<p>Analysis of miR-196b, miR-34c-5p, miR-497/195 hypermethylation in lung cancer cell lines, PBMC, and NBEC.</p>
Objectives E-cigarettes are the most commonly used nicotine containing products among youth. In vitro studies support the potential for e-cigarettes to cause cellular stress in vivo; however, there have been no studies to address whether exposure to e-liquid aerosols can induce cell transformation, a process strongly associated with pre-malignancy. We examined whether weekly exposure of human bronchial epithelial cell (HBEC) lines to e-cigarette aerosols would induce transformation and concomitant changes in gene expression and promoter hypermethylation. Materials and methods An aerosol delivery system exposed three HBEC lines to unflavored e-liquid with 1.2% nicotine, 3 flavored products with nicotine, or the Kentucky reference cigarette once a week for 12 weeks. Colony formation in soft agar, RNA-sequencing, and the EPIC Beadchip were used to evaluate transformation, genome-wide expression and methylation changes. Results Jamestown e-liquid aerosol induced transformation of HBEC2 and HBEC26, while unflavored and Blue Pucker transformed HBEC26. Cigarette smoke aerosol transformed HBEC4 and HBEC26 at efficiencies up to 3-fold greater than e-liquids. Transformed clones exhibited extensive reprogramming of the transcriptome with common and distinct gene expression changes observed between the cigarette and e-liquids. Transformation by e-liquids induced alterations in canonical pathways implicated in lung cancer that included axonal guidance and NRF2. Gene methylation, while prominent in cigarette-induced transformed clones, also affected hundreds of genes in HBEC2 transformed by Jamestown. Many genes with altered expression or epigenetic-mediated silencing were also affected in lung tumors from smokers. Conclusions These studies show that exposure to e-liquid aerosols can induce a pre-malignant phenotype in lung epithelial cells. While the Food and Drug Administration banned the sale of flavored cartridge-based electric cigarettes, consumers switched to using flavored products through other devices. Our findings clearly support expanding studies to evaluate transformation potency for the major categories of e-liquid flavors to better inform risk from these complex mixtures.
Supplemental Figure 1. Analysis of miR-196b, miR-34c-5p, miR-497/195 hypermethylation in lung cancer cell lines, PBMC, and NBEC. Supplemental Figure 2. Analysis of miR-196b and miR-34c-5p hypermethylation in NSCLC. Supplemental Table 1. Established In Vitro Model of Pre-Malignant Lung Cancer. Supplemental Table 2. PCR Primer Sequences for COBRA, MSP, and ChIP Assays.
Supplementary Figure 1 from EMT and Stem Cell–Like Properties Associated with miR-205 and miR-200 Epigenetic Silencing Are Early Manifestations during Carcinogen-Induced Transformation of Human Lung Epithelial Cells
Supplementary Tables 1-4 from EMT and Stem Cell–Like Properties Associated with miR-205 and miR-200 Epigenetic Silencing Are Early Manifestations during Carcinogen-Induced Transformation of Human Lung Epithelial Cells
Supplementary Table 1. Association between 139 dietary nutrients and ethnicity (n = 1829)*. Supplementary Table 2. The top ten nutrient measurements in correlation with principal component 2 in either positive or negative direction. Supplementary Table 3. Association between dietary folate intake and risk for methylation (n = 1426)*. Supplementary Table 4. Individual nutrients associated with risk for methylation (n = 1426)*. Supplementary Figure S1. Principal component analysis was conducted based on 101 nutrients with no missing values in 1829 cohort members and identified four principal components that explained 59% of the total variance of nutrients with each one explaining >5% of the variance. This figure included the top nine principal components with each one explaining >2% of the variance. PC = principal component.
Epidemiology studies link cigarillos and shisha tobacco (delivered through a hookah waterpipe) to increased risk for cardiopulmonary diseases. Here we performed a comparative chemical constituent analysis between 3 cigarettes, 3 cigarillos, and 8 shisha tobacco products. The potency for genotoxicity and oxidative stress of each product's generated total particulate matter (TPM) was also assessed using immortalized oral, lung, and cardiac cell lines to represent target tissues. Levels of the carcinogenic carbonyl formaldehyde were 32- to 95-fold greater, while acrolein was similar across the shisha aerosols generated by charcoal heating compared to cigarettes and cigarillos. Electric-mediated aerosol generation dramatically increased acrolein to levels exceeding those in cigarettes and cigarillos by up to 43-fold. Equivalent cytotoxic-mediated cell death and dose response for genotoxicity through induction of mutagenicity and DNA strand breaks was seen between cigarettes and cigarillos, while minimal to no effect was observed with shisha tobacco products. In contrast, increased potency of TPM from cigarillos compared to cigarettes for inducing oxidative stress via reactive oxygen radicals and lipid peroxidation across cell lines was evident, while positivity was seen for shisha tobacco products albeit at much lower levels. Together, these studies provide new insight into the potential harmful effects of cigarillos for causing tobacco-associated diseases. The high level of carbonyls in shisha products, that in turn is impacted by the heating mechanism, reside largely in the gas phase which will distribute throughout the respiratory tract and systemic circulation to likely increase genotoxic stress.
