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Thiopurine Derivative-Induced Fpg/Nei DNA Glycosylase Inhibition: Structural, Dynamic and Functional Insights

DNA glycosylases are emerging as relevant pharmacological targets in inflammation, cancer and neurodegenerative diseases. Consequently, the search for inhibitors of these enzymes has become a very active research field. As a continuation of previous work that showed that 2-thioxanthine (2TX) is an i...

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Autores principales: Rieux, Charlotte, Goffinont, Stéphane, Coste, Franck, Tber, Zahira, Cros, Julien, Roy, Vincent, Guérin, Martine, Gaudon, Virginie, Bourg, Stéphane, Biela, Artur, Aucagne, Vincent, Agrofoglio, Luigi, Garnier, Norbert, Castaing, Bertrand
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7139703/
https://www.ncbi.nlm.nih.gov/pubmed/32192183
http://dx.doi.org/10.3390/ijms21062058
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author Rieux, Charlotte
Goffinont, Stéphane
Coste, Franck
Tber, Zahira
Cros, Julien
Roy, Vincent
Guérin, Martine
Gaudon, Virginie
Bourg, Stéphane
Biela, Artur
Aucagne, Vincent
Agrofoglio, Luigi
Garnier, Norbert
Castaing, Bertrand
author_facet Rieux, Charlotte
Goffinont, Stéphane
Coste, Franck
Tber, Zahira
Cros, Julien
Roy, Vincent
Guérin, Martine
Gaudon, Virginie
Bourg, Stéphane
Biela, Artur
Aucagne, Vincent
Agrofoglio, Luigi
Garnier, Norbert
Castaing, Bertrand
author_sort Rieux, Charlotte
collection PubMed
description DNA glycosylases are emerging as relevant pharmacological targets in inflammation, cancer and neurodegenerative diseases. Consequently, the search for inhibitors of these enzymes has become a very active research field. As a continuation of previous work that showed that 2-thioxanthine (2TX) is an irreversible inhibitor of zinc finger (ZnF)-containing Fpg/Nei DNA glycosylases, we designed and synthesized a mini-library of 2TX-derivatives (TXn) and evaluated their ability to inhibit Fpg/Nei enzymes. Among forty compounds, four TXn were better inhibitors than 2TX for Fpg. Unexpectedly, but very interestingly, two dithiolated derivatives more selectively and efficiently inhibit the zincless finger (ZnLF)-containing enzymes (human and mimivirus Neil1 DNA glycosylases hNeil1 and MvNei1, respectively). By combining chemistry, biochemistry, mass spectrometry, blind and flexible docking and X-ray structure analysis, we localized new TXn binding sites on Fpg/Nei enzymes. This endeavor allowed us to decipher at the atomic level the mode of action for the best TXn inhibitors on the ZnF-containing enzymes. We discovered an original inhibition mechanism for the ZnLF-containing Fpg/Nei DNA glycosylases by disulfide cyclic trimeric forms of dithiopurines. This work paves the way for the design and synthesis of a new structural class of inhibitors for selective pharmacological targeting of hNeil1 in cancer and neurodegenerative diseases.
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spelling pubmed-71397032020-04-10 Thiopurine Derivative-Induced Fpg/Nei DNA Glycosylase Inhibition: Structural, Dynamic and Functional Insights Rieux, Charlotte Goffinont, Stéphane Coste, Franck Tber, Zahira Cros, Julien Roy, Vincent Guérin, Martine Gaudon, Virginie Bourg, Stéphane Biela, Artur Aucagne, Vincent Agrofoglio, Luigi Garnier, Norbert Castaing, Bertrand Int J Mol Sci Article DNA glycosylases are emerging as relevant pharmacological targets in inflammation, cancer and neurodegenerative diseases. Consequently, the search for inhibitors of these enzymes has become a very active research field. As a continuation of previous work that showed that 2-thioxanthine (2TX) is an irreversible inhibitor of zinc finger (ZnF)-containing Fpg/Nei DNA glycosylases, we designed and synthesized a mini-library of 2TX-derivatives (TXn) and evaluated their ability to inhibit Fpg/Nei enzymes. Among forty compounds, four TXn were better inhibitors than 2TX for Fpg. Unexpectedly, but very interestingly, two dithiolated derivatives more selectively and efficiently inhibit the zincless finger (ZnLF)-containing enzymes (human and mimivirus Neil1 DNA glycosylases hNeil1 and MvNei1, respectively). By combining chemistry, biochemistry, mass spectrometry, blind and flexible docking and X-ray structure analysis, we localized new TXn binding sites on Fpg/Nei enzymes. This endeavor allowed us to decipher at the atomic level the mode of action for the best TXn inhibitors on the ZnF-containing enzymes. We discovered an original inhibition mechanism for the ZnLF-containing Fpg/Nei DNA glycosylases by disulfide cyclic trimeric forms of dithiopurines. This work paves the way for the design and synthesis of a new structural class of inhibitors for selective pharmacological targeting of hNeil1 in cancer and neurodegenerative diseases. MDPI 2020-03-17 /pmc/articles/PMC7139703/ /pubmed/32192183 http://dx.doi.org/10.3390/ijms21062058 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
Rieux, Charlotte
Goffinont, Stéphane
Coste, Franck
Tber, Zahira
Cros, Julien
Roy, Vincent
Guérin, Martine
Gaudon, Virginie
Bourg, Stéphane
Biela, Artur
Aucagne, Vincent
Agrofoglio, Luigi
Garnier, Norbert
Castaing, Bertrand
Thiopurine Derivative-Induced Fpg/Nei DNA Glycosylase Inhibition: Structural, Dynamic and Functional Insights
title Thiopurine Derivative-Induced Fpg/Nei DNA Glycosylase Inhibition: Structural, Dynamic and Functional Insights
title_full Thiopurine Derivative-Induced Fpg/Nei DNA Glycosylase Inhibition: Structural, Dynamic and Functional Insights
title_fullStr Thiopurine Derivative-Induced Fpg/Nei DNA Glycosylase Inhibition: Structural, Dynamic and Functional Insights
title_full_unstemmed Thiopurine Derivative-Induced Fpg/Nei DNA Glycosylase Inhibition: Structural, Dynamic and Functional Insights
title_short Thiopurine Derivative-Induced Fpg/Nei DNA Glycosylase Inhibition: Structural, Dynamic and Functional Insights
title_sort thiopurine derivative-induced fpg/nei dna glycosylase inhibition: structural, dynamic and functional insights
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7139703/
https://www.ncbi.nlm.nih.gov/pubmed/32192183
http://dx.doi.org/10.3390/ijms21062058
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