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Methods to Evaluate Cytotoxicity and Immunosuppression of Combustible Tobacco Product Preparations
Published on: January 10, 2015
Exposure of Human Lung Cells to Tobacco Smoke Condensate Inhibits the Nucleotide Excision Repair Pathway
Nathaniel Holcomb1, Mamta Goswami1, Sung Gu Han2
1Department of Toxicology and Cancer Biology, The Markey Cancer Center, University of Kentucky, Lexington, Kentucky, United States of America.
Abstract:
Exposure to tobacco smoke is the number one risk factor for lung cancer. Although the DNA damaging properties of tobacco smoke have been well documented, relatively few studies have examined its effect on DNA repair pathways. This is especially true for the nucleotide excision repair (NER) pathway which recognizes and removes many structurally diverse DNA lesions, including those introduced by chemical carcinogens present in tobacco smoke. The aim of the present study was to investigate the effect of tobacco smoke on NER in human lung cells. We studied the effect of cigarette smoke condensate (CSC), a surrogate for tobacco smoke, on the NER pathway in two different human lung cell lines; IMR-90 lung fibroblasts and BEAS-2B bronchial epithelial cells. To measure NER, we employed a slot-blot assay to quantify the introduction and removal of UV light-induced 6-4 photoproducts and cyclobutane pyrimidine dimers. We find a dose-dependent inhibition of 6-4 photoproduct repair in both cell lines treated with CSC. Additionally, the impact of CSC on the abundance of various NER proteins and their respective RNAs was investigated. The abundance of XPC protein, which is required for functional NER, is significantly reduced by treatment with CSC while the abundance of XPA protein, also required for NER, is unaffected. Both XPC and XPA RNA levels are modestly reduced by CSC treatment. Finally, treatment of cells with MG-132 abrogates the reduction in the abundance of XPC protein produced by treatment with CSC, suggesting that CSC enhances proteasome-dependent turnover of the protein that is mediated by ubiquitination. Together, these findings indicate that tobacco smoke can inhibit the same DNA repair pathway that is also essential for the removal of some of the carcinogenic DNA damage introduced by smoke itself, increasing the DNA damage burden of cells exposed to tobacco smoke.
Insights
Tobacco smoke inhibits DNA repair in lung cells by reducing key proteins like XPC. This hinders the removal of carcinogenic DNA damage, increasing cancer risk.
Area of Science:
- Molecular Biology
- Cancer Research
- Toxicology
Background:
- Tobacco smoke is a primary lung cancer risk factor, known to damage DNA.
- DNA repair pathways, particularly nucleotide excision repair (NER), counteract DNA damage.
- The impact of tobacco smoke on NER in lung cells remains underexplored.
Purpose of the Study:
- To investigate how tobacco smoke affects the NER pathway in human lung cells.
- To determine if cigarette smoke condensate (CSC) impacts NER protein and RNA levels.
- To elucidate the mechanism behind CSC's effect on NER.
Main Methods:
- Utilized two human lung cell lines (IMR-90 fibroblasts and BEAS-2B bronchial epithelial cells).
- Assessed NER activity by quantifying UV-induced photoproducts (6-4PPs and CPDs) using slot-blot assays.
- Analyzed the abundance of NER proteins (XPC, XPA) and their corresponding RNAs.
- Investigated the role of the proteasome pathway using MG-132 treatment.
Main Results:
- CSC caused a dose-dependent inhibition of 6-4 photoproduct repair in both cell lines.
- CSC significantly reduced the abundance of XPC protein, crucial for NER function.
- XPA protein levels were unaffected, while both XPC and XPA RNA levels showed modest reductions.
- MG-132 treatment prevented CSC-induced XPC reduction, indicating proteasomal degradation.
Conclusions:
- Tobacco smoke, via CSC, inhibits the nucleotide excision repair pathway in human lung cells.
- CSC reduces XPC protein levels through enhanced proteasome-dependent degradation.
- This inhibition compromises the cell's ability to repair smoke-induced DNA damage, potentially increasing lung cancer risk.
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