Development of a catheter for combined intravascular ultrasound and photoacoustic imaging

被引:94
作者
Karpiouk, Andrei B. [1 ]
Wang, Bo [1 ]
Emelianov, Stanislav Y. [1 ]
机构
[1] Univ Texas Austin, Dept Biomed Engn, Austin, TX 78712 USA
基金
美国国家卫生研究院;
关键词
biomedical optical imaging; biomedical ultrasonics; blood vessels; cardiovascular system; catheters; diseases; laser applications in medicine; optical fibres; phantoms; photoacoustic effect; ATHEROSCLEROTIC PLAQUES; BIOLOGICAL TISSUES; IN-VIVO; SPECTROSCOPY; CLASSIFICATION; PHANTOMS; DISEASE; LESIONS; STROKE; AXICON;
D O I
10.1063/1.3274197
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Atherosclerosis is characterized by formation and development of the plaques in the inner layer of the vessel wall. To detect and characterize atherosclerotic plaques, we previously introduced the combined intravascular ultrasound (IVUS) and intravascular photoacoustic (IVPA) imaging capable of assessing plaque morphology and composition. The utility of IVUS/IVPA imaging has been demonstrated by imaging tissue-mimicking phantoms and ex vivo arterial samples using laboratory prototype of the imaging system. However, the clinical realization of a IVUS/IVPA imaging requires an integrated intravascular imaging catheter. In this paper, two designs of IVUS/IVPA imaging catheters-side fire fiber-based and mirror-based catheters-are reported. A commercially available IVUS imaging catheter was utilized for both pulse-echo ultrasound imaging and detection of photoacoustic transients. Laser pulses were delivered by custom-designed fiber-based optical systems. The optical fiber and IVUS imaging catheter were combined into a single device. Both designs were tested and compared using point targets and tissue-mimicking phantoms. The results indicate applicability of the proposed catheters for clinical use.
引用
收藏
页数:7
相关论文
共 45 条
[1]   Characterization of post mortem arterial tissue using time-resolved photoacoustic spectroscopy at 436, 461 and 532 nm [J].
Beard, PC ;
Mills, TN .
PHYSICS IN MEDICINE AND BIOLOGY, 1997, 42 (01) :177-198
[2]   Optical fiber photoacoustic-photothermal probe [J].
Beard, PC ;
Perennes, F ;
Draguioti, E ;
Mills, TN .
OPTICS LETTERS, 1998, 23 (15) :1235-1237
[3]   Mechanical thrombolysis in acute ischemic stroke with endovascular photoacoustic recanalization [J].
Berlis, A ;
Lutsep, H ;
Barnwell, S ;
Norbash, A ;
Wechsler, L ;
Jungreis, CA ;
Woolfenden, A ;
Redekop, G ;
Hartmann, M ;
Schumacher, M .
STROKE, 2004, 35 (05) :1112-1116
[4]  
*BOST SCI INC, ATL RS PRO IM CATH
[5]   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
[6]   Identification of atherosclerotic plaque components with intravascular ultrasound elastography in vivo A Yucatan pig study [J].
de Korte, CL ;
Sierevogel, MJ ;
Mastik, F ;
Strijder, C ;
Schaar, JA ;
Velema, E ;
Pasterkamp, G ;
Serruys, PW ;
van der Steen, AFW .
CIRCULATION, 2002, 105 (14) :1627-1630
[7]   Nearly diffraction-limited focusing of a fiber axicon microlens [J].
Eah, SK ;
Jhe, W ;
Arakawa, Y .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2003, 74 (11) :4969-4971
[8]   CORONARY PLAQUE DISRUPTION [J].
FALK, E ;
SHAH, PK ;
FUSTER, V .
CIRCULATION, 1995, 92 (03) :657-671
[9]   Clinical imaging of the high-risk or vulnerable atherosclerotic plaque [J].
Fayad, ZA ;
Fuster, V .
CIRCULATION RESEARCH, 2001, 89 (04) :305-316
[10]   Design and manufacture of a gradient-index axicon [J].
Fischer, DJ ;
Harkrider, CJ ;
Moore, DT .
APPLIED OPTICS, 2000, 39 (16) :2687-2694