Recent Developments, Applications, and Future Prospects of Advanced Hearts-on-a-Chip

Heart-on-a-chip (HoC) platforms represent a cutting-edge convergence of microfluidics and cellular biology, designed to imitate the complex physiological, electrical, and mechanical environments of a human heart. HoC devices are used to culture and observe cardiac cells in a highly customizable environment while allowing for real-time observations. However, current HoC systems face critical translational bottlenecks. Most notably, laboratory-grown cardiomyocytes consistently exhibit structural and functional immaturity and a lack of cellular complexity. This review evaluates recent engineering and biological strategies engineered to address these limitations. We dissect advancements in multicellular co-culture, biomimetic electrical/mechanical stimulation regimes, and microvascular fabrication techniques aimed at driving functional cell maturation. Finally, we highlight current cardiac model applications, existing challenges, and future perspectives.

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Publication Details

Journal
Micromachines
Published
2026-09-13
DOI
https://doi.org/10.3390/mi17091079
Primary Topic
3D Printing in Biomedical Research
Type
article
Field-Weighted Citation Impact
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article

Recent Developments, Applications, and Future Prospects of Advanced Hearts-on-a-Chip

Young Bok Kang, Hyoju Kim, Gurnho Park, Miriam Kang et al.
Micromachines
3D Printing in Biomedical Research
article

Recent Developments, Applications, and Future Prospects of Advanced Hearts-on-a-Chip

Young Bok Kang, Hyoju Kim, Gurnho Park, Miriam Kang, Timothy Park, Taehong Kim, Aerin Kang, Hayun Lee, Sydney Staley
article en

Abstract

Heart-on-a-chip (HoC) platforms represent a cutting-edge convergence of microfluidics and cellular biology, designed to imitate the complex physiological, electrical, and mechanical environments of a human heart. HoC devices are used to culture and observe cardiac cells in a highly customizable environment while allowing for real-time observations. However, current HoC systems face critical translational bottlenecks. Most notably, laboratory-grown cardiomyocytes consistently exhibit structural and functional immaturity and a lack of cellular complexity. This review evaluates recent engineering and biological strategies engineered to address these limitations. We dissect advancements in multicellular co-culture, biomimetic electrical/mechanical stimulation regimes, and microvascular fabrication techniques aimed at driving functional cell maturation. Finally, we highlight current cardiac model applications, existing challenges, and future perspectives.

MicromachinesVol. 17(9)
George Fox University (US)
Openalex Percentile: Top 20%
3D Printing in Biomedical Research
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Recent Developments, Applications, and Future Prospects of Advanced Hearts-on-a-Chip — Young Bok Kang, Hyoju Kim, et al. · Micromachines (2026) | TGRS Research Map | TGRS