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Updated: Jul 14, 2026

Assaying Protein Kinase Activity with Radiolabeled ATP
Published on: May 26, 2017
Role of non-phosphorylated activation loop residues in determining ERK2 dephosphorylation, activity, and subcellular
Sarit Bendetz-Nezer1, Rony Seger
1Department of Biological Regulation, Weizmann institute of Science, Rehovot 76100, Israel.
Abstract:
Extracellular signal-regulated kinases (ERKs) activity is regulated by MAPK/ERK kinases (MEKs), which phosphorylate the regulatory Tyr and Thr residues in ERKs activation loop, and by various phosphatases that remove the incorporated phosphates. Although the role of the phosphorylated residues in the activation loop of ERKs is well studied, much less is known about the role of other residues within this loop. Here we substituted several residues within amino acids 173-177 of ERK2 and studied their role in ERK2 phosphorylation, substrate recognition, and subcellular localization. We found that substitution of residues 173-175 and particularly Pro(174) to alanines reduces the EGF-induced ERK2 phosphorylation, without modifying its in vitro phosphorylation by MEK1. Examining the ability of these mutants to be dephosphorylated revealed that 173-5A mutants are hypersensitive to phosphatases, indicating that these residues are important for setting the phosphorylation/dephosphorylation balance of ERKs. In addition, 173-5A mutants reduced ERK2 activity toward Elk-1, without affecting the activity of ERK2 toward MBP, while substitution of residues 176-8 decreased ERK2 activity toward both substrates. Substitution of Asp(177) to alanine increased nuclear localization of the construct in MEK1-overexpressing cells, suggesting that this residue together with His(176) is involved in the dissociation of ERK2 from MEKs. Combining CRS/CD motif and the activation loop mutations revealed that these two regions cooperate in determining the net phosphorylation of ERK2, but the role of the CRS/CD motif predominates that of the activation loop residues. Thus, we show here that residues 173-177 of ERK2 join other regulatory regions of ERKs in governing ERK activity.
Insights
Residues 173-177 in ERK2 influence its phosphorylation balance and substrate specificity. Mutations here affect how ERK2 (extracellular signal-regulated kinase) interacts with phosphatases and its activity toward specific targets like Elk-1.
Area of Science:
- Molecular biology
- Cell signaling
- Protein biochemistry
Background:
- Extracellular signal-regulated kinases (ERKs) are crucial signaling proteins regulated by MAPK/ERK kinases (MEKs) and phosphatases.
- While the role of phosphorylated residues in the ERK activation loop is known, other residues' functions remain less understood.
Purpose of the Study:
- To investigate the role of specific residues (173-177) within the ERK2 activation loop.
- To determine their impact on ERK2 phosphorylation, substrate recognition, and subcellular localization.
Main Methods:
- Site-directed mutagenesis of ERK2 residues 173-177.
- Analysis of EGF-induced and MEK1-mediated phosphorylation.
- Assessment of phosphatase sensitivity and in vitro kinase activity assays.
- Evaluation of subcellular localization in MEK1-overexpressing cells.
Main Results:
- Mutations at residues 173-175 reduced EGF-induced ERK2 phosphorylation and increased sensitivity to phosphatases.
- ERK2 mutants showed altered substrate specificity, affecting activity toward Elk-1 but not MBP.
- Substitution of Asp(177) promoted nuclear localization, suggesting involvement in ERK2-MEK dissociation.
- Cooperative regulation between the activation loop and CRS/CD motif was observed, with the latter predominating.
Conclusions:
- Residues 173-177 of ERK2 play a significant role in regulating its phosphorylation state and activity.
- These residues are critical for maintaining the phosphorylation/dephosphorylation balance and substrate specificity of ERK2.
- The findings highlight a cooperative mechanism between the activation loop and other regulatory regions in governing ERK2 function.
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