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首页> 外文期刊>Nanoscale >Translocation, biotransformation-related degradation, and toxicity assessment of polyvinylpyrrolidone-modified 2H-phase nano-MoS2
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Translocation, biotransformation-related degradation, and toxicity assessment of polyvinylpyrrolidone-modified 2H-phase nano-MoS2

机译:易位,biotransformation-related降解,毒性的评估polyvinylpyrrolidone-modified 2 h-phase nano-MoS2

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Nano-MoS2 has been extensively investigated in materials science and biomedicine. However, the effects of different methods of exposure on their translocation, biosafety, and biotransformation-related degradability remain unclear. In this study, we combined the advantages of synchrotron radiation (SR) X-ray absorption near-edge structure (XANES) and high-resolution single-cell SR transmission X-ray microscopy (SR-TXM) with traditional analytical techniques to investigate translocation, precise degraded species/ratio, and correlation between the degradation and toxicity levels of polyvinylpyrrolidone-modified 2H-phase MoS2 nanosheets (MoS2-PVP NSs). These NSs demonstrated different biodegradability levels in biomicroenvironments with H2O2, catalase, and human myeloperoxidase (hMPO) (H2O2 < catalase < hMPO). The effects of NSs and their biodegraded byproducts on cell viability and 3D translocation at the single-cell level were also assessed. Toxicity and translocation in mice via intravenous (i.v.), intraperitoneal (i.p.), and intragastric (i.g.) administration routes guided by fluorescence (FL) imaging were investigated within the tested dosage. After i.g. administration, NSs accumulated in the gastrointestinal organs and were excreted from feces within 48 h. After i.v. injection, NSs showed noticeable clearance due to their decreased accumulation in the liver and spleen within 30 days when compared with that in the i.p. group, which exhibited slight accumulation in the spleen. This work paves the way for understanding the biological behaviors of nano-MoS2 using SR techniques that provide more opportunities for future applications.
机译:Nano-MoS2已被广泛研究材料科学和生物医学。接触不同的方法对他们的影响易位,生物安全,biotransformation-related降解性仍不清楚。同步加速器辐射的优点(SR) x射线吸收(黄嘌呤),靠近边缘结构高分辨率的单细胞SR x射线传播与传统分析显微镜(SR-TXM)技术调查易位,精确退化的物种/比率和相关性的退化和毒性水平polyvinylpyrrolidone-modified 2 h-phase二硫化钼nanosheets (MoS2-PVP NSs)。不同的生物降解能力水平biomicroenvironments与过氧化氢、过氧化氢酶和人类髓过氧化物酶(hMPO)过氧化氢酶(过氧化氢<

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