Literature DB >> 27789654

Titanium dioxide food additive (E171) induces ROS formation and genotoxicity: contribution of micro and nano-sized fractions.

Héloïse Proquin1, Carolina Rodríguez-Ibarra2, Carolyn G J Moonen3, Ismael M Urrutia Ortega2,4, Jacob J Briedé3, Theo M de Kok3, Henk van Loveren3, Yolanda I Chirino2.   

Abstract

Since 1969, the European Union approves food-grade titanium dioxide (TiO2), also known as E171 colouring food additive. E171 is a mixture of micro-sized particles (MPs) and nano-sized particles (NPs). Previous studies have indicated adverse effects of oral exposure to E171, i.e. facilitation of colon tumour growth. This could potentially be partially mediated by the capacity to induce reactive oxygen species (ROS). The aim of the present study is to determine whether E171 exposure induces ROS formation and DNA damage in an in vitro model using human Caco-2 and HCT116 cells and to investigate the contribution of the separate MPs and NPs TiO2 fractions to these effects. After suspension of the particles in Hanks' balanced salt solution buffer and cell culture medium with either bovine serum albumin (BSA) or foetal bovine serum, characterization of the particles was performed by dynamic light scattering, ROS formation was determined by electron spin/paramagnetic resonance spectroscopy and DNA damage was determined by the comet and micronucleus assays. The results showed that E171, MPs and NPs are stable in cell culture medium with 0.05% BSA. The capacity for ROS generation in a cell-free environment was highest for E171, followed by NPs and MPs. Only MPs were capable to induce ROS formation in exposed Caco-2 cells. E171, MPs and NPs all induced single-strand DNA breaks. Chromosome damage was shown to be induced by E171, as tested with the micronucleus assay in HCT116 cells. In conclusion, E171 has the capability to induce ROS formation in a cell-free environment and E171, MPs and NPs have genotoxic potential. The capacity of E171 to induce ROS formation and DNA damage raises concerns about potential adverse effects associated with E171 (TiO2) in food.
© 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: 27789654     DOI: 10.1093/mutage/gew051

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


  34 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

2.  Lipid and protein corona of food-grade TiO2 nanoparticles in simulated gastrointestinal digestion.

Authors:  Roxana Coreas; Xiaoqiong Cao; Glen M Deloid; Philip Demokritou; Wenwan Zhong
Journal:  NanoImpact       Date:  2020-11-03

3.  Toxicological effects of ingested nanocellulose in in vitro intestinal epithelium and in vivo rat models.

Authors:  Glen M DeLoid; Xiaoqiong Cao; Ramon M Molina; Daniel Imbassahy Silva; Kunal Bhattacharya; Kee Woei Ng; Say Chye Joachim Loo; Joseph D Brain; Philip Demokritou
Journal:  Environ Sci Nano       Date:  2019-06-18

4.  The Role of Metal Oxide Nanoparticles, Escherichia coli, and Lactobacillus rhamnosus on Small Intestinal Enzyme Activity.

Authors:  Alba García-Rodríguez; Fabiola Moreno-Olivas; Ricard Marcos; Elad Tako; Cláudia N H Marques; Gretchen J Mahler
Journal:  Environ Sci Nano       Date:  2020-11-09

Review 5.  Cellular and Molecular Mechanisms of Toxicity of Ingested Titanium Dioxide Nanomaterials.

Authors:  Adriana Vieira; Ana Gramacho; Dora Rolo; Nádia Vital; Maria João Silva; Henriqueta Louro
Journal:  Adv Exp Med Biol       Date:  2022       Impact factor: 2.622

6.  Effects of ingested nanocellulose on intestinal microbiota and homeostasis in Wistar Han rats.

Authors:  Sangeeta Khare; Glen M DeLoid; Ramon M Molina; Kuppan Gokulan; Sneha P Couvillion; Kent J Bloodsworth; Elizabeth K Eder; Allison R Wong; David W Hoyt; Lisa M Bramer; Thomas O Metz; Brian D Thrall; Joseph D Brain; Philip Demokritou
Journal:  NanoImpact       Date:  2020-02-28

7.  Genotoxicity Evaluation of Titanium Dioxide Nanoparticles In Vitro: a Systematic Review of the Literature and Meta-analysis.

Authors:  Chunmei Ling; Hongmei An; Li Li; Jiaqi Wang; Tianjiao Lu; Haixia Wang; Yunhua Hu; Guanling Song; Sixiu Liu
Journal:  Biol Trace Elem Res       Date:  2020-08-07       Impact factor: 3.738

8.  Foodborne TiO2 Nanoparticles Induced More Severe Hepatotoxicity in Fructose-Induced Metabolic Syndrome Mice via Exacerbating Oxidative Stress-Mediated Intestinal Barrier Damage.

Authors:  Yu Zhao; Yizhou Tang; Shanji Liu; Tiantian Jia; Donggen Zhou; Hengyi Xu
Journal:  Foods       Date:  2021-04-30

Review 9.  Micro- and Nanosized Substances Cause Different Autophagy-Related Responses.

Authors:  Yung-Li Wang; Cai-Mei Zheng; Yu-Hsuan Lee; Ya-Yun Cheng; Yuh-Feng Lin; Hui-Wen Chiu
Journal:  Int J Mol Sci       Date:  2021-04-30       Impact factor: 5.923

Review 10.  TiO2 - do we have to worry about it? One of the important aetiological factors in inflammatory bowel disease.

Authors:  Sara Jarmakiewicz-Czaja; Aneta Sokal; Jacek Tabarkiewicz; Rafał Filip
Journal:  Prz Gastroenterol       Date:  2021-06-04
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