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Updated: Jun 8, 2026

A Protocol for Analyzing Hepatitis C Virus Replication
Published on: June 26, 2014
Hepatitis C virus core-derived peptides inhibit genotype 1b viral genome replication via interaction with DDX3X
Chaomin Sun1, Cara T Pager, Guangxiang Luo
1California Institute for Quantitative Biosciences, University of California, Berkeley, California, USA.
Insights
Hepatitis C virus (HCV) core protein residues 16-36 bind DDX3X, inhibiting viral replication. Overexpressing DDX3X reverses this inhibition, highlighting its role in HCV genotype 1b replication.
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- DDX3X, a DEAD-box RNA helicase, is crucial for the hepatitis C virus (HCV) life cycle.
- Previous studies indicated binding between HCV core protein and DDX3X, but specific interaction sites and functional significance were unknown.
Purpose of the Study:
- To identify the specific interaction region between HCV core protein and DDX3X.
- To elucidate the functional importance of this interaction in the HCV life cycle and viral replication.
Main Methods:
- In vitro and in vivo binding assays to map protein interactions.
- HCV replicon assays using GFP-fused HCV core protein variants.
- Cell-based assays involving DDX3X overexpression to assess rescue effects.
Main Results:
- HCV core protein amino acids 16-36 specifically interact with DDX3X.
- Replication of genotype 1b HCV RNA replicons was significantly suppressed by GFP fusions of core residues 16-36.
- DDX3X overexpression reversed the inhibitory effect on genotype 1b HCV replication.
- Genotype 2a (JFH1) HCV infection was unaffected by the GFP fusion protein.
Conclusions:
- The DDX3X binding interface with HCV core protein is critical for genotype 1b replicon maintenance.
- The role of DDX3X in HCV infection is dependent on viral genotype, affecting different life cycle stages.
Abstract:
The protein DDX3X is a DEAD-box RNA helicase that is essential for the hepatitis C virus (HCV) life cycle. The HCV core protein has been shown to bind to DDX3X both in vitro and in vivo. However, the specific interactions between these two proteins and the functional importance of these interactions for the HCV viral life cycle remain unclear. We show that amino acids 16-36 near the N-terminus of the HCV core protein interact specifically with DDX3X both in vitro and in vivo. Replication of HCV replicon NNeo/C-5B RNA (genotype 1b) is significantly suppressed in HuH-7-derived cells expressing green fluorescent protein (GFP) fusions to HCV core protein residues 16-36, but not by GFP fusions to core protein residues 16-35 or 16-34. Notably, the inhibition of HCV replication due to expression of the GFP fusion to HCV core protein residues 16-36 can be reversed by overexpression of DDX3X. These results suggest that the protein interface on DDX3X that binds the HCV core protein is important for replicon maintenance. However, infection of HuH-7 cells by HCV viruses of genotype 2a (JFH1) was not affected by expression of the GFP fusion protein. These results suggest that the role of DDX3X in HCV infection involves aspects of the viral life cycle that vary in importance between HCV genotypes.
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