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Microsc Res Tech. 2019 Jun;82(6):878-883. doi: 10.1002/jemt.23231. Epub 2019 Feb 15.
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1
Evaluation of enhanced darkfield microscopy and hyperspectral imaging for rapid screening of TiO and SiO nanoscale particles captured on filter media.增强暗场显微镜和高光谱成像技术在快速筛选过滤介质上捕获的 TiO 和 SiO 纳米颗粒中的应用评价。
Microsc Res Tech. 2021 Dec;84(12):2968-2976. doi: 10.1002/jemt.23856. Epub 2021 Jul 14.

本文引用的文献

1
Comparison of hyperspectral classification methods for the analysis of cerium oxide nanoparticles in histological and aqueous samples.用于分析组织学和水样品中氧化铈纳米粒子的高光谱分类方法比较。
J Microsc. 2018 Jul;271(1):69-83. doi: 10.1111/jmi.12696. Epub 2018 Apr 6.
2
Impact of Silver and Iron Nanoparticle Exposure on Cholesterol Uptake by Macrophages.银和铁纳米颗粒暴露对巨噬细胞摄取胆固醇的影响。
J Nanomater. 2015;2015. doi: 10.1155/2015/127235.
3
The Fate of Inhaled Nanoparticles: Detection and Measurement by Enhanced Dark-field Microscopy.吸入纳米颗粒的命运:通过增强暗场显微镜进行检测与测量
Toxicol Pathol. 2018 Jan;46(1):28-46. doi: 10.1177/0192623317732321. Epub 2017 Sep 20.
4
Hyperspectral data influenced by sample matrix: the importance of building relevant reference spectral libraries to map materials of interest.受样品基质影响的高光谱数据:构建相关参考光谱库以绘制感兴趣材料的重要性。
Microsc Res Tech. 2017 May;80(5):462-470. doi: 10.1002/jemt.22816. Epub 2017 Jan 31.
5
Biodistribution of inhaled metal oxide nanoparticles mimicking occupational exposure: a preliminary investigation using enhanced darkfield microscopy.模拟职业暴露的吸入金属氧化物纳米颗粒的生物分布:使用增强暗场显微镜的初步研究。
J Biophotonics. 2016 Oct;9(10):987-993. doi: 10.1002/jbio.201600125. Epub 2016 Aug 16.
6
Hyperspectral imaging of nanoparticles in biological samples: Simultaneous visualization and elemental identification.生物样本中纳米颗粒的高光谱成像:同时实现可视化和元素识别。
Microsc Res Tech. 2016 May;79(5):349-58. doi: 10.1002/jemt.22637. Epub 2016 Feb 11.
7
Identification of Metal Oxide Nanoparticles in Histological Samples by Enhanced Darkfield Microscopy and Hyperspectral Mapping.通过增强暗场显微镜和高光谱成像技术鉴定组织学样本中的金属氧化物纳米颗粒
J Vis Exp. 2015 Dec 8(106):e53317. doi: 10.3791/53317.
8
Intratracheally instilled titanium dioxide nanoparticles translocate to heart and liver and activate complement cascade in the heart of C57BL/6 mice.气管内滴注的二氧化钛纳米颗粒转移到心脏和肝脏,并在 C57BL/6 小鼠的心脏中激活补体级联反应。
Nanotoxicology. 2015;9(8):1013-22. doi: 10.3109/17435390.2014.996192. Epub 2015 May 20.
9
Hyperspectral microscopy as an analytical tool for nanomaterials.高光谱显微镜作为纳米材料的一种分析工具。
Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2015 Jul-Aug;7(4):565-79. doi: 10.1002/wnan.1330. Epub 2015 Jan 22.
10
Influence of particle size on persistence and clearance of aerosolized silver nanoparticles in the rat lung.颗粒大小对大鼠肺中雾化银纳米颗粒的存留和清除的影响。
Toxicol Sci. 2015 Apr;144(2):366-81. doi: 10.1093/toxsci/kfv005. Epub 2015 Jan 9.

通过增强暗场显微镜和高光谱成像对混合纤维素酯滤膜上捕获的纳米颗粒进行可视化的样品制备方法。

Sample preparation method for visualization of nanoparticulate captured on mixed cellulose ester filter media by enhanced darkfield microscopy and hyperspectral imaging.

作者信息

Neu-Baker Nicole M, Eastlake Adrienne C, Brenner Sara A

机构信息

College of Nanoscale Science, Nanobioscience Constellation, State University of New York (SUNY) Polytechnic Institute, College of Nanoscale Science, New York.

Education and Information Division (EID), National Institute for Occupational Safety and Health (NIOSH), Cincinnati, Ohio.

出版信息

Microsc Res Tech. 2019 Jun;82(6):878-883. doi: 10.1002/jemt.23231. Epub 2019 Feb 15.

DOI:10.1002/jemt.23231
PMID:30768825
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6520123/
Abstract

A significant hurdle in conducting effective health and safety hazard analysis and risk assessment for the nanotechnology workforce is the lack of a rapid method for the direct visualization and analysis of filter media used to sample nanomaterials from work environments that represent potential worker exposure. Current best-known methods include transmission electron microscopy (TEM) coupled with energy dispersive x-ray spectroscopy (EDS) for elemental identification. TEM-EDS is considerably time-, cost-, and resource-intensive, which may prevent timely health and safety recommendations and corrective actions. A rapid screening method is currently being explored using enhanced darkfield microscopy with hyperspectral imaging (EDFM-HSI). For this approach to be effective, rapid, and easy, sample preparation that is amenable to the analytical technique is needed. Here, we compare the sample preparation steps for mixed cellulose ester (MCE) filter media specified in NIOSH Method 7400-Asbestos and Other Fibers by Phase Contrast Microscopy (PCM)-against a new method, which involves saturation of the filter media with acetone. NIOSH Method 7400 was chosen as a starting point since it is an established technique for preparing transparent MCE filters for optical microscopy. Limitations in this method led to the development and comparison of a new method. The new method was faster, easier, and rendered filters more transparent, resulting in improved visualization and analysis of nanomaterials via EDFM-HSI. This new method is suitable for a rapid screening protocol due to its speed, ease of use, and the improvement in image acquisition and analysis.

摘要

对纳米技术从业者进行有效的健康与安全危害分析及风险评估的一个重大障碍是,缺乏一种快速方法来直接可视化和分析用于从代表潜在工人接触情况的工作环境中采集纳米材料的过滤介质。目前最知名的方法包括透射电子显微镜(TEM)与能量色散X射线光谱仪(EDS)联用进行元素识别。TEM-EDS在时间、成本和资源方面要求颇高,这可能会妨碍及时提出健康与安全建议及采取纠正措施。目前正在探索一种使用增强暗场显微镜与高光谱成像(EDFM-HSI)的快速筛选方法。为使这种方法有效、快速且简便,需要有适合该分析技术的样品制备方法。在此,我们将美国国家职业安全与健康研究所(NIOSH)方法7400(通过相差显微镜法(PCM)检测石棉和其他纤维)中规定的混合纤维素酯(MCE)过滤介质的样品制备步骤,与一种新方法进行比较,新方法是用丙酮使过滤介质饱和。选择NIOSH方法7400作为起点是因为它是一种为光学显微镜制备透明MCE过滤器的既定技术。该方法的局限性促使了一种新方法的开发与比较。新方法更快、更简便,能使过滤器更透明,从而通过EDFM-HSI改进对纳米材料的可视化和分析。由于其速度、易用性以及在图像采集和分析方面的改进,这种新方法适用于快速筛选方案。