BACKGROUND:Trimethylation of lysine 27 and dimethylation of lysine 9 of histone-H3 catalyzed by the histone methyltransferases EZH2 and G9a impede gene transcription in cancer. Our human bronchial epithelial (HBEC) pre-malignancy model studied the role of these histone modifications in transformation. Tobacco carcinogen transformed HBEC lines were characterized for cytosine DNA methylation, transcriptome reprogramming, and the effect of inhibiting EZH2 and G9a on the transformed phenotype. The effects of targeting EZH2 and G9a on lung cancer prevention was assessed in the A/J mouse lung tumor model.RESULTS:Carcinogen exposure induced transformation and DNA methylation of 12-96 genes in the four HBEC transformed (T) lines that was perpetuated in malignant tumors. In contrast, 506 unmethylated genes showed reduced expression in one or more HBECTs with many becoming methylated in tumors. ChIP-on-chip for HBEC2T identified 327 and 143 genes enriched for H3K27me3 and H3K9me2. Treatment of HBEC2T and HBEC13T with DZNep, a lysine methyltransferase inhibitor depleted EZH2, reversed transformation, and induced transcriptional reprogramming. The EZH2 small molecule inhibitor EPZ6438 also affected transformation and expression in HBEC2T, while a G9a inhibitor, UNC0642 was ineffective. Genetic knock down of EZH2 dramatically reduced carcinogen-induced transformation of HBEC2. Only DZNep treatment prevented progression of hyperplasia to adenomas in the NNK mouse lung tumor model through reducing EZH2 and affecting the expression of genes regulating cell growth and invasion.CONCLUSION:These studies demonstrate a critical role for EZH2 catalyzed histone modifications for premalignancy and its potential as a target for chemoprevention of lung carcinogenesis.
Electronic cigarettes are the most commonly used nicotine containing product among teenagers. The oral epithelium is the first site of exposure and our recent work revealed considerable diversity among e-liquids for composition and level of chemical constituents that impact nicotine deposition in a human oral-trachea cast and affect the formation of reactive carbonyls. Here, we evaluate the dose response for cytotoxicity and genotoxicity of e-cigarette-generated aerosols from 10 diverse flavored e-liquid products with and without nicotine compared with unflavored in 3 immortalized oral epithelial cell lines. Three e-liquids, Blue Pucker, Love Potion, and Jamestown caused ≥20% cell toxicity assessed by the neutral red uptake assay. Nine products induced significant levels of oxidative stress up to 2.4-fold quantified by the ROS-Glo assay in at least 1 cell line, with dose response seen for Love Potion with and without nicotine across all cell lines. Lipid peroxidation detected by the thiobarbituric acid reactive substances assay was less common among products; however, dose response increases up to 12-fold were seen for individual cell lines. Micronuclei formation indicative of genotoxicity was increased up to 5-fold for some products. Blue Pucker was the most genotoxic e-liquid, inducing micronuclei across all cell lines irrespective of nicotine status. A potency score derived from all assays identified Blue Pucker and Love Potion as the most hazardous e-liquids. These in vitro acute exposure studies provide new insight about the potential for some flavored vaping products to induce significant levels of oxidative stress and genotoxicity.
