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Synthesis, Biological Evaluation, and Docking Studies of Antagonistic Hydroxylated Arecaidine Esters Targeting mAChRs

The muscarinic acetylcholine receptor family is a highly sought-after target in drug and molecular imaging discovery efforts aimed at neurological disorders. Hampered by the structural similarity of the five subtypes’ orthosteric binding pockets, these efforts largely failed to deliver subtype-selec...

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Autores principales: Kilian, Jonas, Millard, Marlon, Ozenil, Marius, Krause, Dominik, Ghaderi, Khadija, Holzer, Wolfgang, Urban, Ernst, Spreitzer, Helmut, Wadsak, Wolfgang, Hacker, Marcus, Langer, Thierry, Pichler, Verena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9145622/
https://www.ncbi.nlm.nih.gov/pubmed/35630651
http://dx.doi.org/10.3390/molecules27103173
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author Kilian, Jonas
Millard, Marlon
Ozenil, Marius
Krause, Dominik
Ghaderi, Khadija
Holzer, Wolfgang
Urban, Ernst
Spreitzer, Helmut
Wadsak, Wolfgang
Hacker, Marcus
Langer, Thierry
Pichler, Verena
author_facet Kilian, Jonas
Millard, Marlon
Ozenil, Marius
Krause, Dominik
Ghaderi, Khadija
Holzer, Wolfgang
Urban, Ernst
Spreitzer, Helmut
Wadsak, Wolfgang
Hacker, Marcus
Langer, Thierry
Pichler, Verena
author_sort Kilian, Jonas
collection PubMed
description The muscarinic acetylcholine receptor family is a highly sought-after target in drug and molecular imaging discovery efforts aimed at neurological disorders. Hampered by the structural similarity of the five subtypes’ orthosteric binding pockets, these efforts largely failed to deliver subtype-selective ligands. Building on our recent successes with arecaidine-derived ligands targeting M(1), herein we report the synthesis of a related series of 11 hydroxylated arecaidine esters. Their physicochemical property profiles, expressed in terms of their computationally calculated CNS MPO scores and HPLC-logD values, point towards blood–brain barrier permeability. By means of a competitive radioligand binding assay, the binding affinity values towards each of the individual human mAChR subtypes hM(1)–hM(5) were determined. The most promising compound of this series 17b was shown to have a binding constant towards hM(1) in the single-digit nanomolar region (5.5 nM). Similar to our previously reported arecaidine-derived esters, the entire series was shown to act as hM1R antagonists in a calcium flux assay. Overall, this study greatly expanded our understanding of this recurring scaffolds’ structure–activity relationship and will guide the development towards highly selective mAChRs ligands.
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spelling pubmed-91456222022-05-29 Synthesis, Biological Evaluation, and Docking Studies of Antagonistic Hydroxylated Arecaidine Esters Targeting mAChRs Kilian, Jonas Millard, Marlon Ozenil, Marius Krause, Dominik Ghaderi, Khadija Holzer, Wolfgang Urban, Ernst Spreitzer, Helmut Wadsak, Wolfgang Hacker, Marcus Langer, Thierry Pichler, Verena Molecules Article The muscarinic acetylcholine receptor family is a highly sought-after target in drug and molecular imaging discovery efforts aimed at neurological disorders. Hampered by the structural similarity of the five subtypes’ orthosteric binding pockets, these efforts largely failed to deliver subtype-selective ligands. Building on our recent successes with arecaidine-derived ligands targeting M(1), herein we report the synthesis of a related series of 11 hydroxylated arecaidine esters. Their physicochemical property profiles, expressed in terms of their computationally calculated CNS MPO scores and HPLC-logD values, point towards blood–brain barrier permeability. By means of a competitive radioligand binding assay, the binding affinity values towards each of the individual human mAChR subtypes hM(1)–hM(5) were determined. The most promising compound of this series 17b was shown to have a binding constant towards hM(1) in the single-digit nanomolar region (5.5 nM). Similar to our previously reported arecaidine-derived esters, the entire series was shown to act as hM1R antagonists in a calcium flux assay. Overall, this study greatly expanded our understanding of this recurring scaffolds’ structure–activity relationship and will guide the development towards highly selective mAChRs ligands. MDPI 2022-05-16 /pmc/articles/PMC9145622/ /pubmed/35630651 http://dx.doi.org/10.3390/molecules27103173 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kilian, Jonas
Millard, Marlon
Ozenil, Marius
Krause, Dominik
Ghaderi, Khadija
Holzer, Wolfgang
Urban, Ernst
Spreitzer, Helmut
Wadsak, Wolfgang
Hacker, Marcus
Langer, Thierry
Pichler, Verena
Synthesis, Biological Evaluation, and Docking Studies of Antagonistic Hydroxylated Arecaidine Esters Targeting mAChRs
title Synthesis, Biological Evaluation, and Docking Studies of Antagonistic Hydroxylated Arecaidine Esters Targeting mAChRs
title_full Synthesis, Biological Evaluation, and Docking Studies of Antagonistic Hydroxylated Arecaidine Esters Targeting mAChRs
title_fullStr Synthesis, Biological Evaluation, and Docking Studies of Antagonistic Hydroxylated Arecaidine Esters Targeting mAChRs
title_full_unstemmed Synthesis, Biological Evaluation, and Docking Studies of Antagonistic Hydroxylated Arecaidine Esters Targeting mAChRs
title_short Synthesis, Biological Evaluation, and Docking Studies of Antagonistic Hydroxylated Arecaidine Esters Targeting mAChRs
title_sort synthesis, biological evaluation, and docking studies of antagonistic hydroxylated arecaidine esters targeting machrs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9145622/
https://www.ncbi.nlm.nih.gov/pubmed/35630651
http://dx.doi.org/10.3390/molecules27103173
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