Mettenbrink Evan M, Yang Wen, Wilhelm Stefan
Stephenson School of Biomedical Engineering, University of Oklahoma, Norman, Oklahoma, 73019, USA.
Stephenson Cancer Center, University of Oklahoma Health Sciences Center, Oklahoma City, Oklahoma, 73104, USA.
Adv Photonics Res. 2022 Dec;3(12). doi: 10.1002/adpr.202200098. Epub 2022 Sep 9.
Bioimaging enables the spatiotemporal visualization of biological processes at various scales empowered by a range of different imaging modalities and contrast agents. Upconversion nanoparticles (UCNPs) represent a distinct type of such contrast agents with the potential to transform bioimaging due to their unique optical properties and functional design flexibilities. This review explores and discusses the opportunities, challenges, and limitations that UCNPs exhibit as bioimaging probes and highlights applications with spatial dimensions ranging from the single nanoparticle level to cellular, tissue, and whole animal imaging. We further summarized recent advancements in bioimaging applications enabled by UCNPs, including super-resolution techniques and multimodal imaging methods, and provide a perspective on the future potential of UCNP-based technologies in bioimaging research and clinical translation. This review may provide a valuable resource for researchers interested in exploring and applying UCNP-based bioimaging technologies.
生物成像能够在一系列不同成像模式和造影剂的助力下,对各种尺度的生物过程进行时空可视化。上转换纳米粒子(UCNPs)是这类造影剂中的一种独特类型,因其独特的光学性质和功能设计灵活性而具有改变生物成像的潜力。本综述探讨并讨论了UCNPs作为生物成像探针所展现出的机遇、挑战和局限性,并重点介绍了从单个纳米粒子水平到细胞、组织和全动物成像等不同空间维度的应用。我们进一步总结了UCNPs在生物成像应用方面的最新进展,包括超分辨率技术和多模态成像方法,并对基于UCNP的技术在生物成像研究和临床转化中的未来潜力提出了展望。本综述可能为有兴趣探索和应用基于UCNP的生物成像技术的研究人员提供有价值的资源。