...
首页> 外文期刊>Nanoscale >Simultaneous cathodoluminescence and electron microscopy cytometry of cellular vesicles labeled with fluorescent nanodiamonds
【24h】

Simultaneous cathodoluminescence and electron microscopy cytometry of cellular vesicles labeled with fluorescent nanodiamonds

机译:同时阴极发光和电子显微镜血细胞计数细胞囊泡的标记用荧光纳米金刚石

获取原文
获取原文并翻译 | 示例

摘要

Light and Transmission Electron Microscopies (LM and TEM) hold potential in bioimaging owing to the advantages of fast imaging of multiple cells with LM and ultrastructure resolution offered by TEM. Integrated or correlated LM and TEM are the current approaches to combine the advantages of both techniques. Here we propose an alternative in which the electron beam of a scanning TEM (STEM) is used to excite concomitantly the luminescence of nanoparticle labels (a process known as cathodoluminescence, CL), and image the cell ultrastructure. This CL-STEM imaging allows obtaining luminescence spectra and imaging ultrastructure simultaneously. We present a proof of principle experiment, showing the potential of this technique in image cytometry of cell vesicular components. To label the vesicles we used fluorescent diamond nanocrystals (nanodiamonds, NDs) of size approximate to 150 nm coated with different cationic polymers, known to trigger different internalization pathways. Each polymer was associated with a type of ND with a different emission spectrum. With CL-STEM, for each individual vesicle, we were able to measure (i) their size with nanometric resolution, (ii) their content in different ND labels, and realize intracellular component cytometry. In contrast to the recently reported organelle flow cytometry technique that requires cell sonication, CL-STEM-based image cytometry preserves the cell integrity and provides a much higher resolution in size. Although this novel approach is still limited by a low throughput, the automatization of data acquisition and image analysis, combined with improved intracellular targeting, should facilitate applications in cell biology at the subcellular level.
机译:光和透射电子显微镜(LM和TEM)潜力bioimaging由于多个单元的快速成像的优点LM和超微结构提供的分辨率TEM。当前方法的优点结合起来这两种技术。的电子束扫描透射电镜(茎)用于激发与此同时纳米颗粒的发光标签(一个过程被称为阴极发光,CL)和图像细胞超微结构。获得发光光谱和成像同时超微结构。原理实验,显示的潜力这种技术在图像细胞的血细胞计数水泡组件。使用荧光钻石纳米晶体(纳米金刚石,NDs) 150纳米的大小近似涂上不同的阳离子聚合物,已知触发不同的内化途径。聚合物与一个类型的ND有关不同的发射光谱。每个泡,我们能够测量(我)nanometric分辨率的大小,(2)其内容在不同的ND标签,实现细胞内的组件血细胞计数。最近报道的细胞器流式细胞术技术要求细胞声波降解法,CL-STEM-based血细胞计数保存细胞图像完整性和提供了一个更高的分辨率大小。低吞吐量有限,自动化数据采集和图像分析的总和改进的细胞内定位,应该便于应用在细胞生物学亚细胞水平。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号