Osaka H, Malany S, Molles B E, Sine S M, Taylor P
Department of Pharmacology, University of California, San Diego, La Jolla, California 92093, USA.
J Biol Chem. 2000 Feb 25;275(8):5478-84. doi: 10.1074/jbc.275.8.5478.
alpha-Neurotoxins bind with high affinity to alpha-gamma and alpha-delta subunit interfaces of the nicotinic acetylcholine receptor. Since this high affinity complex likely involves a van der Waals surface area of approximately 1200 A(2) and 25-35 residues on the receptor surface, analysis of side chains should delineate major interactions and the orientation of bound alpha-neurotoxin. Three distinct regions on the gamma subunit, defined by Trp(55), Leu(119), Asp(174), and Glu(176), contribute to alpha-toxin affinity. Of six charge reversal mutations on the three loops of Naja mossambica mossambica alpha-toxin, Lys(27) --> Glu, Arg(33) --> Glu, and Arg(36) --> Glu in loop II reduce binding energy substantially, while mutations in loops I and III have little effect. Paired residues were analyzed by thermodynamic mutant cycles to delineate electrostatic linkages between the six alpha-toxin charge reversal mutations and three key residues on the gamma subunit. Large coupling energies were found between Arg(33) at the tip of loop II and gammaLeu(119) (-5.7 kcal/mol) and between Lys(27) and gammaGlu(176) (-5.9 kcal/mol). gammaTrp(55) couples strongly to both Arg(33) and Lys(27), whereas gammaAsp(174) couples minimally to charged alpha-toxin residues. Arg(36), despite strong energetic contributions, does not partner with any gamma subunit residues, perhaps indicating its proximity to the alpha subunit. By analyzing cationic, neutral and anionic residues in the mutant cycles, interactions at gamma176 and gamma119 can be distinguished from those at gamma55.
α-神经毒素与烟碱型乙酰胆碱受体的α-γ和α-δ亚基界面具有高亲和力结合。由于这种高亲和力复合物可能涉及约1200 Ų的范德华表面积以及受体表面上25 - 35个残基,对侧链的分析应能描绘出主要相互作用以及结合的α-神经毒素的方向。γ亚基上由Trp(55)、Leu(119)、Asp(174)和Glu(176)定义的三个不同区域有助于α-毒素亲和力。在莫桑比克眼镜蛇α-毒素的三个环上的六个电荷反转突变中,环II中的Lys(27)→Glu、Arg(33)→Glu和Arg(36)→Glu显著降低结合能,而环I和环III中的突变影响很小。通过热力学突变循环分析配对残基,以描绘六个α-毒素电荷反转突变与γ亚基上三个关键残基之间的静电联系。在环II末端的Arg(33)与γLeu(119)之间(-5.7千卡/摩尔)以及Lys(27)与γGlu(176)之间(-5.9千卡/摩尔)发现了大的耦合能。γTrp(55)与Arg(33)和Lys(27)都强烈耦合,而γAsp(174)与带电荷的α-毒素残基的耦合最小。尽管Arg(36)有很强的能量贡献,但它不与任何γ亚基残基配对,这可能表明它靠近α亚基。通过分析突变循环中的阳离子、中性和阴离子残基,可以区分γ176和γ119处的相互作用与γ55处的相互作用。