TICTAC: target illumination clinical trial analytics with cheminformatics
Jeremiah I. Abok, Jeremy S. Edwards, Jeremy J. Yang

TL;DR
This paper introduces TICTAC, a tool that combines clinical trial data and cheminformatics to identify and prioritize disease-target associations for drug discovery.
Contribution
The novel contribution is a data integration pipeline that systematically ranks disease-target associations using aggregated evidence and statistical metrics.
Findings
The pipeline integrates clinical trial data with standardized metadata to prioritize biological targets.
A scoring framework assigns confidence scores to disease-target associations using meanRank metrics.
The open-source tool enables scalable hypothesis generation and data-driven decision-making in drug discovery.
Abstract
Identifying disease–target associations is a pivotal step in drug discovery, offering insights that guide the development and optimization of therapeutic interventions. Clinical trial data serves as a valuable source for inferring these associations. However, issues such as inconsistent data quality and limited interpretability pose significant challenges. To overcome these limitations, an integrated approach is required that consolidates evidence from diverse data sources to support the effective prioritization of biological targets for further research. We developed a comprehensive data integration and visualization pipeline to infer and evaluate associations between diseases and known and potential drug targets. This pipeline integrates clinical trial data with standardized metadata, providing an analytical workflow that enables the exploration of diseases linked to specific drug…
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Taxonomy
TopicsComputational Drug Discovery Methods · Genetics, Bioinformatics, and Biomedical Research · Cell Image Analysis Techniques
