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NEIL2 Protects against Oxidative DNA Damage Induced by Sidestream Smoke in Human Cells

Secondhand smoke (SHS) is a confirmed lung carcinogen that introduces thousands of toxic chemicals into the lungs. SHS contains chemicals that have been implicated in causing oxidative DNA damage in the airway epithelium. Although DNA repair is considered a key defensive mechanism against various en...

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Autores principales: Sarker, Altaf H., Chatterjee, Arpita, Williams, Monique, Lin, Sabrina, Havel, Christopher, Jacob III, Peyton, Boldogh, Istvan, Hazra, Tapas K., Talbot, Prudence, Hang, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3945017/
https://www.ncbi.nlm.nih.gov/pubmed/24595271
http://dx.doi.org/10.1371/journal.pone.0090261
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author Sarker, Altaf H.
Chatterjee, Arpita
Williams, Monique
Lin, Sabrina
Havel, Christopher
Jacob III, Peyton
Boldogh, Istvan
Hazra, Tapas K.
Talbot, Prudence
Hang, Bo
author_facet Sarker, Altaf H.
Chatterjee, Arpita
Williams, Monique
Lin, Sabrina
Havel, Christopher
Jacob III, Peyton
Boldogh, Istvan
Hazra, Tapas K.
Talbot, Prudence
Hang, Bo
author_sort Sarker, Altaf H.
collection PubMed
description Secondhand smoke (SHS) is a confirmed lung carcinogen that introduces thousands of toxic chemicals into the lungs. SHS contains chemicals that have been implicated in causing oxidative DNA damage in the airway epithelium. Although DNA repair is considered a key defensive mechanism against various environmental attacks, such as cigarette smoking, the associations of individual repair enzymes with susceptibility to lung cancer are largely unknown. This study investigated the role of NEIL2, a DNA glycosylase excising oxidative base lesions, in human lung cells treated with sidestream smoke (SSS), the main component of SHS. To do so, we generated NEIL2 knockdown cells using siRNA-technology and exposed them to SSS-laden medium. Representative SSS chemical compounds in the medium were analyzed by mass spectrometry. An increased production of reactive oxygen species (ROS) in SSS-exposed cells was detected through the fluorescent detection and the induction of HIF-1α. The long amplicon–quantitative PCR (LA-QPCR) assay detected significant dose-dependent increases of oxidative DNA damage in the HPRT gene of cultured human pulmonary fibroblasts (hPF) and BEAS-2B epithelial cells exposed to SSS for 24 h. These data suggest that SSS exposure increased oxidative stress, which could contribute to SSS-mediated toxicity. siRNA knockdown of NEIL2 in hPF and HEK 293 cells exposed to SSS for 24 h resulted in significantly more oxidative DNA damage in HPRT and POLB than in cells with control siRNA. Taken together, our data strongly suggest that decreased repair of oxidative DNA base lesions due to an impaired NEIL2 expression in non-smokers exposed to SSS would lead to accumulation of mutations in genomic DNA of lung cells over time, thus contributing to the onset of SSS-induced lung cancer.
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spelling pubmed-39450172014-03-10 NEIL2 Protects against Oxidative DNA Damage Induced by Sidestream Smoke in Human Cells Sarker, Altaf H. Chatterjee, Arpita Williams, Monique Lin, Sabrina Havel, Christopher Jacob III, Peyton Boldogh, Istvan Hazra, Tapas K. Talbot, Prudence Hang, Bo PLoS One Research Article Secondhand smoke (SHS) is a confirmed lung carcinogen that introduces thousands of toxic chemicals into the lungs. SHS contains chemicals that have been implicated in causing oxidative DNA damage in the airway epithelium. Although DNA repair is considered a key defensive mechanism against various environmental attacks, such as cigarette smoking, the associations of individual repair enzymes with susceptibility to lung cancer are largely unknown. This study investigated the role of NEIL2, a DNA glycosylase excising oxidative base lesions, in human lung cells treated with sidestream smoke (SSS), the main component of SHS. To do so, we generated NEIL2 knockdown cells using siRNA-technology and exposed them to SSS-laden medium. Representative SSS chemical compounds in the medium were analyzed by mass spectrometry. An increased production of reactive oxygen species (ROS) in SSS-exposed cells was detected through the fluorescent detection and the induction of HIF-1α. The long amplicon–quantitative PCR (LA-QPCR) assay detected significant dose-dependent increases of oxidative DNA damage in the HPRT gene of cultured human pulmonary fibroblasts (hPF) and BEAS-2B epithelial cells exposed to SSS for 24 h. These data suggest that SSS exposure increased oxidative stress, which could contribute to SSS-mediated toxicity. siRNA knockdown of NEIL2 in hPF and HEK 293 cells exposed to SSS for 24 h resulted in significantly more oxidative DNA damage in HPRT and POLB than in cells with control siRNA. Taken together, our data strongly suggest that decreased repair of oxidative DNA base lesions due to an impaired NEIL2 expression in non-smokers exposed to SSS would lead to accumulation of mutations in genomic DNA of lung cells over time, thus contributing to the onset of SSS-induced lung cancer. Public Library of Science 2014-03-03 /pmc/articles/PMC3945017/ /pubmed/24595271 http://dx.doi.org/10.1371/journal.pone.0090261 Text en © 2014 Sarker et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Sarker, Altaf H.
Chatterjee, Arpita
Williams, Monique
Lin, Sabrina
Havel, Christopher
Jacob III, Peyton
Boldogh, Istvan
Hazra, Tapas K.
Talbot, Prudence
Hang, Bo
NEIL2 Protects against Oxidative DNA Damage Induced by Sidestream Smoke in Human Cells
title NEIL2 Protects against Oxidative DNA Damage Induced by Sidestream Smoke in Human Cells
title_full NEIL2 Protects against Oxidative DNA Damage Induced by Sidestream Smoke in Human Cells
title_fullStr NEIL2 Protects against Oxidative DNA Damage Induced by Sidestream Smoke in Human Cells
title_full_unstemmed NEIL2 Protects against Oxidative DNA Damage Induced by Sidestream Smoke in Human Cells
title_short NEIL2 Protects against Oxidative DNA Damage Induced by Sidestream Smoke in Human Cells
title_sort neil2 protects against oxidative dna damage induced by sidestream smoke in human cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3945017/
https://www.ncbi.nlm.nih.gov/pubmed/24595271
http://dx.doi.org/10.1371/journal.pone.0090261
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