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New Molecules of Diterpene Origin with Inhibitory Properties toward α-Glucosidase

The incidence of diabetes mellitus (DM), one of the most common chronic metabolic disorders, has increased dramatically over the past decade and has resulted in higher rates of morbidity and mortality worldwide. The enzyme, α-Glucosidase (α-GLy), is considered a therapeutic target for the treatment...

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Autores principales: Tretyakova, Elena, Smirnova, Irina, Kazakova, Oxana, Nguyen, Ha Thi Thu, Shevchenko, Alina, Sokolova, Elena, Babkov, Denis, Spasov, Alexander
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9655717/
https://www.ncbi.nlm.nih.gov/pubmed/36362322
http://dx.doi.org/10.3390/ijms232113535
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author Tretyakova, Elena
Smirnova, Irina
Kazakova, Oxana
Nguyen, Ha Thi Thu
Shevchenko, Alina
Sokolova, Elena
Babkov, Denis
Spasov, Alexander
author_facet Tretyakova, Elena
Smirnova, Irina
Kazakova, Oxana
Nguyen, Ha Thi Thu
Shevchenko, Alina
Sokolova, Elena
Babkov, Denis
Spasov, Alexander
author_sort Tretyakova, Elena
collection PubMed
description The incidence of diabetes mellitus (DM), one of the most common chronic metabolic disorders, has increased dramatically over the past decade and has resulted in higher rates of morbidity and mortality worldwide. The enzyme, α-Glucosidase (α-GLy), is considered a therapeutic target for the treatment of type 2 DM. Herein, we synthesized arylidene, heterocyclic, cyanoetoxy- and propargylated derivatives of quinopimaric acid (levopimaric acid diene adduct with p-benzoquinone) 1–50 and, first, evaluated their ability to inhibit α-GLy. Among the tested compounds, quinopimaric acid 1, 2,3-dihydroquinopimaric acid 8 and its amide and heterocyclic derivatives 9, 30, 33, 39, 44, with IC(50) values of 35.57–65.98 μM, emerged as being good inhibitors of α-GLy. Arylidene 1β-hydroxy and 1β,13α-epoxy methyl dihydroquinopimarate derivatives 6, 7, 26–29, thiadiazole 32, 1a,4a-dehydroquinopimaric acid 40 and its indole, nitrile and propargyl hybrids 35–38, 42, 45, 48, and 50 showed excellent inhibitory activities. The most active compounds 38, 45, 48, and 50 displayed IC(50) values of 0.15 to 0.68 μM, being 1206 to 266 more active than acarbose (IC(50) of 181.02 μM). Kinetic analysis revealed the most active diterpene indole with an alkyne substituent 45 as a competitive inhibitor with K(i) of 50.45 μM. Molecular modeling supported this finding and suggested that the indole core plays a key role in the binding. Compound 45 also has favorable pharmacokinetic and safety properties, according to the computational ADMET profiling. The results suggested that quinopimaric acid derivatives should be considered as potential candidates for novel alternative therapies in the treatment of type 2 diabetes.
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spelling pubmed-96557172022-11-15 New Molecules of Diterpene Origin with Inhibitory Properties toward α-Glucosidase Tretyakova, Elena Smirnova, Irina Kazakova, Oxana Nguyen, Ha Thi Thu Shevchenko, Alina Sokolova, Elena Babkov, Denis Spasov, Alexander Int J Mol Sci Article The incidence of diabetes mellitus (DM), one of the most common chronic metabolic disorders, has increased dramatically over the past decade and has resulted in higher rates of morbidity and mortality worldwide. The enzyme, α-Glucosidase (α-GLy), is considered a therapeutic target for the treatment of type 2 DM. Herein, we synthesized arylidene, heterocyclic, cyanoetoxy- and propargylated derivatives of quinopimaric acid (levopimaric acid diene adduct with p-benzoquinone) 1–50 and, first, evaluated their ability to inhibit α-GLy. Among the tested compounds, quinopimaric acid 1, 2,3-dihydroquinopimaric acid 8 and its amide and heterocyclic derivatives 9, 30, 33, 39, 44, with IC(50) values of 35.57–65.98 μM, emerged as being good inhibitors of α-GLy. Arylidene 1β-hydroxy and 1β,13α-epoxy methyl dihydroquinopimarate derivatives 6, 7, 26–29, thiadiazole 32, 1a,4a-dehydroquinopimaric acid 40 and its indole, nitrile and propargyl hybrids 35–38, 42, 45, 48, and 50 showed excellent inhibitory activities. The most active compounds 38, 45, 48, and 50 displayed IC(50) values of 0.15 to 0.68 μM, being 1206 to 266 more active than acarbose (IC(50) of 181.02 μM). Kinetic analysis revealed the most active diterpene indole with an alkyne substituent 45 as a competitive inhibitor with K(i) of 50.45 μM. Molecular modeling supported this finding and suggested that the indole core plays a key role in the binding. Compound 45 also has favorable pharmacokinetic and safety properties, according to the computational ADMET profiling. The results suggested that quinopimaric acid derivatives should be considered as potential candidates for novel alternative therapies in the treatment of type 2 diabetes. MDPI 2022-11-04 /pmc/articles/PMC9655717/ /pubmed/36362322 http://dx.doi.org/10.3390/ijms232113535 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
Tretyakova, Elena
Smirnova, Irina
Kazakova, Oxana
Nguyen, Ha Thi Thu
Shevchenko, Alina
Sokolova, Elena
Babkov, Denis
Spasov, Alexander
New Molecules of Diterpene Origin with Inhibitory Properties toward α-Glucosidase
title New Molecules of Diterpene Origin with Inhibitory Properties toward α-Glucosidase
title_full New Molecules of Diterpene Origin with Inhibitory Properties toward α-Glucosidase
title_fullStr New Molecules of Diterpene Origin with Inhibitory Properties toward α-Glucosidase
title_full_unstemmed New Molecules of Diterpene Origin with Inhibitory Properties toward α-Glucosidase
title_short New Molecules of Diterpene Origin with Inhibitory Properties toward α-Glucosidase
title_sort new molecules of diterpene origin with inhibitory properties toward α-glucosidase
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9655717/
https://www.ncbi.nlm.nih.gov/pubmed/36362322
http://dx.doi.org/10.3390/ijms232113535
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