X-ray Science Division, Advanced Photon Source, X-ray Science Division, Argonne National Laboratory , Argonne, Illinois 60439, United States.
ACS Appl Mater Interfaces. 2017 Jul 12;9(27):22268-22277. doi: 10.1021/acsami.7b05859. Epub 2017 Jun 27.
Herein, we describe a novel multifunctional metal-organic framework (MOF) materials platform that displays both porosity and tunable emission properties as a function of the metal identity (Eu, Nd, and tuned compositions of Nd/Yb). Their emission collectively spans the deep red to near-infrared (NIR) spectral region (∼614-1350 nm), which is highly relevant for in vivo bioimaging. These new materials meet important prerequisites as relevant to biological processes: they are minimally toxic to living cells and retain structural integrity in water and phosphate-buffered saline. To assess their viability as optical bioimaging agents, we successfully synthesized the nanoscale Eu analog as a proof-of-concept system in this series. In vitro studies show that it is cell-permeable in individual RAW 264.7 mouse macrophage and HeLa human cervical cancer tissue culture cells. The efficient discrimination between the Eu emission and cell autofluorescence was achieved with hyperspectral confocal fluorescence microscopy, used here for the first time to characterize MOF materials. Importantly, this is the first report that documents the long-term conservation of the intrinsic emission in live cells of a fluorophore-based MOF to date (up to 48 h). This finding, in conjunction with the materials' very low toxicity, validates the biocompatibility in these systems and qualifies them as promising for use in long-term tracking and biodistribution studies.
在此,我们描述了一种新型多功能金属有机骨架(MOF)材料平台,该平台具有多孔性和可调发射特性,其功能取决于金属种类(Eu、Nd 和可调的 Nd/Yb 组成)。它们的发射光谱共同覆盖了深红色到近红外(NIR)光谱区域(约 614-1350nm),这与体内生物成像高度相关。这些新材料符合与生物学过程相关的重要前提条件:它们对活细胞的毒性最小,并且在水和磷酸盐缓冲盐水中保持结构完整性。为了评估它们作为光学生物成像剂的可行性,我们成功地合成了纳米级 Eu 类似物作为该系列中的概念验证系统。体外研究表明,它可穿透单个 RAW 264.7 小鼠巨噬细胞和 HeLa 人宫颈癌组织培养细胞。使用高光谱共聚焦荧光显微镜实现了 Eu 发射与细胞自发荧光之间的有效区分,这是首次在这里用于表征 MOF 材料。重要的是,这是迄今为止第一个记录基于荧光团的 MOF 中内在发射在活细胞中长期保存的报告(长达 48 小时)。这一发现,加上材料的极低毒性,验证了这些系统的生物相容性,并使它们有资格用于长期跟踪和生物分布研究。