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Synthesis of Thiol Derivatives of Biological Active Compounds for Nanotechnology Application

An efficient method of thiol group introduction to the structure of common natural products and synthetic active compounds with recognized biological efficacy such genistein (1), 5,11-dimethyl-5H-indolo[2,3-b]quinolin (2), capecitabine (3), diosgenin (4), tigogenin (5), flumethasone (6), fluticasone...

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Autores principales: Sidoryk, Katarzyna, Michalak, Olga, Kubiszewski, Marek, Leś, Andrzej, Cybulski, Marcin, Stolarczyk, Elżbieta U., Doubsky, Jan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7435828/
https://www.ncbi.nlm.nih.gov/pubmed/32751592
http://dx.doi.org/10.3390/molecules25153470
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author Sidoryk, Katarzyna
Michalak, Olga
Kubiszewski, Marek
Leś, Andrzej
Cybulski, Marcin
Stolarczyk, Elżbieta U.
Doubsky, Jan
author_facet Sidoryk, Katarzyna
Michalak, Olga
Kubiszewski, Marek
Leś, Andrzej
Cybulski, Marcin
Stolarczyk, Elżbieta U.
Doubsky, Jan
author_sort Sidoryk, Katarzyna
collection PubMed
description An efficient method of thiol group introduction to the structure of common natural products and synthetic active compounds with recognized biological efficacy such genistein (1), 5,11-dimethyl-5H-indolo[2,3-b]quinolin (2), capecitabine (3), diosgenin (4), tigogenin (5), flumethasone (6), fluticasone propionate (7), ursolic acid methyl ester (8), and β-sitosterol (9) was developed. In most cases, the desired compounds were obtained easily via two-step processes involving esterification reaction employing S-trityl protected thioacetic acid and the corresponding hydoxy-derivative, followed by removal of the trityl-protecting group to obtain the final compounds. The results of our preliminary experiments forced us to change the strategy in the case of genistein (1), and the derivatization of diosgenin (4), tigogenin (5), and capecitabine (3) resulted in obtaining different compounds from those designed. Nevertheless, in all above cases we were able to obtain thiol-containing derivatives of selected biological active compounds. Moreover, a modelling study for the two-step thiolation of genistein and some of its derivatives was accomplished using the density functional theory (B3LP). A hypothesis on a possible reason for the unsuccessful deprotection of the thiolated genistein is also presented based on the semiempirical (PM7) calculations. The developed methodology gives access to new sulphur derivatives, which might find a potential therapeutic benefit.
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spelling pubmed-74358282020-08-25 Synthesis of Thiol Derivatives of Biological Active Compounds for Nanotechnology Application Sidoryk, Katarzyna Michalak, Olga Kubiszewski, Marek Leś, Andrzej Cybulski, Marcin Stolarczyk, Elżbieta U. Doubsky, Jan Molecules Article An efficient method of thiol group introduction to the structure of common natural products and synthetic active compounds with recognized biological efficacy such genistein (1), 5,11-dimethyl-5H-indolo[2,3-b]quinolin (2), capecitabine (3), diosgenin (4), tigogenin (5), flumethasone (6), fluticasone propionate (7), ursolic acid methyl ester (8), and β-sitosterol (9) was developed. In most cases, the desired compounds were obtained easily via two-step processes involving esterification reaction employing S-trityl protected thioacetic acid and the corresponding hydoxy-derivative, followed by removal of the trityl-protecting group to obtain the final compounds. The results of our preliminary experiments forced us to change the strategy in the case of genistein (1), and the derivatization of diosgenin (4), tigogenin (5), and capecitabine (3) resulted in obtaining different compounds from those designed. Nevertheless, in all above cases we were able to obtain thiol-containing derivatives of selected biological active compounds. Moreover, a modelling study for the two-step thiolation of genistein and some of its derivatives was accomplished using the density functional theory (B3LP). A hypothesis on a possible reason for the unsuccessful deprotection of the thiolated genistein is also presented based on the semiempirical (PM7) calculations. The developed methodology gives access to new sulphur derivatives, which might find a potential therapeutic benefit. MDPI 2020-07-30 /pmc/articles/PMC7435828/ /pubmed/32751592 http://dx.doi.org/10.3390/molecules25153470 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
Sidoryk, Katarzyna
Michalak, Olga
Kubiszewski, Marek
Leś, Andrzej
Cybulski, Marcin
Stolarczyk, Elżbieta U.
Doubsky, Jan
Synthesis of Thiol Derivatives of Biological Active Compounds for Nanotechnology Application
title Synthesis of Thiol Derivatives of Biological Active Compounds for Nanotechnology Application
title_full Synthesis of Thiol Derivatives of Biological Active Compounds for Nanotechnology Application
title_fullStr Synthesis of Thiol Derivatives of Biological Active Compounds for Nanotechnology Application
title_full_unstemmed Synthesis of Thiol Derivatives of Biological Active Compounds for Nanotechnology Application
title_short Synthesis of Thiol Derivatives of Biological Active Compounds for Nanotechnology Application
title_sort synthesis of thiol derivatives of biological active compounds for nanotechnology application
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7435828/
https://www.ncbi.nlm.nih.gov/pubmed/32751592
http://dx.doi.org/10.3390/molecules25153470
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