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Mutagenicity and Genotoxicity of (5′S)-8,5′-Cyclo-2′-deoxyadenosine in Escherichia coli and Replication of (5′S)-8,5′-Cyclopurine-2′-deoxynucleosides in Vitro by DNA Polymerase IV, Exo-Free Klenow Fragment, and Dpo4
[Image: see text] Reactive oxygen species generate many lesions in DNA, including R and S diastereomers of 8,5′-cyclo-2′-deoxyadenosine (cdA) and 8,5′-cyclo-2′-deoxyguanosine (cdG). Herein, the result of replication of a plasmid containing S-cdA in Escherichia coli is reported. S-cdA was found mutag...
Autores principales: | , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical
Society
2014
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3952113/ https://www.ncbi.nlm.nih.gov/pubmed/24392701 http://dx.doi.org/10.1021/tx4002786 |
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author | Pednekar, Varsha Weerasooriya, Savithri Jasti, Vijay P. Basu, Ashis K. |
author_facet | Pednekar, Varsha Weerasooriya, Savithri Jasti, Vijay P. Basu, Ashis K. |
author_sort | Pednekar, Varsha |
collection | PubMed |
description | [Image: see text] Reactive oxygen species generate many lesions in DNA, including R and S diastereomers of 8,5′-cyclo-2′-deoxyadenosine (cdA) and 8,5′-cyclo-2′-deoxyguanosine (cdG). Herein, the result of replication of a plasmid containing S-cdA in Escherichia coli is reported. S-cdA was found mutagenic and highly genotoxic. Viability and mutagenicity of the S-cdA construct were dependent on functional pol V, but mutational frequencies (MFs) and types varied in pol II- and pol IV-deficient strains relative to the wild-type strain. Both S-cdA → T and S-cdA → G substitutions occurred in equal frequency in wild-type E. coli, but the frequency of S-cdA → G dropped in pol IV-deficient strain, especially when being SOS induced. This suggests that pol IV plays a role in S-cdA → G mutations. MF increased significantly in pol II-deficient strain, suggesting pol II’s likely role in error-free translesion synthesis. Primer extension and steady-state kinetic studies using pol IV, exo-free Klenow fragment (KF (exo(–))), and Dpo4 were performed to further assess the replication efficiency and fidelity of S-cdA and S-cdG. Primer extension by pol IV mostly stopped before the lesion, although a small fraction was extended opposite the lesion. Kinetic studies showed that pol IV incorporated dCMP almost as efficiently as dTMP opposite S-cdA, whereas it incorporated the correct nucleotide dCMP opposite S-cdG 10-fold more efficiently than any other dNMP. Further extension of each lesion containing pair, however, was very inefficient. These results are consistent with the role of pol IV in S-cdA → G mutations in E. coli. KF (exo(–)) was also strongly blocked by both lesions, but it could slowly incorporate the correct nucleotide opposite them. In contrast, Dpo4 could extend a small fraction of the primer to a full-length product on both S-cdG and S-cdA templates. Dpo4 incorporated dTMP preferentially opposite S-cdA over the other dNMPs, but the discrimination was only 2- to 8-fold more proficient. Further extension of the S-cdA:T and S-cdA:C pair was not much different. For S-cdG, conversely, the wrong nucleotide, dTMP, was incorporated more efficiently than dCMP, although one-base extension of the S-cdG:T pair was less efficient than the S-cdG:C pair. S-cdG, therefore, has the propensity to cause G → A transition, as was reported to occur in E. coli. The results of this study are consistent with the strong replication blocking nature of S-cdA and S-cdG, and their ability to initiate error-prone synthesis by Y-family DNA polymerases. |
format | Online Article Text |
id | pubmed-3952113 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | American Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-39521132014-03-13 Mutagenicity and Genotoxicity of (5′S)-8,5′-Cyclo-2′-deoxyadenosine in Escherichia coli and Replication of (5′S)-8,5′-Cyclopurine-2′-deoxynucleosides in Vitro by DNA Polymerase IV, Exo-Free Klenow Fragment, and Dpo4 Pednekar, Varsha Weerasooriya, Savithri Jasti, Vijay P. Basu, Ashis K. Chem Res Toxicol [Image: see text] Reactive oxygen species generate many lesions in DNA, including R and S diastereomers of 8,5′-cyclo-2′-deoxyadenosine (cdA) and 8,5′-cyclo-2′-deoxyguanosine (cdG). Herein, the result of replication of a plasmid containing