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Updated: Aug 8, 2025

Identifying Inhibitors of the HBx-DDB1 Interaction Using a Split Luciferase Assay System
Published on: December 21, 2019
Sphondin efficiently blocks HBsAg production and cccDNA transcription through promoting HBx degradation
Fang Ren1,2, Junchi Hu3, Yongjun Dang3
1The Key Laboratory of Molecular Biology of Infectious Diseases designated by the Chinese Ministry of Education, Department of Infectious Diseases, Institute for Viral Hepatitis, The Second Affiliated Hospital, Chongqing Medical University, Chongqing, China.
Insights
A novel natural compound, sphondin, effectively inhibits Hepatitis B virus (HBV) replication by targeting the HBx protein. This compound reduces HBsAg production and cccDNA transcription, offering a potential new strategy for treating chronic HBV infection.
Area of Science:
- Hepatology
- Virology
- Natural Product Chemistry
Background:
- Chronic Hepatitis B virus (HBV) infection is a global health challenge.
- Functional cure (HBsAg loss and seroconversion) is rarely achieved with current antivirals.
- Novel strategies targeting HBV replication steps, especially HBsAg production, are needed.
Purpose of the Study:
- To identify novel anti-HBV compounds from traditional Chinese medical plants.
- To evaluate the efficacy and mechanism of action of a selected compound, sphondin.
- To assess sphondin's potential as a therapeutic agent for chronic HBV.
Main Methods:
- Screening of a natural compound library using a novel strategy combining ELISA for HBsAg and real-time PCR for HBV RNAs.
- Evaluation of antiviral activity in HBV-infected cells and a humanized liver mouse model.
- Mechanistic studies involving protein binding assays, proteasome degradation assays, and assessment of HBx recruitment to cccDNA.
Main Results:
- Sphondin was identified as a potent, low-cytotoxic anti-HBV compound.
- Sphondin inhibited intracellular HBsAg production and HBV RNAs by suppressing cccDNA transcriptional activity.
- Sphondin targets HBx protein, promoting its proteasomal degradation and reducing its recruitment to cccDNA.
Conclusions:
- Sphondin is a novel natural antiviral agent that effectively inhibits cccDNA transcription and HBsAg expression.
- Targeting HBx protein with sphondin represents a promising new therapeutic strategy for chronic HBV infection.
- Sphondin's mechanism involves disrupting HBx function at the cccDNA, leading to reduced viral replication.
Abstract:
Hepatitis B surface antigen (HBsAg) loss and seroconversion, which is considered as functional cure of chronic Hepatitis B virus (HBV) infection, is rarely achieved even after long-term antiviral treatments. Therefore, new antiviral strategies interfering with other HBV replication steps are required, especially those that could efficiently inhibit HBsAg production. Here, we identified novel anti-HBV compounds that could potently block HBsAg expression from cccDNA by screening a natural compound library derived from Chinese traditional medical plants by a novel screening strategy. The combination of ELISA assay detecting the HBsAg and real-time PCR detecting HBV RNAs as indicator for cccDNA transcriptional activity were used. The antiviral activity of a candidate compound and underlying mechanism were evaluated in HBV-infected cells and a humanized liver mouse model. Herein, we selected a highly effective low-cytotoxic compound sphondin, which could effectively inhibit both intracellular HBsAg production and HBV RNAs levels. Moreover, we found that sphondin markedly inhibited cccDNA transcriptional activity without affecting cccDNA level. Mechanistic study found sphondin preferentially bound to HBx protein by residue Arg72, which led to increased 26S proteasome-mediated degradation of HBx. Sphondin treatment significantly reduced the recruitment of HBx to cccDNA, which subsequently led to inhibition of cccDNA transcription and HBsAg expression. The absence of HBx or R72A mutation potently abrogated the antiviral effect induced by sphondin in HBV-infected cells. Collectively, sphondin may be considered as a novel and natural antiviral agent directly targeting HBx protein, which effectively inhibited cccDNA transcription and HBsAg expression.
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