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1.
Toxins (Basel) ; 13(8)2021 08 10.
Article in English | MEDLINE | ID: mdl-34437426

ABSTRACT

α-conotoxins are 13-19 amino acid toxin peptides that bind various nicotinic acetylcholine receptor (nAChR) subtypes. α-conotoxin Mr1.7c (MrIC) is a 17 amino acid peptide that targets α7 nAChR. Although MrIC has no activating effect on α7 nAChR when applied by itself, it evokes a large response when co-applied with the type II positive allosteric modulator PNU-120596, which potentiates the α7 nAChR response by recovering it from a desensitized state. A lack of standalone activity, despite activation upon co-application with a positive allosteric modulator, was previously observed for molecules that bind to an extracellular domain allosteric activation (AA) site at the vestibule of the receptor. We hypothesized that MrIC may activate α7 nAChR allosterically through this site. We ran voltage-clamp electrophysiology experiments and in silico peptide docking calculations in order to gather evidence in support of α7 nAChR activation by MrIC through the AA site. The experiments with the wild-type α7 nAChR supported an allosteric mode of action, which was confirmed by the significantly increased MrIC + PNU-120596 responses of three α7 nAChR AA site mutants that were designed in silico to improve MrIC binding. Overall, our results shed light on the allosteric activation of α7 nAChR by MrIC and suggest the involvement of the AA site.


Subject(s)
Conotoxins/pharmacology , alpha7 Nicotinic Acetylcholine Receptor/metabolism , Allosteric Regulation/drug effects , Animals , Binding Sites , Female , Molecular Docking Simulation , Mutation , Oocytes , Xenopus laevis , alpha7 Nicotinic Acetylcholine Receptor/chemistry , alpha7 Nicotinic Acetylcholine Receptor/genetics
2.
Proc Natl Acad Sci U S A ; 116(44): 22353-22358, 2019 10 29.
Article in English | MEDLINE | ID: mdl-31611414

ABSTRACT

An Australian estuarine isolate of Penicillium sp. MST-MF667 yielded 3 tetrapeptides named the bilaids with an unusual alternating LDLD chirality. Given their resemblance to known short peptide opioid agonists, we elucidated that they were weak (Ki low micromolar) µ-opioid agonists, which led to the design of bilorphin, a potent and selective µ-opioid receptor (MOPr) agonist (Ki 1.1 nM). In sharp contrast to all-natural product opioid peptides that efficaciously recruit ß-arrestin, bilorphin is G protein biased, weakly phosphorylating the MOPr and marginally recruiting ß-arrestin, with no receptor internalization. Importantly, bilorphin exhibits a similar G protein bias to oliceridine, a small nonpeptide with improved overdose safety. Molecular dynamics simulations of bilorphin and the strongly arrestin-biased endomorphin-2 with the MOPr indicate distinct receptor interactions and receptor conformations that could underlie their large differences in bias. Whereas bilorphin is systemically inactive, a glycosylated analog, bilactorphin, is orally active with similar in vivo potency to morphine. Bilorphin is both a unique molecular tool that enhances understanding of MOPr biased signaling and a promising lead in the development of next generation analgesics.


Subject(s)
Analgesics, Opioid/pharmacology , Fungal Proteins/pharmacology , Oligopeptides/pharmacology , Penicillium/chemistry , Receptors, Opioid, mu/agonists , Analgesics, Opioid/chemistry , Animals , Binding Sites , Cell Line, Tumor , Fungal Proteins/chemistry , HEK293 Cells , Humans , Mice , Molecular Docking Simulation , Oligopeptides/chemistry , Protein Binding , Receptors, Opioid, mu/chemistry , Receptors, Opioid, mu/metabolism
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