Ian Wark Research Institute, University of South Australia, Mawson Lakes Campus, Mawson Lakes, Adelaide, SA 5095, Australia.
Nanoscale. 2014 Aug 21;6(16):9774-82. doi: 10.1039/c4nr02100b. Epub 2014 Jul 9.
The next generation of therapeutic nanoparticles in the treatment of cancer incorporate specific targeting. There is implicit importance in understanding penetration of targeted nanomedicines within tumour tissues via accurate and quantitative temporospatial measurements. In this study we demonstrate the potential of state-of-the-art synchrotron X-ray fluorescence microscopy (XFM) to provide such insights. To this end, quantitative mapping of the distribution of transferrin-conjugated gold nanoparticles inside multicellular tumour spheroids was achieved using XFM and compared with qualitative data obtained using reflectance confocal microscopy. Gold nanoparticles conjugated with human transferrin with a narrow size-distribution and high binding affinity to tumour cells were prepared as confirmed by cellular uptake studies performed on 2D monolayers. Although the prepared 100 nm transferrin-conjugated gold nanoparticles had high targeting capability to cancer cells, penetration inside multicellular spheroids was limited even after 48 hours as shown by the quantitative XFM measurements. The rapid, quantitative and label-free nature of state-of-the-art synchrotron XFM make it an ideal technology to provide the structure-activity relationship understanding urgently required for developing the next generation of immuno-targeted nanomedicines.
下一代治疗癌症的治疗性纳米粒子包含特定的靶向性。理解靶向纳米药物通过准确和定量的时空测量在肿瘤组织中的穿透性具有隐含的重要性。在这项研究中,我们展示了最先进的同步加速器 X 射线荧光显微镜(XFM)提供这种见解的潜力。为此,使用 XFM 实现了转铁蛋白结合的金纳米粒子在多细胞肿瘤球体内部分布的定量映射,并与使用反射共焦显微镜获得的定性数据进行了比较。通过在 2D 单层上进行的细胞摄取研究证实,制备了具有窄尺寸分布和与肿瘤细胞高结合亲和力的人转铁蛋白结合的金纳米粒子。尽管制备的 100nm 转铁蛋白结合的金纳米粒子对癌细胞具有高靶向性,但即使在 48 小时后,穿过多细胞球体的穿透性仍然有限,这是通过定量 XFM 测量得出的。最先进的同步加速器 XFM 的快速、定量和无标记性质使其成为提供开发下一代免疫靶向纳米药物所需的结构-活性关系理解的理想技术。