Centre for Ion Beam Applications, Department of Physics, National University of Singapore, Singapore, Singapore.
Division of Radiation Oncology, National Cancer Centre Singapore, Singapore, Singapore.
Nat Commun. 2021 Aug 2;12(1):4657. doi: 10.1038/s41467-021-25004-9.
Correlative imaging and quantification of intracellular nanoparticles with the underlying ultrastructure is crucial for understanding cell-nanoparticle interactions in biological research. However, correlative nanoscale imaging of whole cells still remains a daunting challenge. Here, we report a straightforward nanoscopic approach for whole-cell correlative imaging, by simultaneous ionoluminescence and ultrastructure mapping implemented with a highly focused beam of alpha particles. We demonstrate that fluorescent nanodiamonds exhibit fast, ultrabright and stable emission upon excitation by alpha particles. Thus, by using fluorescent nanodiamonds as imaging probes, our approach enables quantification and correlative localization of single nanodiamonds within a whole cell at sub-30 nm resolution. As an application example, we show that our approach, together with Monte Carlo simulations and radiobiological experiments, can be employed to provide unique insights into the mechanisms of nanodiamond radiosensitization at the single whole-cell level. These findings may benefit clinical studies of radio-enhancement effects by nanoparticles in charged-particle cancer therapy.
用相关的成像和定量方法来研究细胞内的纳米颗粒与潜在的超微结构,这对于理解生物研究中细胞-纳米颗粒的相互作用至关重要。然而,对整个细胞的相关纳米尺度成像仍然是一个艰巨的挑战。在这里,我们报告了一种简单的用于全细胞相关成像的纳米尺度方法,通过同步离子发光和利用高度聚焦的阿尔法粒子束实现的超微结构成像。我们证明,荧光纳米金刚石在被阿尔法粒子激发时会表现出快速、超高亮度和稳定的发射。因此,通过使用荧光纳米金刚石作为成像探针,我们的方法可以在亚 30nm 的分辨率下对整个细胞内的单个纳米金刚石进行定量和相关定位。作为一个应用实例,我们表明,我们的方法,结合蒙特卡罗模拟和放射生物学实验,可以用于在单个整个细胞水平上提供对纳米金刚石放射增敏作用机制的独特见解。这些发现可能有益于在带电粒子癌症治疗中利用纳米颗粒进行放射增强效应的临床研究。