TY - JOUR
T1 - Conopeptide-Derived κ-Opioid Agonists (Conorphins)
T2 - Potent, Selective, and Metabolic Stable Dynorphin A Mimetics with Antinociceptive Properties
AU - Brust, Andreas
AU - Croker, Daniel E.
AU - Colless, Barbara
AU - Ragnarsson, Lotten
AU - Andersson, Åsa
AU - Jain, Kapil
AU - Garcia-Caraballo, Sonia
AU - Castro, Joel
AU - Brierley, Stuart M.
AU - Alewood, Paul F.
AU - Lewis, Richard J.
N1 - Publisher Copyright:
© 2016 American Chemical Society.
PY - 2016/3/24
Y1 - 2016/3/24
N2 - Opioid receptor screening of a conopeptide library led to a novel selective κ-opioid agonist peptide (conorphin T). Intensive medicinal chemistry, guided by potency, selectivity, and stability assays generated a pharmacophore model supporting rational design of highly potent and selective κ-opioid receptor (KOR) agonists (conorphins) with exceptional plasma stability. Conorphins are defined by a hydrophobic benzoprolyl moiety, a double arginine sequence, a spacer amino acid followed by a hydrophobic residue and a C-terminal vicinal disulfide moiety. The pharmacophore model was supported by computational docking studies, revealing receptor-ligand interactions similar to KOR agonist dynorphin A (1-8). A conorphin agonist inhibited colonic nociceptors in a mouse tissue model of chronic visceral hypersensitivity, suggesting the potential of KOR agonists for the treatment of chronic abdominal pain. This new conorphine KOR agonist class and pharmacophore model provide opportunities for future rational drug development and probes for exploring the role of the κ-opioid receptor.
AB - Opioid receptor screening of a conopeptide library led to a novel selective κ-opioid agonist peptide (conorphin T). Intensive medicinal chemistry, guided by potency, selectivity, and stability assays generated a pharmacophore model supporting rational design of highly potent and selective κ-opioid receptor (KOR) agonists (conorphins) with exceptional plasma stability. Conorphins are defined by a hydrophobic benzoprolyl moiety, a double arginine sequence, a spacer amino acid followed by a hydrophobic residue and a C-terminal vicinal disulfide moiety. The pharmacophore model was supported by computational docking studies, revealing receptor-ligand interactions similar to KOR agonist dynorphin A (1-8). A conorphin agonist inhibited colonic nociceptors in a mouse tissue model of chronic visceral hypersensitivity, suggesting the potential of KOR agonists for the treatment of chronic abdominal pain. This new conorphine KOR agonist class and pharmacophore model provide opportunities for future rational drug development and probes for exploring the role of the κ-opioid receptor.
UR - http://www.scopus.com/inward/record.url?scp=84962173579&partnerID=8YFLogxK
U2 - 10.1021/acs.jmedchem.5b00911
DO - 10.1021/acs.jmedchem.5b00911
M3 - Article
C2 - 26859603
AN - SCOPUS:84962173579
SN - 0022-2623
VL - 59
SP - 2381
EP - 2395
JO - Journal of medicinal chemistry
JF - Journal of medicinal chemistry
IS - 6
ER -