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Nicotine interacts with DNA lesions induced by alpha radiation which may contribute to erroneous repair in human lung epithelial cells
Stockholm University, Faculty of Science, Department of Molecular Biosciences, The Wenner-Gren Institute.
Stockholm University.
Stockholm University, Faculty of Science, Department of Environmental Science.ORCID iD: 0000-0002-5905-4092
Stockholm University, Faculty of Science, Department of Molecular Biosciences, The Wenner-Gren Institute.ORCID iD: 0000-0003-2023-7454
Number of Authors: 42024 (English)In: Ecotoxicology and Environmental Safety, ISSN 0147-6513, E-ISSN 1090-2414, Vol. 284, article id 117009Article in journal (Refereed) Published
Abstract [en]

Purpose: Epidemiological studies show that radon and cigarette smoke interact in inducing lung cancer, but the contribution of nicotine in response to alpha radiation emitted by radon is not well understood. Materials and methods: Bronchial epithelial BEAS-2B cells were either pre-treated with 2 µM nicotine during 16 h, exposed to radiation, or the combination. DNA damage, cellular and chromosomal alterations, oxidative stress as well as inflammatory responses were assessed to investigate the role of nicotine in modulating responses. Results: Less γH2AX foci were detected at 1 h after alpha radiation exposure (1–2 Gy) in the combination group versus alpha radiation alone, whereas nicotine alone had no effect. Comet assay showed less DNA breaks already just after combined exposure, supported by reduced p-ATM, p-DNA-PK, p-p53 and RAD51 at 1 h, compared to alpha radiation alone. Yet the frequency of translocations was higher in the combination group at 27 h after irradiation. Although nicotine did not alter G2 arrest at 24 h, it assisted in cell cycle progression at 48 h post radiation. A slightly faster recovery was indicated in the combination group based on cell viability kinetics and viable cell counts, and significantly using colony formation assay. Pan-histone acetyl transferase inhibition using PU139 blocked the reduction in p-p53 and γH2AX activation, suggesting a role for nicotine-induced histone acetylation in enabling rapid DNA repair. Nicotine had a modest effect on reactive oxygen species induction, but tended to increase alpha particle-induced pro-inflammatory IL-6 and IL-1β (4 Gy). Interestingly, nicotine did not alter gamma radiation-induced γH2AX foci. Conclusions: This study provides evidence that nicotine modulates alpha-radiation response by causing a faster but more error-prone repair, as well as rapid recovery, which may allow expansion of cells with genomic instabilities. These results hold implications for estimating radiation risk among nicotine users.

Place, publisher, year, edition, pages
2024. Vol. 284, article id 117009
Keywords [en]
Chromosomal aberration, DNA damage, DNA repair, Nicotine, Radiation, Radon
National Category
Clinical Medicine Medical Bioscience
Identifiers
URN: urn:nbn:se:su:diva-237662DOI: 10.1016/j.ecoenv.2024.117009ISI: 001310817300001PubMedID: 39244876Scopus ID: 2-s2.0-85203280805OAI: oai:DiVA.org:su-237662DiVA, id: diva2:1926816
Available from: 2025-01-13 Created: 2025-01-13 Last updated: 2025-09-03Bibliographically approved
In thesis
1. Cancer-related changes in cells exposed to radon and cigarette smoke
Open this publication in new window or tab >>Cancer-related changes in cells exposed to radon and cigarette smoke
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Radon is the second leading cause of lung cancer after tobacco smoke. This gas is produced from the decay of naturally occurring uranium in soil and rocks. Inhaled radon and its progenies deposit alpha particle radiation on the bronchial epithelium. These alpha particles deliver high localized doses, inducing complex, clustered DNA damage that is challenging to repair. The World Health Organization recommends a national reference level for residential radon at 100 Bq/m³, wherever possible. However, co-exposure to other stressors, particularly tobacco smoke, complicates health risk estimates. Tobacco smoke contains over 60 carcinogens. Nicotine itself is not considered carcinogenic but has been shown to support a tumor-permissive environment. Epidemiological studies show that smoking amplifies radon-induced lung cancer risk, but the molecular mechanisms remain poorly understood. To address this, advanced in vitro approaches, particularly air-liquid interface (ALI) systems and whole-smoke exposure models, have been introduced for in vitro respiratory and toxicology research. These systems offer improved simulation of real-life conditions. Yet, these models require careful control of exposure parameters. This thesis presents studies conducted to improve the understanding of radon and cigarette smoke interactions, as well as to develop an in vitro system for studying combined pollutant exposure.

In Paper I, we demonstrate that nicotine modulates DNA repair following alpha particle exposure, promoting cell survival while increasing chromosomal instability and genomic alterations in human bronchial epithelial cells. In Paper II we used AI-based text mining (AOP-helpFinder) to systematically extract and organize existing literature on radon and tobacco smoke co-exposure, structuring the findings into Adverse Outcome Pathways (AOPs) and Aggregate Exposure Pathways (AEPs). The analysis showed that radon and tobacco interact both environmentally and biologically, yet important gaps remain in mechanistic understanding, particularly regarding epigenetics, and realistic exposure models. In Paper III we developed and validated a novel ALI exposure system that allows controlled, simultaneous exposure of bronchial cells to radon and cigarette smoke under physiologically relevant conditions. Using this system, we showed that while single exposures moderately reduced cell viability, combined exposure caused a significantly stronger reduction, demonstrating both the system’s reliability and the heightened toxicity of co-exposure. In Paper IV, we investigated how radon and cigarette smoke interact at the molecular and cellular levels using RNA-seq and functional assays. Combined exposure induced unique transcriptional and cellular changes when comparing with different single exposure groups, including alterations in inflammatory, oxidative stress, DNA damage response, and oncogenic pathways, as well as in genes related to cytoskeleton and cell adhesion, suggesting an environment that may promote early carcinogenic transformation.

Place, publisher, year, edition, pages
Stockholm: Department of Molecular Biosciences, The Wenner-Gren Institute, Stockholm University, 2025. p. 65
Keywords
Radon, Cigarette smoke, Molecular interaction, Combined exposure, Air Liquid Interface system, In vitro exposure system, Lung Cancer
National Category
Occupational Health and Environmental Health Cell and Molecular Biology Basic Cancer Research Molecular Biology Environmental Sciences
Research subject
Molecular Bioscience
Identifiers
urn:nbn:se:su:diva-246399 (URN)978-91-8107-376-8 (ISBN)978-91-8107-377-5 (ISBN)
Public defence
2025-10-20, Room P216, NPQ-huset, Svante Arrhenius väg 20A, Stockholm, 09:30 (English)
Opponent
Supervisors
Available from: 2025-09-25 Created: 2025-09-03 Last updated: 2025-09-18Bibliographically approved

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Boroumand, NadiaElihn, KarineLundholm, Lovisa

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