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A Drug Discovery Pipeline for MAPK/ERK Pathway Inhibitors in Caenorhabditis elegans
Szymon Gorgoń1, Ola Billing1, Anna U Eriksson2
1Department of Diagnostics and Intervention, Surgery, Umeå University, Umeå, Sweden.
Abstract:
Oncogenic signaling through the MAPK/ERK pathway drives tumor progression in many cancers. Although targeted MAPK/ERK pathway inhibitors improve survival in selected patients, most tumors are resistant. New drugs could be identified in small-animal models that, unlike in vitro models, can address oral uptake, compound bioavailability, and toxicity. This requires pharmacologic conformity between human and model MAPK/ERK pathways and available phenotypic assays. In this study, we test if the conserved MAPK/ERK pathway in Caenorhabditis elegans could serve as a model for pharmacological inhibition and develop in vivo pipelines for high-throughput compound screens. Using fluorescence-based image analysis of vulva development as a readout for MAPK/ERK activity, we obtained excellent assay Z-scores for the MEK inhibitors trametinib (Z = 0.95), mirdametinib (Z = 0.93), and AZD8330 (Z = 0.87), as well as the ERK inhibitor temuterkib (Z = 0.86). The throughput was 800 wells per hour, with an average seed density of 25.5 animals per well. Readouts included drug efficacy, toxicity, and pathway specificity, which was tested against pathway activating upstream (lin-15)- and downstream (lin-1) mutants. To validate the model in a high-throughput setting, we screened a blinded library of 433 anticancer compounds and identified four MEK inhibitors among seven positive hits. Our results highlight a high degree of pharmacological conformity between C. elegans and human MAPK/ERK pathways, and the presented high-throughput pipeline may discover and characterize novel inhibitors in vivo.
Significance:
Many tumors depend on MAPK/ERK signaling to sustain growth, avoid cell death, and metastasize. We show that specific and clinically relevant MAPK/ERK signaling inhibitors can be discovered in vivo with a high-throughput screening pipeline in small animals.
Insights
This study demonstrates that the conserved MAPK/ERK pathway in Caenorhabditis elegans can serve as a small-animal model for discovering novel anticancer drugs. A high-throughput screening pipeline identified MEK inhibitors, highlighting the model
Area of Science:
- Oncology
- Pharmacology
- Genetics
Background:
- The MAPK/ERK pathway is crucial for tumor progression in many cancers.
- Targeted inhibitors improve survival but face resistance, necessitating new drug discovery models.
- Small-animal models offer advantages over in vitro systems for evaluating drug properties like bioavailability and toxicity.
Purpose of the Study:
- To investigate if the conserved MAPK/ERK pathway in Caenorhabditis elegans can model pharmacological inhibition.
- To develop in vivo pipelines for high-throughput compound screening of anticancer drugs.
- To identify novel MAPK/ERK pathway inhibitors using a C. elegans-based screening platform.
Main Methods:
- Utilized fluorescence-based image analysis of vulva development as a readout for MAPK/ERK activity in C. elegans.
- Assessed MEK and ERK inhibitors (trametinib, mirdametinib, AZD8330, temuterkib) for assay performance (Z-scores).
- Developed a high-throughput pipeline with a throughput of 800 wells/hour and screened a library of 433 anticancer compounds.
Main Results:
- Achieved excellent Z-scores for MEK and ERK inhibitors, validating the assay's reliability.
- Identified four MEK inhibitors among seven positive hits in a blinded screen of 433 compounds.
- Demonstrated high pharmacological conformity between C. elegans and human MAPK/ERK pathways.
Conclusions:
- The C. elegans MAPK/ERK pathway serves as a viable small-animal model for drug discovery.
- The developed high-throughput pipeline can effectively discover and characterize novel in vivo anticancer inhibitors.
- This approach holds promise for identifying new therapeutic strategies against MAPK/ERK-driven cancers.

