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Updated: Jul 14, 2025

In Silico Clinical Trials for Cardiovascular Disease
Published on: May 27, 2022
Precision medicine for cardiometabolic disease: a framework for clinical translation
Paul W Franks1, William T Cefalu2, John Dennis3
1Department of Translational Medicine, Medical Science, Novo Nordisk Foundation, Hellerup, Denmark; Lund University Diabetes Centre, Department of Clinical Sciences, Lund University, Malmö, Sweden; Oxford Centre for Diabetes, Endocrinology and Metabolism, Radcliffe Department of Medicine, University of Oxford, Oxford, UK; Harvard T H Chan School of Public Health, Boston, MA, USA.
Insights
Precision medicine offers a powerful approach to combat cardiometabolic diseases by integrating diagnostics, prediction, prevention, prognosis, treatment, and monitoring. The EPPOS model provides a framework for its successful implementation in research and clinical practice.
Area of Science:
- Cardiology
- Metabolic Diseases
- Genomics
- Personalized Medicine
Background:
- Cardiometabolic disease poses a significant global health challenge.
- Precision medicine can reduce the burden of these complex diseases.
- Current evidence-based medicine can be enhanced through precision approaches.
Purpose of the Study:
- To outline a model for integrating precision medicine into cardiometabolic disease research and clinical practice.
- To contextualize precision medicine's role in diagnostics, prediction, prevention, prognosis, treatment, and monitoring.
- To facilitate the translation of scientific discoveries into clinical practice.
Main Methods:
- Introduction of the EPPOS (Evidence-based, Prediction, Prevention, Prognosis, and Stratification) model.
- Integration of precision and personalized medicine principles.
- Consideration of necessary infrastructure, including data systems and cohort studies.
Main Results:
- The EPPOS model builds upon evidence-based approaches.
- Precision medicine stratifies patients for improved predictions and tailored treatments.
- Personalized medicine uses individual data for objective therapeutic assessment and subjective decision-making.
Conclusions:
- Precision medicine requires a collaborative system involving diverse stakeholders.
- Robust data infrastructure and well-designed studies are essential for precision medicine.
- A comprehensive framework is proposed for integrating precision medicine in cardiometabolic disease care.
Abstract:
Cardiometabolic disease is a major threat to global health. Precision medicine has great potential to help to reduce the burden of this common and complex disease cluster, and to enhance contemporary evidence-based medicine. Its key pillars are diagnostics; prediction (of the primary disease); prevention (of the primary disease); prognosis (prediction of complications of the primary disease); treatment (of the primary disease or its complications); and monitoring (of risk exposure, treatment response, and disease progression or remission). To contextualise precision medicine in both research and clinical settings, and to encourage the successful translation of discovery science into clinical practice, in this Series paper we outline a model (the EPPOS model) that builds on contemporary evidence-based approaches; includes precision medicine that improves disease-related predictions by stratifying a cohort into subgroups of similar characteristics, or using participants' characteristics to model treatment outcomes directly; includes personalised medicine with the use of a person's data to objectively gauge the efficacy, safety, and tolerability of therapeutics; and subjectively tailors medical decisions to the individual's preferences, circumstances, and capabilities. Precision medicine requires a well functioning system comprised of multiple stakeholders, including health-care recipients, health-care providers, scientists, health economists, funders, innovators of medicines and technologies, regulators, and policy makers. Powerful computing infrastructures supporting appropriate analysis of large-scale, well curated, and accessible health databases that contain high-quality, multidimensional, time-series data will be required; so too will prospective cohort studies in diverse populations designed to generate novel hypotheses, and clinical trials designed to test them. Here, we carefully consider these topics and describe a framework for the integration of precision medicine in cardiometabolic disease.
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Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of...

