Zurbuchen Mark A, Lake Michael P, Kohan Sirus A, Leung Belinda, Bouchard Louis-S
1] Department of Materials Science and Engineering [2] California NanoSystems Institute [3] Western Institute of Nanoelectronics, Department of Electrical Engineering.
Sci Rep. 2013;3:2668. doi: 10.1038/srep02668.
There is a growing need for biolabels that can be used in both optical and electron microscopies, are non-cytotoxic, and do not photobleach. Such biolabels could enable targeted nanoscale imaging of sub-cellular structures, and help to establish correlations between conjugation-delivered biomolecules and function. Here we demonstrate a sub-cellular multi-modal imaging methodology that enables localization of inert particulate probes, consisting of nanodiamonds having fluorescent nitrogen-vacancy centers. These are functionalized to target specific structures, and are observable by both optical and electron microscopies. Nanodiamonds targeted to the nuclear pore complex are rapidly localized in electron-microscopy diffraction mode to enable "zooming-in" to regions of interest for detailed structural investigations. Optical microscopies reveal nanodiamonds for in-vitro tracking or uptake-confirmation. The approach is general, works down to the single nanodiamond level, and can leverage the unique capabilities of nanodiamonds, such as biocompatibility, sensitive magnetometry, and gene and drug delivery.
对可用于光学显微镜和电子显微镜、无细胞毒性且不发生光漂白的生物标记物的需求日益增长。此类生物标记物能够实现亚细胞结构的靶向纳米级成像,并有助于建立共轭递送的生物分子与功能之间的相关性。在此,我们展示了一种亚细胞多模态成像方法,该方法能够定位由具有荧光氮空位中心的纳米金刚石组成的惰性颗粒探针。这些探针经过功能化处理以靶向特定结构,并且在光学显微镜和电子显微镜下均可观察到。靶向核孔复合体的纳米金刚石在电子显微镜衍射模式下能够快速定位,以便“放大”到感兴趣的区域进行详细的结构研究。光学显微镜可显示纳米金刚石用于体外追踪或摄取确认。该方法具有通用性,可在单个纳米金刚石水平上发挥作用,并且能够利用纳米金刚石的独特性能,如生物相容性、灵敏的磁测量以及基因和药物递送。