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Cancer hotspot mutations rewire ERK2 specificity by selective exclusion of docking interactions
Jaylissa Torres Robles1, Amy L Stiegler2, Titus J Boggon3
1Department of Chemistry, Yale University, New Haven, Connecticut, USA; Department of Pharmacology, Yale School of Medicine, New Haven, Connecticut, USA.
Abstract:
The protein kinase ERK2 is recurrently mutated in human squamous cell carcinomas and other tumors. ERK2 mutations cluster in an essential docking recruitment site that interacts with short linear motifs found within intrinsically disordered regions of ERK substrates and regulators. Cancer-associated mutations do not disrupt ERK2 docking interactions altogether but selectively inhibit some interactions while sparing others. However, the full scope of disrupted or maintained interactions remains unknown, limiting our understanding of how these mutations contribute to cancer. We recently defined the docking interactome of wild-type ERK2 by screening a yeast two-hybrid library of proteomic short linear motifs. Here, we apply this approach to the two most recurrent cancer-associated mutants. We find that most sequences binding to WT ERK2 also interact with both mutant forms. Analysis of differentially interacting sequences revealed that ERK2 mutants selectively lose the ability to bind sequences conforming to a specific motif. We solved the co-crystal structure of ERK2 in complex with a peptide fragment of ISG20, a screening hit that binds exclusively to the WT kinase. This structure demonstrated the mechanism by which cancer hotspot mutations at Glu81, Arg135, Asp321, and Glu322 selectively impact peptide binding. Finally, we found that cancer-associated ERK2 mutations had decreased activity in phosphorylating GEF-H1/ARHGEF2, a known ERK substrate harboring a WT-selective docking motif. Collectively, our studies provide a structural rationale for how a broad set of interactions are disrupted by ERK2 hotspot mutations, suggesting mechanisms for pathway rewiring in cancers harboring these mutations.
Insights
Cancer-associated mutations in ERK2 (extracellular signal-regulated kinase 2) selectively disrupt specific protein interactions, altering its function in tumor development. Understanding these altered interactions provides insight into cancer mechanisms.
Area of Science:
- Molecular Biology
- Cancer Biology
- Structural Biology
Background:
- The protein kinase ERK2 is frequently mutated in human cancers, particularly squamous cell carcinomas.
- These mutations occur in a critical docking site, affecting interactions with substrates and regulators containing short linear motifs.
- The precise impact of these mutations on ERK2's broad interaction network remains incompletely understood.
Purpose of the Study:
- To investigate how cancer-associated ERK2 mutations alter its protein-protein interaction landscape.
- To identify specific molecular interactions disrupted or maintained by these mutations.
- To elucidate the structural mechanisms underlying selective interaction disruption.
Main Methods:
- Yeast two-hybrid screening of proteomic short linear motifs against wild-type (WT) and mutant ERK2.
- Co-crystal structure determination of WT ERK2 with a selective peptide.
- Biochemical assays measuring ERK2 kinase activity on a specific substrate.
Main Results:
- Most interactions with WT ERK2 were maintained with mutant forms, but a specific motif interaction was selectively lost.
- Structural analysis revealed how mutations at key residues (Glu81, Arg135, Asp321, Glu322) impact peptide binding.
- Mutant ERK2 showed reduced phosphorylation of the substrate GEF-H1/ARHGEF2, which contains a WT-selective docking motif.
Conclusions:
- ERK2 hotspot mutations exhibit selective disruption of specific protein interactions, rather than a complete loss of binding.
- Structural insights explain the mechanism of selective interaction inhibition by cancer mutations.
- Altered ERK2 interactions and kinase activity suggest novel mechanisms for pathway rewiring in cancer.
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