Cargando…

An integrated methodology for assessing the impact of food matrix and gastrointestinal effects on the biokinetics and cellular toxicity of ingested engineered nanomaterials

BACKGROUND: Engineered nanomaterials (ENMs) are increasingly added to foods to improve their quality, sensory appeal, safety and shelf-life. Human exposure to these ingested ENMs (iENMS) is inevitable, yet little is known of their hazards. To assess potential hazards, efficient in vitro methodologie...

Descripción completa

Detalles Bibliográficos
Autores principales: DeLoid, Glen M., Wang, Yanli, Kapronezai, Klara, Lorente, Laura Rubio, Zhang, Roujie, Pyrgiotakis, Georgios, Konduru, Nagarjun V., Ericsson, Maria, White, Jason C., De La Torre-Roche, Roberto, Xiao, Hang, McClements, David Julian, Demokritou, Philip
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5640936/
https://www.ncbi.nlm.nih.gov/pubmed/29029643
http://dx.doi.org/10.1186/s12989-017-0221-5
_version_ 1783271123490701312
author DeLoid, Glen M.
Wang, Yanli
Kapronezai, Klara
Lorente, Laura Rubio
Zhang, Roujie
Pyrgiotakis, Georgios
Konduru, Nagarjun V.
Ericsson, Maria
White, Jason C.
De La Torre-Roche, Roberto
Xiao, Hang
McClements, David Julian
Demokritou, Philip
author_facet DeLoid, Glen M.
Wang, Yanli
Kapronezai, Klara
Lorente, Laura Rubio
Zhang, Roujie
Pyrgiotakis, Georgios
Konduru, Nagarjun V.
Ericsson, Maria
White, Jason C.
De La Torre-Roche, Roberto
Xiao, Hang
McClements, David Julian
Demokritou, Philip
author_sort DeLoid, Glen M.
collection PubMed
description BACKGROUND: Engineered nanomaterials (ENMs) are increasingly added to foods to improve their quality, sensory appeal, safety and shelf-life. Human exposure to these ingested ENMs (iENMS) is inevitable, yet little is known of their hazards. To assess potential hazards, efficient in vitro methodologies are needed to evaluate particle biokinetics and toxicity. These methodologies must account for interactions and transformations of iENMs in foods (food matrix effect) and in the gastrointestinal tract (GIT) that are likely to determine nano-biointeractions. Here we report the development and application of an integrated methodology consisting of three interconnected stages: 1) assessment of iENM-food interactions (food matrix effect) using model foods; 2) assessment of gastrointestinal transformations of the nano-enabled model foods using a three-stage GIT simulator; 3) assessment of iENMs biokinetics and cellular toxicity after exposure to simulated GIT conditions using a triculture cell model. As a case study, a model food (corn oil-in-water emulsion) was infused with Fe(2)O(3) (Iron(III) oxide or ferric oxide) ENMs and processed using this three-stage integrated platform to study the impact of food matrix and GIT effects on nanoparticle biokinetics and cytotoxicity . METHODS: A corn oil in phosphate buffer emulsion was prepared using a high speed blender and high pressure homogenizer. Iron oxide ENM was dispersed in water by sonication and combined with the food model. The resulting nano-enabled food was passed through a three stage (mouth, stomach and small intestine) GIT simulator. Size distributions of nano-enabled food model and digestae at each stage were analyzed by DLS and laser diffraction. TEM and confocal imaging were used to assess morphology of digestae at each phase. Dissolution of Fe2O3 ENM along the GIT was assessed by ICP-MS analysis of supernatants and pellets following centrifugation of digestae. An in vitro transwell triculture epithelial model was used to assess biokinetics and toxicity of ingested Fe(2)O(3) ENM. Translocation of Fe(2)O(3) ENM was determined by ICP-MS analysis of cell lysates and basolateral compartment fluid over time. RESULTS: It was demonstrated that the interactions of iENMs with food and GIT components influenced nanoparticle fate and transport, biokinetics and toxicological profile. Large differences in particle size, charge, and morphology were observed in the model food with and without Fe(2)O(3) and among digestae from different stages of the simulated GIT (mouth, stomach, and small intestine). Immunoflorescence and TEM imaging of the cell culture model revealed markers and morphology of small intestinal epithelium including enterocytes, goblet cells and M cells. Fe(2)O(3) was not toxic at concentrations tested in the digesta. In biokinetics studies, translocation of Fe(2)O(3) after 4 h was <1% and ~2% for digesta with and without serum, respectively, suggesting that use of serum proteins alters iENMs biokinetics and raises concerns about commonly-used approaches that neglect iENM – food-GIT interactions or dilute digestae in serum-containing media. CONCLUSIONS: We present a simple integrated methodology for studying the biokinetics and toxicology of iENMs, which takes into consideration nanoparticle-food-GIT interactions. The importance of food matrix and GIT effects on biointeractions was demonstrated, as well as the incorporation of these critical factors into a cellular toxicity screening model. Standardized food models still need to be developed and used to assess the effect of the food matrix effects on the fate and bioactivity of iENMs since commercial foods vary considerably in their compositions and structures. