Literature DB >> 35559963

Co-exposure to boscalid and TiO2 (E171) or SiO2 (E551) downregulates cell junction gene expression in small intestinal epithelium cellular model and increases pesticide translocation.

Xiaoqiong Cao1, Sangeeta Khare2, Glen M DeLoid1, Kuppan Gokulan2, Philip Demokritou3.   

Abstract

A recent published study showed that TiO2 (E171) and SiO2 (E551), two widely used nano-enabled food additives, increased the translocation of the commonly used pesticide boscalid by 20% and 30% respectively. Such increased absorption of pesticides due to the presence of engineered nanomaterials (ENMs) in food raises health concerns for these food additives. In this companion study, mRNA expression of genes related to cell junctions in a small intestinal epithelial cellular model after exposure to simulated digestas of fasting food model (phosphate buffer) containing boscalid (150 ppm) with or without either TiO2 or SiO2 (1% w/w) were analyzed. Specific changes in cell barrier function underlying or contributing to the increased translocation of boscalid observed in the previous study were assessed. Results showed that exposure to boscalid alone has no significant effect on cell junction genes, however, co-exposure to boscalid and TiO2 significantly regulated expression of cell-matrix junction focal adhesion-related genes, e.g., downregulating Cav1 (-1.39-fold, p < 0.05), upregulating Cav3 (+ 3.30-fold, p < 0.01) and Itga4 (+ 3.30-fold, p < 0.05). Similarly, co-exposure to boscalid and SiO2 significantly downregulated multiple cell-cell junction genes, including tight junction genes (Cldn1, Cldn11, Cldn16, Cldn18, and Jam3), adherens junction genes (Notch1, Notch3, Pvrl1) and gap junction genes (Gja3 and Gjb2), as well as cell-matrix junction focal adhesion genes (Itga4, Itga6, Itga7). Together, these findings suggest that co-ingestion of boscalid with TiO2 (E171) or SiO2 (E551) could cause weakening of cell junctions and intercellular adhesion, which could result in dysregulation of paracellular transport, and presumably contributed to the previously observed increased translocation of boscalid at the presence of these ENMs. This novel finding raises health safety concerns for such popular food additives.
Copyright © 2021 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Cell junctions; Gene expression; Ingested engineered nanomaterials; Nanosafety; Silica; Titanium dioxide

Mesh:

Substances:

Year:  2021        PMID: 35559963     DOI: 10.1016/j.impact.2021.100306

Source DB:  PubMed          Journal:  NanoImpact        ISSN: 2452-0748


  3 in total

1.  Incineration-Generated Polyethylene Micro-Nanoplastics Increase Triglyceride Lipolysis and Absorption in an In Vitro Small Intestinal Epithelium Model.

Authors:  Glen M DeLoid; Xiaoqiong Cao; Roxana Coreas; Dimitrios Bitounis; Dilpreet Singh; Wenwan Zhong; Philip Demokritou
Journal:  Environ Sci Technol       Date:  2022-08-16       Impact factor: 11.357

2.  Changes of physico-chemical properties of nano-biomaterials by digestion fluids affect the physiological properties of epithelial intestinal cells and barrier models.

Authors:  Ivana Fenoglio; Chiara Riganti; Giulia Antonello; Arianna Marucco; Elena Gazzano; Panagiotis Kainourgios; Costanza Ravagli; Ana Gonzalez-Paredes; Simone Sprio; Esperanza Padín-González; Mahmoud G Soliman; David Beal; Francesco Barbero; Paolo Gasco; Giovanni Baldi; Marie Carriere; Marco P Monopoli; Costas A Charitidis; Enrico Bergamaschi
Journal:  Part Fibre Toxicol       Date:  2022-07-19       Impact factor: 9.112

Review 3.  Mechanistic considerations and biomarkers level in nickel-induced neurodegenerative diseases: An updated systematic review.

Authors:  Chidinma Promise Anyachor; Donatus Baridoo Dooka; Chinna Nneka Orish; Cecilia Nwadiuto Amadi; Beatrice Bocca; Flavia Ruggieri; Marta Senofonte; Chiara Frazzoli; Orish E Orisakwe
Journal:  IBRO Neurosci Rep       Date:  2022-07-31
  3 in total

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