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Comparative functional genomics analysis of NNK tobacco-carcinogen induced lung adenocarcinoma development in
Junya Fujimoto1, Humam Kadara, Taoyan Men
1Department of Thoracic/Head and Neck Medical Oncology, University of Texas M.D. Anderson Cancer Center, Houston, Texas, United States of America.
Background:
Improved understanding of lung cancer development and progression, including insights from studies of animal models, are needed to combat this fatal disease. Previously, we found that mice with a knockout (KO) of G-protein coupled receptor 5A (Gprc5a) develop lung tumors after a long latent period (12 to 24 months).
Methodology/Principal Findings:
To determine whether a tobacco carcinogen will enhance tumorigenesis in this model, we administered 4-(methylnitrosamino)-1-(3-pyridyl)-1-butanone (NNK) i.p. to 2-months old Gprc5a-KO mice and sacrificed groups (n=5) of mice at 6, 9, 12, and 18 months later. Compared to control Gprc5a-KO mice, NNK-treated mice developed lung tumors at least 6 months earlier, exhibited 2- to 4-fold increased tumor incidence and multiplicity, and showed a dramatic increase in lesion size. A gene expression signature, NNK-ADC, of differentially expressed genes derived by transcriptome analysis of epithelial cell lines from normal lungs of Gprc5a-KO mice and from NNK-induced adenocarcinoma was highly similar to differential expression patterns observed between normal and tumorigenic human lung cells. The NNK-ADC expression signature also separated both mouse and human adenocarcinomas from adjacent normal lung tissues based on publicly available microarray datasets. A key feature of the signature, up-regulation of Ube2c, Mcm2, and Fen1, was validated in mouse normal lung and adenocarcinoma tissues and cells by immunohistochemistry and western blotting, respectively.
Conclusions/Significance:
Our findings demonstrate that lung tumorigenesis in the Gprc5a-KO mouse model is augmented by NNK and that gene expression changes induced by tobacco carcinogen(s) may be conserved between mouse and human lung epithelial cells. Further experimentation to prove the reliability of the Gprc5a knockout mouse model for the study of tobacco-induced lung carcinogenesis is warranted.
Insights
Tobacco carcinogen NNK accelerates lung tumor development in Gprc5a knockout mice. Gene expression changes in mouse lung cancer mirror human patterns, suggesting conserved responses to carcinogens.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Understanding lung cancer progression is crucial for combating this disease.
- G-protein coupled receptor 5A (Gprc5a) knockout mice develop lung tumors after a long latency period.
- Investigating the role of carcinogens in accelerating lung tumorigenesis in this model is essential.
Purpose of the Study:
- To determine if the tobacco carcinogen 4-(methylnitrosamino)-1-(3-pyridyl)-1-butanone (NNK) enhances lung tumorigenesis in Gprc5a knockout mice.
- To analyze gene expression changes in response to NNK exposure in the Gprc5a knockout mouse model.
- To compare gene expression signatures between mouse and human lung cancer.
Main Methods:
- Administration of NNK to Gprc5a knockout mice at 2 months of age.
- Sacrificing groups of mice at various time points (6, 9, 12, 18 months) for analysis.
- Transcriptome analysis of epithelial cells to identify gene expression signatures.
- Validation of key gene expression changes using immunohistochemistry and western blotting.
Main Results:
- NNK-treated mice developed lung tumors significantly earlier than control mice.
- NNK exposure resulted in a 2- to 4-fold increase in tumor incidence, multiplicity, and lesion size.
- A gene expression signature (NNK-ADC) identified in NNK-treated mice closely resembled patterns in human lung cancer.
- Up-regulation of Ube2c, Mcm2, and Fen1 was confirmed in mouse lung tissues and cells.
Conclusions:
- NNK significantly augments lung tumorigenesis in the Gprc5a knockout mouse model.
- Gene expression alterations induced by tobacco carcinogens in mice are conserved in human lung epithelial cells.
- The Gprc5a knockout mouse model shows promise for studying tobacco-induced lung carcinogenesis.
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