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制造过程杂质对氮化硼纳米管毒性特征的影响。

Influence of Impurities from Manufacturing Process on the Toxicity Profile of Boron Nitride Nanotubes.

机构信息

Health Effects Laboratory Division, National Institute for Occupational Safety and Health, Morgantown, WV, 26505, USA.

Department of Physiology and Pharmacology, School of Medicine, West Virginia University, Morgantown, WV, 26506, USA.

出版信息

Small. 2022 Dec;18(52):e2203259. doi: 10.1002/smll.202203259. Epub 2022 Nov 14.

Abstract

The toxicity of boron nitride nanotubes (BNNTs) has been the subject of conflicting reports, likely due to differences in the residuals and impurities that can make up to 30-60% of the material produced based on the manufacturing processes and purification employed. Four BNNTs manufactured by induction thermal plasma process with a gradient of BNNT purity levels achieved through sequential gas purification, water and solvent washing, allowed assessing the influence of these residuals/impurities on the toxicity profile of BNNTs. Extensive characterization including infrared and X-ray spectroscopy, thermogravimetric analysis, size, charge, surface area, and density captured the alteration in physicochemical properties as the material went through sequential purification. The material from each step is screened using acellular and in vitro assays for evaluating general toxicity, mechanisms of toxicity, and macrophage function. As the material increased in purity, there are more high-aspect-ratio particulates and a corresponding distinct increase in cytotoxicity, nuclear factor-κB transcription, and inflammasome activation. There is no alteration in macrophage function after BNNT exposure with all purity grades. The cytotoxicity and mechanism of screening clustered with the purity grade of BNNTs, illustrating that greater purity of BNNT corresponds to greater toxicity.

摘要

氮化硼纳米管(BNNTs)的毒性一直是相互矛盾的报告的主题,这可能是由于制造工艺和所采用的净化方法的不同,使得残留物和杂质的含量高达 30-60%。通过顺序气体净化、水和溶剂洗涤,利用感应热等离子体工艺制造了 4 种 BNNTs,实现了 BNNT 纯度水平的梯度,从而可以评估这些残留物/杂质对 BNNTs 毒性特征的影响。广泛的特性分析包括红外和 X 射线光谱、热重分析、尺寸、电荷、表面积和密度,捕捉了材料在顺序净化过程中物理化学性质的变化。使用非细胞和体外检测方法对每个步骤的材料进行筛选,以评估一般毒性、毒性机制和巨噬细胞功能。随着材料纯度的提高,高纵横比颗粒的数量增加,细胞毒性、核因子-κB 转录和炎症小体激活也相应明显增加。所有纯度级别的 BNNT 暴露后,巨噬细胞功能均未发生改变。细胞毒性和筛选机制与 BNNTs 的纯度级聚类,表明 BNNTs 的纯度越高,毒性越大。

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