A 3-D High-Frequency Array Based 16 Channel Photoacoustic Microscopy System for In Vivo Micro- Vascular Imaging

被引:20
作者
Bitton, Rachel
Zemp, Roger
Yen, Jesse [1 ]
Wang, Lihong V. [2 ]
Shung, K. Kirk [1 ]
机构
[1] Univ So Calif, Dept Biomed Engn, Los Angeles, CA 90089 USA
[2] Washington Univ, Dept Biomed Engn, St Louis, MO 63130 USA
关键词
High-frequency ultrasound; multichannel receiver electronics; photoacoustic imaging; transducer array; OPTICAL-PROPERTIES; REAL-TIME; ULTRASOUND; TOMOGRAPHY; TRANSIENTS;
D O I
10.1109/TMI.2008.2011899
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
This paper discusses the design of a novel photoacoustic microscopy imaging system with promise for studying the structure of tissue microvasculature for applications in visualizing angiogenesis. A new 16 channel analog and digital high-frequency array based photoacoustic microscopy system (PAM) was developed using an Nd: YLF pumped tunable dye laser, a 30 MHz piezo composite linear array transducer, and a custom multichannel receiver electronics system. Using offline delay and sum beam-forming and beamsteering, phantom images were obtained from a 6 m carbon fiber in water at a depth of 8 mm. The measured -6 dB lateral and axial spatial resolution of the system was 100 +/- 5 mu m and 45 +/- 5 mu m, respectively. The dynamic focusing capability of the system was demonstrated by imaging a composite carbon fiber matrix through a 12.5 mm imaging depth. Next, 2-D in vivo images were formed of vessels around 100 mu m in diameter in the human hand. Three-dimensional in vivo images were also formed of micro-vessels 3 mm below the surface of the skin in two Sprague Dawley rats.
引用
收藏
页码:1190 / 1197
页数:8
相关论文
共 34 条
[1]  
[Anonymous], 1990, PHYS PROPERTIES TISS
[2]   Development of a 35-MHz piezo-composite ultrasound array for medical imaging [J].
Cannata, JM ;
Williams, JA ;
Zhou, QF ;
Ritter, TA ;
Shung, KK .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2006, 53 (01) :224-236
[3]  
Cannata JM, 2003, ULTRASON, P1658
[4]   A REVIEW OF THE OPTICAL-PROPERTIES OF BIOLOGICAL TISSUES [J].
CHEONG, WF ;
PRAHL, SA ;
WELCH, AJ .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1990, 26 (12) :2166-2185
[5]   Quantitative photoacoustic imaging:: fitting a model of light transport to the initial pressure distribution [J].
Cox, BT ;
Arridge, SR ;
Köstli, KP ;
Beard, PC .
PHOTONS PLUS ULTRASOUND: IMAGING AND SENSING 2005, 2005, 5697 :49-55
[6]   ANGIOGENESIS IN CANCER, VASCULAR, RHEUMATOID AND OTHER DISEASE [J].
FOLKMAN, J .
NATURE MEDICINE, 1995, 1 (01) :27-31
[7]  
GUSEV VE, 1993, LASER OPOTOACOUSTICS
[8]   Development of a real-time, high-frequency ultrasound digital beamformer for high-frequency linear array transducers [J].
Hu, CH ;
Xu, XC ;
Cannata, JM ;
Yen, JT ;
Shung, KK .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2006, 53 (02) :317-323
[9]   OPTICAL COHERENCE TOMOGRAPHY [J].
HUANG, D ;
SWANSON, EA ;
LIN, CP ;
SCHUMAN, JS ;
STINSON, WG ;
CHANG, W ;
HEE, MR ;
FLOTTE, T ;
GREGORY, K ;
PULIAFITO, CA ;
FUJIMOTO, JG .
SCIENCE, 1991, 254 (5035) :1178-1181
[10]   Backward mode detection of laser-induced wide-band ultrasonic transients with optoacoustic transducer [J].
Karabutov, AA ;
Savateeva, EV ;
Podymova, NB ;
Oraevsky, AA .
JOURNAL OF APPLIED PHYSICS, 2000, 87 (04) :2003-2014