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Updated: Apr 14, 2026

Using Human Differentially Expressed Gene Lists to Perform Downstream Pathway Enrichment Analysis and Target Prioritization
Published on: October 3, 2025
Comprehensive transcriptomic analysis of molecularly targeted drugs in cancer for target pathway evaluation
Tetsuo Mashima1, Masaru Ushijima2, Masaaki Matsuura2,3
1Cancer Chemotherapy Center, Japanese Foundation for Cancer Research, Tokyo, Japan.
Abstract:
Targeted therapy is a rational and promising strategy for the treatment of advanced cancer. For the development of clinical agents targeting oncogenic signaling pathways, it is important to define the specificity of compounds to the target molecular pathway. Genome-wide transcriptomic analysis is an unbiased approach to evaluate the compound mode of action, but it is still unknown whether the analysis could be widely applicable to classify molecularly targeted anticancer agents. We comprehensively obtained and analyzed 129 transcriptomic datasets of cancer cells treated with 83 anticancer drugs or related agents, covering most clinically used, molecularly targeted drugs alongside promising inhibitors of molecular cancer targets. Hierarchical clustering and principal component analysis revealed that compounds targeting similar target molecules or pathways were clustered together. These results confirmed that the gene signatures of these drugs reflected their modes of action. Of note, inhibitors of oncogenic kinase pathways formed a large unique cluster, showing that these agents affect a shared molecular pathway distinct from classical antitumor agents and other classes of agents. The gene signature analysis further classified kinome-targeting agents depending on their target signaling pathways, and we identified target pathway-selective signature gene sets. The gene expression analysis was also valuable in uncovering unexpected target pathways of some anticancer agents. These results indicate that comprehensive transcriptomic analysis with our database (http://scads.jfcr.or.jp/db/cs/) is a powerful strategy to validate and re-evaluate the target pathways of anticancer compounds.
Insights
Transcriptomic analysis effectively classifies anticancer drugs by their molecular targets and pathways. This approach validates drug mechanisms and aids in discovering new therapeutic targets for advanced cancer treatment.
Area of Science:
- Oncology
- Pharmacology
- Genomics
Background:
- Targeted therapy is a key strategy for advanced cancer treatment.
- Defining drug specificity to molecular pathways is crucial for clinical development.
- Genome-wide transcriptomic analysis offers an unbiased method to assess drug action.
Purpose of the Study:
- To evaluate the applicability of transcriptomic analysis in classifying molecularly targeted anticancer agents.
- To confirm if gene signatures reflect drug modes of action.
- To explore the potential of transcriptomic analysis in uncovering unexpected drug targets.
Main Methods:
- Comprehensive analysis of 129 transcriptomic datasets from cancer cells treated with 83 anticancer drugs.
- Utilized hierarchical clustering and principal component analysis to group compounds.
- Focused on clinically used and promising molecularly targeted anticancer agents.
Main Results:
- Compounds targeting similar molecules or pathways clustered together, confirming gene signatures reflect modes of action.
- Inhibitors of oncogenic kinase pathways formed a distinct cluster, indicating a shared pathway.
- Gene signature analysis successfully classified kinome-targeting agents and identified pathway-selective gene sets.
Conclusions:
- Comprehensive transcriptomic analysis is a powerful strategy for validating and re-evaluating anticancer compound target pathways.
- This approach aids in understanding drug mechanisms and identifying novel therapeutic strategies.
- The study provides a valuable database (http://scads.jfcr.or.jp/db/cs/) for transcriptomic analysis of anticancer agents.
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