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Expression, stability, and membrane integration of truncation mutants of bovine rhodopsin
1Department of Biological Chemistry, The Johns Hopkins University School of Medicine, 725 North Wolfe Street, Baltimore, MD 21205, USA.
Abstract:
Premature termination of protein synthesis by nonsense mutations is at the molecular origin of a number of inherited disorders in the family of G protein-coupled seven-helix receptor proteins. To understand how such truncated polypeptides are processed by the cell, we have carried out COS-1 cell expression studies of mutants of bovine rhodopsin truncated at the first 1, 1.5, 2, 3, or 5 transmembrane segments (TMS) of the seven present in wild-type opsin. Our experiments show that successful completion of different stages in the cellular processing of the protein [membrane insertion, N-linked glycosylation, stability to proteolytic degradation, and transport from the endoplasmic reticulum (ER) membrane] requires progressively longer lengths of the polypeptide chain. Thus, none of the truncations affected the ability of the polypeptides to be integral membrane proteins. C-terminal truncations that generated polypeptides with fewer than two TMS resulted in misorientation and prevented glycosylation at the N terminus, whereas truncations that generated polypeptides with fewer than five TMS greatly destabilized the protein. However, all of the truncations prevented exit of the polypeptide from the ER. We conclude that during the biogenesis of rhodopsin, proper integration into the ER membrane occurs only after the synthesis of at least two TMS is completed. Synthesis of the next three TMS confers a gradual increase in stability, whereas the presence of more than five TMS is necessary for exit from the ER.
Insights
Nonsense mutations causing premature protein termination can lead to inherited disorders. Rhodopsin biogenesis requires specific polypeptide lengths for proper membrane integration, stability, and ER exit.
Area of Science:
- Molecular biology
- Cellular processing of proteins
- G protein-coupled receptors
Background:
- Nonsense mutations in G protein-coupled seven-helix receptors cause inherited disorders.
- Understanding the cellular processing of truncated proteins is crucial.
Purpose of the Study:
- Investigate the effects of truncated bovine rhodopsin mutants on cellular processing.
- Determine the minimum polypeptide length required for rhodopsin biogenesis stages.
Main Methods:
- COS-1 cell expression studies.
- Analysis of rhodopsin mutants truncated at various transmembrane segments (TMS).
- Assessed membrane insertion, N-linked glycosylation, stability, and ER transport.
Main Results:
- All truncated rhodopsin mutants integrated into the membrane.
- Fewer than two TMS caused misorientation and prevented N-terminal glycosylation.
- Fewer than five TMS destabilized the protein, and all truncations blocked ER exit.
Conclusions:
- Rhodopsin biogenesis requires at least two TMS for proper ER membrane integration.
- Progressive stability increases with additional TMS, with >5 TMS needed for ER exit.