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Updated: Apr 16, 2026

Drug Repurposing Hypothesis Generation Using the "RE:fine Drugs" System
Published on: December 11, 2016
molIEreVIS: exploring and interpreting the evidence behind drug repurposing predictions
Amal Alnouri1, Andreas Hinterreiter1, Christian Steinparz1
1Visual Data Science Lab, Johannes Kepler University, Linz, Austria.
Introduction:
Finding new uses for existing drugs, known as drug repurposing, is a widely adopted drug development strategy in the pharmaceutical industry. Computational drug repurposing leverages vast biomedical data to prioritize repurposing candidates. Once these candidates are prioritized, domain experts face the burden of evaluating their true potential.
Methods:
In this work, we propose a visualization-based approach to address this challenge for a multimodal class of computational drug repurposing, where heterogeneous evidence modalities are integrated. We conducted a design study in close collaboration with domain experts, from which we derived a domain abstraction of the expert assessment process. Grounded in this abstraction, we developed an interactive visualization approach that explicitly models the expert reasoning process. We applied the proposed approach to create a prototype implementation, molIEreVIS, in the context of an operational drug repurposing pipeline. We used this prototype to collect qualitative feedback from domain experts actively engaged in assessing computational drug repurposing candidates.
Results:
The results demonstrate the potential of our approach to support insights and reasoning in this process and reveal directions for enhancements and future work.
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