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J Membr Biol
2006 Jan 01;2143:131-8. doi: 10.1007/s00232-006-0051-0.
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The polarity of lipid-exposed residues contributes to the functional differences between Torpedo and muscle-type nicotinic receptors.
Guzmán GR
,
Ortiz-Acevedo A
,
Ricardo A
,
Rojas LV
,
Lasalde-Dominicci JA
.
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A comparison between the Torpedo and muscle-type acetylcholine receptors (AChRs) reveals differences in several lipid-exposed amino acids, particularly in the polarity of those residues. The goal of this study was to characterize the role of eight lipid-exposed residues in the functional differences between the Torpedo and muscle-type AChRs. To this end, residues alphaS287, alphaC412, betaY441, gammaM299, gammaS460, deltaM293, deltaS297 and deltaN305 in the Torpedo AChR were replaced with those found in the muscle-type receptor. Mutant receptor expression was measured in Xenopus oocytes using [(125)I]-alpha-bungarotoxin, and AChR ion channel function was evaluated using the two-electrode voltage clamp. Eight mutant combinations resulted in an increase (1.5- to 5.2-fold) in AChR expression. Four mutant combinations produced a significant 46% decrease in the ACh 50% inhibitory concentration (EC(50)), while three mutant combinations resulted in 1.7- to 2-fold increases in ACh EC(50). Finally, seven mutant combinations resulted in a decrease in normalized, ACh-induced currents. Our results suggest that these residues, although remote from the ion channel pore, (1) contribute to ion channel gating, (2) may affect trafficking of AChR into specialized membrane domains and (3) account for the functional differences between Torpedo and muscle-type AChR. These findings emphasize the importance of the lipid-protein interface in the functional differences between the Torpedo and muscle-type AChRs.
Akabas,
Identification of acetylcholine receptor channel-lining residues in the M1 segment of the alpha-subunit.
1995, Pubmed,
Xenbase
Akabas,
Identification of acetylcholine receptor channel-lining residues in the M1 segment of the alpha-subunit.
1995,
Pubmed
,
Xenbase
Blanton,
Probing the structure of the nicotinic acetylcholine receptor ion channel with the uncharged photoactivable compound -3H-diazofluorene.
1998,
Pubmed
Blanton,
Identifying the lipid-protein interface of the Torpedo nicotinic acetylcholine receptor: secondary structure implications.
1994,
Pubmed
Blanton,
Mapping the lipid-exposed regions in the Torpedo californica nicotinic acetylcholine receptor.
1992,
Pubmed
Bouzat,
Mutations at lipid-exposed residues of the acetylcholine receptor affect its gating kinetics.
1998,
Pubmed
Bouzat,
Structural basis of the different gating kinetics of fetal and adult acetylcholine receptors.
1994,
Pubmed
Butler,
Mouse-Torpedo chimeric alpha-subunit used to probe channel-gating determinants on the nicotinic acetylcholine receptor primary sequence.
1997,
Pubmed
,
Xenbase
Chothia,
Structural invariants in protein folding.
1975,
Pubmed
Couet,
Identification of peptide and protein ligands for the caveolin-scaffolding domain. Implications for the interaction of caveolin with caveolae-associated proteins.
1997,
Pubmed
Cruz-Martín,
Tryptophan substitutions at lipid-exposed positions of the gamma M3 transmembrane domain increase the macroscopic ionic current response of the Torpedo californica nicotinic acetylcholine receptor.
2001,
Pubmed
,
Xenbase
Guzmán,
Tryptophan scanning mutagenesis in the alphaM3 transmembrane domain of the Torpedo californica acetylcholine receptor: functional and structural implications.
2003,
Pubmed
,
Xenbase
Lasalde,
Tryptophan substitutions at the lipid-exposed transmembrane segment M4 of Torpedo californica acetylcholine receptor govern channel gating.
1996,
Pubmed
,
Xenbase
Lee,
Mutations in the M4 domain of Torpedo californica acetylcholine receptor dramatically alter ion channel function.
1994,
Pubmed
,
Xenbase
Mitra,
Structural dynamics of the M4 transmembrane segment during acetylcholine receptor gating.
2004,
Pubmed
Miyazawa,
Structure and gating mechanism of the acetylcholine receptor pore.
2003,
Pubmed
Naranjo,
Modal shifts in acetylcholine receptor channel gating confer subunit-dependent desensitization.
1993,
Pubmed
,
Xenbase
Navedo,
Tryptophan substitutions reveal the role of nicotinic acetylcholine receptor alpha-TM3 domain in channel gating: differences between Torpedo and muscle-type AChR.
2004,
Pubmed
,
Xenbase
Noda,
Structural homology of Torpedo californica acetylcholine receptor subunits.
1983,
Pubmed
Ortiz-Miranda,
Mutations in the M4 domain of the Torpedo californica nicotinic acetylcholine receptor alter channel opening and closing.
1997,
Pubmed
,
Xenbase
Otero-Cruz,
Tryptophan-scanning mutagenesis in the alphaM3 transmembrane domain of the muscle-type acetylcholine receptor. A spring model revealed.
2007,
Pubmed
,
Xenbase
Santiago,
Probing the effects of membrane cholesterol in the Torpedo californica acetylcholine receptor and the novel lipid-exposed mutation alpha C418W in Xenopus oocytes.
2001,
Pubmed
,
Xenbase
Tamamizu,
Functional effects of periodic tryptophan substitutions in the alpha M4 transmembrane domain of the Torpedo californica nicotinic acetylcholine receptor.
2000,
Pubmed
,
Xenbase
Tamamizu,
Alteration in ion channel function of mouse nicotinic acetylcholine receptor by mutations in the M4 transmembrane domain.
1999,
Pubmed
,
Xenbase
Unwin,
Refined structure of the nicotinic acetylcholine receptor at 4A resolution.
2005,
Pubmed
Wang,
Acetylcholine receptor M3 domain: stereochemical and volume contributions to channel gating.
1999,
Pubmed
Yu,
Single-channel properties of mouse-Torpedo acetylcholine receptor hybrids expressed in Xenopus oocytes.
1991,
Pubmed
,
Xenbase