Fluorescence Imaging Group, Departamento de Física de Materiales , Universidad Autónoma de Madrid , Madrid 28049 , Spain.
Nanobiology Group , Instituto Ramón y Cajal de Investigación Sanitaria, IRYCIS , Ctra. Colmenar km. 9.100 , Madrid 28034 , Spain.
ACS Nano. 2018 May 22;12(5):4362-4368. doi: 10.1021/acsnano.7b09189. Epub 2018 May 2.
Advanced diagnostic procedures are required to satisfy the continuously increasing demands of modern biomedicine while also addressing the need for cost reduction in public health systems. The development of infrared luminescence-based techniques for in vivo imaging as reliable alternatives to traditional imaging enables applications with simpler and more cost-effective apparatus. To further improve the information provided by in vivo luminescence images, the design and fabrication of enhanced infrared-luminescent contrast agents is required. In this work, we demonstrate how simple dopant engineering can lead to infrared-emitting rare-earth-doped nanoparticles with tunable (0.1-1.5 ms) and medium-independent luminescence lifetimes. The combination of these tunable nanostructures with time-gated infrared imaging and time domain analysis is employed to obtain multiplexed in vivo images that are used for complex biodistribution studies.
先进的诊断程序是必需的,以满足现代生物医学不断增长的需求,同时也满足公共卫生系统降低成本的需求。开发基于红外发光的技术用于活体成像是对传统成像的可靠替代,能够应用于更简单、更具成本效益的仪器。为了进一步提高活体发光图像提供的信息,需要设计和制造增强型红外发光对比剂。在这项工作中,我们展示了简单的掺杂工程如何导致可调谐(0.1-1.5ms)和中等独立发光寿命的红外发射稀土掺杂纳米粒子。将这些可调谐结构与时间门控红外成像和时域分析相结合,用于获得用于复杂生物分布研究的复用活体图像。