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1186/s12989-017-0221-5) contains supplementary material, which is available to authorized users.
format Online
Article
Text
id pubmed-5640936
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-56409362017-10-18 An integrated methodology for assessing the impact of food matrix and gastrointestinal effects on the biokinetics and cellular toxicity of ingested engineered nanomaterials DeLoid, Glen M. Wang, Yanli Kapronezai, Klara Lorente, Laura Rubio Zhang, Roujie Pyrgiotakis, Georgios Konduru, Nagarjun V. Ericsson, Maria White, Jason C. De La Torre-Roche, Roberto Xiao, Hang McClements, David Julian Demokritou, Philip Part Fibre Toxicol Methodology BACKGROUND: Engineered nanomaterials (ENMs) are increasingly added to foods to improve their quality, sensory appeal, safety and shelf-life. Human exposure to these ingested ENMs (iENMS) is inevitable, yet little is known of their hazards. To assess potential hazards, efficient in vitro methodologies are needed to evaluate particle biokinetics and toxicity. These methodologies must account for interactions and transformations of iENMs in foods (food matrix effect) and in the gastrointestinal tract (GIT) that are likely to determine nano-biointeractions. Here we report the development and application of an integrated methodology consisting of three interconnected stages: 1) assessment of iENM-food interactions (food matrix effect) using model foods; 2) assessment of gastrointestinal transformations of the nano-enabled model foods using a three-stage GIT simulator; 3) assessment of iENMs biokinetics and cellular toxicity after exposure to simulated GIT conditions using a triculture cell model. As a case study, a model food (corn oil-in-water emulsion) was infused with Fe(2)O(3) (Iron(III) oxide or ferric oxide) ENMs and processed using this three-stage integrated platform to study the impact of food matrix and GIT effects on nanoparticle biokinetics and cytotoxicity . METHODS: A corn oil in phosphate buffer emulsion was prepared using a high speed blender and high pressure homogenizer. Iron oxide ENM was dispersed in water by sonication and combined with the food model. The resulting nano-enabled food was passed through a three stage (mouth, stomach and small intestine) GIT simulator. Size distributions of nano-enabled food model and digestae at each stage were analyzed by DLS and laser diffraction. TEM and confocal imaging were used to assess morphology of digestae at each phase. Dissolution of Fe2O3 ENM along the GIT was assessed by ICP-MS analysis of supernatants and pellets following centrifugation of digestae. An in vitro transwell triculture epithelial model was used to assess biokinetics and toxicity of ingested Fe(2)O(3) ENM. Translocation of Fe(2)O(3) ENM was determined by ICP-MS analysis of cell lysates and basolateral compartment fluid over time. RESULTS: It was demonstrated that the interactions of iENMs with food and GIT components influenced nanoparticle fate and transport, biokinetics and toxicological profile. Large differences in particle size, charge, and morphology were observed in the model food with and without Fe(2)O(3) and among digestae from different stages of the simulated GIT (mouth, stomach, and small intestine). Immunoflorescence and TEM imaging of the cell culture model revealed markers and morphology of small intestinal epithelium including enterocytes, goblet cells and M cells. Fe(2)O(3) was not toxic at concentrations tested in the digesta. In biokinetics studies, translocation of Fe(2)O(3) after 4 h was <1% and ~2% for digesta with and without serum, respectively, suggesting that use of serum proteins alters iENMs biokinetics and raises concerns about commonly-used approaches that neglect iENM – food-GIT interactions or dilute digestae in serum-containing media. CONCLUSIONS: We present a simple integrated methodology for studying the biokinetics and toxicology of iENMs, which takes into consideration nanoparticle-food-GIT interactions. The importance of food matrix and GIT effects on biointeractions was demonstrated, as well as the incorporation of these critical factors into a cellular toxicity screening model. Standardized food models still need to be developed and used to assess the effect of the food matrix effects on the fate and bioactivity of iENMs since commercial foods vary considerably in their compositions and structures. