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Updated: Sep 22, 2025

Drug Repurposing Hypothesis Generation Using the "RE:fine Drugs" System
Published on: December 11, 2016
Pharmacogenetic and pharmacogenomic discovery strategies
Concetta Crisafulli1, Petronilla Daniela Romeo2, Marco Calabrò1
1Department of Biomedical Sciences - BIOMORF, University of Messina, via Consolare Valeria, 98125 Messina, Italy.
Abstract:
Genetic/genomic profiling at a single-patient level is expected to provide critical information for determining inter-individual drug toxicity and potential efficacy in cancer therapy. A better definition of cancer subtypes at a molecular level, may correspondingly complement such pharmacogenetic and pharmacogenomic approaches, for more effective personalized treatments. Current pharmacogenetic/pharmacogenomic strategies are largely based on the identification of known polymorphisms, thus limiting the discovery of novel or rarer genetic variants. Recent improvements in cost and throughput of next generation sequencing (NGS) are now making whole-genome profiling a plausible alternative for clinical procedures. Beyond classical pharmacogenetic/pharmacogenomic traits for drug metabolism, NGS screening programs of cancer genomes may lead to the identification of novel cancer-driving mutations. These may not only constitute novel therapeutic targets, but also effector determinants for metabolic pathways linked to drug metabolism. An additional advantage is that cancer NGS profiling is now leading to discovering targetable mutations, e.g., in glioblastomas and pancreatic cancers, which were originally discovered in other tumor types, thus allowing for effective repurposing of active drugs already on the market.
Insights
Next-generation sequencing (NGS) enables whole-genome profiling for personalized cancer therapy, identifying novel mutations for targeted treatments and drug repurposing. This advances pharmacogenomics beyond known polymorphisms for improved drug efficacy and reduced toxicity.
Area of Science:
- Genomics
- Pharmacogenomics
- Cancer Biology
Background:
- Personalized cancer therapy relies on individual genetic profiling for drug toxicity and efficacy.
- Current pharmacogenetic strategies are limited by focusing on known polymorphisms, hindering novel variant discovery.
Purpose of the Study:
- To explore the potential of next-generation sequencing (NGS) for comprehensive cancer genome profiling.
- To identify novel cancer mutations and their implications for targeted therapies and drug metabolism.
Main Methods:
- Utilizing advancements in next-generation sequencing (NGS) for cost-effective whole-genome profiling.
- Analyzing cancer genomes to identify novel driver mutations and pharmacogenetic traits.
Main Results:
- NGS facilitates the discovery of novel cancer-driving mutations beyond classical pharmacogenetic markers.
- Identified mutations can serve as novel therapeutic targets and inform drug metabolism pathways.
- Cancer NGS profiling aids in repurposing existing drugs by identifying targetable mutations across tumor types.
Conclusions:
- Whole-genome profiling via NGS offers a powerful approach for personalized cancer treatment.
- NGS expands pharmacogenomic capabilities, enabling the discovery of new therapeutic targets and drug repurposing strategies.
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