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Updated: Feb 19, 2026

Human Liver Microphysiological System for Assessing Drug-Induced Liver Toxicity In Vitro
Published on: January 31, 2022
The Identification of Pivotal Transcriptional Factors Mediating Cell Responses to Drugs With Drug-Induced Liver
Falgun Shah1, Alex Medvedev2, Anne Mai Wassermann1
1Computational Sciences, Worldwide Medicinal Chemistry, Pfizer Inc, Cambridge, Massachusetts 02139.
Abstract:
Drug-induced liver injury (DILI) is a leading cause of drug attrition during drug development and a common reason for drug withdrawal from the market. The poor predictability of conventional animal-based approaches necessitates the development of alternative testing approaches. A body of evidence associates DILI with the induction of stress-response genes in liver cells. Here, we set out to identify signal transduction pathways predominantly involved in the regulation of gene transcription by DILI drugs. To this end, we employed ATTAGENE's cell-based multiplexed reporter assay, the FACTORIAL transcription factor (TF), that enables quantitative assessment of the activity of multiple stress-responsive TFs in a single well of cells. Homogeneous reporter system enables quantitative functional assessment of multiple transcription factors. Nat. Methods 5, 253-260). Using this assay, we assessed TF responses of the human hepatoma cell line HepG2 to a panel of 64 drug candidates, including 23 preclinical DILI and 11 clinical DILI compounds and 30 nonhepatotoxic compounds from a diverse physicochemical property space. We have identified 16 TF families that specifically responded to DILI drugs, including nuclear factor (erythroid-derived 2)-like 2 antioxidant response element, octamer, hypoxia inducible factor 1 alpha, farnesoid-X receptor, TCF/beta-catenin, aryl hydrocarbon receptor, activator protein-1, E2F, early growth response-1, metal-response transcription factor 1, sterol regulatory element-binding protein, paired box protein, peroxisome proliferator-activated receptor, liver X receptor, interferone regulating factor, and P53, and 2 promoters that responded to multiple TFs (cytomegalovirus and direct repeat 3/vitamin D receptor). Some of TFs identified here also have previously defined role in pathogenesis of liver diseases. These data demonstrate the utility of cost-effective, animal-free, TF profiling assay for detecting DILI potential of drug candidates at early stages of drug development.
Insights
Drug-induced liver injury (DILI) is a major challenge in drug development. A new animal-free assay identifies specific transcription factor pathways activated by DILI drugs, enabling early detection of potential liver toxicity.
Area of Science:
- Biochemistry
- Toxicology
- Drug Development
Background:
- Drug-induced liver injury (DILI) is a significant hurdle in pharmaceutical research, leading to drug attrition and market withdrawal.
- Current animal-based toxicity tests have limited predictability, necessitating novel alternative approaches.
- Stress-response gene induction in liver cells is a known hallmark of DILI.
Purpose of the Study:
- To identify signal transduction pathways regulating gene transcription by DILI drugs.
- To develop and validate an animal-free assay for early DILI detection.
Main Methods:
- Utilized ATTAGENE's FACTORIAL transcription factor (TF) assay, a cell-based multiplexed reporter system.
- Quantitatively assessed the activity of multiple stress-responsive TFs in HepG2 cells exposed to 64 drug candidates.
- Included preclinical DILI, clinical DILI, and non-hepatotoxic compounds in the drug panel.
Main Results:
- Identified 16 TF families specifically responding to DILI drugs.
- Detected responses from TFs including Nrf2, HIF1α, FX R, AhR, AP-1, and P53.
- Found two promoters (CMV and DR3/VDR) responsive to multiple TFs.
Conclusions:
- The FACTORIAL TF assay is a cost-effective, animal-free method for early DILI potential detection.
- The identified TFs and pathways offer insights into DILI pathogenesis.
- This assay aids in identifying safer drug candidates during early development stages.
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