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用于潜在治疗应用的表面修饰氧化钇纳米粒子的生物相容性和生物分布。

Biocompatibility and biodistribution of surface-modified yttrium oxide nanoparticles for potential theranostic applications.

机构信息

Biomedical Chemistry Unit, Department of Chemistry and Nutritional Deficiency Disorders, Animal Health Research Institute, Giza, 12618, Egypt.

Department of Biotechnology, Animal Health Research Institute, Giza, 12618, Egypt.

出版信息

Environ Sci Pollut Res Int. 2020 Jun;27(16):19095-19107. doi: 10.1007/s11356-019-04309-9. Epub 2019 Feb 1.

DOI:10.1007/s11356-019-04309-9
PMID:30710327
Abstract

The surface of ultrafine yttrium oxide nanoparticles (NPs) with mean size of 7-8 nm was modified with a functional polymer layer to improve their dispersion and impart fluorescent properties for imaging purposes. Surface functionalization was achieved by silanization of yttrium oxide NPs with 3-trimethoxysilylpropyl methacrylate followed by grafting of a co-polymer made of acrylic acid (AA) and ethylene glycol methacrylate phosphate (EGMP). The polymer shell decreases the surface energy of NPs, enhances their polarity, and, as a result, improves their colloidal stability. The synthesized NPs are capable of scavenging free radicals and for this reason have therapeutic potential that warrants further investigations. Furthermore, these stabilized core-shell NPs showed a very low cytotoxicity, confirming that the polymer shell sensibly improves the biocompatibility of bare yttrium oxide NPs, which are otherwise toxic on their own. Poly-EGMP yttrium NPs proved to be safe up to 0.1 mg/g body weight in 1 month old Sprague-Dawley rats, showing also the ability to cross the blood-brain barrier short time after tail injection. The surface modification of yttrium NPs here described allows these NPs to be potentially used in theranostics to reduce neurodegenerative damage due to the heat stress.

摘要

将平均粒径为 7-8nm 的超细微氧化钇纳米粒子 (NPs) 的表面用功能聚合物层进行修饰,以改善其分散性,并赋予荧光性质以用于成像目的。通过用 3-三甲氧基硅丙基甲基丙烯酸酯对氧化钇 NPs 进行硅烷化,然后接枝由丙烯酸 (AA) 和乙二醇甲基丙烯酸磷酸酯 (EGMP) 制成的共聚物,实现了表面功能化。聚合物壳降低了 NPs 的表面能,增强了它们的极性,从而提高了它们的胶体稳定性。合成的 NPs 能够清除自由基,因此具有治疗潜力,值得进一步研究。此外,这些稳定的核壳 NPs 的细胞毒性非常低,证实了聚合物壳大大提高了裸氧化钇 NPs 的生物相容性,否则这些 NPs 本身就具有毒性。在 1 个月大的 Sprague-Dawley 大鼠中,证明高达 0.1mg/g 体重的聚 EGMP 钇 NPs 在 1 个月内是安全的,并且在尾部注射后短时间内也具有穿过血脑屏障的能力。此处描述的氧化钇 NPs 的表面修饰允许这些 NPs 在治疗学中潜在地用于减轻由于热应激引起的神经退行性损伤。

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