Literature DB >> 27803034

Comparison of the DNA damage response in BEAS-2B and A549 cells exposed to titanium dioxide nanoparticles.

M Biola-Clier1,2, D Beal1,2, S Caillat1,2, S Libert, L Armand1,2, N Herlin-Boime3, S Sauvaigo4, T Douki1,2, M Carriere5,2.   

Abstract

For some decades production of titanium dioxide nanoparticle (TiO2-NP) has been increasing at a considerable rate; concerns as to the toxicity of these particles upon inhalation have been raised. Indeed, TiO2-NPs have been shown to induce significant genotoxicity and to adversely affect both major DNA repair mechanisms: base excision repair (BER) and nucleotide excision repair (NER). The aims of the present study were to (i) compare the genotoxicity of TiO2-NPs and their impact on DNA repair processes on A549 alveolar carcinoma and BEAS-2B normal bronchial lung cell lines and (ii) delve deeper into the mechanisms leading to these effects. To achieve these goals, TiO2-NPs effects on cytotoxicity, genotoxicity, DNA repair activity and DNA repair gene expression were investigated in both cell lines upon exposure to 1-100 µg/mL of anatase/rutile, 21 nm TiO2-NPs. Our results show that TiO2-NPs induce comparable cytotoxic and genotoxic responses in BEAS-2B and A549 cells. Functional response to DNA damage is observed in both cell lines and consists of an overall downregulation in DNA repair processes. When evaluating the relative importance of the two DNA repair pathways, we observed a lower impact on BER compared with NER activities, suggesting that repair of oxidatively generated DNA damage is still triggered in these cells. This response becomes measureable at 4 h of exposure in BEAS-2B but only after 48 h of exposure in A549 cells. The delayed response in A549 cells is due to an initial overall and intense downregulation of the genes encoding DNA repair proteins. This overall downregulation correlates with increased methylation of DNA repair gene promoters and downregulation of NRF2 and BRCA1, which may thus be considered as upstream regulators. These results strengthen the evidence that TiO2-NP induces indirect genotoxicity in lung cells, via modulation of DNA repair processes, and shed some light on the mechanisms behind this effect.
© The Author 2016. Published by Oxford University Press on behalf of the UK Environmental Mutagen Society. All rights reserved. For permissions, please e-mail: journals.permissions@oup.com.

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Year:  2016        PMID: 27803034     DOI: 10.1093/mutage/gew055

Source DB:  PubMed          Journal:  Mutagenesis        ISSN: 0267-8357            Impact factor:   3.000


  12 in total

1.  Safety assessment of titanium dioxide (E171) as a food additive.

Authors:  Maged Younes; Gabriele Aquilina; Laurence Castle; Karl-Heinz Engel; Paul Fowler; Maria Jose Frutos Fernandez; Peter Fürst; Ursula Gundert-Remy; Rainer Gürtler; Trine Husøy; Melania Manco; Wim Mennes; Peter Moldeus; Sabina Passamonti; Romina Shah; Ine Waalkens-Berendsen; Detlef Wölfle; Emanuela Corsini; Francesco Cubadda; Didima De Groot; Rex FitzGerald; Sara Gunnare; Arno Christian Gutleb; Jan Mast; Alicja Mortensen; Agnes Oomen; Aldert Piersma; Veronika Plichta; Beate Ulbrich; Henk Van Loveren; Diane Benford; Margherita Bignami; Claudia Bolognesi; Riccardo Crebelli; Maria Dusinska; Francesca Marcon; Elsa Nielsen; Josef Schlatter; Christiane Vleminckx; Stefania Barmaz; Maria Carfí; Consuelo Civitella; Alessandra Giarola; Ana Maria Rincon; Rositsa Serafimova; Camilla Smeraldi; Jose Tarazona; Alexandra Tard; Matthew Wright
Journal:  EFSA J       Date:  2021-05-06

Review 2.  Nanosafety: An Evolving Concept to Bring the Safest Possible Nanomaterials to Society and Environment.

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Journal:  Nanomaterials (Basel)       Date:  2022-05-25       Impact factor: 5.719

3.  High-Throughput Screening Platform for Nanoparticle-Mediated Alterations of DNA Repair Capacity.

Authors:  Sneh M Toprani; Dimitrios Bitounis; Qiansheng Huang; Nathalia Oliveira; Kee Woei Ng; Chor Yong Tay; Zachary D Nagel; Philip Demokritou
Journal:  ACS Nano       Date:  2021-03-12       Impact factor: 15.881

Review 4.  The safety of nanomaterials in food production and packaging.

Authors:  Helen Onyeaka; Paolo Passaretti; Taghi Miri; Zainab T Al-Sharify
Journal:  Curr Res Food Sci       Date:  2022-04-22

Review 5.  Exposure to Engineered Nanomaterials: Impact on DNA Repair Pathways.

Authors:  Neenu Singh; Bryant C Nelson; Leona D Scanlan; Erdem Coskun; Pawel Jaruga; Shareen H Doak
Journal:  Int J Mol Sci       Date:  2017-07-13       Impact factor: 5.923

6.  Nanoparticles of Titanium and Zinc Oxides as Novel Agents in Tumor Treatment: a Review.

Authors:  Janusz Bogdan; Joanna Pławińska-Czarnak; Joanna Zarzyńska
Journal:  Nanoscale Res Lett       Date:  2017-03-27       Impact factor: 4.703

7.  The Effects of Apigenin-Biosynthesized Ultra-Small Platinum Nanoparticles on the Human Monocytic THP-1 Cell Line.

Authors:  Sangiliyandi Gurunathan; Muniyandi Jeyaraj; Min-Hee Kang; Jin-Hoi Kim
Journal:  Cells       Date:  2019-05-10       Impact factor: 6.600

8.  The Comet Assay as a Tool to Detect the Genotoxic Potential of Nanomaterials.

Authors:  Alba García-Rodríguez; Laura Rubio; Laura Vila; Noel Xamena; Antonia Velázquez; Ricard Marcos; Alba Hernández
Journal:  Nanomaterials (Basel)       Date:  2019-09-27       Impact factor: 5.076

9.  Cytotoxicity of 2D engineered nanomaterials in pulmonary and corneal epithelium.

Authors:  Morgan Domanico; Atsuhiko Fukuto; Lisa M Tran; Jessica-Miranda Bustamante; Patricia C Edwards; Kent E Pinkerton; Sara M Thomasy; Laura S Van Winkle
Journal:  NanoImpact       Date:  2022-05-02

10.  Titanium Dioxide Nanoparticles Alter the Cellular Phosphoproteome in A549 Cells.

Authors:  Mathilde Biola-Clier; Jean-Charles Gaillard; Thierry Rabilloud; Jean Armengaud; Marie Carriere
Journal:  Nanomaterials (Basel)       Date:  2020-01-21       Impact factor: 5.076

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