Fully adaptive FEM based fluorescence optical tomography from time-dependent measurements with area illumination and detection

被引:42
作者
Joshi, Amit [1 ]
Bangerth, Wolfgang
Hwang, Kildong
Rasmussen, John C.
Sevick-Muraca, Eva M.
机构
[1] Baylor Coll Med, Dept Radiol, Div Mol Imaging, Houston, TX 77030 USA
[2] Texas A&M Univ, Dept Math, College Stn, TX 77840 USA
关键词
D O I
10.1118/1.2190330
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Using an area-illumination and area-detection scheme, we acquire fluorescence frequency domain measurements from a tissue phantom with an embedded fluorescent target and obtain tomographic reconstructions of the interior fluorescence absorption map with an adaptive finite element based scheme. The tissue phantom consisted of a clear acrylic cubic box (512 ml) filled with 1% Liposyn solution, while the fluorescent targets were 5 mm diameter glass bulbs filled with 1 mu M Indocyanine Green dye solution in 1% Liposyn. Frequency domain area illumination and detection employed a planar excitation source using an expanded intensity modulated (100 MHz) 785 nm diode laser light and a gain modulated image intensified charge coupled device camera, respectively. The excitation pattern was characterized by isolating the singly scattered component with cross polarizers and was input into a dual adaptive finite element-based scheme for three dimensional reconstructions of fluorescent targets embedded beneath the phantom surface. Adaptive mesh refinement techniques allowed efficient simulation of the incident excitation light and the reconstruction of fluorescent targets buried at the depths of 1 and 2 cm. The results demonstrate the first clinically relevant noncontact fluorescence tomography with adaptive finite element methods. (c) 2006 American Association of Physicists in Medicine.
引用
收藏
页码:1299 / 1310
页数:12
相关论文
共 37 条
[1]  
BANGERTH W, 2005, PROGR BIOMED OPTICS, V6, P318
[2]  
BANGERTH W, 2002, THESIS U HEIDELBERG
[3]  
BANGERTH W, 2006, DIFFERENTIAL EQUATIO
[4]  
Brenner S.C., 2002, MATH THEORY FINITE E
[5]   Inverse method 3-D reconstruction of localized in vivo fluorescence -: Application to Sjogren syndrome [J].
Chernomordik, V ;
Hattery, D ;
Gannot, I ;
Gandjbakhche, AH .
IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 1999, 5 (04) :930-935
[6]   Three-dimensional, Bayesian image reconstruction from sparse and noisy data sets: Near-infrared fluorescence tomography [J].
Eppstein, MJ ;
Hawrysz, DJ ;
Godavarty, A ;
Sevick-Muraca, EM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (15) :9619-9624
[7]   Fluorescence-enhanced optical imaging in large tissue volumes using a gain-modulated ICCD camera [J].
Godavarty, A ;
Eppstein, MJ ;
Zhang, CY ;
Theru, S ;
Thompson, AB ;
Gurfinkel, M ;
Sevick-Muraca, EM .
PHYSICS IN MEDICINE AND BIOLOGY, 2003, 48 (12) :1701-1720
[8]   Influence of the refractive index-mismatch at the boundaries measured in fluorescence-enhanced frequency-domain photon migration imaging [J].
Godavarty, A ;
Hawrysz, DJ ;
Roy, R ;
Sevick-Muraca, EM .
OPTICS EXPRESS, 2002, 10 (15) :653-662
[9]   A submillimeter resolution fluorescence molecular imaging system for small animal imaging [J].
Graves, EE ;
Ripoll, J ;
Weissleder, R ;
Ntziachristos, V .
MEDICAL PHYSICS, 2003, 30 (05) :901-911
[10]  
Houston JP, 2003, PHOTOCHEM PHOTOBIOL, V77, P420, DOI 10.1562/0031-8655(2003)077<0420:SADPOC>2.0.CO