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基于氩气封闭液滴的 3D 微流控芯片在线与时间分辨 ICPMS 联用测定镉离子暴露的单个细胞中镉和锌。

Argon Enclosed Droplet Based 3D Microfluidic Device Online Coupled with Time-Resolved ICPMS for Determination of Cadmium and Zinc in Single Cells Exposed to Cadmium Ion.

机构信息

Key Laboratory of Analytical Chemistry for Biology and Medicine (Ministry of Education), Department of Chemistry, Wuhan University, Wuhan 430072, China.

出版信息

Anal Chem. 2020 Oct 6;92(19):13550-13557. doi: 10.1021/acs.analchem.0c03194. Epub 2020 Sep 16.

DOI:10.1021/acs.analchem.0c03194
PMID:32883069
Abstract

Time-resolved (TRA)-ICPMS has become a booming subfield of single-cell analysis tools in recent years, while generation of single cells remains the major challenge. Microfluidic devices reveal their great capability and potential in encapsulation of single cells into water droplets. However, current strategies to pinch off droplets require a specific oil phase, which is not compatible to conventional ICPMS and makes the signal of cells in the water phase susceptible. Herein, we built a 3D water-in-gas microfluidic device (3D W/G MFD) with commercially available components, producing single cell droplet enclosed by argon gas. By simply tuning the flow rate of gas and water, the droplets were generated to encapsulate single cells, which significantly reduced the probability of the single signal coming from multiple cells by 1 or 2 orders of magnitude compared to direct injection. The developed oil-free 3D W/G MFD was more friendly to online coupling with TRA-ICPMS than water-in-oil devices. The effect of Cd on HepG2 cells was studied by single cell detecting total Zn with 3D W/G MFD-TRA-ICPMS, and the variation of labile Zn was explored by flow cytometry with an N-(6-methoxy-8-quinolyl)-p-toluenesulfonamide probe. To the best of our knowledge, this work pioneered the exploration of variation in cellular metal content and speciation at the single-cell level, compensating for the deficiency of speciation analysis based on TRA-ICPMS and providing new insights into exploring the complexity of biology.

摘要

近年来,时间分辨(TRA)-ICPMS 已成为单细胞分析工具的一个热门分支,而单细胞的生成仍然是主要挑战。微流控设备在将单细胞封装到液滴中方面显示出了巨大的能力和潜力。然而,目前将液滴滴断的策略需要特定的油相,这与传统的 ICPMS 不兼容,并且使水相中的细胞信号容易受到影响。在此,我们使用市售组件构建了一种 3D 气-水微流控装置(3D W/G MFD),产生由氩气包围的单细胞液滴。通过简单地调整气体和水的流速,生成液滴以封装单细胞,与直接注射相比,这显著将单个信号来自多个细胞的概率降低了 1 到 2 个数量级。与水包油装置相比,开发的无油 3D W/G MFD 更适合与 TRA-ICPMS 在线耦合。使用 3D W/G MFD-TRA-ICPMS 对单个细胞进行总 Zn 检测研究 Cd 对 HepG2 细胞的影响,并使用 N-(6-甲氧基-8-喹啉基)-对甲苯磺酰胺探针通过流式细胞术探索可利用 Zn 的变化。据我们所知,这项工作开创了在单细胞水平上探索细胞金属含量和形态变化的先河,弥补了基于 TRA-ICPMS 的形态分析的不足,并为探索生物学的复杂性提供了新的视角。

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