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Requirements for the insertion of the Sindbis envelope glycoproteins into the endoplasmic reticulum membrane
Abstract:
Previous work has shown that the Sindbis structural proteins, core, the internal protein, and PE2 and E1, the integral membrane glycoproteins are synthesized as a polyprotein from a 26S mRNA; core PE2 and E1 are derived by proteolytic cleavage of a nascent chain. Newly synthesized core protein remains on the cytoplasmic side of the endoplasmic reticulum while newly synthesized PE2 and E1 are inserted into the lipid bilayer, presumably via their amino-termini. PE2 and E1 are glycosylated as nascent chains. Here, we examine a temperature-sensitive mutant of Sindbis virus which fails to cleave the structural proteins, resulting in the production of a polyprotein of 130,000 mol wt in which the amino-termini of PE2 and E1 are internal to the protein. Although the envelope sequences are present in this protein, it is not inserted into the endoplasmic reticulum bilayer, but remains on the cytoplasmic side as does the core protein in cells infected with wild-type Sindbis virus. We have also examined the fate of PE2 and E1 in cells treated with tunicamycin, an inhibitor of glycosylation. Unglycosylated PE2 and E1 are inserted normally into the lipid bilayer as are the glycosylated proteins. These results are consistent with the notion that a specific amino-terminal sequence is required for the proper insertion of membrane proteins into the endoplasmic reticulum bilayer, but that glycosylation is not required for this insertion.
Insights
A specific amino-terminal sequence directs Sindbis virus membrane glycoproteins (PE2 and E1) into the endoplasmic reticulum bilayer. Glycosylation is not required for this essential membrane protein insertion process.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Sindbis virus structural proteins (core, PE2, E1) are synthesized as a polyprotein from 26S mRNA.
- Proteolytic cleavage generates individual proteins, with core protein on the cytoplasmic side and PE2/E1 inserted into the endoplasmic reticulum (ER) membrane.
- PE2 and E1 are glycosylated during synthesis.
Purpose of the Study:
- To investigate the role of protein cleavage and glycosylation in the membrane insertion of Sindbis virus structural proteins.
- To determine the specific sequences or modifications required for ER membrane targeting.
Main Methods:
- Analysis of a temperature-sensitive Sindbis virus mutant that fails to cleave its polyprotein.
- Examination of Sindbis virus structural protein (PE2 and E1) fate in tunicamycin-treated cells (inhibiting glycosylation).
Main Results:
- The temperature-sensitive mutant produced an uncleaved polyprotein, with PE2/E1 amino-termini internal, remaining on the cytoplasmic side of the ER.
- Unglycosylated PE2 and E1 proteins were inserted into the ER lipid bilayer similarly to glycosylated proteins.
Conclusions:
- A specific amino-terminal sequence is crucial for the proper insertion of Sindbis virus membrane glycoproteins into the ER.
- Glycosylation is not a prerequisite for the membrane insertion of these viral glycoproteins.
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