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January 25, 2026The Annual Review of Pharmacology and Toxicology4 citationsOpen Access

Navigating the Computational Landscape for Drug Repurposing

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AÁAndrea Álvarez‐PérezLPLucía Prieto-SantamaríaACAna I. Casas

Key Points

  • The aim is to outline data-driven methodologies for drug repurposing and highlight emerging technologies like AI.
  • Review of computational techniques for drug repurposing
  • Discussion of molecular docking and network-based methods
  • Integration of omics data
  • Analysis of case studies showcasing practical applications
  • Addressing challenges and proposing future directions
  • Computational methods provide insights into drug repurposing
  • AI and large language models reveal new opportunities
  • Specific case studies highlight successful repurposing applications

Abstract

Giving old drugs new uses, a process known as drug repurposing, is an attractive strategy for finding therapeutic candidates for a wide number of diseases. In this context, data-driven approaches have emerged as a suitable framework to target this challenge. From molecular docking and network-based methods to omics data integration, computational techniques give invaluable insights into drug repurposing research. In the present review, we describe these methodologies and knowledge-based resources, also emphasizing the new horizons that artificial intelligence and large language models are revealing. A set of case studies illuminate the practical applications of these computational approaches to the identification of repurposing opportunities. By addressing a set of key challenges and proposing future directions, this review aims to be a resource for researchers navigating the multifaceted landscape of computational drug repurposing.

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Cite This Study

Álvarez‐Pérez et al. (2026) studied this question.

synapsesocial.com/papers/6975b1a9feba4585c2d6d275https://doi.org/10.1146/annurev-pharmtox-121924-042636
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