Improved quantification of fluorescence in 3-D In a realistic mouse phantom

被引:2
|
作者
Srinivasan, Subhadra [1 ]
Pogue, Brian W. [1 ]
Davis, Scott [1 ]
Leblond, Frederic [2 ]
机构
[1] Dartmouth Coll, Thayer Sch Engn, Hanover, NH 03755 USA
[2] ART Adv Res Technol Inc, Saint Laurent, PQ H4S 2A4, Canada
关键词
fluorescence; Image reconstruction; small animal imaging;
D O I
10.1117/12.698636
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Advanced imaging systems and theoretical models have been developed to quantify fluorescence, and this theoretical framework involves numerical-based solutions of a set of coupled diffusion equations. One key to advancing this modality is the extension of the imaging into realistic tissue geometries, which can be dynamically updated from data from other high resolution modalities. Here we explore the quantification of fluorescence in a three-dimensional (3-D) mouse phantom tagged with heterogeneous optical properties. A finite element model for the diffusion equation was used to approximate light propagation along with Newton's method for image reconstruction, to recover 3-D images of fluorescent yield. Using measurements generated on a brain tumor in a mouse with 2% noise, our results show that only 11.4% of the expected fluorescent yield could be recovered without any prior knowledge about the spatial structure of the domain. Using a parameter reduction scheme based upon prior spatial information of the location and size of the tumor, 100% of the expected value could be estimated. These preliminary results indicate that image guided fluorescence spectroscopy has the ability to provide accurate fluorescence recovery, whereas diffuse imaging based recovery is limited in the ability to quantify.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] A new improved version of the realistic digital brain phantom
    Aubert-Broche, Berengere
    Evans, Alan C.
    Collins, Louis
    NEUROIMAGE, 2006, 32 (01) : 138 - 145
  • [22] 3-D ultrasound calibration using a phantom with reduced complexity
    Dandekar, S
    Molloy, J
    Hossack, JA
    2004 IEEE ULTRASONICS SYMPOSIUM, VOLS 1-3, 2004, : 2181 - 2184
  • [23] An Improved 3D Printed Cardiac Phantom
    Grice, Jared
    Green, Samantha
    Yuhas, Abigail
    JOURNAL OF NUCLEAR MEDICINE, 2020, 61
  • [24] 3D SEGMENTATION AND QUANTIFICATION OF MOUSE EMBRYONIC STEM CELLS IN FLUORESCENCE MICROSCOPY IMAGES
    Harder, Nathalie
    Bodnar, Megan
    Eils, Roland
    Spector, David L.
    Rohr, Karl
    2011 8TH IEEE INTERNATIONAL SYMPOSIUM ON BIOMEDICAL IMAGING: FROM NANO TO MACRO, 2011, : 216 - 219
  • [25] A phantom with reduced complexity for spatial 3-D ultrasound calibration
    Dandekar, S
    Li, YB
    Molloy, J
    Hossack, J
    ULTRASOUND IN MEDICINE AND BIOLOGY, 2005, 31 (08): : 1083 - 1093
  • [26] Realistic Numerical Modelling for 3-D brain stroke monitoring
    Rodriguez-Duarte, D. O.
    Tobon, J. A.
    Vipiana, F.
    2020 IEEE INTERNATIONAL SYMPOSIUM ON ANTENNAS AND PROPAGATION AND NORTH AMERICAN RADIO SCIENCE MEETING, 2020, : 1195 - 1196
  • [27] 3-D Fluorescence Properties of Petrochemical Wastewater
    Wu Jing
    Cao Zhi-ping
    Xie Chao-bo
    Sun Ya-nan
    Dai Chun-yan
    Xiang Xi
    SPECTROSCOPY AND SPECTRAL ANALYSIS, 2011, 31 (09) : 2437 - 2441
  • [28] Fabrication and characterization of a 3-D non-homogeneous tissue-like mouse phantom for optical imaging
    Avtzi, Stella
    Zacharopoulos, Athanasios
    Psycharakis, Stylianos
    Zacharakis, Giannis
    BIOPHOTONICS - RIGA 2013, 2013, 9032
  • [29] MICROCOMPUTER IMPLEMENTATION OF 3-D FLUORESCENCE SPECTROSCOPY
    SMITH, GC
    FENNESSY, EJ
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1988, 195 : 3 - COMP
  • [30] Identification, restoration in 3-D fluorescence microscopy
    Dieterlen, A
    Xu, C
    Haeberlé, O
    Hueber, N
    Malfara, R
    Colicchio, B
    Jacquey, S
    SIXTH INTERNATIONAL CONFERENCE ON CORRELATION OPTICS, 2003, 5477 : 105 - 113