Association of spin-labeled local anesthetics at the hydrophobic surface of the acetylcholine receptor in native membranes from Torpedo marmorata
- 18 September 1990
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 29 (37) , 8707-8713
- https://doi.org/10.1021/bi00489a029
Abstract
The interactions between a series of spin-labeled local anesthetic analogues and the nicotinic acetylcholine receptor (AChR) have been investigated by means of electron spin resonance (ESR) and fluorescence spectroscopy. The paramagnetic local anesthetic analogues quenched the intrinsic tryptophan fluoresence of AChR-rich membranes in an agonist-dependent manner, demonstrating a direct interaction with the AChR. The quenching efficiency was greater for the benzocaine than for the thioprocaine analogue. The protein was found to restrict directly the molecular motion of the spin-labeled analogues, as seen by the appearance of a highly anisotropic component in the ESR spectrum. The relative affinity of the population of local anesthetic probes which interacts directly with the integral protein of the AChR-rich membranes was calculated on the basis of relative association constants, Kr, determined by ESR. By comparison with the relative association constant for spin-labeled phospholipid, Kro, it was possible to differentiate between local anesthetic analogues interacting with high (Kr/Kro > 2), intermediate (Kr/Kro = 1.6-1.9), and low (Kr/Kro .ltoreq. 1.3) specificity and to calculate the fraction of protein-associated probe in each case. Differences were observed in the presence of agonist (0.1 mM carbamylcholine) with some, but not all, of the spin-labeled derivatives. The role of the protonated diethylammonium group in the specificity of the interaction of the procaine and thioprocaine analogues was investigated. Only in the uncharged form, or in the charged form at high ionic strength, was there a preferential association of these two local anesthetic analogues. The specificity of the benzocaine derivative, which lacks the basic side chain, was unaffected by changes in pH or ionic strength.This publication has 16 references indexed in Scilit:
- Multiple sites of action for noncompetitive blockers on acetylcholine receptor rich membrane fragments from Torpedo marmorataBiochemistry, 1983
- The effect of neutral and charged micelles on the acid-base dissociation of the local anesthetic tetracaineBiochimica et Biophysica Acta (BBA) - Biomembranes, 1983
- Local anesthetics and histrionicotoxin are allosteric inhibitors of the acetylcholine receptor. Studies of clonal muscle cells.Journal of Biological Chemistry, 1982
- Phospholipid chain immobilization and steriod rotational immobilization in acetylcholine receptor-rich membranes from torpedo marmorataBiochimica et Biophysica Acta (BBA) - Biomembranes, 1981
- Purification of acetylcholine receptors, reconstitution into lipid vesicles, and study of agonist-induced cation channel regulation.Journal of Biological Chemistry, 1980
- Purification of Torpedo californica post-synaptic membranes and fractionation of their constituent proteinsBiochemical Journal, 1980
- Immobilized lipid in acetylcholine receptor-rich membranes from Torpedo marmorata.Proceedings of the National Academy of Sciences, 1978
- The pH-dependent rate of action of local anesthetics on the node of Ranvier.The Journal of general physiology, 1977
- Model for action of local anaestheticsNature, 1976
- PROTEIN MEASUREMENT WITH THE FOLIN PHENOL REAGENTJournal of Biological Chemistry, 1951