ZJU-SCNU Joint Research Center of Photonics, Centre for Optical and Electromagnetic Research, South China Academy of Advanced Optoelectronics, South China Normal University-SCNU, 510006 Guangzhou, P. R. China.
Theranostics. 2013 Mar 23;3(5):306-16. doi: 10.7150/thno.6007. Print 2013.
Relatively low quantum yield (QY), time-consuming scanning and strong absorption of light in tissue are some of the issues present in the development of upconversion nanoparticles (UCNPs) for biomedical applications. In this paper we systematically optimize several aspects of optical excitation of UCNPs to improve their applicability in bioimaging and biotherapy. A novel multi-photon evanescent wave (EW) excitation modality is proposed for UCNP-based microscopy. The scanning-free, ultrahigh contrast and high spatiotemporal resolution method could simultaneously track a few particles in a large area with a speed of ³⁺up to 350 frames per second. The HeLa cancer cell membrane imaging was successfully performed using NaYF₄: 20% Yb³⁺/2Er³⁺ targeting nanoparticles. Studies with different tissues were made to illustrate the impact of optical property parameters on the deep imaging ability of 920-nm band excitation. In the experiments a semiconductor laser with a 920 nm wavelength was used to excite UCNPs in tissue phantom at five depths. Our experimental and computational results have shown that in UCNP-based diffusion optical imaging with 920-nm laser excitation could lead to larger imaging depth range compared to traditional 974-nm excitation in a wide dynamic range of tissue species. As the QY is power density dependent, a pulsed laser is proposed to improve the QY of UCNPs. This proposal is promising in drastically increasing the imaging depth and efficiency of photodynamic therapy.
相对较低的量子产率(QY)、耗时的扫描以及组织中光的强吸收是开发用于生物医学应用的上转换纳米粒子(UCNP)所面临的一些问题。在本文中,我们系统地优化了 UCNP 的光学激发的几个方面,以提高其在生物成像和光疗中的适用性。提出了一种用于基于 UCNP 的显微镜的新型多光子消逝波(EW)激发模式。这种无需扫描、超高对比度和高时空分辨率的方法可以以高达每秒 350 帧的速度同时在大面积上跟踪几个粒子。使用靶向 NaYF₄:20% Yb³⁺/2Er³⁺的纳米粒子成功地对 HeLa 癌细胞膜进行了成像。通过不同组织的研究说明了光学特性参数对 920nm 波段激发的深层成像能力的影响。在实验中,使用波长为 920nm 的半导体激光在组织模拟体中的五个深度处激发 UCNP。我们的实验和计算结果表明,与传统的 974nm 激发相比,在 920nm 激光激发的基于 UCNP 的扩散光学成像中,可以在更宽的组织种类动态范围内实现更大的成像深度范围。由于 QY 与功率密度有关,因此提出了一种脉冲激光来提高 UCNP 的 QY。该方案有望在大幅增加光动力治疗的成像深度和效率方面具有广阔的前景。