Microbubble-enhanced cavitation for noninvasive ultrasound surgery

被引:158
作者
Tran, BC [1 ]
Seo, J [1 ]
Hall, TL [1 ]
Fowlkes, JB [1 ]
Cain, CA [1 ]
机构
[1] Univ Michigan, Ann Arbor, MI 48109 USA
关键词
D O I
10.1109/TUFFC.2003.1244746
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Experiments were conducted to explore the potential of stabilized microbubbles for aiding tissue ablation during ultrasound therapy. Surgically exteriorized canine kidneys were irradiated in situ using single exposures of focused ultrasound. In each experiment, up to eight separate exposures were placed in the left kidney. The right kidney was then similarly exposed, but while an ultrasound contrast agent was continually infused. Kidneys were sectioned and examined for gross observable tissue damage. Tissue damage was produced more frequently, by lower intensity and shorter duration exposures, in kidneys irradiated with the contrast agent present. Using 250-ms exposures, the minimum intensity that produced damage was lower in kidneys with microbubbles than those without (controls) in 10 of 11 (91%) animals. In a separate study using similar to3200 W/cm(2) exposures, the minimum duration that produced damage was shorter after microbubbles were introduced in 11 of 12 (92%) animals. With microbubbles, gross observable tissue damage was produced with exposure intensity greater than or equal tosimilar to800 W/cm(2) and exposure duration greater than or equal to10 mus. The overall intensity and duration tissue damage thresholds were reduced by similar to2x and similar to100x, respectively. Results indicate that acoustic cavitation is a primary damage mechanism. Lowering in vivo tissue damage thresholds with stabilized microbubbles acting as cavitation nuclei may make acoustic cavitation a more predictable, and thus practical, mechanism for noninvasive ultrasound surgery.
引用
收藏
页码:1296 / 1304
页数:9
相关论文
共 29 条
[1]  
Cain CA, 2002, USA, Patent No. 6413216
[2]   Dynamic planar convex hull operations in near-logarithmic amortized time [J].
Chan, TM .
JOURNAL OF THE ACM, 2001, 48 (01) :1-12
[3]  
CHAPELON JY, 1992, EUR UROL, V22, P147
[4]  
CHAPELON JY, 1991, P IEEE ULTR S, P1653
[5]   Remnants of Albunex(R) nucleate acoustic cavitation [J].
Dalecki, D ;
Raeman, CH ;
Child, SZ ;
Penney, DP ;
Carstensen, EL .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1997, 23 (09) :1405-1412
[6]   FOCAL SPACING AND NEAR-FIELD HEATING DURING PULSED HIGH-TEMPERATURE ULTRASOUND THERAPY [J].
DAMIANOU, C ;
HYNYNEN, K .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1993, 19 (09) :777-787
[7]   THRESHOLDS FOR FOCAL ULTRASONIC LESIONS IN RABBIT KIDNEY, LIVER AND TESTICLE [J].
FRIZZELL, LA ;
LINKE, CA ;
CARSTENSEN, EL ;
FRIDD, CW .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1977, 24 (04) :393-396
[8]  
FRY F J, 1970, Journal of the Acoustical Society of America, V48, P1413, DOI 10.1121/1.1912301
[9]   ULTRASOUND AND MICROBUBBLES - THEIR GENERATION, DETECTION AND POTENTIAL UTILIZATION IN TISSUE AND ORGAN THERAPY - EXPERIMENTAL [J].
FRY, FJ ;
SANGHVI, NT ;
FOSTER, RS ;
BIHRLE, R ;
HENNIGE, C .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1995, 21 (09) :1227-1237
[10]   PRODUCTION OF FOCAL DESTRUCTIVE LESIONS IN THE CENTRAL NERVOUS SYSTEM WITH ULTRASOUND [J].
FRY, WJ ;
MOSBERG, WH ;
BARNARD, JW ;
FRY, FJ .
JOURNAL OF NEUROSURGERY, 1954, 11 (05) :471-478