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From aging biology to cardiac biotechnology: emerging platforms for modeling cardiac aging
Kritika Chaddha, Mabel Bartlett, Tzahi Cohen-Karni, Aditi Gurkar
Kritika Chaddha, Mabel Bartlett, Tzahi Cohen-Karni, Aditi Gurkar
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From aging biology to cardiac biotechnology: emerging platforms for modeling cardiac aging

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Abstract

Aging is a major contributor to cardiovascular disease and mortality in older adults. Yet most preclinical and experimental cardiac studies fail to account for age as a primary biological variable, leaving a critical gap in our understanding of how aging contributes to disease progression. Bridging this gap requires integrating aging biology, cardiac pathophysiology, and cutting-edge biotechnology to uncover the mechanisms underlying age-related cardiac dysfunction. We offer a new approach methodologies (NAMs) perspective on how emerging bioengineering strategies may reshape the study of cardiac aging by enabling multidimensional monitoring of cardiac function, aging trajectories, and therapeutic responses. To capture this complexity, we propose the A×G×E×D framework, where A stands for age, G for genetics, E for environment, and D for drug exposure, as a multidimensional lens for understanding how these factors converge to determine cardiac vulnerability during aging. We highlight the integration of long-term cardiac microtissues with advancements in biotechnology to model age. This Perspective opens new frontiers for understanding how A×G×E×D interactions manifest at the molecular, cellular, and electrophysiological levels and for designing responsive, personalized interventions that align with each individual’s evolving physiology. By developing robust bioengineered platforms that recapitulate human cardiac aging, we can advance toward precision geromedicine for cardiovascular health.

Authors

Kritika Chaddha, Mabel Bartlett, Tzahi Cohen-Karni, Aditi Gurkar

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Figure 4

Functional features of cardiac NAMs for high-resolution and long-term functional assessment.

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Functional features of cardiac NAMs for high-resolution and long-term fu...
(A) Capture high spatial resolution. Bioengineered devices should be designed to enable high-spatial-resolution mapping of electrical activity, allowing precise visualization of conduction pathways, signal propagation, and local heterogeneity within cardiac tissues. (B) Maintain native cell-cell communication. Integrated mesh electrodes can be embedded within the cardiac microtissues to maintain native cell-cell junctions and tissue architecture, ensuring physiological signal transmission and mechanical integrity. (C) Chronic monitoring. Systems designed for chronic monitoring can enable continuous measurement of conduction velocity, contractile force, and beat rate over extended culture periods spanning several months. (D) Device functionality. Platforms that allow dynamic mechanical stimulation, including cyclic contraction and stretching, which closely mimics the mechanical environment of the native myocardium and promotes tissue maturation would enable a highly rigorous and reproducible NAM. Combined with integrated sensors and electrodes, these devices can provide a noninvasive, high-fidelity readout of electrical and mechanical performance, offering a powerful tool for modeling cardiac aging, disease, and therapeutic response in vitro.

Copyright © 2026 American Society for Clinical Investigation
ISSN 2379-3708

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