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A New Class of Uracil–DNA Glycosylase Inhibitors Active against Human and Vaccinia Virus Enzyme

Uracil–DNA glycosylases are enzymes that excise uracil bases appearing in DNA as a result of cytosine deamination or accidental dUMP incorporation from the dUTP pool. The activity of Family 1 uracil–DNA glycosylase (UNG) activity limits the efficiency of antimetabolite drugs and is essential for vir...

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Autores principales: Grin, Inga R., Mechetin, Grigory V., Kasymov, Rustem D., Diatlova, Evgeniia A., Yudkina, Anna V., Shchelkunov, Sergei N., Gileva, Irina P., Denisova, Alexandra A., Stepanov, Grigoriy A., Chilov, Ghermes G., Zharkov, Dmitry O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8587785/
https://www.ncbi.nlm.nih.gov/pubmed/34771075
http://dx.doi.org/10.3390/molecules26216668
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author Grin, Inga R.
Mechetin, Grigory V.
Kasymov, Rustem D.
Diatlova, Evgeniia A.
Yudkina, Anna V.
Shchelkunov, Sergei N.
Gileva, Irina P.
Denisova, Alexandra A.
Stepanov, Grigoriy A.
Chilov, Ghermes G.
Zharkov, Dmitry O.
author_facet Grin, Inga R.
Mechetin, Grigory V.
Kasymov, Rustem D.
Diatlova, Evgeniia A.
Yudkina, Anna V.
Shchelkunov, Sergei N.
Gileva, Irina P.
Denisova, Alexandra A.
Stepanov, Grigoriy A.
Chilov, Ghermes G.
Zharkov, Dmitry O.
author_sort Grin, Inga R.
collection PubMed
description Uracil–DNA glycosylases are enzymes that excise uracil bases appearing in DNA as a result of cytosine deamination or accidental dUMP incorporation from the dUTP pool. The activity of Family 1 uracil–DNA glycosylase (UNG) activity limits the efficiency of antimetabolite drugs and is essential for virulence in some bacterial and viral infections. Thus, UNG is regarded as a promising target for antitumor, antiviral, antibacterial, and antiprotozoal drugs. Most UNG inhibitors presently developed are based on the uracil base linked to various substituents, yet new pharmacophores are wanted to target a wide range of UNGs. We have conducted virtual screening of a 1,027,767-ligand library and biochemically screened the best hits for the inhibitory activity against human and vaccinia virus UNG enzymes. Although even the best inhibitors had IC(50) ≥ 100 μM, they were highly enriched in a common fragment, tetrahydro-2,4,6-trioxopyrimidinylidene (PyO3). In silico, PyO3 preferably docked into the enzyme’s active site, and in kinetic experiments, the inhibition was better consistent with the competitive mechanism. The toxicity of two best inhibitors for human cells was independent of the presence of methotrexate, which is consistent with the hypothesis that dUMP in genomic DNA is less toxic for the cell than strand breaks arising from the massive removal of uracil. We conclude that PyO3 may be a novel pharmacophore with the potential for development into UNG-targeting agents.
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spelling pubmed-85877852021-11-13 A New Class of Uracil–DNA Glycosylase Inhibitors Active against Human and Vaccinia Virus Enzyme Grin, Inga R. Mechetin, Grigory V. Kasymov, Rustem D. Diatlova, Evgeniia A. Yudkina, Anna V. Shchelkunov, Sergei N. Gileva, Irina P. Denisova, Alexandra A. Stepanov, Grigoriy A. Chilov, Ghermes G. Zharkov, Dmitry O. Molecules Article Uracil–DNA glycosylases are enzymes that excise uracil bases appearing in DNA as a result of cytosine deamination or accidental dUMP incorporation from the dUTP pool. The activity of Family 1 uracil–DNA glycosylase (UNG) activity limits the efficiency of antimetabolite drugs and is essential for virulence in some bacterial and viral infections. Thus, UNG is regarded as a promising target for antitumor, antiviral, antibacterial, and antiprotozoal drugs. Most UNG inhibitors presently developed are based on the uracil base linked to various substituents, yet new pharmacophores are wanted to target a wide range of UNGs. We have conducted virtual screening of a 1,027,767-ligand library and biochemically screened the best hits for the inhibitory activity against human and vaccinia virus UNG enzymes. Although even the best inhibitors had IC(50) ≥ 100 μM, they were highly enriched in a common fragment, tetrahydro-2,4,6-trioxopyrimidinylidene (PyO3). In silico, PyO3 preferably docked into the enzyme’s active site, and in kinetic experiments, the inhibition was better consistent with the competitive mechanism. The toxicity of two best inhibitors for human cells was independent of the presence of methotrexate, which is consistent with the hypothesis that dUMP in genomic DNA is less toxic for the cell than strand breaks arising from the massive removal of uracil. We conclude that PyO3 may be a novel pharmacophore with the potential for development into UNG-targeting agents. MDPI 2021-11-03 /pmc/articles/PMC8587785/ /pubmed/34771075 http://dx.doi.org/10.3390/molecules26216668 Text en © 2021 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
Grin, Inga R.
Mechetin, Grigory V.
Kasymov, Rustem D.
Diatlova, Evgeniia A.
Yudkina, Anna V.
Shchelkunov, Sergei N.
Gileva, Irina P.
Denisova, Alexandra A.
Stepanov, Grigoriy A.
Chilov, Ghermes G.
Zharkov, Dmitry O.
A New Class of Uracil–DNA Glycosylase Inhibitors Active against Human and Vaccinia Virus Enzyme
title A New Class of Uracil–DNA Glycosylase Inhibitors Active against Human and Vaccinia Virus Enzyme
title_full A New Class of Uracil–DNA Glycosylase Inhibitors Active against Human and Vaccinia Virus Enzyme
title_fullStr A New Class of Uracil–DNA Glycosylase Inhibitors Active against Human and Vaccinia Virus Enzyme
title_full_unstemmed A New Class of Uracil–DNA Glycosylase Inhibitors Active against Human and Vaccinia Virus Enzyme
title_short A New Class of Uracil–DNA Glycosylase Inhibitors Active against Human and Vaccinia Virus Enzyme
title_sort new class of uracil–dna glycosylase inhibitors active against human and vaccinia virus enzyme
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8587785/
https://www.ncbi.nlm.nih.gov/pubmed/34771075
http://dx.doi.org/10.3390/molecules26216668
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