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Updated: Jun 20, 2026

Using Human Differentially Expressed Gene Lists to Perform Downstream Pathway Enrichment Analysis and Target Prioritization
Published on: October 3, 2025
Utilization of genomic signatures to identify phenotype-specific drugs
Seiichi Mori1, Jeffrey T Chang, Eran R Andrechek
1Duke Institute for Genome Sciences & Policy, Duke University Medical Center, Durham, North Carolina, United States of America.
Abstract:
Genetic and genomic studies highlight the substantial complexity and heterogeneity of human cancers and emphasize the general lack of therapeutics that can match this complexity. With the goal of expanding opportunities for drug discovery, we describe an approach that makes use of a phenotype-based screen combined with the use of multiple cancer cell lines. In particular, we have used the NCI-60 cancer cell line panel that includes drug sensitivity measures for over 40,000 compounds assayed on 59 independent cells lines. Targets are cancer-relevant phenotypes represented as gene expression signatures that are used to identify cells within the NCI-60 panel reflecting the signature phenotype and then connect to compounds that are selectively active against those cells. As a proof-of-concept, we show that this strategy effectively identifies compounds with selectivity to the RAS or PI3K pathways. We have then extended this strategy to identify compounds that have activity towards cells exhibiting the basal phenotype of breast cancer, a clinically-important breast cancer characterized as ER-, PR-, and Her2- that lacks viable therapeutic options. One of these compounds, Simvastatin, has previously been shown to inhibit breast cancer cell growth in vitro and importantly, has been associated with a reduction in ER-, PR- breast cancer in a clinical study. We suggest that this approach provides a novel strategy towards identification of therapeutic agents based on clinically relevant phenotypes that can augment the conventional strategies of target-based screens.
Insights
This study introduces a novel phenotype-based drug discovery screen using cancer cell lines to identify new cancer therapeutics. The approach successfully identified compounds targeting specific cancer pathways and basal breast cancer phenotypes.
Area of Science:
- Oncology
- Pharmacology
- Genomics
Background:
- Human cancers exhibit significant complexity and heterogeneity, often lacking targeted therapies.
- Current drug discovery methods face challenges in addressing this complexity.
Purpose of the Study:
- To develop a novel phenotype-based screening approach for drug discovery.
- To identify novel therapeutic agents for complex and heterogeneous cancers, including basal breast cancer.
Main Methods:
- Utilized the NCI-60 cancer cell line panel for drug sensitivity screening of over 40,000 compounds.
- Employed gene expression signatures to represent cancer-relevant phenotypes.
- Linked phenotypes to compounds selectively active against cells exhibiting those phenotypes.
Main Results:
- Successfully identified compounds with selective activity against RAS and PI3K pathways.
- Discovered compounds active against basal breast cancer (ER-, PR-, Her2-) cells.
- Simvastatin identified as a potential therapeutic agent for basal breast cancer.
Conclusions:
- The phenotype-based screening approach offers a novel strategy for identifying therapeutic agents.
- This method can complement traditional target-based drug discovery screens.
- The approach holds promise for discovering treatments for cancers with limited therapeutic options.
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