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Clinical trials in a dish: cardiometabolic drug development with biological and digital twins
Debarun Patra, Ibrahim M. Sayed, Ravichandra Venkateshappa, Latha Palaniappan, Tracey McLaughlin, Joseph C. Wu
Debarun Patra, Ibrahim M. Sayed, Ravichandra Venkateshappa, Latha Palaniappan, Tracey McLaughlin, Joseph C. Wu
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Review

Clinical trials in a dish: cardiometabolic drug development with biological and digital twins

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Abstract

Preclinical drug development has long relied on animal models to predict safety and efficacy before agents enter human trials, despite critical differences between human and animal model physiology. The withdrawal of rosiglitazone, rofecoxib, and terfenadine due to cardiovascular toxicity exemplifies the translational cost of this mismatch. Alternative, human-based systems enable more accurate modeling of cardiometabolic diseases in a dish; in 2025, the US FDA’s new approach methodologies (NAMs) roadmap authorized the submission of results from human-relevant models. The roadmap encourages utilizing biological and digital twins as part of an integrated, context-specific, fit-for-purpose strategy. A “biological twin” is a human-derived in vitro system that captures the physiology of a patient and can be used to assess potential cardiotoxicity by drug metabolites. A “digital twin” is the computational counterpart trained on clinical drug response results that can further interpret biological twin data at the patient scale and predict pharmacological parameters. NAMs are no longer experimental but are not yet fully validated as replacements for animal models; major challenges remain before they can be effectively incorporated into the cardiometabolic disease drug discovery pipeline. Addressing these challenges head-on is essential for improving drug development and prediction of their cardiovascular safety.

Authors

Debarun Patra, Ibrahim M. Sayed, Ravichandra Venkateshappa, Latha Palaniappan, Tracey McLaughlin, Joseph C. Wu

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Figure 2

Biological twin platforms for CMD modeling from patient to population level.

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Biological twin platforms for CMD modeling from patient to population le...
(A) Platforms are arranged along axes of throughput and physiological relevance from 2D monoculture and coculture inserts through bioreactors, 3D bioprinting, organoids, and EHTs to organ-on-chip and fully integrated MPSs. Cellular constituents include cardiomyocytes, ECs, hepatocytes, adipocytes, fibroblasts, and immune cells from iPSCs or primary patient sources. Insets show microfluidic chip architecture and gut-heart and gut-liver multiorgan configurations relevant to oral drug absorption, first-pass hepatic metabolism, and downstream cardiac exposure assessment. ALI, air-liquid interface. (B) Organoid village strategy for population-scale biological twin modeling. Patient-derived iPSCs and primary cells obtained from PBMCs and tissue biopsies are stored in a multidonor biobank representing diverse genetic backgrounds and CMD states. These are differentiated into organ-specific organoids and cultured as mixed-donor organoid villages. Single-cell transcriptomics and computational demultiplexing enable population-scale drug response profiling that captures interindividual variability in a single experimental run.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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