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Published on: August 29, 2017
Mechanisms of Hepatitis C Virus Escape from Vaccine-Relevant Neutralizing Antibodies
Rodrigo Velázquez-Moctezuma1,2, Elias H Augestad1,2, Matteo Castelli3
1Copenhagen Hepatitis C Program (CO-HEP), Department of Immunology and Microbiology, Faculty of Health and Medical Sciences, University of Copenhagen, 2200 Copenhagen, Denmark.
Insights
Developing a Hepatitis C virus (HCV) vaccine faces challenges due to viral variability and antibody escape. Understanding conserved epitopes and escape mechanisms is crucial for creating effective bNAb-based vaccines against HCV.
Area of Science:
- Virology
- Immunology
- Vaccine Development
Background:
- Hepatitis C virus (HCV) causes significant liver disease globally, with no effective prophylactic vaccine available.
- The HCV E1/E2 glycoprotein complex is a key target for neutralizing antibodies (NAbs) in vaccine design.
- HCV's high genetic variability and mutation rate enable viral escape from broadly neutralizing antibodies (bNAbs).
Purpose of the Study:
- To review current knowledge on HCV-specific NAbs and vaccine-relevant bNAbs.
- To analyze antibody escape mechanisms and resistance barriers against bNAbs.
- To identify strategies for developing a successful HCV B-cell vaccine.
Main Methods:
- Review of existing literature on HCV neutralizing antibodies and bNAb escape studies.
- Analysis of in vivo and in vitro studies assessing antibody resistance.
- Examination of escape mutations and antibody escape mechanisms in HCV envelope proteins.
Main Results:
- HCV escape substitutions can confer antibody resistance through direct epitope modification or indirect allosteric effects.
- Studies reveal diverse methodologies for assessing bNAb resistance and identify various escape mutations.
- Escape mechanisms involve both substitutions and polymorphisms in HCV envelope proteins.
Conclusions:
- Understanding conserved epitopes is vital for targeting HCV with bNAbs.
- Elucidating antibody escape mechanisms and resistance barriers is critical for vaccine development.
- Accumulated knowledge on bNAb targets and escape is essential for a future HCV B-cell vaccine.
Abstract:
Hepatitis C virus (HCV) is a major causative agent of acute and chronic hepatitis. It is estimated that 400,000 people die every year from chronic HCV infection, mostly from severe liver-related diseases such as cirrhosis and liver cancer. Although HCV was discovered more than 30 years ago, an efficient prophylactic vaccine is still missing. The HCV glycoprotein complex, E1/E2, is the principal target of neutralizing antibodies (NAbs) and, thus, is an attractive antigen for B-cell vaccine design. However, the high genetic variability of the virus necessitates the identification of conserved epitopes. Moreover, the high intrinsic mutational capacity of HCV allows the virus to continually escape broadly NAbs (bNAbs), which is likely to cause issues with vaccine-resistant variants. Several studies have assessed the barrier-to-resistance of vaccine-relevant bNAbs in vivo and in vitro. Interestingly, recent studies have suggested that escape substitutions can confer antibody resistance not only by direct modification of the epitope but indirectly through allosteric effects, which can be grouped based on the breadth of these effects on antibody susceptibility. In this review, we summarize the current understanding of HCV-specific NAbs, with a special focus on vaccine-relevant bNAbs and their targets. We highlight antibody escape studies pointing out the different methodologies and the escape mutations identified thus far. Finally, we analyze the antibody escape mechanisms of envelope protein escape substitutions and polymorphisms according to the most recent evidence in the HCV field. The accumulated knowledge in identifying bNAb epitopes as well as assessing barriers to resistance and elucidating relevant escape mechanisms may prove critical in the successful development of an HCV B-cell vaccine.
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