Faklaris Orestis, Garrot Damien, Joshi Vandana, Druon Frédéric, Boudou Jean-Paul, Sauvage Thierry, Georges Patrick, Curmi Patrick A, Treussart François
Laboratoire de Photonique Quantique et Moléculaire, UMR CNRS 8537, Cachan, France.
Small. 2008 Dec;4(12):2236-9. doi: 10.1002/smll.200800655.
Diamond nanoparticles are promising photoluminescent probes for tracking intracellular processes, due to embedded, perfectly photostable color centers. In this work, the spontaneous internalization of such nanoparticles (diameter 25 nm) in HeLa cancer cells is investigated by confocal microscopy and time-resolved techniques. Nanoparticles are observed inside the cell cytoplasm at the single-particle and single-color-center level, assessed by time-correlation intensity measurements. Improvement of the nanoparticle signal-to-noise ratio inside the cell is achieved using a pulsed-excitation laser and time-resolved detection taking advantage of the long radiative lifetime of the color-center excited state as compared to cell autofluorescence. The internalization pathways are also investigated, with endosomal marking and colocalization analyses. The low colocalization ratio observed proves that nanodiamonds are not trapped in endosomes, a promising result in prospect of drug delivery by these nanoparticles. Low cytotoxicity of these nanoparticles in this cell line is also shown.
由于嵌入了具有完美光稳定性的色心,金刚石纳米颗粒有望成为用于追踪细胞内过程的光致发光探针。在这项工作中,通过共聚焦显微镜和时间分辨技术研究了此类纳米颗粒(直径25 nm)在HeLa癌细胞中的自发内化过程。通过时间相关强度测量,在单颗粒和单色心水平上观察到纳米颗粒存在于细胞质中。利用脉冲激发激光和时间分辨检测技术,与细胞自发荧光相比,利用色心激发态的长辐射寿命,提高了细胞内纳米颗粒的信噪比。还通过内体标记和共定位分析研究了内化途径。观察到的低共定位率证明纳米金刚石不会被困在内体中,这对于这些纳米颗粒用于药物递送而言是一个很有前景的结果。此外还表明这些纳米颗粒在该细胞系中的细胞毒性较低。