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Updated: Feb 7, 2026

Gene Expression Analyses in Human Follicles
Published on: February 17, 2023
Integrative omics analyses broaden treatment targets in human cancer
Sohini Sengupta1,2, Sam Q Sun1,2, Kuan-Lin Huang1,2
1Division of Oncology, Department of Medicine, Washington University, St. Louis, MO, 63108, USA.
Background:
Although large-scale, next-generation sequencing (NGS) studies of cancers hold promise for enabling precision oncology, challenges remain in integrating NGS with clinically validated biomarkers.
Methods:
To overcome such challenges, we utilized the Database of Evidence for Precision Oncology (DEPO) to link druggability to genomic, transcriptomic, and proteomic biomarkers. Using a pan-cancer cohort of 6570 tumors, we identified tumors with potentially druggable biomarkers consisting of drug-associated mutations, mRNA expression outliers, and protein/phosphoprotein expression outliers identified by DEPO.
Results:
Within the pan-cancer cohort of 6570 tumors, we found that 3% are druggable based on FDA-approved drug-mutation interactions in specific cancer types. However, mRNA/phosphoprotein/protein expression outliers and drug repurposing across cancer types suggest potential druggability in up to 16% of tumors. The percentage of potential drug-associated tumors can increase to 48% if we consider preclinical evidence. Further, our analyses showed co-occurring potentially druggable multi-omics alterations in 32% of tumors, indicating a role for individualized combinational therapy, with evidence supporting mTOR/PI3K/ESR1 co-inhibition and BRAF/AKT co-inhibition in 1.6 and 0.8% of tumors, respectively. We experimentally validated a subset of putative druggable mutations in BRAF identified by a protein structure-based computational tool. Finally, analysis of a large-scale drug screening dataset lent further evidence supporting repurposing of drugs across cancer types and the use of expression outliers for inferring druggability.
Conclusions:
Our results suggest that an integrated analysis platform can nominate multi-omics alterations as biomarkers of druggability and aid ongoing efforts to bring precision oncology to patients.
Insights
Precision oncology can be advanced by integrating next-generation sequencing (NGS) with multi-omics data. This study identified potentially druggable biomarkers in up to 48% of tumors, enabling personalized combination therapies.
Area of Science:
- Oncology
- Genomics
- Biomarker Discovery
Background:
- Next-generation sequencing (NGS) offers promise for precision oncology.
- Integrating NGS with clinically validated biomarkers remains a challenge.
Purpose of the Study:
- To link druggability to genomic, transcriptomic, and proteomic biomarkers using the Database of Evidence for Precision Oncology (DEPO).
- To identify potentially druggable biomarkers in a large pan-cancer cohort.
Main Methods:
- Utilized DEPO to connect druggability with multi-omics data (genomic, transcriptomic, proteomic).
- Analyzed a pan-cancer cohort of 6570 tumors for drug-associated mutations, mRNA, and protein expression outliers.
- Employed computational tools and drug screening datasets for validation.
Main Results:
- 3% of tumors showed druggability via FDA-approved drug-mutation interactions.
- Up to 16% of tumors exhibited potential druggability through expression outliers and drug repurposing.
- Considering preclinical evidence increased potential druggability to 48%.
- 32% of tumors had co-occurring multi-omics alterations, suggesting combination therapies.
- Experimentally validated druggable BRAF mutations.
Conclusions:
- An integrated analysis platform can nominate multi-omics alterations as druggability biomarkers.
- This approach supports the advancement of precision oncology for patients.
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