S-Acylation and Plasma Membrane Targeting of the Farnesylated Carboxyl-Terminal Peptide of N-ras in Mammalian Fibroblasts
- 1 October 1997
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 36 (42) , 13102-13109
- https://doi.org/10.1021/bi9709497
Abstract
We have used a series of fluorescent lipid-modified peptides, based on the farnesylated C-terminal sequence of mature N-ras [-GCMGLPC(farnesyl)-OCH3], to investigate the membrane-anchoring properties of this region of the protein and its reversible modification by S-acylation in cultured mammalian fibroblasts. The farnesylated peptide associates with lipid bilayers (large unilamellar phospholipid vesicles) with high affinity but in a rapidly reversible manner. Additional S-palmitoylation of the peptide suppresses its ability to desorb from, and hence to diffuse between, lipid bilayers on physiologically significant time scales. NBD-labeled derivatives of the farnesylated N-ras C-terminal heptapeptide, when incubated with CV-I cells in culture, are taken up by the cells and reversibly S-acylated in a manner similar to that observed previously for the parent protein. The S-acylation process is highly specific for modification of a cysteine rather than a serine residue but tolerates replacement of the peptide-linked farnesyl moiety by other hydrophobic groups. Fluorescence microscopy reveals that in CV-1 cells the S-acylated form of the peptide is localized preferentially to the plasma membrane, as has been observed for N-ras itself. This plasma membrane localization is unaffected by either reduced temperature (15 degrees C) or exposure to brefeldin A, treatments which inhibit various trafficking steps within the secretory pathway. These results suggest that in mammalian cells the plasma membrane localization of mature N-ras is maintained by a 'kinetic trapping' mechanism based on S-acylation of the protein at the level of the plasma membrane itselfKeywords
This publication has 12 references indexed in Scilit:
- Understanding covalent modifications of proteins by lipids: where cell biology and biophysics mingleTrends in Cell Biology, 1997
- Lipid-modified, cysteinyl-containing peptides of diverse structures are efficiently S-acylated at the plasma membrane of mammalian cells.The Journal of cell biology, 1996
- Protein PrenyltransferasesJournal of Biological Chemistry, 1996
- G-protein Palmitoyltransferase Activity Is Enriched in Plasma MembranesJournal of Biological Chemistry, 1996
- Dynamic protein acylation and the regulation of localization and function of signal-transducing proteinsBiochemical Society Transactions, 1995
- Transport into and out of the Golgi complex studied by transfecting cells with cDNAs encoding horseradish peroxidase.The Journal of cell biology, 1994
- Dithionite penetration through phospholipid bilayers as a measure of defects in lipid molecular packingChemistry and Physics of Lipids, 1993
- Post-Golgi membrane traffic: brefeldin A inhibits export from distal Golgi compartments to the cell surface but not recycling.The Journal of cell biology, 1992
- Brefeldin A: insights into the control of membrane traffic and organelle structure.The Journal of cell biology, 1992
- A novel fluorescent ceramide analogue for studying membrane traffic in animal cells: accumulation at the Golgi apparatus results in altered spectral properties of the sphingolipid precursor.The Journal of cell biology, 1991