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Updated: Jun 28, 2025

Drug Repurposing Hypothesis Generation Using the "RE:fine Drugs" System
Published on: December 11, 2016
Computational repurposing of oncology drugs through off-target drug binding interactions from pharmacological
Imogen R Walpole1, Farzana Y Zaman1, Peinan Zhao2
1Department of Medical Oncology, The Alfred Hospital, Melbourne, Australia.
Purpose:
Systematic repurposing of approved medicines for another indication may accelerate drug development in oncology. We present a strategy combining biomarker testing with drug repurposing to identify new treatments for patients with advanced cancer.
Methods:
Tumours were sequenced with the Illumina TruSight Oncology 500 (TSO-500) platform or the FoundationOne CDx panel. Mutations were screened by two medical oncologists and pathogenic mutations were categorised referencing literature. Variants of unknown significance were classified as potentially pathogenic using plausible mechanisms and computational prediction of pathogenicity. Gain of function (GOF) mutations were evaluated through repurposing databases Probe Miner (PM), Broad Institute Drug Repurposing Hub (Broad Institute DRH) and TOPOGRAPH. GOF mutations were repurposing events if identified in PM, not indexed in TOPOGRAPH and excluding mutations with a known Food and Drug Administration (FDA)-approved biomarker. The computational repurposing approach was validated by evaluating its ability to identify FDA-approved biomarkers. The total repurposable genome was identified by evaluating all possible gene-FDA drug-approved combinations in the PM dataset.
Results:
The computational repurposing approach was accurate at identifying FDA therapies with known biomarkers (94%). Using next-generation sequencing molecular reports (n = 94), a meaningful percentage of patients (14%) could have an off-label therapeutic identified. The frequency of theoretical drug repurposing events in The Cancer Genome Atlas pan-cancer dataset was 73% of the samples in the cohort.
Conclusion:
A computational drug repurposing approach may assist in identifying novel repurposing events in cancer patients with no access to standard therapies. Further validation is needed to confirm a precision oncology approach using drug repurposing.
Insights
Drug repurposing combined with biomarker testing can identify new cancer treatments. This computational approach accurately identified FDA-approved therapies, offering potential new options for patients lacking standard treatments.
Area of Science:
- Oncology
- Genomics
- Pharmacology
Background:
- Drug repurposing accelerates oncology drug development by identifying new indications for approved medicines.
- Biomarker-driven strategies are crucial for precision medicine in advanced cancer.
Purpose of the Study:
- To develop and validate a computational strategy combining biomarker testing with drug repurposing for advanced cancer patients.
- To identify novel repurposing opportunities for existing drugs based on tumor molecular profiles.
Main Methods:
- Tumor sequencing using Illumina TSO-500 or FoundationOne CDx.
- Identification and classification of pathogenic mutations, including variants of unknown significance.
- Utilizing repurposing databases (Probe Miner, Broad Institute DRH, TOPOGRAPH) to identify potential drug repurposing events for gain-of-function mutations.
Main Results:
- The computational repurposing approach achieved 94% accuracy in identifying FDA therapies with known biomarkers.
- Next-generation sequencing identified potential off-label therapeutics for 14% of patients (n=94).
- The Cancer Genome Atlas dataset revealed a 73% frequency of theoretical drug repurposing events.
Conclusions:
- A computational drug repurposing strategy can help identify novel therapeutic options for cancer patients without standard treatment access.
- Further validation is required to confirm the efficacy of this precision oncology approach using drug repurposing.
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