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A Protocol for Analyzing Hepatitis C Virus Replication
Published on: June 26, 2014
Hepatitis A virus capsid protein VP1 has a heterogeneous C terminus
J Graff1, O C Richards, K M Swiderek
1Departments of Molecular Biology and Biochemistry, University of California, Irvine, Irvine, California 92697, USA. jgraff@atlas.niaid.nih.gov
Insights
Hepatitis A virus (HAV) processing of capsid protein VP1 has heterogeneous C termini, with VP1-Ser274 predominant. Host cell proteases, not viral 3C, likely generate the mature VP1 C terminus.
Area of Science:
- Virology
- Molecular Biology
- Proteomics
Background:
- Hepatitis A virus (HAV) polyprotein processing is crucial for generating functional proteins.
- Viral protease 3C is known to mediate most protein scissions.
- The precise generation of mature Hepatitis A virus VP1 protein remains unclear.
Purpose of the Study:
- To identify the C-terminal amino acid residue of Hepatitis A virus VP1.
- To investigate the protease responsible for generating the VP1 C terminus.
Main Methods:
- Peptide sequence analysis using protease-catalyzed [18O]H2O incorporation.
- Liquid chromatography-ion-trap microspray tandem mass spectrometry (LC-MS/MS).
- Analysis of VP1 from two cell culture-adapted HAV isolates (HM175pE and HM175p35).
Main Results:
- HAV VP1 preparations exhibited heterogeneous C termini.
- VP1-Ser274 was the predominant C-terminal amino acid in both HAV isolates.
- Smaller amounts of VP1-Glu273 and VP1-Thr272 were also detected, with variations between strains.
Conclusions:
- The viral protease 3C is unlikely to be responsible for generating the HAV VP1 C terminus.
- Host cell proteases are proposed to be involved in the production of mature Hepatitis A virus VP1.
Abstract:
Hepatitis A virus (HAV) encodes a single polyprotein which is posttranslationally processed into the functional structural and nonstructural proteins. Only one protease, viral protease 3C, has been implicated in the nine protein scissions. Processing of the capsid protein precursor region generates a unique intermediate, PX (VP1-2A), which accumulates in infected cells and is assumed to serve as precursor to VP1 found in virions, although the details of this reaction have not been determined. Coexpression in transfected cells of a variety of P1 precursor proteins with viral protease 3C demonstrated efficient production of PX, as well as VP0 and VP3; however, no mature VP1 protein was detected. To identify the C-terminal amino acid residue of HAV VP1, we performed peptide sequence analysis by protease-catalyzed [18O]H2O incorporation followed by liquid chromatography ion-trap microspray tandem mass spectrometry of HAV VP1 isolated from purified virions. Two different cell culture-adapted isolates of HAV, strains HM175pE and HM175p35, were used for these analyses. VP1 preparations from both virus isolates contained heterogeneous C termini. The predominant C-terminal amino acid in both virus preparations was VP1-Ser274, which is located N terminal to a methionine residue in VP1-2A. In addition, the analysis of HM175pE recovered smaller amounts of amino acids VP1-Glu273 and VP1-Thr272. In the case of HM175p35, which contains valine at amino acid position VP1-273, VP1-Thr272 was found in addition to VP1-Ser274. The data suggest that HAV 3C is not the protease responsible for generation of the VP1 C terminus. We propose the involvement of host cell protease(s) in the production of HAV VP1.
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