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Updated: Feb 10, 2026

Human Liver Microphysiological System for Assessing Drug-Induced Liver Toxicity In Vitro
Published on: January 31, 2022
Microfabrication of liver and heart tissues for drug development
Grace E Brown1, Salman R Khetani2
1Department of Bioengineering, University of Illinois at Chicago, Chicago, IL 60607, USA.
Abstract:
Drug-induced liver- and cardiotoxicity remain among the leading causes of preclinical and clinical drug attrition, marketplace drug withdrawals and black-box warnings on marketed drugs. Unfortunately, animal testing has proven to be insufficient for accurately predicting drug-induced liver- and cardiotoxicity across many drug classes, likely due to significant differences in tissue functions across species. Thus, the field of in vitro human tissue engineering has gained increasing importance over the last 10 years. Technologies such as protein micropatterning, microfluidics, three-dimensional scaffolds and bioprinting have revolutionized in vitro platforms as well as increased the long-term phenotypic stability of both primary cells and stem cell-derived differentiated cells. Here, we discuss advances in engineering approaches for constructing in vitro human liver and heart models with utility for drug development. Design features and validation data of representative models are presented to highlight major trends followed by the discussion of pending issues. Overall, bioengineered liver and heart models have significantly advanced our understanding of organ function and injury, which will prove useful for mitigating the risk of drug-induced organ toxicity to human patients, reducing animal usage for preclinical drug testing, aiding in the discovery of novel therapeutics against human diseases, and ultimately for applications in regenerative medicine.This article is part of the theme issue 'Designer human tissue: coming to a lab near you'.
Insights
Engineered human tissue models improve prediction of drug toxicity, reducing animal testing. These advanced in vitro platforms enhance drug development and hold promise for regenerative medicine applications.
Area of Science:
- Biomedical Engineering
- Tissue Engineering
- Drug Development
Background:
- Drug-induced liver and cardiotoxicity are major reasons for drug failure in development and withdrawal.
- Animal testing models often fail to accurately predict human toxicity due to interspecies differences.
Purpose of the Study:
- To review advances in engineering approaches for creating in vitro human liver and heart models for drug development.
- To highlight the utility of these models in mitigating drug-induced organ toxicity and reducing animal testing.
Main Methods:
- Utilizing technologies like protein micropatterning, microfluidics, 3D scaffolds, and bioprinting.
- Engineering in vitro platforms to enhance long-term phenotypic stability of cells.
Main Results:
- Bioengineered liver and heart models show significant progress in understanding organ function and injury.
- These models offer improved prediction of drug-induced toxicity compared to traditional methods.
Conclusions:
- Engineered human tissue models are crucial for safer drug development and reducing reliance on animal testing.
- These platforms advance regenerative medicine and the discovery of new therapeutics.
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