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Published on: December 21, 2019
CAM-A-dependent HBV core aggregation induces apoptosis through ANXA1
Valerio Taverniti1, Laura Meiss-Heydmann1, Cloé Gadenne1
1University of Strasbourg, Inserm, Institute for Translational Medicine and Liver Disease (ITM), UMR_S1110, Strasbourg, France.
Insights
Capsid assembly modulators (CAMs) trigger Hepatitis B virus (HBV) core protein aggregation in the nucleus, inducing apoptosis and reducing viral antigens. This discovery offers new strategies for a functional cure of chronic HBV infection.
Area of Science:
- Hepatology and Virology
- Molecular Biology
- Drug Discovery
Background:
- Chronic Hepatitis B virus (HBV) infection is a leading cause of liver disease and hepatocellular carcinoma, with limited effective antiviral therapies.
- Capsid assembly modulators (CAMs) inhibit HBV replication by targeting the HBV core antigen (HBc), but their precise mechanisms in HBV-hepatocyte interactions are not fully understood.
Purpose of the Study:
- To investigate the mechanism of cell death induced by CAM-A compounds in Hepatitis B virus (HBV) infection.
- To elucidate the role of HBV core protein (HBc) aggregation and apoptosis in CAM-A's antiviral activity.
Main Methods:
- Utilized an HBV infection model, HBc-overexpressing cells, primary human hepatocytes, and HBV-replicating cells (HepAD38).
- Assessed HBsAg reduction, cell toxicity, HBc aggregation, and apoptosis.
- Performed transcriptomic analysis to identify molecular pathways involved.
- Investigated the role of ANXA1 by gene silencing.
Main Results:
- CAM-A treatment reduced HBsAg levels and induced cell toxicity in HBV-infected cells.
- CAM-A treatment caused nuclear aggregation of HBc, leading to apoptosis.
- Transcriptomic analysis revealed ANXA1 upregulation, a known apoptosis driver.
- Silencing ANXA1 expression delayed CAM-A-induced cell death and apoptosis.
Conclusions:
- CAM-A compounds induce cell death through ANXA1-driven apoptosis, triggered by nuclear HBc aggregation.
- This mechanism provides a novel therapeutic strategy for eliminating HBV-infected cells.
- The findings open new avenues for achieving a functional cure for chronic HBV infection.
Background & Aims:
Chronic HBV infection is the leading cause of liver disease and of hepatocellular carcinoma. The improvement of antiviral therapy remains an unmet medical need. Capsid assembly modulators (CAMs) target the HBV core antigen (HBc) and inhibit HBV replication. Although CAM-A compounds are well-known inducers of aberrant viral capsid aggregates, their mechanisms of action in HBV-hepatocyte interactions are poorly understood. Recently, we demonstrated that CAM-A molecules lead to a sustained reduction of HBsAg in the serum of HBV replicating mice and induce HBc aggregation in the nucleus of HBc-expressing cells leading to cell death.
Methods:
The mechanism of action by which CAM-A compounds induce cell death was investigated using an HBV infection model, HBc-overexpressing HepG2-NTCP cells, primary human hepatocytes, and HBV replicating HepAD38 cells.
Results:
We first confirmed the decrease in HBsAg levels associated with CAM-A treatment and the induction of cell toxicity in HBV-infected differentiated HepaRG cells. Next, we showed that CAM-A-mediated nuclear aggregation of HBc was associated with cell death through the activation of apoptosis. Transcriptomic analysis was used to investigate the mechanism of action driving this phenotype. CAM-A-induced HBc nuclear aggregation led to the upregulation of ANXA1 expression, a documented driver of apoptosis. Finally, silencing of ANXA1 expression delayed cell death and apoptosis in CAM-A-treated cells, confirming its direct involvement in CAM-A-induced cell death.
Conclusions:
Our results unravel a previously undiscovered mechanism of action involving CAM-As and open the door to new therapeutic strategies involving CAM to achieve a functional cure in patients with chronic infections.
Impact And Implications:
Chronic HBV infection is a global health threat. To date, no treatment achieves viral clearance in chronically infected patients. In this study, we characterized a new mechanism of action of an antiviral molecule targeting the assembly of the viral capsid (CAM). The study demonstrated that a CAM subtype, CAM-A-induced formation of aberrant structures from HBV core protein aggregates in the nucleus leading to cell death by ANXA1-driven apoptosis. Thus, CAM-A treatment may lead to the specific elimination of HBV-infected cells by apoptosis, paving the way to novel therapeutic strategies for viral cure.
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