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Characterization of the coronavirus mouse hepatitis virus strain A59 small membrane protein E
M J Raamsman1, J K Locker, A de Hooge
1Department of Infectious Diseases and Immunology, Faculty of Veterinary Medicine, Institute of Virology, and Institute of Biomembranes, Utrecht University, 3584 CL Utrecht, The Netherlands.
Abstract:
The small envelope (E) protein has recently been shown to play an essential role in the assembly of coronaviruses. Expression studies revealed that for formation of the viral envelope, actually only the E protein and the membrane (M) protein are required. Since little is known about this generally low-abundance virion component, we have characterized the E protein of mouse hepatitis virus strain A59 (MHV-A59), an 83-residue polypeptide. Using an antiserum to the hydrophilic carboxy terminus of this otherwise hydrophobic protein, we found that the E protein was synthesized in infected cells with similar kinetics as the other viral structural proteins. The protein appeared to be quite stable both during infection and when expressed individually using a vaccinia virus expression system. Consistent with the lack of a predicted cleavage site, the protein was found to become integrated in membranes without involvement of a cleaved signal peptide, nor were any other modifications of the polypeptide observed. Immunofluorescence analysis of cells expressing the E protein demonstrated that the hydrophilic tail is exposed on the cytoplasmic side. Accordingly, this domain of the protein could not be detected on the outside of virions but appeared to be inside, where it was protected from proteolytic degradation. The results lead to a topological model in which the polypeptide is buried within the membrane, spanning the lipid bilayer once, possibly twice, and exposing only its carboxy-terminal domain. Finally, electron microscopic studies demonstrated that expression of the E protein in cells induced the formation of characteristic membrane structures also observed in MHV-A59-infected cells, apparently consisting of masses of tubular, smooth, convoluted membranes. As judged by their colabeling with antibodies to E and to Rab-1, a marker for the intermediate compartment and endoplasmic reticulum, the E protein accumulates in and induces curvature into these pre-Golgi membranes where coronaviruses have been shown earlier to assemble by budding.
Insights
The coronavirus envelope (E) protein is essential for viral assembly and integrates into host membranes. This study characterizes the MHV-A59 E protein, revealing its cytoplasmic tail exposure and role in inducing membrane curvature for virus budding.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- The coronavirus envelope (E) protein is crucial for viral assembly.
- Only E and M proteins are required for viral envelope formation.
- The E protein is a low-abundance virion component with limited characterization.
Purpose of the Study:
- To characterize the E protein of mouse hepatitis virus strain A59 (MHV-A59).
- To elucidate the topological model and membrane integration of the E protein.
- To investigate the role of the E protein in inducing membrane structures during viral assembly.
Main Methods:
- Expression studies in infected cells and using a vaccinia virus system.
- Antiserum generation against the E protein's hydrophilic carboxy terminus.
- Immunofluorescence analysis and electron microscopy.
- Colabeling with antibodies to E protein and Rab-1.
Main Results:
- The MHV-A59 E protein (83 residues) is synthesized with similar kinetics to other viral proteins and is stable.
- E protein integrates into membranes without signal peptide cleavage or other modifications.
- The hydrophilic tail is exposed on the cytoplasmic side, protected within virions.
- E protein expression induces tubular, convoluted membrane structures in pre-Golgi compartments, colabeling with Rab-1.
Conclusions:
- The E protein spans the lipid bilayer once or twice, exposing only its C-terminal domain cytoplasmically.
- E protein accumulation and curvature induction in pre-Golgi membranes facilitate coronavirus assembly.
- This study provides a topological model for the E protein and its role in viral morphogenesis.