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Designed Synthesis of CeO2 Nanorods and Nanowires for Studying Toxicological Effects of High Aspect Ratio Nanomaterials

机译:设计合成CeO2纳米棒和纳米线用于研究高纵横比纳米材料的毒理学作用

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摘要

While it has been shown that high aspect ratio nanomaterials like carbon nanotubes and TiO2 nanowires can induce toxicity by acting as fiber-like substances that damage the lysosome, it is not clear what the critical lengths and aspect ratios are that induce this type of toxicity. To answer this question, we synthesized a series of cerium oxide (CeO2) nanorods and nanowires with precisely controlled lengths and aspect ratios. Both phosphate and chloride ions were shown to play critical roles in obtaining these high aspect ratio nanostructures. High resolution TEM analysis shows that single crystalline CeO2 nanorodsanowires were formed along the [211] direction by an “oriented attachment” mechanism, followed by Ostwald ripening. The successful creation of a comprehensive CeO2 nanorodanowire combinatorial library allows, for the first time, the systematic study of the effect of aspect ratio on lysosomal damage, cytoxicity and IL-1β production by the human myeloid cell line (THP-1). This in vitro toxicity study demonstrated that at lengths ≥200 nm and aspect ratios ≥ 22, CeO2 nanorods induced progressive cytotoxicity and pro-inflammatory effects. The relatively low “critical” length and aspect ratio were associated with small nanorodanowire diameters (6–10 nm), which facilitates the formation of stacking bundles due to strong van der Waals and dipole-dipole attractions. Our results suggest that both length and diameter components of aspect ratio should be considered when addressing the cytotoxic effects of long aspect ratio materials.
机译:虽然已经表明,碳纳米管和TiO 2纳米线的高纵横比纳米材料可以通过用作损坏溶酶体的纤维状物质来诱导毒性,但目前尚不清楚临界长度和纵横比的是诱导这种类型的毒性。为了回答这个问题,我们合成了一系列具有精确控制的长度和纵横比的氧化铈(CeO2)纳米棒和纳米线。磷酸盐和氯离子离子均显示出在获得这些高纵横比纳米结构方面发挥关键作用。高分辨率TEM分析表明,通过“取向的附着”机制,沿[211]方向形成单晶CEO2纳米码/纳米线,然后通过“取向的附着”机构,然后进行骨干熟化。成功创建了全面的CEO2纳米棒/纳米线组合库允许纵横比对人髓细胞系(THP-1)产生纵横比对溶酶体损伤,细胞毒性和IL-1β产生的系统研究。这种体外毒性研究表明,在长度≥200nm和纵横比≥22时,CeO2纳米码诱导逐步细胞毒性和促炎作用。相对较低的“临界”长度和纵横比与小纳米棒/纳米线直径(6-10nm)相关,这有利于形成堆叠束,由于强van der Waals和偶极 - 偶极景点。我们的研究结果表明,在寻址长纵横比材料的细胞毒性作用时,应考虑宽高比的长度和直径分量。

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