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Synthesis of Potential Haptens with Morphine Skeleton and Determination of Protonation Constants †

Vaccination could be a promising alternative warfare against drug addiction and abuse. For this purpose, so-called haptens can be used. These molecules alone do not induce the activation of the immune system, this occurs only when they are attached to an immunogenic carrier protein. Hence obtaining...

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Autores principales: Köteles, István, Mazák, Károly, Tóth, Gergő, Tűz, Boglárka, Hosztafi, Sándor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7504778/
https://www.ncbi.nlm.nih.gov/pubmed/32887468
http://dx.doi.org/10.3390/molecules25174009
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author Köteles, István
Mazák, Károly
Tóth, Gergő
Tűz, Boglárka
Hosztafi, Sándor
author_facet Köteles, István
Mazák, Károly
Tóth, Gergő
Tűz, Boglárka
Hosztafi, Sándor
author_sort Köteles, István
collection PubMed
description Vaccination could be a promising alternative warfare against drug addiction and abuse. For this purpose, so-called haptens can be used. These molecules alone do not induce the activation of the immune system, this occurs only when they are attached to an immunogenic carrier protein. Hence obtaining a free amino or carboxylic group during the structural transformation is an important part of the synthesis. Namely, these groups can be used to form the requisite peptide bond between the hapten and the carrier protein. Focusing on this basic principle, six nor-morphine compounds were treated with ethyl acrylate and ethyl bromoacetate, while the prepared esters were hydrolyzed to obtain the N-carboxymethyl- and N-carboxyethyl-normorphine derivatives which are considered as potential haptens. The next step was the coupling phase with glycine ethyl ester, but the reactions did not work or the work-up process was not accomplishable. As an alternative route, the normorphine-compounds were N-alkylated with N-(chloroacetyl)glycine ethyl ester. These products were hydrolyzed in alkaline media and after the work-up process all of the derivatives contained the free carboxylic group of the glycine side chain. The acid-base properties of these molecules are characterized in detail. In the N-carboxyalkyl derivatives, the basicity of the amino and phenolate site is within an order of magnitude. In the glycine derivatives the basicity of the amino group is significantly decreased compared to the parent compounds (i.e., morphine, oxymorphone) because of the electron withdrawing amide group. The protonation state of the carboxylate group significantly influences the basicity of the amino group. All of the glycine ester and the glycine carboxylic acid derivatives are currently under biological tests.
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spelling pubmed-75047782020-09-26 Synthesis of Potential Haptens with Morphine Skeleton and Determination of Protonation Constants † Köteles, István Mazák, Károly Tóth, Gergő Tűz, Boglárka Hosztafi, Sándor Molecules Article Vaccination could be a promising alternative warfare against drug addiction and abuse. For this purpose, so-called haptens can be used. These molecules alone do not induce the activation of the immune system, this occurs only when they are attached to an immunogenic carrier protein. Hence obtaining a free amino or carboxylic group during the structural transformation is an important part of the synthesis. Namely, these groups can be used to form the requisite peptide bond between the hapten and the carrier protein. Focusing on this basic principle, six nor-morphine compounds were treated with ethyl acrylate and ethyl bromoacetate, while the prepared esters were hydrolyzed to obtain the N-carboxymethyl- and N-carboxyethyl-normorphine derivatives which are considered as potential haptens. The next step was the coupling phase with glycine ethyl ester, but the reactions did not work or the work-up process was not accomplishable. As an alternative route, the normorphine-compounds were N-alkylated with N-(chloroacetyl)glycine ethyl ester. These products were hydrolyzed in alkaline media and after the work-up process all of the derivatives contained the free carboxylic group of the glycine side chain. The acid-base properties of these molecules are characterized in detail. In the N-carboxyalkyl derivatives, the basicity of the amino and phenolate site is within an order of magnitude. In the glycine derivatives the basicity of the amino group is significantly decreased compared to the parent compounds (i.e., morphine, oxymorphone) because of the electron withdrawing amide group. The protonation state of the carboxylate group significantly influences the basicity of the amino group. All of the glycine ester and the glycine carboxylic acid derivatives are currently under biological tests. MDPI 2020-09-02 /pmc/articles/PMC7504778/ /pubmed/32887468 http://dx.doi.org/10.3390/molecules25174009 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Köteles, István
Mazák, Károly
Tóth, Gergő
Tűz, Boglárka
Hosztafi, Sándor
Synthesis of Potential Haptens with Morphine Skeleton and Determination of Protonation Constants †
title Synthesis of Potential Haptens with Morphine Skeleton and Determination of Protonation Constants †
title_full Synthesis of Potential Haptens with Morphine Skeleton and Determination of Protonation Constants †
title_fullStr Synthesis of Potential Haptens with Morphine Skeleton and Determination of Protonation Constants †
title_full_unstemmed Synthesis of Potential Haptens with Morphine Skeleton and Determination of Protonation Constants †
title_short Synthesis of Potential Haptens with Morphine Skeleton and Determination of Protonation Constants †
title_sort synthesis of potential haptens with morphine skeleton and determination of protonation constants †
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7504778/
https://www.ncbi.nlm.nih.gov/pubmed/32887468
http://dx.doi.org/10.3390/molecules25174009
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