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Published on: July 16, 2012
Constrained genomic and conformational variability of the hypervariable region 1 of hepatitis C virus in chronically
Keisuke Hino1, M Korenaga, E Orito
1Department of Gastroenterology and Hepatology, Yamaguchi University School of Medicine, Yamaguchi, Japan. k.hino@yamaguchi-u.ac.jp
Insights
The hepatitis C virus (HCV) hypervariable region 1 (HVR1) shows constrained amino acid changes due to its ordered structure, suggesting a key biological role in HCV replication. Interferon therapy increased HVR1 variability but did not alter conserved structural features.
Area of Science:
- Virology
- Molecular Biology
- Genomics
Background:
- The hepatitis C virus (HCV) hypervariable region 1 (HVR1) is crucial for viral infectivity and immune evasion.
- Understanding HVR1's genomic and conformational variability is key to elucidating its biological significance.
Purpose of the Study:
- To analyze the genomic and conformational variability of HCV genotype 1b HVR1.
- To evaluate the biological importance of HVR1 through its sequence and structural constraints.
Main Methods:
- Analysis of 865 HVR1 subclones from 11 chronic hepatitis C patients.
- Examination of 169 distinct sequences for amino acid substitutions and hydrophilicity/hydrophobicity profiles.
- Prediction of HVR1 secondary structures using Robson's method for 90 distinct sequences.
Main Results:
- Identified invariable amino acid positions and conserved hydrophilic/hydrophobic profiles within HVR1.
- Observed conserved structural constraints irrespective of interferon therapy, though therapy increased amino acid replacement frequency.
- Predicted common secondary structures, including beta sheets and coil structures, across diverse HVR1 quasispecies.
Conclusions:
- HVR1 amino acid substitutions are strongly constrained by a well-ordered structure, implying a significant biological role in HCV replication.
- Despite tolerance to substitutions, HVR1's structure is conserved, highlighting its importance in the viral lifecycle.
Abstract:
We analysed the genomic and conformational variability of the hypervariable region 1 (HVR1) of the hepatitis C virus (HCV) to evaluate the importance of its biological role. A total of 865 genotype 1b HVR1 subclones were collected from serially sampled sera in 11 patients with chronic hepatitis C, four of whom received interferon therapy. Consequently, 169 distinct sequences were examined for amino acid substitutions as well as hydrophilic or hydrophobic profile at each amino acid position within HVR1. Secondary structure of HVR1 was also predicted by the method of Robson in 90 distinct sequences from eight patients, including three interferon-treated patients. Some positions within the HVR1 were invariable or nearly so as to amino acid substitution. Hydrophilic or hydrophobic residues exclusively predominated at several positions. These constrained amino acid replacement and hydrophilic or hydrophobic profiles were conserved irrespective of interferon therapy, though the frequency of amino acid replacement was greater at almost all amino acid positions within the HVR1 in interferon-treated patients. The quasispecies of HCV showed various secondary structures of HVR1, but many sequences seemed to have common characteristics. beta sheet conformations around both the N-terminus and position 20 (numbered from the NH2 terminus of E2 envelope glycoprotein), and/or coil structures around the C-terminus of HVR1 could be identified. These results suggest that HVR1 amino acid replacements are strongly constrained by a well-ordered structure, in spite of being tolerant to amino acid substitutions, and imply an important biological role of the HVR1 protein in HCV replication.
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