In vivo assembly of rhodopsin from expressed polypeptide fragments.
Open Access
- 11 April 1995
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 92 (8) , 3204-3208
- https://doi.org/10.1073/pnas.92.8.3204
Abstract
Rhodopsin folding and assembly were investigated by expression of five bovine opsin gene fragments separated at points corresponding to proteolytic cleavage sites in the second or third cytoplasmic regions. The CH(1-146) and CH(147-348) gene fragments encode amino acids 1-146 and 147-348 of opsin, while the TH(1-240) and TH(241-348) gene fragments encode amino acids 1-240 and 241-348, respectively. Another gene fragment, CT(147-240), encodes amino acids 147-240. All five opsin polypeptide fragments were stably produced upon expression of the corresponding gene fragments in COS-1 cells. The singly expressed polypeptide fragments failed to form a chromophore with 11-cis-retinal, whereas coexpression of two or three complementary fragments [CH(1-146) + CH(147-348), TH(1-240) + TH(241-348), or CH(1-146) + CT(147-240) + TH(241-348)] formed pigments with spectral properties similar to wild-type rhodopsin. The NH2-terminal polypeptide in these rhodopsins showed a glycosylation pattern characteristic of wild-type COS-1 cell rhodopsin and was noncovalently associated with its complementary fragment(s). Further, the CH(1-146) + CH(147-348) rhodopsin showed substantial light-dependent activation of transducin. We conclude that the functional assembly of rhodopsin is mediated by the association of at least three protein-folding domains.Keywords
This publication has 46 references indexed in Scilit:
- Expression of Lactose Permease in Contiguous Fragments as a Probe for Membrane-Spanning DomainsBiochemistry, 1994
- Reconstitution of functional muscarinic receptors by co‐expression of amino‐ and carboxyl‐terminal receptor fragmentsFEBS Letters, 1993
- Refolding of bacteriorhodopsin in lipid bilayersJournal of Molecular Biology, 1987
- Isolation, sequence analysis, and intron-exon arrangement of the gene encoding bovine rhodopsinCell, 1983
- Rhodopsin and bacteriorhodopsin: structure—function relationshipsFEBS Letters, 1982
- Independent structural domains in the membrane protein bovine rhodopsinBiochemistry, 1978
- Light dissociates enzymatically-cleaved rhodopsin into two different fragmentsJournal of Molecular Biology, 1975
- Removal of a large fragment of rhodopsin without changes in its spectral properties, by proteolysis of retinal rod outer segmentsFEBS Letters, 1974
- Accessibility of the carbohydrate moiety of rhodopsinBiochemistry, 1973
- Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4Nature, 1970