Abstract miRNA silencing by promoter hypermethylation may represent a mechanism by which lung cancer develops and progresses, but the miRNAs involved during malignant transformation are unknown. We previously established a model of premalignant lung cancer wherein we treated human bronchial epithelial cells (HBEC) with low doses of tobacco carcinogens. Here, we demonstrate that next-generation sequencing of carcinogen-transformed HBECs treated with the demethylating agent 5-aza-2′deoxycytidine revealed miR-196b and miR-34c-5p to be epigenetic targets. Bisulfite sequencing confirmed dense promoter hypermethylation indicative of silencing in multiple malignant cell lines and primary tumors. Chromatin immunoprecipitation studies further demonstrated an enrichment in repressive histone marks on the miR-196b promoter during HBEC transformation. Restoration of miR-196b expression by transfecting transformed HBECs with specific mimics led to cell-cycle arrest mediated in part through transcriptional regulation of the FOS oncogene, and miR-196b reexpression also significantly reduced the growth of tumor xenografts. Luciferase assays demonstrated that forced expression of miR-196b inhibited the FOS promoter and AP-1 reporter activity. Finally, a case–control study revealed that methylation of miR-196b in sputum was strongly associated with lung cancer (OR = 4.7, P < 0.001). Collectively, these studies highlight miR-196b as a tumor suppressor whose silencing early in lung carcinogenesis may provide a selective growth advantage to premalignant cells. Targeted delivery of miR-196b could therefore serve as a preventive or therapeutic strategy for the management of lung cancer. Cancer Res; 76(16); 4741–51. ©2016 AACR.
Abstract Silencing of microRNAs by promoter hypermethylation could play a significant role in lung cancer initiation and progression. A pre-malignancy model using carcinogen transformed human bronchial epithelial cells (HBECs) treated with the demethylating agent 5-aza-2’deoxycytidine followed by next-generation sequencing identified miR-196b and miR-34c-5p as being epigenetically regulated. Bisulfite sequencing confirmed silencing via dense promoter hypermethylation that was commonly replicated in malignant cell lines and primary tumors. Functional studies of miR-196b revealed that it was epigenetically silenced by chromatin modification and DNA methylation during transformation of HBECs and re-expression modulated genes involved in cell cycle regulation. Stable re-expression led to a cell cycle arrest mediated in part through transcriptional regulation of the FOS oncogene that was replicated in vivo by a profound reduction in growth of tumor xenografts. Luciferase assays demonstrated that forced expression of miR-196b inhibits FOS promoter and AP-1 reporter activity. A case-control study showed that methylation of miR-196b in sputum was strongly associated with lung cancer (OR = 4.7, p<0.001). These studies identify miR-196 as a tumor suppressor whose silencing early in lung carcinogenesis may provide a selective growth advantage to pre-malignant cells. Targeted delivery of this microRNA could benefit prevention and therapy for the management of lung cancer. Citation Format: Carmen S. Tellez, Daniel E. Juri, Kieu Do, Maria A. Picchi, Teresa Wang, Gang Liu, Avrum Spira, Steven A. Belinsky. MiR-196b is an epigenetically silenced tumor suppressor for lung cancer. [abstract]. In: Proceedings of the 107th Annual Meeting of the American Association for Cancer Research; 2016 Apr 16-20; New Orleans, LA. Philadelphia (PA): AACR; Cancer Res 2016;76(14 Suppl):Abstract nr 958.
Abstract O6-Methylguanine-DNA methyltransferase (MGMT) is a DNA repair enzyme that protects cells from carcinogenic effects of alkylating agents; however, MGMT is silenced by promoter hypermethylation during carcinogenesis. A single-nucleotide polymorphism (SNP) in an enhancer in the MGMT promoter was previously identified to be highly significantly associated with risk for MGMT methylation in lung cancer and sputum from smokers. To further genetic investigations, a genome-wide association and replication study was conducted in two smoker cohorts to identify novel loci for MGMT methylation in sputum that were independent of the MGMT enhancer polymorphism. Two novel trans-acting loci (15q15.2 and 17q24.3) that were identified acted together with the enhancer SNP to empower risk prediction for MGMT methylation. We found that the predisposition to MGMT methylation arising from the 15q15.2 locus involved regulation of the ubiquitin protein ligase E3 component UBR1. UBR1 attenuation reduced turnover of MGMT protein and increased repair of O6-methylguanine in nitrosomethylurea-treated human bronchial epithelial cells, while also reducing MGMT promoter activity and abolishing MGMT induction. Overall, our results substantiate reduced gene transcription as a major mechanism for predisposition to MGMT methylation in the lungs of smokers, and support the importance of UBR1 in regulating MGMT homeostasis and DNA repair of alkylated DNA adducts in cells. Cancer Res; 75(15); 3108–17. ©2015 AACR.
