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September 27, 2025The Annual Review of Pharmacology and Toxicology3 citations

Early Detection of Wellness-to-Disease Transitions in the AI Era: Implications for Pharmacology and Toxicology

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NRNoa RappaportBNBartek NogalKPKevin M. Perrott

Key Points

  • Innovative approaches are transforming health care by enabling early detection of disease transitions through dynamic analytics.
  • AI techniques, including machine learning, have proven pivotal in improving biomarker discovery, enhancing precision medicine by predicting health trajectories.
  • Utilizing longitudinal and multimodal data is essential for uncovering early disease signals and developing targeted therapeutics for personalized treatment.
  • Challenges remain in fully integrating AI and systems biology into clinical practice, indicating a need for ongoing research and emerging solutions.

Abstract

Precision medicine demands a shift from static, single-analyte diagnostics toward dynamic, systems-level understanding of health and disease. This review explores how the convergence of systems biology, multiomics, and artificial intelligence (AI) redefines biomarker discovery to drive early disease detection and personalized intervention. We highlight pioneering efforts that use longitudinal, multimodal data to map individual health trajectories and uncover early disease signals. Advances in AI, including machine learning and contextualization using knowledge graphs and digital twins, are accelerating clinical translation by enabling predictive, context-aware analyses. Real-world applications, including omics-informed diagnostics and digital health monitoring, demonstrate the potential of this approach to transform health care from reactive treatment to proactive wellness. These technologies also inform the development of targeted therapeutics that intervene earlier, personalize treatment, and potentially halt or reverse disease progression. We outline challenges, emerging solutions, and future directions that position AI-driven systems biology at the center of next-generation precision health.

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Rappaport et al. (2025) studied this question.

synapsesocial.com/papers/68d7cc66eebfec0fc523880fhttps://doi.org/10.1146/annurev-pharmtox-062124-013423
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