Department of Physics, National Dong Hwa University, Hualien, Taiwan.
Institute of Physics, Academia Sinica, Taipei, Taiwan.
Sci Rep. 2022 Mar 29;12(1):5331. doi: 10.1038/s41598-022-09317-3.
Hybrid core-shell nanodiamond-gold nanoparticles were synthesized and characterized as a novel multifunctional material with tunable and tailored properties for multifunctional biomedical applications. The combination of nanostructured gold and nanodiamond properties afford new options for optical labeling, imaging, sensing, and drug delivery, as well as targeted treatment. ND@Au core-shell nanoparticles composed of nanodiamond (ND) core doped with Si vacancies (SiV) and Au shell were synthesized and characterized in terms of their biomedical applications. Several bioimaging modalities based on the combination of optical and spectroscopic properties of the hybrid nano-systems are demonstrated in cellular and developing zebrafish larvae models. The ND@Au nanoparticles exhibit isolated ND's Raman signal of sp bonded carbon, one-photon fluorescence of SiV with strong zero-phonon line at 740 nm, two-photon excited fluorescence of nanogold with short fluorescence lifetime and strong absorption of X-ray irradiation render them possible imaging agent for Raman mapping, Fluorescence imaging, two-photon Fluorescence Lifetime Imaging (TP-FLIM) and high-resolution hard-X-ray microscopy in biosystems. Potential combination of the imaging facilities with other theranostic functionalities is discussed.
杂交核壳纳米金刚石-金纳米粒子被合成并表征为一种具有可调谐和定制特性的新型多功能材料,可用于多功能生物医学应用。纳米结构金和纳米金刚石特性的结合为光学标记、成像、传感和药物输送以及靶向治疗提供了新的选择。由掺杂硅空位(SiV)的纳米金刚石(ND)核和 Au 壳组成的 ND@Au 核壳纳米粒子被合成并在生物医学应用方面进行了表征。在细胞和发育中的斑马鱼幼虫模型中,展示了几种基于混合纳米系统光学和光谱特性结合的生物成像模式。ND@Au 纳米粒子表现出孤立的 sp 键合碳的拉曼信号、SiV 的单光子荧光,其在 740nm 处具有强零声子线、具有短荧光寿命和强烈 X 射线吸收的纳米金的双光子激发荧光,使它们成为生物系统中 Raman 映射、荧光成像、双光子荧光寿命成像(TP-FLIM)和高分辨率硬 X 射线显微镜的可能成像剂。讨论了成像功能与其他治疗功能的潜在组合。