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Combined surface functionalization of MSC membrane and PDA inhibits neurotoxicity induced by Fe(3)O(4) in mice based on apoptosis and autophagy through the ASK1/JNK signaling pathway

The extensive utilization of iron oxide nanoparticles in medical and life science domains has led to a substantial rise in both occupational and public exposure to these particles. The potential toxicity of nanoparticles to living organisms, their impact on the environment, and the associated risks...

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Autores principales: Li, Yang, Liu, Te, Li, Xiuying, Yang, Modi, Liu, Tianxin, Bao, Jindian, Jiang, Miao, Hu, Lingling, Wang, Yuzhuo, Shao, Pu, Jiang, Jinlan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10415563/
https://www.ncbi.nlm.nih.gov/pubmed/37470690
http://dx.doi.org/10.18632/aging.204884
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author Li, Yang
Liu, Te
Li, Xiuying
Yang, Modi
Liu, Tianxin
Bao, Jindian
Jiang, Miao
Hu, Lingling
Wang, Yuzhuo
Shao, Pu
Jiang, Jinlan
author_facet Li, Yang
Liu, Te
Li, Xiuying
Yang, Modi
Liu, Tianxin
Bao, Jindian
Jiang, Miao
Hu, Lingling
Wang, Yuzhuo
Shao, Pu
Jiang, Jinlan
author_sort Li, Yang
collection PubMed
description The extensive utilization of iron oxide nanoparticles in medical and life science domains has led to a substantial rise in both occupational and public exposure to these particles. The potential toxicity of nanoparticles to living organisms, their impact on the environment, and the associated risks to human health have garnered significant attention and come to be a prominent area in contemporary research. The comprehension of the potential toxicity of nanoparticles has emerged as a crucial concern to safeguard human health and facilitate the secure advancement of nanotechnology. As nanocarriers and targeting agents, the biocompatibility of them determines the use scope and application prospects, meanwhile surface modification becomes an important measure to improve the biocompatibility. Three different types of iron oxide nanoparticles (Fe(3)O(4), Fe(3)O(4)@PDA and MSCM-Fe(3)O(4)@PDA) were injected into mice through the tail veins. The acute neurotoxicity of them in mice was evaluated by measuring the levels of autophagy and apoptosis in the brain tissues. Our data revealed that iron oxide nanoparticles could cause nervous system damage by regulating the ASK1/JNK signaling pathway. Apoptosis and autophagy may play potential roles in this process. Exposure to combined surface functionalization of mesenchymal stem cell membrane and polydopamine showed the neuroprotective effect and may alleviate brain nervous system disorders.
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spelling pubmed-104155632023-08-12 Combined surface functionalization of MSC membrane and PDA inhibits neurotoxicity induced by Fe(3)O(4) in mice based on apoptosis and autophagy through the ASK1/JNK signaling pathway Li, Yang Liu, Te Li, Xiuying Yang, Modi Liu, Tianxin Bao, Jindian Jiang, Miao Hu, Lingling Wang, Yuzhuo Shao, Pu Jiang, Jinlan Aging (Albany NY) Research Paper The extensive utilization of iron oxide nanoparticles in medical and life science domains has led to a substantial rise in both occupational and public exposure to these particles. The potential toxicity of nanoparticles to living organisms, their impact on the environment, and the associated risks to human health have garnered significant attention and come to be a prominent area in contemporary research. The comprehension of the potential toxicity of nanoparticles has emerged as a crucial concern to safeguard human health and facilitate the secure advancement of nanotechnology. As nanocarriers and targeting agents, the biocompatibility of them determines the use scope and application prospects, meanwhile surface modification becomes an important measure to improve the biocompatibility. Three different types of iron oxide nanoparticles (Fe(3)O(4), Fe(3)O(4)@PDA and MSCM-Fe(3)O(4)@PDA) were injected into mice through the tail veins. The acute neurotoxicity of them in mice was evaluated by measuring the levels of autophagy and apoptosis in the brain tissues. Our data revealed that iron oxide nanoparticles could cause nervous system damage by regulating the ASK1/JNK signaling pathway. Apoptosis and autophagy may play potential roles in this process. Exposure to combined surface functionalization of mesenchymal stem cell membrane and polydopamine showed the neuroprotective effect and may alleviate brain nervous system disorders. Impact Journals 2023-07-19 /pmc/articles/PMC10415563/ /pubmed/37470690 http://dx.doi.org/10.18632/aging.204884 Text en Copyright: © 2023 Li et al. https://creativecommons.org/licenses/by/3.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/3.0/) (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Li, Yang
Liu, Te
Li, Xiuying
Yang, Modi
Liu, Tianxin
Bao, Jindian
Jiang, Miao
Hu, Lingling
Wang, Yuzhuo
Shao, Pu
Jiang, Jinlan
Combined surface functionalization of MSC membrane and PDA inhibits neurotoxicity induced by Fe(3)O(4) in mice based on apoptosis and autophagy through the ASK1/JNK signaling pathway
title Combined surface functionalization of MSC membrane and PDA inhibits neurotoxicity induced by Fe(3)O(4) in mice based on apoptosis and autophagy through the ASK1/JNK signaling pathway
title_full Combined surface functionalization of MSC membrane and PDA inhibits neurotoxicity induced by Fe(3)O(4) in mice based on apoptosis and autophagy through the ASK1/JNK signaling pathway
title_fullStr Combined surface functionalization of MSC membrane and PDA inhibits neurotoxicity induced by Fe(3)O(4) in mice based on apoptosis and autophagy through the ASK1/JNK signaling pathway
title_full_unstemmed Combined surface functionalization of MSC membrane and PDA inhibits neurotoxicity induced by Fe(3)O(4) in mice based on apoptosis and autophagy through the ASK1/JNK signaling pathway
title_short Combined surface functionalization of MSC membrane and PDA inhibits neurotoxicity induced by Fe(3)O(4) in mice based on apoptosis and autophagy through the ASK1/JNK signaling pathway
title_sort combined surface functionalization of msc membrane and pda inhibits neurotoxicity induced by fe(3)o(4) in mice based on apoptosis and autophagy through the ask1/jnk signaling pathway
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10415563/
https://www.ncbi.nlm.nih.gov/pubmed/37470690
http://dx.doi.org/10.18632/aging.204884
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