Silica-coated magnetic nanoparticles induce glucose metabolic dysfunction in vitro via the generation of reactive oxygen species.

Tae Hwan Shin, Chan Seo, Da Yeon Lee, Moongi Ji, Balachandran Manavalan, Shaherin Basith, Suresh Kumar Chakkarapani, Seong Ho Kang, Gwang Lee, Man Jeong Paik, Chan Bae Park

Journal: Archives of toxicology 2020;93(5):1201-1212

PMID: 30737549

Abstract

Nanoparticles are a useful material in biomedicine given their unique properties and biocompatibility; however, there is increasing concern regarding the potential toxicity of nanoparticles with respect to cell metabolism. Some evidence suggests that nanoparticles can disrupt glucose and energy homeostasis. In this study, we investigated the metabolomic, transcriptomic, and integrated effects of silica-coated magnetic nanoparticles containing rhodamine B isothiocyanate dye [MNPs@SiO(RITC)] on glucose metabolism in human embryonic kidney 293 (HEK293) cells. Using gas chromatography-tandem mass spectrometry, we analysed the metabolite profiles of 14 organic acids (OAs), 20 amino acids (AAs), and 13 fatty acids (FAs) after treatment with 0.1 or 1.0 µg/µl MNPs@SiO(RITC) for 12 h. The metabolic changes were highly related to reactive oxygen species (ROS) generation and glucose metabolism. Additionally, effects on the combined metabolome and transcriptome or "metabotranscriptomic network" indicated a relationship between ROS generation and glucose metabolic dysfunction. In the experimental validation, MNPs@SiO(RITC) treatment significantly decreased the amount of glucose in cells and was associated with a reduction in glucose uptake efficiency. Decreased glucose uptake efficiency was also related to ROS generation and impaired glucose metabolism in the metabotranscriptomic network. Our results suggest that exposure to high concentrations of MNPs@SiO(RITC) produces maladaptive alterations in glucose metabolism and specifically glucose uptake as well as related metabolomic and transcriptomic disturbances via increased ROS generation. These findings further indicate that an integrated metabotranscriptomics approach provides useful and sensitive toxicological assessment for nanoparticles.

Address: Department of Physiology, Department of Biomedical Sciences, Ajou University School of Medicine, 164, World cup-ro, Yeongtong-gu, 16499, Suwon, Republic of Korea.; College of Pharmacy, Sunchon National University, Suncheon, Republic of Korea.; Department of Chemistry, Graduate School, Kyung Hee University, Yongin-si, Republic of Korea.; Department of Applied Chemistry and Institute of Natural Sciences, Kyung Hee University, Yongin-si, Republic of Korea.; College of Pharmacy, Sunchon National University, Suncheon, Republic of Korea. [email protected].; Department of Physiology, Department of Biomedical Sciences, Ajou University School of Medicine, 164, World cup-ro, Yeongtong-gu, 16499, Suwon, Republic of Korea. [email protected].

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