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Updated: Jan 27, 2026

Human Liver Microphysiological System for Assessing Drug-Induced Liver Toxicity In Vitro
Published on: January 31, 2022
Use of a Bile Salt Export Pump Knockdown Rat Susceptibility Model to Interrogate Mechanism of Drug-Induced Liver
Yutai Li1, Raymond Evers2, Michael J Hafey2
1Safety Assessment and Laboratory Animal Resources.
Abstract:
Inhibition of the bile salt export pump (BSEP) may be associated with clinical drug-induced liver injury, but is poorly predicted by preclinical animal models. Here we present the development of a novel rat model using siRNA knockdown (KD) of Bsep that displayed differentially enhanced hepatotoxicity to 8 Bsep inhibitors and not to 3 Bsep noninhibitors when administered at maximally tolerated doses for 7 days. Bsep KD alone resulted in 3- and 4.5-fold increases in liver and plasma levels, respectively, of the sum of the 3 most prevalent taurine conjugated bile acids (T3-BA), approximately 90% decrease in plasma and liver glycocholic acid, and a distinct bile acid regulating gene expression pattern, without resulting in hepatotoxicity. Among the Bsep inhibitors, only asunaprevir and TAK-875 resulted in serum transaminase and total bilirubin increases associated with increases in plasma T3-BA that were enhanced by Bsep KD. Benzbromarone, lopinavir, and simeprevir caused smaller increases in plasma T3-BA, but did not result in hepatotoxicity in Bsep KD rats. Bosentan, cyclosporine A, and ritonavir, however, showed no enhancement of T3-BA in plasma in Bsep KD rats, as well as Bsep noninhibitors acetaminophen, MK-0974, or clarithromycin. T3-BA findings were further strengthened through monitoring TCA-d4 converted from cholic acid-d4 overcoming interanimal variability in endogenous bile acids. Bsep KD also altered liver and/or plasma levels of asunaprevir, TAK-875, TAK-875 acyl-glucuronide, benzbromarone, and bosentan. The Bsep KD rat model has revealed differences in the effects on bile acid homeostasis among Bsep inhibitors that can best be monitored using measures of T3-BA and TCA-d4 in plasma. However, the phenotype caused by Bsep inhibition is complex due to the involvement of several compensatory mechanisms.
Insights
A novel rat model with reduced bile salt export pump (BSEP) function enhances prediction of drug-induced liver injury. This model identifies specific drug effects on bile acid homeostasis, improving preclinical safety assessments.
Area of Science:
- Pharmacology and Toxicology
- Hepatology
- Drug Development
Background:
- Drug-induced liver injury (DILI) is a significant clinical concern.
- Preclinical animal models poorly predict BSEP inhibition-associated DILI.
- Bile salt export pump (BSEP) plays a critical role in bile acid transport and liver protection.
Purpose of the Study:
- To develop and validate a novel rat model for predicting BSEP inhibitor-induced hepatotoxicity.
- To investigate the effects of BSEP inhibition on bile acid homeostasis and drug disposition.
- To differentiate hepatotoxicity potential among various BSEP inhibitors.
Main Methods:
- Development of a rat model using siRNA knockdown (KD) of the Bsep gene.
- Administration of BSEP inhibitors and non-inhibitors at maximally tolerated doses for 7 days.
- Measurement of liver and plasma bile acid levels (T3-BA, TCA-d4), serum transaminases, total bilirubin, and drug concentrations.
Main Results:
- Bsep KD rats exhibited enhanced hepatotoxicity to specific BSEP inhibitors (asunaprevir, TAK-875) but not non-inhibitors.
- BSEP KD alone increased plasma and liver bile acids (T3-BA) and altered bile acid gene expression without causing toxicity.
- Hepatotoxicity was associated with increased plasma T3-BA in Bsep KD rats for certain inhibitors, while others showed varied responses.
Conclusions:
- The Bsep KD rat model effectively differentiates hepatotoxic potential of BSEP inhibitors.
- Plasma T3-BA and TCA-d4 levels are valuable biomarkers for monitoring BSEP inhibition effects.
- The model provides a better preclinical assessment of DILI risk associated with BSEP inhibition.
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