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Inhibition of DNA Glycosylases via Small Molecule Purine Analogs

Following the formation of oxidatively-induced DNA damage, several DNA glycosylases are required to initiate repair of the base lesions that are formed. Recently, NEIL1 and other DNA glycosylases, including OGG1 and NTH1 were identified as potential targets in combination chemotherapeutic strategies...

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Autores principales: Jacobs, Aaron C., Calkins, Marcus J., Jadhav, Ajit, Dorjsuren, Dorjbal, Maloney, David, Simeonov, Anton, Jaruga, Pawel, Dizdaroglu, Miral, McCullough, Amanda K., Lloyd, R. Stephen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3857224/
https://www.ncbi.nlm.nih.gov/pubmed/24349107
http://dx.doi.org/10.1371/journal.pone.0081667
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author Jacobs, Aaron C.
Calkins, Marcus J.
Jadhav, Ajit
Dorjsuren, Dorjbal
Maloney, David
Simeonov, Anton
Jaruga, Pawel
Dizdaroglu, Miral
McCullough, Amanda K.
Lloyd, R. Stephen
author_facet Jacobs, Aaron C.
Calkins, Marcus J.
Jadhav, Ajit
Dorjsuren, Dorjbal
Maloney, David
Simeonov, Anton
Jaruga, Pawel
Dizdaroglu, Miral
McCullough, Amanda K.
Lloyd, R. Stephen
author_sort Jacobs, Aaron C.
collection PubMed
description Following the formation of oxidatively-induced DNA damage, several DNA glycosylases are required to initiate repair of the base lesions that are formed. Recently, NEIL1 and other DNA glycosylases, including OGG1 and NTH1 were identified as potential targets in combination chemotherapeutic strategies. The potential therapeutic benefit for the inhibition of DNA glycosylases was validated by demonstrating synthetic lethality with drugs that are commonly used to limit DNA replication through dNTP pool depletion via inhibition of thymidylate synthetase and dihydrofolate reductase. Additionally, NEIL1-associated synthetic lethality has been achieved in combination with Fanconi anemia, group G. As a prelude to the development of strategies to exploit the potential benefits of DNA glycosylase inhibition, it was necessary to develop a reliable high-throughput screening protocol for this class of enzymes. Using NEIL1 as the proof-of-principle glycosylase, a fluorescence-based assay was developed that utilizes incision of site-specifically modified oligodeoxynucleotides to detect enzymatic activity. This assay was miniaturized to a 1536-well format and used to screen small molecule libraries for inhibitors of the combined glycosylase/AP lyase activities. Among the top hits of these screens were several purine analogs, whose postulated presence in the active site of NEIL1 was consistent with the paradigm of NEIL1 recognition and excision of damaged purines. Although a subset of these small molecules could inhibit other DNA glycosylases that excise oxidatively-induced DNA adducts, they could not inhibit a pyrimidine dimer-specific glycosylase.
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spelling pubmed-38572242013-12-13 Inhibition of DNA Glycosylases via Small Molecule Purine Analogs Jacobs, Aaron C. Calkins, Marcus J. Jadhav, Ajit Dorjsuren, Dorjbal Maloney, David Simeonov, Anton Jaruga, Pawel Dizdaroglu, Miral McCullough, Amanda K. Lloyd, R. Stephen PLoS One Research Article Following the formation of oxidatively-induced DNA damage, several DNA glycosylases are required to initiate repair of the base lesions that are formed. Recently, NEIL1 and other DNA glycosylases, including OGG1 and NTH1 were identified as potential targets in combination chemotherapeutic strategies. The potential therapeutic benefit for the inhibition of DNA glycosylases was validated by demonstrating synthetic lethality with drugs that are commonly used to limit DNA replication through dNTP pool depletion via inhibition of thymidylate synthetase and dihydrofolate reductase. Additionally, NEIL1-associated synthetic lethality has been achieved in combination with Fanconi anemia, group G. As a prelude to the development of strategies to exploit the potential benefits of DNA glycosylase inhibition, it was necessary to develop a reliable high-throughput screening protocol for this class of enzymes. Using NEIL1 as the proof-of-principle glycosylase, a fluorescence-based assay was developed that utilizes incision of site-specifically modified oligodeoxynucleotides to detect enzymatic activity. This assay was miniaturized to a 1536-well format and used to screen small molecule libraries for inhibitors of the combined glycosylase/AP lyase activities. Among the top hits of these screens were several purine analogs, whose postulated presence in the active site of NEIL1 was consistent with the paradigm of NEIL1 recognition and excision of damaged purines. Although a subset of these small molecules could inhibit other DNA glycosylases that excise oxidatively-induced DNA adducts, they could not inhibit a pyrimidine dimer-specific glycosylase. Public Library of Science 2013-12-09 /pmc/articles/PMC3857224/ /pubmed/24349107 http://dx.doi.org/10.1371/journal.pone.0081667 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open-access article distributed under the terms of the Creative Commons Public Domain declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose.
spellingShingle Research Article
Jacobs, Aaron C.
Calkins, Marcus J.
Jadhav, Ajit
Dorjsuren, Dorjbal
Maloney, David
Simeonov, Anton
Jaruga, Pawel
Dizdaroglu, Miral
McCullough, Amanda K.
Lloyd, R. Stephen
Inhibition of DNA Glycosylases via Small Molecule Purine Analogs
title Inhibition of DNA Glycosylases via Small Molecule Purine Analogs
title_full Inhibition of DNA Glycosylases via Small Molecule Purine Analogs
title_fullStr Inhibition of DNA Glycosylases via Small Molecule Purine Analogs
title_full_unstemmed Inhibition of DNA Glycosylases via Small Molecule Purine Analogs
title_short Inhibition of DNA Glycosylases via Small Molecule Purine Analogs
title_sort inhibition of dna glycosylases via small molecule purine analogs
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3857224/
https://www.ncbi.nlm.nih.gov/pubmed/24349107
http://dx.doi.org/10.1371/journal.pone.0081667
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