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Partitioning of Anesthetics into a Lipid Bilayer and Their Interaction with Membrane-bound Peptide Bundles

Overview
Journal Biophys J
Publisher Cell Press
Specialty Biophysics
Date 2006 Aug 1
PMID 16877515
Citations 24
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Abstract

Molecular dynamics simulations have been performed to investigate the partitioning of the volatile anesthetic halothane from an aqueous phase into a coexisting hydrated bilayer, composed of 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC) lipids, with embedded alpha-helical peptide bundles based on the membrane-bound portions of the alpha- and delta-subunits, respectively, of nicotinic acetylcholine receptor. In the molecular dynamics simulations halothane molecules spontaneously partitioned into the DOPC bilayer and then preferentially occupied regions close to lipid headgroups. A single halothane molecule was observed to bind to tyrosine (Tyr-277) residue in the alpha-subunit, an experimentally identified specific binding site. The binding of halothane attenuated the local loop dynamics of alpha-subunit and significantly influenced global concerted motions suggesting anesthetic action in modulating protein function. Steered molecular dynamics calculations on a single halothane molecule partitioned into a DOPC lipid bilayer were performed to probe the free energy profile of halothane across the lipid-water interface and rationalize the observed spontaneous partitioning. Partitioned halothane molecules affect the hydrocarbon chains of the DOPC lipid, by lowering of the hydrocarbon tilt angles. The anesthetic molecules also caused a decrease in the number of peptide-lipid contacts. The observed local and global effects of anesthetic binding on protein motions demonstrated in this study may underlie the mechanism of action of anesthetics at a molecular level.

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References
1.
Frauenfelder H, Sligar S, Wolynes P . The energy landscapes and motions of proteins. Science. 1991; 254(5038):1598-603. DOI: 10.1126/science.1749933. View

2.
Koblin D, Chortkoff B, Laster M, Eger 2nd E, Halsey M, IONESCU P . Polyhalogenated and perfluorinated compounds that disobey the Meyer-Overton hypothesis. Anesth Analg. 1994; 79(6):1043-8. DOI: 10.1213/00000539-199412000-00004. View

3.
Firestone L, Alifimoff J, Miller K . Does general anesthetic-induced desensitization of the Torpedo acetylcholine receptor correlate with lipid disordering?. Mol Pharmacol. 1994; 46(3):508-15. View

4.
Chiara D, Dangott L, Eckenhoff R, Cohen J . Identification of nicotinic acetylcholine receptor amino acids photolabeled by the volatile anesthetic halothane. Biochemistry. 2003; 42(46):13457-67. DOI: 10.1021/bi0351561. View

5.
Cantor R . Lipid composition and the lateral pressure profile in bilayers. Biophys J. 1999; 76(5):2625-39. PMC: 1300232. DOI: 10.1016/S0006-3495(99)77415-1. View