纳米颗粒
吸光度
自体荧光
材料科学
生物相容性
荧光
临床前影像学
荧光寿命成像显微镜
化学
纳米技术
体内
有机化学
色谱法
物理
生物技术
量子力学
生物
作者
Parinaz Fathi,Hailey J. Knox,Dinabandhu Sar,Indu Tripathi,Fatemeh Ostadhossein,Santosh K. Misra,Mandy B. Esch,Jefferson Chan,Dipanjan Pan
出处
期刊:ACS Nano
[American Chemical Society]
日期:2019-06-27
卷期号:13 (7): 7690-7704
被引量:73
标识
DOI:10.1021/acsnano.9b01201
摘要
Photoacoustic imaging has emerged as a promising imaging platform with a high tissue penetration depth. However, biodegradable nanoparticles, especially those for photoacoustic imaging, are rare and limited to a few polymeric agents. The development of such nanoparticles holds great promise for clinically translatable diagnostic imaging with high biocompatibility. Metabolically digestible and inherently photoacoustic imaging probes can be developed from nanoprecipitation of biliverdin, a naturally occurring heme-based pigment. The synthesis of nanoparticles composed of a biliverdin network, cross-linked with a bifunctional amine linker, is achieved where spectral tuning relies on the choice of reaction media. Nanoparticles synthesized in water or water containing sodium chloride exhibit higher absorbance and lower fluorescence compared to nanoparticles synthesized in 2-(N-morpholino)ethanesulfonic acid buffer. All nanoparticles display high absorbance at 365 and 680 nm. Excitation at near-infrared wavelengths leads to a strong photoacoustic signal, while excitation with ultraviolet wavelengths results in fluorescence emission. In vivo photoacoustic imaging experiments in mice demonstrated that the nanoparticles accumulate in lymph nodes, highlighting their potential utility as photoacoustic agents for sentinel lymph node detection. The biotransformation of these agents was studied using mass spectroscopy, and they were found to be completely biodegraded in the presence of biliverdin reductase, a ubiquitous enzyme found in the body. Degradation of these particles was also confirmed in vivo. Thus, the nanoparticles developed here are a promising platform for biocompatible biological imaging due to their inherent photoacoustic and fluorescent properties as well as their complete metabolic digestion.
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