Introduction: GATA2 was recently described as a critical survival factor and therapeutic target for KRAS mutant non–small-cell lung cancer (NSCLC). However, whether this role is affected by epigenetic repression of GATA2 in lung cancer is unclear. Methods: GATA2 expression and promoter CpG island methylation were evaluated using human and mouse NSCLC cell lines and tumor-normal pairs. In vitro assays were used to study GATA2 repression on cell survival and during tobacco carcinogen-induced transformation. Results: GATA2 expression in KRAS wild-type (n = 15) and mutant (n = 10) NSCLC cell lines and primary lung tumors (n = 24) was significantly lower, 1.3- to 33.6-fold (p = 2.2 × 109), compared with corresponding normal lung. GATA2 promoter was unmethylated in normal lung (0 of 10) but frequently methylated in lung tumors (96%, 159 of 165) and NSCLC cell lines (97%, 30 of 31). This highly prevalent aberrant methylation was independently validated using The Cancer Genome Atlas data for 369 NSCLC tumor-normal pairs. In vitro studies using an established carcinogen-induced premalignancy model revealed that GATA2 expression was initially repressed by chromatin remodeling followed by cytosine methylation during transformation. Similarly, expression of GATA2 in NNK-induced mouse lung tumors (n = 6) and cell lines (n = 5) was fivefold and 100-fold lower, respectively, than normal mouse lung. Finally, siRNA-mediated knockdown of GATA2 in KRAS mutant (human [n = 4] and murine [n = 5]) and wild-type (human [n = 4]) NSCLC cell lines showed that further reduction of expression (up to 95%) does not induce cell death. Conclusion: GATA2 is epigenetically repressed in human and mouse lung tumors and its further inhibition is not a valid therapeutic strategy for KRAS mutant lung cancer.
Abstract Epithelial-to-mesenchymal transition (EMT) is strongly associated with cancer progression, but its potential role during premalignant development has not been studied. Here, we show that a 4-week exposure of immortalized human bronchial epithelial cells (HBEC) to tobacco carcinogens can induce a persistent, irreversible, and multifaceted dedifferentiation program marked by EMT and the emergence of stem cell–like properties. EMT induction was epigenetically driven, initially by chromatin remodeling through H3K27me3 enrichment and later by ensuing DNA methylation to sustain silencing of tumor-suppressive microRNAs (miRNA), miR-200b, miR-200c, and miR-205, which were implicated in the dedifferentiation program in HBECs and also in primary lung tumors. Carcinogen-treated HBECs acquired stem cell–like features characterized by their ability to form spheroids with branching tubules and enrichment of the CD44high/CD24low, CD133, and ALDH1 stem cell–like markers. miRNA overexpression studies indicated that regulation of the EMT, stem-like, and transformed phenotypes in HBECs were distinct events. Our findings extend present concepts of how EMT participates in cancer pathophysiology by showing that EMT induction can participate in cancer initiation to promote the clonal expansion of premalignant lung epithelial cells. Cancer Res; 71(8); 3087–97. ©2011 AACR.
An in vitro model, hTERT/cdk4, immortalized human bronchial epithelial cells (HBECs), was used to identify key molecular changes driving cell transformation and the clonal outgrowth of preneoplastic lung epithelial cells. Low-dose weekly treatment (12 weeks) of HBECs with genotoxic, but not cytotoxic doses of the carcinogens methylnitrosourea (MNU), benzo(a)pyrene-diolepoxide 1 (BPDE), or both induced transformation. Transformation efficiency (0.2-3%) differed between HBECs and was associated with DNA repair capacity, increased levels of DNMT1 protein, promoter hypermethylation, EMT, and stem-like cell phenotype. Agilent 44K arrays were used to determine genome-wide changes in gene expression associated with transformation. Comparison of expression between HBEC1 and HBEC2 to cells transformed by BPDE, MNU, or the combination revealed 287-321 and 320-493 genes with increased or decreased (≥ 3-fold change) expression. Approximately 214 and 331 of the genes with decreased expression in HBEC1 and HBEC2 had CpG islands that extended through their transcriptional start site. HBEC2 MNU/BPDE transformed cells were treated with DAC or TSA to assess globally whether chromatin remodeling alone, or in combination with DNA methylation mediated gene silencing. Only 128 of 331 silenced genes in HBEC2 MNU/BPDE transformed cells responded to DAC alone. Promoter methylation arrays and genome-wide ChIP-chip for inactive chromatin marks were used to elucidate mechanisms of global gene silencing in HBEC2 MNU/BPDE transformed cells. Array analysis revealed 216 genes with reduced expression are enriched for H3K27me3 and 23 novel genes with reduced expression are hypermethylated in HBEC2 MNU/BPDE transformed cells. Our in vitro model suggests that the re-programming of the epigenome during carcinogen-induced transformation is initially mediated by chromatin remodeling with ensuing DNA methylation sustaining gene silencing. The authors’ work is supported by a research grant from National Institutes of Health (R01 ES008801). Citation Format: {Authors}. {Abstract title} [abstract]. In: Proceedings of the 102nd Annual Meeting of the American Association for Cancer Research; 2011 Apr 2-6; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2011;71(8 Suppl):Abstract nr 1994. doi:10.1158/1538-7445.AM2011-1994