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1186/s12989-017-0221-5) contains supplementary material, which is available to authorized users. BioMed Central 2017-10-13 /pmc/articles/PMC5640936/ /pubmed/29029643 http://dx.doi.org/10.1186/s12989-017-0221-5 Text en © The Author(s). 2017 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Methodology
DeLoid, Glen M.
Wang, Yanli
Kapronezai, Klara
Lorente, Laura Rubio
Zhang, Roujie
Pyrgiotakis, Georgios
Konduru, Nagarjun V.
Ericsson, Maria
White, Jason C.
De La Torre-Roche, Roberto
Xiao, Hang
McClements, David Julian
Demokritou, Philip
An integrated methodology for assessing the impact of food matrix and gastrointestinal effects on the biokinetics and cellular toxicity of ingested engineered nanomaterials
title An integrated methodology for assessing the impact of food matrix and gastrointestinal effects on the biokinetics and cellular toxicity of ingested engineered nanomaterials
title_full An integrated methodology for assessing the impact of food matrix and gastrointestinal effects on the biokinetics and cellular toxicity of ingested engineered nanomaterials
title_fullStr An integrated methodology for assessing the impact of food matrix and gastrointestinal effects on the biokinetics and cellular toxicity of ingested engineered nanomaterials
title_full_unstemmed An integrated methodology for assessing the impact of food matrix and gastrointestinal effects on the biokinetics and cellular toxicity of ingested engineered nanomaterials
title_short An integrated methodology for assessing the impact of food matrix and gastrointestinal effects on the biokinetics and cellular toxicity of ingested engineered nanomaterials
title_sort integrated methodology for assessing the impact of food matrix and gastrointestinal effects on the biokinetics and cellular toxicity of ingested engineered nanomaterials
topic Methodology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5640936/
https://www.ncbi.nlm.nih.gov/pubmed/29029643
http://dx.doi.org/10.1186/s12989-017-0221-5
work_keys_str_mv AT deloidglenm anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT wangyanli anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT kapronezaiklara anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT lorentelaurarubio anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT zhangroujie anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT pyrgiotakisgeorgios anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT kondurunagarjunv anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT ericssonmaria anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT whitejasonc anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT delatorrerocheroberto anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT xiaohang anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT mcclementsdavidjulian anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT demokritouphilip anintegratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT deloidglenm integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT wangyanli integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT kapronezaiklara integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT lorentelaurarubio integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT zhangroujie integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT pyrgiotakisgeorgios integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT kondurunagarjunv integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT ericssonmaria integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT whitejasonc integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT delatorrerocheroberto integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT xiaohang integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT mcclementsdavidjulian integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials
AT demokritouphilip integratedmethodologyforassessingtheimpactoffoodmatrixandgastrointestinaleffectsonthebiokineticsandcellulartoxicityofingestedengineerednanomaterials