Development of NIR-II small animal living fluorescence imaging system

被引:0
|
作者
Wu Dan-Dan [1 ]
Pan Li [2 ]
Zhou Zhe [1 ]
Fu Wei-Wei [1 ,2 ]
Zhu Hai-Long [2 ]
Dong Yue-Fang [1 ]
机构
[1] Chinese Acad Sci, Suzhou Inst Biomed Engn Technol, Med Imaging Technol Lab, Suzhou 215163, Peoples R China
[2] Suzhou Guoke Shiqing Med Technol Co Ltd, Suzhou 215163, Peoples R China
基金
国家重点研发计划;
关键词
imaging system; fluorescence imaging; second near-infrared window; small living animal; PHOTODETECTOR;
D O I
10.7498/aps.73.20231910
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Fluorescence imaging technology can dynamically monitor gene and cell changing in live animals in real-time, with advantages such as high sensitivity, high resolution, and non-invasion. In recent years, it has been widely used in tumor research, gene expression research, drug development research, etc. The imaging wavelength of traditional fluorescence imaging technology falls in the visible and near-infrared-I region. Due to the absorption and scattering effects of light propagation in biological tissues, and the inherent fluorescence of biological tissues, traditional fluorescence imaging techniques still have significant limitations in penetration depth and image signal-to-noise ratio. In this work, a highly integrated near-infrared-II (NIR-II, 900-1880 nm) small animal living fluorescence imaging system is developed by taking the advantages of NIR-II fluorescence imaging technology, such as low absorption, low scattering, and deep penetration depth in biological tissues. And a method of enhancing and correcting fluorescence image is proposed to optimize fluorescence images. In this work, the biological tissue simulation experiments and live animal experiments are conducted to test the performance and imaging effect of the system. The experimental results show that the system has the advantages of deep penetration depth, high signal-to-noise ratio, and high sensitivity. Combined with commercial indocyanine green reagents and aggregation-induced emission dyes, this system can monitor the distribution of blood vessels in real time and continuously monitor deep tissues and organs in mice, and conduct the dynamically monitoring research in living mice in a conscious state. This helps to promote tumor research and drug development research in the field of biomedical imaging to enter a new stage.
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页数:10
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共 26 条
  • [21] Welsher K, 2009, NAT NANOTECHNOL, V4, P773, DOI [10.1038/nnano.2009.294, 10.1038/NNANO.2009.294]
  • [22] Sub-bandgap absorption and photo-response of molybdenum heavily doped black silicon fabricated by a femtosecond laser
    Yang, Yang
    Zhao, Ji-Hong
    Li, Chao
    Chen, Qi-Dai
    Chen, Zhan-Guo
    Sun, Hong-Bo
    [J]. OPTICS LETTERS, 2021, 46 (13) : 3300 - 3303
  • [23] Youngblood N, 2015, NAT PHOTONICS, V9, P247, DOI [10.1038/nphoton.2015.23, 10.1038/NPHOTON.2015.23]
  • [24] Activatable NIR-II organic fluorescent probes for bioimaging
    Zhang, Xiaoning
    Li, Shasha
    Ma, Huizhen
    Wang, Hao
    Zhang, Ruiping
    Zhang, Xiao-Dong
    [J]. THERANOSTICS, 2022, 12 (07): : 3345 - 3371
  • [25] Intraoperative fluorescence molecular imaging accelerates the coming of precision surgery in China
    Zhang, Zeyu
    He, Kunshan
    Chi, Chongwei
    Hu, Zhenhua
    Tian, Jie
    [J]. EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2022, 49 (08) : 2531 - 2543
  • [26] Zwitterionic AIEgens: Rational Molecular Design for NIR-II Fluorescence Imaging-Guided Synergistic Phototherapy
    Zhu, Wei
    Kang, Miaomiao
    Wu, Qian
    Zhang, Zhijun
    Wu, Yi
    Li, Chunbin
    Li, Kai
    Wang, Lei
    Wang, Dong
    Tang, Ben Zhong
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2021, 31 (03)