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ERK2 Mutations Affect Interactions, Localization, and Dimerization
Clinton A Taylor1, Kevin W Cormier1, Ana Martin-Vega1
1Department of Pharmacology, UT Southwestern Medical Center, Dallas, Texas 75390, United States.
Abstract:
The most frequent ERK2 (MAPK1) mutation in cancers, E322K, lies in the common docking (CD) site, which binds short motifs made up of basic and hydrophobic residues present in the activators MEK1 (MAP2K1) and MEK2 (MAP2K2), in dual specificity phosphatases (DUSPs) that inactivate the kinases, and in many of their substrates. Also, part of the CD site, but mutated less often in cancers, is the preceding aspartate (D321N). These mutants were categorized as gain of function in a sensitized melanoma system. In Drosophila developmental assays, we found that the aspartate but not the glutamate mutant caused gain-of-function phenotypes. Here, we catalogued additional properties of these mutants to accrue greater insight into their functions. A modest increase in nuclear retention of E322K was noted. Binding of ERK2 E322K and D321N to a small group of substrates and regulatory proteins was similar, in spite of differences in CD site integrity. Interactions with a second docking site, the F site, which should be more accessible in E322K, were modestly reduced rather than increased. The crystal structure of ERK2 E322K also indicated a disturbed dimer interface, and reduced dimerization was detected by a two-hybrid test; yet, it was detected in dimers in EGF-treated cells, although to a lesser extent than D321N or wt ERK2. These findings indicate a range of small differences in behaviors that may contribute to increased function of E322K in certain cancers.
Insights
The common ERK2 (MAPK1) E322K cancer mutation shows altered nuclear retention and dimerization, impacting its function. These subtle changes in ERK2 mutants may explain their gain-of-function roles in cancer development.
Area of Science:
- Molecular Biology
- Cell Signaling
- Cancer Genetics
Background:
- The common docking (CD) site of ERK2 (MAPK1) is crucial for interactions with activators, phosphatases, and substrates.
- The frequent cancer mutation E322K and the less common D321N affect the ERK2 CD site, suggesting altered kinase function.
Purpose of the Study:
- To investigate the functional properties of ERK2 E322K and D321N mutants.
- To understand how these mutations contribute to gain-of-function phenotypes observed in cancer.
Main Methods:
- Utilized Drosophila developmental assays to assess gain-of-function phenotypes.
- Analyzed protein-protein interactions, nuclear retention, dimerization, and crystal structure of ERK2 mutants.
- Employed sensitized melanoma and two-hybrid systems to evaluate mutant behavior.
Main Results:
- ERK2 E322K and D321N mutants exhibit gain-of-function phenotypes in Drosophila.
- Modest increases in nuclear retention for E322K were observed.
- Binding to some substrates was similar, but interactions with the F-site were reduced for E322K.
- ERK2 E322K showed reduced dimerization, though still present in EGF-treated cells.
Conclusions:
- Mutations in the ERK2 CD site, particularly E322K, lead to subtle functional alterations including changes in nuclear localization and dimerization.
- These distinct behavioral changes, despite similarities in substrate binding, likely contribute to the increased function of ERK2 E322K in certain cancers.
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