Our goal is an office-based, handheld ultrasound system to target, detach, break, and/or expel stones and stone fragments from the urinary space to facilitate natural clearance. Repositioning of stones in humans (maximum 2.5 MPa, and 3-second bursts) and breaking of stones in a porcine model (maximum 50 cycles, 20 Hz repetition, 30 minutes, and 7 MPa peak negative pressure) have been demonstrated using the same 350-kHz probe. Repositioning in humans was conducted during surgery with a ureteroscope in the kidney to film stone movement. Independent video review confirmed stone movements (≥ 3 mm) in 14 of 15 kidneys (93%). No serious or unanticipated adverse events were reported. Experiments of burst wave lithotripsy (BWL) effectiveness on breaking human stones implanted in the porcine bladder and kidney demonstrated fragmentation of 4 of 4 stones on post mortem dissection. All clinical pathology, hematology, and urinalysis for a 1-week survival study with the BWL exposures in 10 specific pathogen free pigs were within normal limits. These results demonstrate that repositioning of stones with ultrasonic propulsion and breaking of stones with BWL are safe and effective. [Work supported by NIH P01 DK043881, K01 DK104854, and R44 DK109779.]
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September 2018
Meeting abstract. No PDF available.
September 01 2018
Update on clinical trials results of kidney stone repositioning and preclinical results of stone breaking with one ultrasound system Free
Michael R. Bailey;
Michael R. Bailey
Appl. Phys. Lab, Univ. of Washington, Ctr. for Industrial and Medical Ultrasound, APL-UW, Seattle, WA 98105, [email protected]
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Yak-Nam Wang;
Yak-Nam Wang
Appl. Phys. Lab, Univ. of Washington, Ctr. for Industrial and Medical Ultrasound, APL-UW, Seattle, WA 98105, [email protected]
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Wayne Kreider;
Wayne Kreider
Appl. Phys. Lab, Univ. of Washington, Ctr. for Industrial and Medical Ultrasound, APL-UW, Seattle, WA 98105, [email protected]
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Bryan W. Cunitz;
Bryan W. Cunitz
Appl. Phys. Lab, Univ. of Washington, Ctr. for Industrial and Medical Ultrasound, APL-UW, Seattle, WA 98105, [email protected]
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Jessica Dai;
Jessica Dai
Dept. of Urology, Univ. of Washington, Seattle, WA
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Jonathan Harper;
Jonathan Harper
Dept. of Urology, Univ. of Washington, Seattle, WA
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Helena Chang;
Helena Chang
Dept. of Urology, Univ. of Washington, Seattle, WA
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Matthew D. Sorensen;
Matthew D. Sorensen
Dept. of Urology, Univ. of Washington, Seattle, WA
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Ziyue Liu;
Ziyue Liu
Dept. of Biostatistics, Indiana University-Purdue Univ. Indianapolis, Indianapolis, IN
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Barbrina Dunmire;
Barbrina Dunmire
Appl. Phys. Lab, Univ. of Washington, Seattle, WA
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Adam D. Maxwell
Adam D. Maxwell
Dept. of Urology, Univ. of Washington, Seattle, WA
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Michael R. Bailey
Yak-Nam Wang
Wayne Kreider
Bryan W. Cunitz
Jessica Dai
Jonathan Harper
Helena Chang
Matthew D. Sorensen
Ziyue Liu
Oren Levy
Barbrina Dunmire
Adam D. Maxwell
Appl. Phys. Lab, Univ. of Washington, Ctr. for Industrial and Medical Ultrasound, APL-UW, Seattle, WA 98105, [email protected]
J. Acoust. Soc. Am. 144, 1779 (2018)
Connected Content
A companion article has been published:
Update on clinical trials of kidney stone repositioning and preclinical results of stone breaking with one system
Citation
Michael R. Bailey, Yak-Nam Wang, Wayne Kreider, Bryan W. Cunitz, Jessica Dai, Jonathan Harper, Helena Chang, Matthew D. Sorensen, Ziyue Liu, Oren Levy, Barbrina Dunmire, Adam D. Maxwell; Update on clinical trials results of kidney stone repositioning and preclinical results of stone breaking with one ultrasound system. J. Acoust. Soc. Am. 1 September 2018; 144 (3_Supplement): 1779. https://doi.org/10.1121/1.5067862
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