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Published April 4, 2017 | Accepted Version
Journal Article Open

Probing for and Quantifying Agonist Hydrogen Bonds in α6β2 Nicotinic Acetylcholine Receptors

Abstract

Designing subtype-selective agonists for neuronal nicotinic acetylcholine receptors (nACh¬R) is a challenging and significant goal aided by intricate knowledge of each subtype's binding patterns. We previously reported that in α6β2 receptors, acetylcholine makes a functional cation-π interaction with Trp149, but nicotine and TC299423 do not, suggesting a distinctive binding site. This work explores hydrogen binding at the backbone carbonyl associated with α6β2 Trp149. Substituting the i+1 residue, Thr150, with its α-hydroxy analogue (Tah) attenuates the carbonyl's hydrogen bond accepting ability. At α6(T150Tah)β2, nicotine shows a 24-fold loss of function, TC299423 shows a modest loss, and acetylcholine shows no effect. Nicotine was further analyzed via a double-mutant cycle analysis utilizing N'-methylnicotinium, which indicated a hydrogen bond in α6β2 with a ΔΔG of 2.6 kcal/mol. Thus, even though nicotine does not make the conserved cation-π interaction with Trp149, it still makes a functional hydrogen bond to its associated backbone carbonyl.

Additional Information

© 2017 American Chemical Society. Received: March 8, 2017; Published: March 13, 2017. This work was supported by the NIH (NS 34407, DA019375). MRP was supported by an NIH/NRSA training grant: 5 T32 GM07616. We thank Merouane Bencherif and Daniel Yohannes (Targacept) for gifts of TC299423.

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Accepted Version - acs_2Ebiochem_2E7b00213.pdf

Accepted Version - nihms-982744.pdf

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