Related Experiment Video
Updated: Mar 11, 2026

A Competent Hepatocyte Model Examining Hepatitis B Virus Entry through Sodium Taurocholate Cotransporting Polypeptide as a Therapeutic Target
Published on: May 10, 2022
Cyclosporin derivatives inhibit hepatitis B virus entry without interfering with NTCP transporter activity
Satomi Shimura1, Koichi Watashi2, Kento Fukano3
1Department of Virology II, National Institute of Infectious Diseases, Tokyo 162-8640, Japan; SCYNEXIS, Inc., Durham, NC 27713, USA.
Background & Aims:
The sodium taurocholate co-transporting polypeptide (NTCP) is the main target of most hepatitis B virus (HBV) specific entry inhibitors. Unfortunately, these agents also block NTCP transport of bile acids into hepatocytes, and thus have the potential to cause adverse effects. We aimed to identify small molecules that inhibit HBV entry while maintaining NTCP transporter function.
Methods:
We characterized a series of cyclosporine (CsA) derivatives for their anti-HBV activity and NTCP binding specificity using HepG2 cells overexpressing NTCP and primary human hepatocytes. The four most potent derivatives were tested for their capacity to prevent HBV entry, but maintain NTCP transporter function. Their antiviral activity against different HBV genotypes was analysed.
Results:
We identified several CsA derivatives that inhibited HBV infection with a sub-micromolar IC50. Among them, SCY446 and SCY450 showed low activity against calcineurin (CN) and cyclophilins (CyPs), two major CsA cellular targets. This suggested that instead, these compounds interacted directly with NTCP to inhibit viral attachment to host cells, and have no immunosuppressive function. Importantly, we found that SCY450 and SCY995 did not impair the NTCP-dependent uptake of bile acids, and inhibited multiple HBV genotypes including a clinically relevant nucleoside analog-resistant HBV isolate.
Conclusions:
This is the first example of small molecule selective inhibition of HBV entry with no decrease in NTCP transporter activity. It suggests that the anti-HBV activity can be functionally separated from bile acid transport. These broadly active anti-HBV molecules are potential candidates for developing new drugs with fewer adverse effects.
Lay Summary:
In this study, we identified new compounds that selectively inhibited hepatitis B virus (HBV) entry, and did not impair bile acid uptake. Our evidence offers a new strategy for developing anti-HBV drugs with fewer side effects.
Insights
Researchers discovered new compounds that block hepatitis B virus (HBV) entry without affecting bile acid transport. These selective inhibitors offer a promising strategy for developing HBV drugs with fewer side effects.
Area of Science:
- Hepatology and Virology
- Drug Discovery and Development
- Molecular Biology
Background:
- Hepatitis B virus (HBV) entry inhibitors targeting sodium taurocholate co-transporting polypeptide (NTCP) can cause adverse effects due to impaired bile acid transport.
- There is a need for HBV entry inhibitors that selectively block viral entry without compromising NTCP function.
Purpose of the Study:
- To identify small molecules that inhibit HBV entry while preserving NTCP transporter function.
- To develop novel anti-HBV agents with an improved safety profile.
Main Methods:
- Characterization of cyclosporine (CsA) derivatives for anti-HBV activity and NTCP binding specificity.
- Testing potent derivatives in HepG2 cells overexpressing NTCP and primary human hepatocytes.
- Analysis of antiviral activity against diverse HBV genotypes and assessment of NTCP-dependent bile acid uptake.
Main Results:
- Several CsA derivatives demonstrated sub-micromolar IC50 for HBV inhibition.
- Compounds SCY446 and SCY450 showed minimal activity against calcineurin (CN) and cyclophilins (CyPs), suggesting direct NTCP interaction.
- SCY450 and SCY995 selectively inhibited HBV entry without impairing bile acid uptake and showed broad activity against multiple HBV genotypes, including a resistant isolate.
Conclusions:
- This study presents the first small molecules selectively inhibiting HBV entry without affecting NTCP transporter activity.
- Anti-HBV activity can be functionally separated from bile acid transport, offering a new therapeutic strategy.
- These broadly active compounds are promising candidates for developing new anti-HBV drugs with reduced adverse effects.
Related Concept Videos
Hepatic Drug Excretion: Enterohepatic Cycling
Post-release drugs and metabolites can be reabsorbed into the body from the intestine. For conjugated metabolites like glucuronides, reabsorption requires enzymatic hydrolysis by intestinal microflora. This...
Hepatic Drug Excretion: Influencing Factors
Effect of Hepatic Disease on Pharmacokinetics: Drug Dosing and Hepatic Blood Flow
Hepatic Drug Clearance: Role of Transporters
Viruses with RNA Genomes
Inhibition of Cdk Activity

