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Published on: November 1, 2011
Synthesis and processing of the equine herpesvirus 1 glycoprotein M
N Osterrieder1, A Neubauer, B Fakler
1Institute for Medical Microbiology, Infectious and Epidemic Diseases, Ludwig-Maximilians-University München, Munich, Germany. klaus.osterrieder@lrz.uni-muenchen.de
Abstract:
In a previous report, the function of the equine herpesvirus 1 (EHV-1) glycoprotein M (gM) homolog was investigated. It was shown that EHV-1 gM is involved in both virus entry and direct cell-to-cell spread of infection (N. Osterrieder et al., J. Virol. 70, 4110-4115, 1996). In this study, experiments were conducted to analyze the synthesis, posttranslational processing, and the putative ion channel function of EHV-1 gM. It was demonstrated that EHV-1 gM is synthesized as an Mr 44,000 polypeptide, which is cotranslationally N-glycosylated to an Mr 46,000-48,000 glycoprotein. The Mr 46,000-48,000 gM moiety is processed to an Mr 50,000-55,000 glycoprotein, which is resistant to treatment with endoglycosidase H, indicating that processing occurs in the Golgi network. EHV-1 gM forms a dimer in infected cells and the virion, as was demonstrated by the presence of an Mr 105,000-110,000 gM-containing band in electrophoretically separated lysates of infected cells and purified extracellular virions. The Mr 105,000-110,000 protein band containing gM was also observed in lysates of cells that had been transfected with EHV-1 gM DNA. The translation of EHV-1 gM is initiated at the first in-frame methionine of the gM open reading frame as shown by transient transfection experiments of full-length gM and a truncated gM lacking the aminoterminal 83 amino acids. Functional expression of EHV-1 gM in Xenopus laevis oocytes together with voltage-clamp analyses demonstrated that gM per se does not exhibit ion channel activity as had been speculated from the predicted structure of the polypeptide.
Insights
Equine herpesvirus 1 glycoprotein M (gM) is synthesized and processed in the Golgi network, forming dimers in infected cells and virions. This study found that EHV-1 gM does not exhibit ion channel activity.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Equine herpesvirus 1 (EHV-1) glycoprotein M (gM) is known to be involved in virus entry and cell-to-cell spread.
- Previous research established the role of EHV-1 gM in viral infection processes.
Purpose of the Study:
- To analyze the synthesis, posttranslational processing, and ion channel function of EHV-1 gM.
- To investigate the dimerization and translation initiation of EHV-1 gM.
Main Methods:
- Analysis of protein synthesis and glycosylation using SDS-PAGE and endoglycosidase H treatment.
- Investigation of dimerization through Western blotting of infected cell lysates and virions.
- Functional expression in Xenopus laevis oocytes with voltage-clamp analysis to assess ion channel activity.
- Transient transfection experiments to determine translation initiation site.
Main Results:
- EHV-1 gM is synthesized as a 44 kDa polypeptide, N-glycosylated to 46-48 kDa, and further processed to 50-55 kDa in the Golgi network.
- EHV-1 gM forms dimers (105-110 kDa) in infected cells and virions, confirmed by transfection studies.
- Functional expression and voltage-clamp analysis revealed that EHV-1 gM does not possess ion channel activity.
Conclusions:
- EHV-1 gM undergoes complex posttranslational modifications and forms dimers, crucial for its function in the viral lifecycle.
- The predicted ion channel activity of EHV-1 gM is not supported by experimental evidence.
- Understanding EHV-1 gM processing and function provides insights into herpesvirus pathogenesis.
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