecting Thr581 from dephosphorylation.
- These findings provide new insights into the intricate regulatory network controlling MSK1 function.

