Reverse bioengineering of the liver: developmental principles for next-generation liver-on-a-chip systems

Despite major advances in liver-on-a-chip and organoid technologies, most current in vitro liver models remain limited. Here, it is argued that these limitations are fundamentally conceptual rather than purely technical. Reverse bioengineering is introduced as a unifying design framework for liver-on-a-chip systems, in which human liver development is treated as the primary engineering blueprint rather than adult hepatic phenotype as the endpoint. Existing cell sources, liver organoids, and liver-on-a-chip platforms are critically evaluated, demonstrating that each capture complementary but incomplete aspects of liver development. Pluripotent stem cells uniquely enable access to intrinsic developmental programs and cellular diversity, organoids partially reconstruct early developmental trajectories through self-organization, and microphysiological systems provide extrinsic cues without fully encoding developmental execution. Finally, futured directions are outlined, highlighting developmentally coordinated multi-organ systems, quantitative developmental benchmarks, and the emerging role of multi-omics-enabled Digital Twins and artificial intelligence in guiding and interpreting liver-on-a-chip design.

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Publication Details

Journal
Communications Biology
Published
2026-09-16
DOI
https://doi.org/10.1038/s42003-026-10887-5
Primary Topic
3D Printing in Biomedical Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Reverse bioengineering of the liver: developmental principles for next-generation liver-on-a-chip systems

Ken‐ichiro Kamei
Communications Biology
3D Printing in Biomedical Research
article

Reverse bioengineering of the liver: developmental principles for next-generation liver-on-a-chip systems

Ken‐ichiro Kamei
article en

Abstract

Despite major advances in liver-on-a-chip and organoid technologies, most current in vitro liver models remain limited. Here, it is argued that these limitations are fundamentally conceptual rather than purely technical. Reverse bioengineering is introduced as a unifying design framework for liver-on-a-chip systems, in which human liver development is treated as the primary engineering blueprint rather than adult hepatic phenotype as the endpoint. Existing cell sources, liver organoids, and liver-on-a-chip platforms are critically evaluated, demonstrating that each capture complementary but incomplete aspects of liver development. Pluripotent stem cells uniquely enable access to intrinsic developmental programs and cellular diversity, organoids partially reconstruct early developmental trajectories through self-organization, and microphysiological systems provide extrinsic cues without fully encoding developmental execution. Finally, futured directions are outlined, highlighting developmentally coordinated multi-organ systems, quantitative developmental benchmarks, and the emerging role of multi-omics-enabled Digital Twins and artificial intelligence in guiding and interpreting liver-on-a-chip design.

Communications BiologyVol. 9(1)
Shenyang Pharmaceutical University (CN), New York University Abu Dhabi (AE), Kyoto University (JP), Kyoto City University of Arts (JP), Ministry of Education (ME)
New York University Abu Dhabi, York University
Openalex Percentile: Top 22%
3D Printing in Biomedical Research
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Reverse bioengineering of the liver: developmental principles for next-generation liver-on-a-chip systems — Ken‐ichiro Kamei · Communications Biology (2026) | TGRS Research Map | TGRS