Literature DB >> 23800261

Complex between α-bungarotoxin and an α7 nicotinic receptor ligand-binding domain chimaera.

Sun Huang1, Shu-Xing Li2, Nina Bren1, Kevin Cheng2, Ryan Gomoto2, Lin Chen2,3, Steven M Sine1,4.   

Abstract

To identify high-affinity interactions between long-chain α-neurotoxins and nicotinic receptors, we determined the crystal structure of the complex between α-btx (α-bungarotoxin) and a pentameric ligand-binding domain constructed from the human α7 AChR (acetylcholine receptor) and AChBP (acetylcholine-binding protein). The complex buries ~2000 Ų (1 Å=0.1 nm) of surface area, within which Arg³⁶ and Phe³² from finger II of α-btx form a π-cation stack that aligns edge-to-face with the conserved Tyr¹⁸⁴ from loop-C of α7, while Asp³⁰ of α-btx forms a hydrogen bond with the hydroxy group of Tyr¹⁸⁴. These inter-residue interactions diverge from those in a 4.2 Å structure of α-ctx (α-cobratoxin) bound to AChBP, but are similar to those in a 1.94 Å structure of α-btx bound to the monomeric α1 extracellular domain, although compared with the monomer-bound complex, the α-btx backbone exhibits a large shift relative to the protein surface. Mutational analyses show that replacing Tyr¹⁸⁴ with a threonine residue abolishes high-affinity α-btx binding, whereas replacing with a phenylalanine residue maintains high affinity. Comparison of the α-btx complex with that coupled to the agonist epibatidine reveals structural rearrangements within the binding pocket and throughout each subunit. The overall findings highlight structural principles by which α-neurotoxins interact with nicotinic receptors.

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Year:  2013        PMID: 23800261      PMCID: PMC3920732          DOI: 10.1042/BJ20130636

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  22 in total

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10.  Structure and gating mechanism of the α7 nicotinic acetylcholine receptor.

Authors:  Colleen M Noviello; Anant Gharpure; Nuriya Mukhtasimova; Rico Cabuco; Leah Baxter; Dominika Borek; Steven M Sine; Ryan E Hibbs
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