S-cdA in Escherichia coli is reported. S-cdA was found mutagenic and highly genotoxic. Viability and mutagenicity of the S-cdA construct were dependent on functional pol V, but mutational frequencies (MFs) and types varied in pol II- and pol IV-deficient strains relative to the wild-type strain. Both S-cdA → T and S-cdA → G substitutions occurred in equal frequency in wild-type E. coli, but the frequency of S-cdA → G dropped in pol IV-deficient strain, especially when being SOS induced. This suggests that pol IV plays a role in S-cdA → G mutations. MF increased significantly in pol II-deficient strain, suggesting pol II’s likely role in error-free translesion synthesis. Primer extension and steady-state kinetic studies using pol IV, exo-free Klenow fragment (KF (exo(–))), and Dpo4 were performed to further assess the replication efficiency and fidelity of S-cdA and S-cdG. Primer extension by pol IV mostly stopped before the lesion, although a small fraction was extended opposite the lesion. Kinetic studies showed that pol IV incorporated dCMP almost as efficiently as dTMP opposite S-cdA, whereas it incorporated the correct nucleotide dCMP opposite S-cdG 10-fold more efficiently than any other dNMP. Further extension of each lesion containing pair, however, was very inefficient. These results are consistent with the role of pol IV in S-cdA → G mutations in E. coli. KF (exo(–)) was also strongly blocked by both lesions, but it could slowly incorporate the correct nucleotide opposite them. In contrast, Dpo4 could extend a small fraction of the primer to a full-length product on both S-cdG and S-cdA templates. Dpo4 incorporated dTMP preferentially opposite S-cdA over the other dNMPs, but the discrimination was only 2- to 8-fold more proficient. Further extension of the S-cdA:T and S-cdA:C pair was not much different. For S-cdG, conversely, the wrong nucleotide, dTMP, was incorporated more efficiently than dCMP, although one-base extension of the S-cdG:T pair was less efficient than the S-cdG:C pair. S-cdG, therefore, has the propensity to cause G → A transition, as was reported to occur in E. coli. The results of this study are consistent with the strong replication blocking nature of S-cdA and S-cdG, and their ability to initiate error-prone synthesis by Y-family DNA polymerases. American Chemical Society 2014-01-06 2014-02-17 /pmc/articles/PMC3952113/ /pubmed/24392701 http://dx.doi.org/10.1021/tx4002786 Text en Copyright © 2014 American Chemical Society |
spellingShingle | Pednekar, Varsha Weerasooriya, Savithri Jasti, Vijay P. Basu, Ashis K. Mutagenicity and Genotoxicity of (5′S)-8,5′-Cyclo-2′-deoxyadenosine in Escherichia coli and Replication of (5′S)-8,5′-Cyclopurine-2′-deoxynucleosides in Vitro by DNA Polymerase IV, Exo-Free Klenow Fragment, and Dpo4 |
title | Mutagenicity and Genotoxicity
of (5′S)-8,5′-Cyclo-2′-deoxyadenosine
in Escherichia coli and Replication of (5′S)-8,5′-Cyclopurine-2′-deoxynucleosides
in Vitro
by DNA Polymerase IV, Exo-Free Klenow Fragment, and Dpo4 |
title_full | Mutagenicity and Genotoxicity
of (5′S)-8,5′-Cyclo-2′-deoxyadenosine
in Escherichia coli and Replication of (5′S)-8,5′-Cyclopurine-2′-deoxynucleosides
in Vitro
by DNA Polymerase IV, Exo-Free Klenow Fragment, and Dpo4 |
title_fullStr | Mutagenicity and Genotoxicity
of (5′S)-8,5′-Cyclo-2′-deoxyadenosine
in Escherichia coli and Replication of (5′S)-8,5′-Cyclopurine-2′-deoxynucleosides
in Vitro
by DNA Polymerase IV, Exo-Free Klenow Fragment, and Dpo4 |
title_full_unstemmed | Mutagenicity and Genotoxicity
of (5′S)-8,5′-Cyclo-2′-deoxyadenosine
in Escherichia coli and Replication of (5′S)-8,5′-Cyclopurine-2′-deoxynucleosides
in Vitro
by DNA Polymerase IV, Exo-Free Klenow Fragment, and Dpo4 |
title_short | Mutagenicity and Genotoxicity
of (5′S)-8,5′-Cyclo-2′-deoxyadenosine
in Escherichia coli and Replication of (5′S)-8,5′-Cyclopurine-2′-deoxynucleosides
in Vitro
by DNA Polymerase IV, Exo-Free Klenow Fragment, and Dpo4 |
title_sort | mutagenicity and genotoxicity
of (5′s)-8,5′-cyclo-2′-deoxyadenosine
in escherichia coli and replication of (5′s)-8,5′-cyclopurine-2′-deoxynucleosides
in vitro
by dna polymerase iv, exo-free klenow fragment, and dpo4 |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3952113/ https://www.ncbi.nlm.nih.gov/pubmed/24392701 http://dx.doi.org/10.1021/tx4002786 |
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