Abstract An in vitro carcinogen-induced transformation model was developed using immortalized bronchial epithelial cells (HBECs) to identify key molecular changes in preneoplastic lung epithelial cells that occur during the development of lung cancer in smokers. HBECs were treated for twelve weeks (one exposure per week) with low-doses of tobacco carcinogens (MNU and BPDE) that resulted in transformation from genotoxic stress (DNA damage). The HBECs displayed a morphological change consistent with an epithelial-to-mesenchymal transition (EMT) after 4 weeks of carcinogen treatment that persisted in colonies that were recovered and expanded from soft agar (transformed cell line). Expression of mesenchymal markers vimentin, fibronectin, and N-cadherin increased significantly, while the epithelial marker E-cadherin was significantly decreased. The most notable changes associated with EMT included 4 - 55 fold reduced expression of miR-200b, -200c, and -205 that correlated with 2-1500 fold increased expression of E-box binding transcription factors (SNAI1, ZEB1, ZEB2) and basic helix-loop-helix transcription factor (TWIST1). Restoring the expression of miR-200b, -200c or -205 in carcinogen transformed cells prevented growth in soft agar; meanwhile the cells maintained a fibroblast-like mesenchymal appearance. Levels of DNA methyltransferase 1 (DNMT1) protein also increased significantly during carcinogen treatment and stable knockdown of DNMT1, but not DNMT3A and DNMT3B prior to carcinogen prevented EMT and transformation. ChIP for H3K4me2 (indicative of active/open chromatin) revealed a progressive decrease of this mark at the promoters of miR-200b, -200c, and -205 over 12 weeks of carcinogen treatment and during transformation. A modest enrichment for H3K9me2 (inactive/closed chromatin mark) was observed at all time points. In contrast, H3K27me3 (indicative of inactive/closed chromatin) was enriched at the miR promoters after 4 weeks of carcinogen treatment and enrichment declined over time. Bisulfite sequencing revealed CpG DNA methylation increased from 3% to 42% in the miR-200 family and miR-205 promoters during transformation. To examine the clinical relevance of miR-200b, -200c, and -205 their expression was analyzed in lung tumors relative to distant normal lung tissue from 24 patients. Reduced expression of at least one miR was observed in 50% of lung adenocarcinomas. These findings implicate a major role for epigenetic regulation of EMT that extends beyond that of cancer metastasis to causality for development of premalignant lung cancer. Supported by ES008801. Citation Format: {Authors}. {Abstract title} [abstract]. In: Proceedings of the 101st Annual Meeting of the American Association for Cancer Research; 2010 Apr 17-21; Washington, DC. Philadelphia (PA): AACR; Cancer Res 2010;70(8 Suppl):Abstract nr LB-358.
Death-associated protein kinase (DAPK), a mediator of apoptotic systems, is silenced by promoter hypermethylation in lung and breast tumors. This gene has a CpG island extending 2500 bp from the translational start site; however, studies characterizing its transcriptional regulation have not been conducted. Two transcripts for DAPK were identified that code for a single protein, while being regulated by two promoters. The previously identified DAPK transcript designated as exon 1 transcript was expressed at levels 3-fold greater than the alternate exon 1b transcript. Deletion constructs of promoter 1 identified a 332 bp region containing a functional CP2-binding site important for expression of the exon 1 transcript. While moderate reporter activity was seen in promoter 2, the region comprising intron 1 and containing a HNF3B-binding site sustained expression of the alternate transcript. Sequencing the DAPK CpG island in tumor cell lines revealed dense, but heterogenous methylation of CpGs that blocked access of the CP2 and HNF3B proteins that in turn, was associated with loss of transcription that was restored by treatment with 5-aza-2'-deoxycytidine. Prevalences were similar for methylation of promoter 1 and 2 and intron 1 in lung tumors, but significantly greater in promoter 2 and intron 1 in breast tumors, indicative of tissue-specific differences in silencing these two transcripts. These studies show for the first time dual promoter regulation of DAPK, a tumor suppressor gene silenced in many cancers, and substantiate the importance of screening for silencing of both transcripts in tumors.