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Biotransformations and cytotoxicity of eleven graphene and inorganic two-dimensional nanomaterials using simulated digestions coupled with a triculture in vitro model of the human gastrointestinal epithelium.

作者信息

Bazina Lila, Bitounis Dimitrios, Cao Xiaoqiong, DeLoid Glen M, Parviz Dorsa, Strano Michael S, Greg Lin Hao-Yu, Bell David C, Thrall Brian D, Demokritou Philip

机构信息

Center for Nanotechnology and Nanotoxicology, HSPH-NIEHS Nanosafety Research Center, Department of Environmental Health, Harvard School T.H. Chan of Public Health, Boston, MA 02115, USA.

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Environ Sci Nano. 2021 Nov 1;8(11):3233-3249. doi: 10.1039/d1en00594d. Epub 2021 Oct 8.


DOI:10.1039/d1en00594d
PMID:37465590
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10353755/
Abstract

BACKGROUND: Engineered nanomaterials (ENMs) have already made their way into myriad applications and products across multiple industries. However, the potential health risks of exposure to ENMs remain poorly understood. This is particularly true for the emerging class of ENMs know as 2-dimensional nanomaterials (2DNMs), with a thickness of one or a few layers of atoms arranged in a planar structure. METHODS: The present study assesses the biotransformations and cytotoxicity in the gastrointestinal tract of 11 2DNMs, namely graphene, graphene oxide (GO), partially reduced graphene oxide (prGO), reduced graphene oxide (rGO), hexagonal boron nitride (h-BN), molybdenum disulphide (MoS), and tungsten disulphide (WS). The evaluated pristine materials were either readily dispersed in water or dispersed with the use of a surfactant (Na-cholate or PF108). Materials dispersed in a fasting food model (FFM, water) were subjected to simulated 3-phase (oral, gastric, and small intestinal) digestion to replicate the biotransformations that would occur in the GIT after ingestion. A triculture model of small intestinal epithelium was used to assess the effects of the digested products (digestas) on epithelial layer integrity, cytotoxicity, viability, oxidative stress, and initiation of apoptosis. RESULTS: Physicochemical characterization of the 2DNMs in FFM dispersions and in small intestinal digestas revealed significant agglomeration by all materials during digestion, most prominently by graphene, which was likely caused by interactions with digestive proteins. Also, MoS had dissolved by ~75% by the end of simulated digestion. Other than a low but statistically significant increase in cytotoxicity observed with all inorganic materials and graphene dispersed in PF108, no adverse effects were observed in the exposed tricultures. CONCLUSIONS: Our results suggest that occasional ingestion of small quantities of 2DNMs may not be highly cytotoxic in a physiologically relevant model of the intestinal epithelium. Still, their inflammatory or genotoxic potential after short- or long-term ingestion remains unclear and needs to be studied in future and studies. These would include studies of effects on co-ingested nutrient digestion and absorption, which have been documented for numerous ingested ENMs, as well as effects on the gut microbiome, which can have important health implications.

摘要

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本文引用的文献

[1]
Dissolution of 2D Molybdenum Disulfide Generates Differential Toxicity among Liver Cell Types Compared to Non-Toxic 2D Boron Nitride Effects.

Small. 2021-6

[2]
Lipid and protein corona of food-grade TiO nanoparticles in simulated gastrointestinal digestion.

NanoImpact. 2020-10

[3]
A high-throughput method to characterize the gut bacteria growth upon engineered nanomaterial treatment.

Environ Sci Nano. 2020-10-1

[4]
Recent advances of stimuli-responsive systems based on transition metal dichalcogenides for smart cancer therapy.

J Mater Chem B. 2019-3-28

[5]
Synthesis and Physicochemical Transformations of Size-Sorted Graphene Oxide during Simulated Digestion and Its Toxicological Assessment against an In Vitro Model of the Human Intestinal Epithelium.

Small. 2020-5

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

NanoImpact. 2020-4

[7]
Evaluation of the cytotoxic and cellular proteome impacts of food-grade TiO (E171) using simulated gastrointestinal digestions and a tri-culture small intestinal epithelial model.

NanoImpact. 2020-1

[8]
Co-exposure to the food additives SiO (E551) or TiO (E171) and the pesticide boscalid increases cytotoxicity and bioavailability of the pesticide in a tri-culture small intestinal epithelium model: Potential health implications.

Environ Sci Nano. 2019-9-1

[9]
Toxicological effects of ingested nanocellulose in in vitro intestinal epithelium and in vivo rat models.

Environ Sci Nano. 2019-7-1

[10]
A nano-carrier platform for the targeted delivery of nature-inspired antimicrobials using Engineered Water Nanostructures for food safety applications.

Food Control. 2019-2

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