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Updated: Jul 19, 2025

Following the Dynamics of Structural Variants in Experimentally Evolved Populations
Published on: February 3, 2023
Evolutionary history of MEK1 illuminates the nature of deleterious mutations
Ekaterina P Andrianova1,2, Robert A Marmion3, Stanislav Y Shvartsman3,4,5
1Department of Microbiology, The Ohio State University, Columbus, OH 43210.
Abstract:
Mutations in signal transduction pathways lead to various diseases including cancers. MEK1 kinase, encoded by the human MAP2K1 gene, is one of the central components of the MAPK pathway and more than a hundred somatic mutations in the MAP2K1 gene were identified in various tumors. Germline mutations deregulating MEK1 also lead to congenital abnormalities, such as the cardiofaciocutaneous syndrome and arteriovenous malformation. Evaluating variants associated with a disease is a challenge, and computational genomic approaches aid in this process. Establishing evolutionary history of a gene improves computational prediction of disease-causing mutations; however, the evolutionary history of MEK1 is not well understood. Here, by revealing a precise evolutionary history of MEK1, we construct a well-defined dataset of MEK1 metazoan orthologs, which provides sufficient depth to distinguish between conserved and variable amino acid positions. We matched known and predicted disease-causing and benign mutations to evolutionary changes observed in corresponding amino acid positions and found that all known and many suspected disease-causing mutations are evolutionarily intolerable. We selected several variants that cannot be unambiguously assessed by automated prediction tools but that are confidently identified as "damaging" by our approach, for experimental validation in Drosophila. In all cases, evolutionary intolerant variants caused increased mortality and severe defects in fruit fly embryos confirming their damaging nature. We anticipate that our analysis will serve as a blueprint to help evaluate known and novel missense variants in MEK1 and that our approach will contribute to improving automated tools for disease-associated variant interpretation.
Insights
Understanding the evolutionary history of the MEK1 gene helps identify disease-causing mutations. This study reveals MEK1
Area of Science:
- Genomics
- Molecular Biology
- Evolutionary Biology
Background:
- Signal transduction pathways, including MAPK, are crucial in cellular processes.
- Mutations in MEK1 (MAP2K1) are linked to cancers and congenital disorders.
- Accurate evaluation of MEK1 variants is challenging, necessitating improved computational methods.
Purpose of the Study:
- To elucidate the evolutionary history of MEK1.
- To create a comprehensive dataset of MEK1 metazoan orthologs.
- To correlate evolutionary conservation with disease-causing potential of MEK1 mutations.
Main Methods:
- Constructed a dataset of MEK1 metazoan orthologs.
- Analyzed evolutionary conservation of amino acid positions.
- Matched known mutations to evolutionary intolerance.
- Validated predicted damaging variants in Drosophila melanogaster.
Main Results:
- Established a precise evolutionary history for MEK1.
- Identified evolutionarily intolerant positions associated with disease.
- Validated that evolutionarily intolerant variants cause embryonic defects and mortality in Drosophila.
- Demonstrated that known and suspected disease-causing mutations are evolutionarily intolerable.
Conclusions:
- The evolutionary history of MEK1 provides a robust framework for variant interpretation.
- This approach enhances the identification of damaging MEK1 missense variants.
- The findings will aid in improving automated tools for disease-associated variant analysis.
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