Reassembly of protein-lipid complexes into large bilayer vesicles: Perspectives for membrane reconstitution
- 1 January 1980
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 77 (1) , 239-243
- https://doi.org/10.1073/pnas.77.1.239
Abstract
Protein-lipid complexes in apolar solvents reassemble into large bilayer protein-lipid vesicles (PLVs) with diameters of several micrometers. PLVs form spontaneously upon hydration of the protein-lipid complex residue after solvent removal. This procedure has been applied to the following membrane proteins: bovine and squid rhodopsin, reaction centers from Rhodopseudomonas sphaeroides , beef heart cytochrome c oxidase, and acetylcholine receptors from Torpedo californica . PLVs have a large internal aqueous space (e.g., 790 μl/mg of lipid for cattle rhodopsin vesicles). Freeze-fracture replicas of PLVs revealed that both internal and external leaflets contained numerous intramembranous particles with diameters between 80 and 120 Å, depending on the specific protein incorporated in the membrane. The optical spectral properties of rhodopsin and reaction centers in PLVs were similar to those recorded in the respective natural membrane. Furthermore, bovine rhodopsin in PLVs was chemically regenerable with 9- cis -retinal. Actinic illumination induced proton efflux from reaction center vesicles that was abolished by proton ionophores. Therefore, this method is suitable for the incorporation of some membrane proteins in their functional state. PLVs were penetrated with microelectrodes and visualized by the injection of a fluorescent dye. Preliminary electrical recordings were obtained by sealing PLVs to a hole in a septum separating two aqueous compartments. These studies suggest that PLVs assembled by this procedure permit the simultaneous analysis of reconstituted membranes by chemical, optical, and electrical techniques.This publication has 26 references indexed in Scilit:
- Formation of disulfide-linked oligomers of acetylcholine receptor in membrane from Torpedo electric tissueBiochemistry, 1979
- INCORPORATION OF MACROMOLECULES WITHIN LARGE UNILAMELLAR VESICLES (LUV)Annals of the New York Academy of Sciences, 1978
- PREPARATION AND PROPERTIES OF ETHER‐INJECTION LIPOSOMES *Annals of the New York Academy of Sciences, 1978
- PROPERTIES AND USES OF LIPID VESICLES: AN OVERVIEWAnnals of the New York Academy of Sciences, 1978
- The Electrochemical Proton Gradient Génerated by Light in Membrane Vesicles and Chromatophores from Rhodopseudomonas sphaeroidesEuropean Journal of Biochemistry, 1978
- Effect of alterations in the amphipathic microenvironment on the conformational stability of bovine opsin. 1. Mechanism of solubilization of disk membranes by the nonionic detergent, octyl glucosideBiochemistry, 1978
- EXPERIMENTAL MEMBRANES AND MECHANISMS OF BIOENERGY TRANSDUCTIONSAnnual Review of Biophysics and Bioengineering, 1976
- Microviscosity of the cell membraneBiochimica et Biophysica Acta (BBA) - Biomembranes, 1972
- Formation and properties of thin‐walled phospholipid vesiclesJournal of Cellular Physiology, 1969
- Vision in Octopus and Squid: Rhodopsin and Retinochrome in the Squid RetinaNature, 1967