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作为用于显微镜术的多功能标记物的纳米金刚石

Nanodiamonds as multi-purpose labels for microscopy.

作者信息

Hemelaar S R, de Boer P, Chipaux M, Zuidema W, Hamoh T, Martinez F Perona, Nagl A, Hoogenboom J P, Giepmans B N G, Schirhagl R

机构信息

Groningen University, University Medical Center Groningen, Department of Biomedical Engineering, Antonius Deusinglaan 1, 9713, AW, Groningen, The Netherlands.

Groningen University, University Medical Center Groningen, Department of Cell Biology, Antonius Deusinglaan 1, 9713, AW, Groningen, The Netherlands.

出版信息

Sci Rep. 2017 Apr 7;7(1):720. doi: 10.1038/s41598-017-00797-2.

Abstract

Nanodiamonds containing fluorescent nitrogen-vacancy centers are increasingly attracting interest for use as a probe in biological microscopy. This interest stems from (i) strong resistance to photobleaching allowing prolonged fluorescence observation times; (ii) the possibility to excite fluorescence using a focused electron beam (cathodoluminescence; CL) for high-resolution localization; and (iii) the potential use for nanoscale sensing. For all these schemes, the development of versatile molecular labeling using relatively small diamonds is essential. Here, we show the direct targeting of a biological molecule with nanodiamonds as small as 70 nm using a streptavidin conjugation and standard antibody labelling approach. We also show internalization of 40 nm sized nanodiamonds. The fluorescence from the nanodiamonds survives osmium-fixation and plastic embedding making them suited for correlative light and electron microscopy. We show that CL can be observed from epon-embedded nanodiamonds, while surface-exposed nanoparticles also stand out in secondary electron (SE) signal due to the exceptionally high diamond SE yield. Finally, we demonstrate the magnetic read-out using fluorescence from diamonds prior to embedding. Thus, our results firmly establish nanodiamonds containing nitrogen-vacancy centers as unique, versatile probes for combining and correlating different types of microscopy, from fluorescence imaging and magnetometry to ultrastructural investigation using electron microscopy.

摘要

含有荧光氮空位中心的纳米金刚石作为生物显微镜中的一种探针越来越受到关注。这种关注源于:(i)对光漂白具有很强的抗性,从而允许延长荧光观察时间;(ii)使用聚焦电子束激发荧光(阴极发光;CL)以进行高分辨率定位的可能性;以及(iii)在纳米级传感方面的潜在用途。对于所有这些方案,使用相对较小的金刚石开发通用的分子标记至关重要。在这里,我们展示了使用链霉亲和素共轭和标准抗体标记方法,用小至70纳米的纳米金刚石直接靶向生物分子。我们还展示了40纳米大小纳米金刚石的内化。纳米金刚石的荧光在锇固定和塑料包埋后仍能保留,这使得它们适用于相关光镜和电子显微镜。我们表明可以从环氧树脂包埋的纳米金刚石中观察到CL,而表面暴露的纳米颗粒由于极高的金刚石二次电子产率,在二次电子(SE)信号中也很突出。最后,我们展示了在包埋前利用金刚石的荧光进行磁读出。因此,我们的结果牢固地确立了含有氮空位中心的纳米金刚石作为独特、通用的探针,可用于结合和关联不同类型的显微镜技术,从荧光成像和磁测量到使用电子显微镜的超微结构研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/581a/5429637/7d875af9e992/41598_2017_797_Fig1_HTML.jpg

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