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In silico design of novel probes for the atypical opioid receptor MRGPRX2

The primate-exclusive MRGPRX2 G protein-coupled receptor (GPCR) has been suggested to modulate pain and itch. Despite putative peptide and small molecule MRGPRX2 agonists, selective nanomolar potency probes have not yet been reported. To identify a MRGPRX2 probe, we first screened 5,695 small molecu...

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Autores principales: Lansu, Katherine, Karpiak, Joel, Liu, Jing, Huang, Xi-Ping, McCorvy, John D., Kroeze, Wesley K., Che, Tao, Nagase, Hiroshi, Carroll, Frank I., Jin, Jian, Shoichet, Brian K., Roth, Bryan L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5391270/
https://www.ncbi.nlm.nih.gov/pubmed/28288109
http://dx.doi.org/10.1038/nchembio.2334
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author Lansu, Katherine
Karpiak, Joel
Liu, Jing
Huang, Xi-Ping
McCorvy, John D.
Kroeze, Wesley K.
Che, Tao
Nagase, Hiroshi
Carroll, Frank I.
Jin, Jian
Shoichet, Brian K.
Roth, Bryan L.
author_facet Lansu, Katherine
Karpiak, Joel
Liu, Jing
Huang, Xi-Ping
McCorvy, John D.
Kroeze, Wesley K.
Che, Tao
Nagase, Hiroshi
Carroll, Frank I.
Jin, Jian
Shoichet, Brian K.
Roth, Bryan L.
author_sort Lansu, Katherine
collection PubMed
description The primate-exclusive MRGPRX2 G protein-coupled receptor (GPCR) has been suggested to modulate pain and itch. Despite putative peptide and small molecule MRGPRX2 agonists, selective nanomolar potency probes have not yet been reported. To identify a MRGPRX2 probe, we first screened 5,695 small molecules and found many opioid compounds activated MRGPRX2, including (−)- and (+)-morphine, hydrocodone, sinomenine, dextromethorphan and the prodynorphin-derived peptides, dynorphin A, dynorphin B, and α- and β-neoendorphin. We used these to select for mutagenesis-validated homology models and docked almost 4 million small molecules. From this docking, we predicted ZINC-3573, which represents a potent MRGPRX2-selective agonist, showing little activity against 315 other GPCRs and 97 representative kinases, and an essentially inactive enantiomer. ZINC-3573 activates endogenous MRGPRX2 in a human mast cell line inducing degranulation and calcium release. MRGPRX2 is a unique atypical opioid-like receptor important for modulating mast cell degranulation, which can now be specifically modulated with ZINC-3573.
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spelling pubmed-53912702017-09-13 In silico design of novel probes for the atypical opioid receptor MRGPRX2 Lansu, Katherine Karpiak, Joel Liu, Jing Huang, Xi-Ping McCorvy, John D. Kroeze, Wesley K. Che, Tao Nagase, Hiroshi Carroll, Frank I. Jin, Jian Shoichet, Brian K. Roth, Bryan L. Nat Chem Biol Article The primate-exclusive MRGPRX2 G protein-coupled receptor (GPCR) has been suggested to modulate pain and itch. Despite putative peptide and small molecule MRGPRX2 agonists, selective nanomolar potency probes have not yet been reported. To identify a MRGPRX2 probe, we first screened 5,695 small molecules and found many opioid compounds activated MRGPRX2, including (−)- and (+)-morphine, hydrocodone, sinomenine, dextromethorphan and the prodynorphin-derived peptides, dynorphin A, dynorphin B, and α- and β-neoendorphin. We used these to select for mutagenesis-validated homology models and docked almost 4 million small molecules. From this docking, we predicted ZINC-3573, which represents a potent MRGPRX2-selective agonist, showing little activity against 315 other GPCRs and 97 representative kinases, and an essentially inactive enantiomer. ZINC-3573 activates endogenous MRGPRX2 in a human mast cell line inducing degranulation and calcium release. MRGPRX2 is a unique atypical opioid-like receptor important for modulating mast cell degranulation, which can now be specifically modulated with ZINC-3573. 2017-03-13 2017-05 /pmc/articles/PMC5391270/ /pubmed/28288109 http://dx.doi.org/10.1038/nchembio.2334 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Lansu, Katherine
Karpiak, Joel
Liu, Jing
Huang, Xi-Ping
McCorvy, John D.
Kroeze, Wesley K.
Che, Tao
Nagase, Hiroshi
Carroll, Frank I.
Jin, Jian
Shoichet, Brian K.
Roth, Bryan L.
In silico design of novel probes for the atypical opioid receptor MRGPRX2
title In silico design of novel probes for the atypical opioid receptor MRGPRX2
title_full In silico design of novel probes for the atypical opioid receptor MRGPRX2
title_fullStr In silico design of novel probes for the atypical opioid receptor MRGPRX2
title_full_unstemmed In silico design of novel probes for the atypical opioid receptor MRGPRX2
title_short In silico design of novel probes for the atypical opioid receptor MRGPRX2
title_sort in silico design of novel probes for the atypical opioid receptor mrgprx2
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5391270/
https://www.ncbi.nlm.nih.gov/pubmed/28288109
http://dx.doi.org/10.1038/nchembio.2334
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