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Localization and Relative Quantification of Carbon Nanotubes in Cells with Multispectral Imaging Flow Cytometry

机译:碳纳米管在细胞中的定位和相对定量的多光谱成像流式细胞仪

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摘要

Carbon-based nanomaterials, like carbon nanotubes (CNTs), belong to this type of nanoparticles which are very difficult to discriminate from carbon-rich cell structures and de facto there is still no quantitative method to assess their distribution at cell and tissue levels. What we propose here is an innovative method allowing the detection and quantification of CNTs in cells using a multispectral imaging flow cytometer (ImageStream, Amnis). This newly developed device integrates both a high-throughput of cells and high resolution imaging, providing thus images for each cell directly in flow and therefore statistically relevant image analysis. Each cell image is acquired on bright-field (BF), dark-field (DF), and fluorescent channels, giving access respectively to the level and the distribution of light absorption, light scattered and fluorescence for each cell. The analysis consists then in a pixel-by-pixel comparison of each image, of the 7,000-10,000 cells acquired for each condition of the experiment. Localization and quantification of CNTs is made possible thanks to some particular intrinsic properties of CNTs: strong light absorbance and scattering; indeed CNTs appear as strongly absorbed dark spots on BF and bright spots on DF with a precise colocalization.This methodology could have a considerable impact on studies about interactions between nanomaterials and cells given that this protocol is applicable for a large range of nanomaterials, insofar as they are capable of absorbing (and/or scattering) strongly enough the light.
机译:碳纳米管材料,如碳纳米管(CNTs),属于这种类型的纳米颗粒,很难与富碳细胞结构区分开,事实上,仍然没有定量方法可以评估它们在细胞和组织水平上的分布。我们在这里提出的是一种创新方法,允许使用多光谱成像流式细胞仪(ImageStream,Amnis)检测和定量细胞中的CNT。这种新开发的设备集成了细胞的高通量和高分辨率成像功能,因此可以直接为每个细胞提供流动中的图像,从而提供统计上相关的图像分析。在亮场(BF),暗场(DF)和荧光通道上获取每个细胞图像,从而分别访问每个细胞的光吸收,光散射和荧光的水平和分布。然后,分析包括针对每个实验条件获取的7,000-10,000个细胞的每个图像的逐像素比较。由于CNT的某些特定固有特性,使得CNT的定位和定量成为可能:强光吸收和散射;实际上,CNTs在高炉上表现为强吸收的黑点,而在DF上则表现为亮点,并具有精确的共定位。如果该方案适用于大范围的纳米材料,则该方法可能会对有关纳米材料与细胞之间相互作用的研究产生重大影响。它们能够足够强烈地吸收(和/或散射)光。

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