IP Library Granted Patent US 12,690,879
Granted Patent B2
US 12,690,879 · App. 18/961,137 · Granted Jul 28, 2026

Shock wave catheter system with energy control

Inventor: John M. Adams (Snohomish, WA)
Assignee: SHOCKWAVE MEDICAL, INC.
A61B17/22022A61B2017/22025A61B2017/22062A61B2017/22081
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Quick Facts
Patent No.
US 12,690,879
App. No.
18/961,137
Granted
Jul 28, 2026
Kind
B2
Abstract

A catheter for delivering shockwaves to a calcified lesion includes an elongated carrier, a pair of electrodes carried by the carrier, said electrodes being immersed in a conductive liquid, and a power source with a circuit coupled to the electrodes for supplying voltage pulses to the electrodes. The power source includes a capacitor and a switch. Each voltage pulse is between 1,000 volts and 10,000 volts. Each voltage pulse is generated by closing the switch that causes a charge stored on the capacitor to be delivered to the electrode pair. Each voltage pulse has sufficient energy to generate an arc in the liquid, allowing current to flow across the pair of electrodes to produce a shock wave associated with the expansion of a steam bubble. The catheter also includes a temperature sensor configured to sense the temperature of the conductive fluid proximate to the pair of electrodes.

Claims (12)

1 . A catheter for delivering shockwaves to a calcified lesion comprising:

an elongated carrier;

a pair of electrodes carried by the elongated carrier, said electrodes being immersed in a conductive liquid;

a power source with a circuit coupled to the electrodes for supplying voltage pulses to the electrodes, said power source including a capacitor and a switch, each voltage pulse between 1000 volts and 10,000 volts, each voltage pulse being generated by closing the switch that causes a charge stored on the capacitor to be delivered to the pair of electrodes, each voltage pulse having sufficient energy to generate an arc in the conductive liquid and allowing current to flow across the pair of electrodes to produce a shock wave associated with the expansion of a steam bubble; and

a temperature sensor configured to sense a temperature of the conductive liquid proximate to the pair of electrodes, wherein the power source is responsive to the temperature sensor, wherein the temperature sensor causes the power source to decrease or terminate energy applied across the pair of electrodes responsive to the temperature of the conductive liquid proximate to the pair of electrodes.

2 . The catheter of claim 1 , wherein the temperature sensor causes the power source to decrease or terminate energy applied across the pair of electrodes responsive to the temperature of the conductive liquid proximate to the pair of electrodes increasing by more than two degrees Celsius.

3 . The catheter of claim 1 , wherein the temperature sensor causes the power source to decrease energy applied across the pair of electrodes responsive to the temperature of the conductive liquid proximate to the pair of electrodes and thereby decrease the size and duration of steam bubbles associated with shock waves generated by the pair of electrodes.

4 . The catheter of claim 1 , wherein the temperature sensor causes the power source to temporarily terminate energy applied across the pair of electrodes responsive to the temperature of the conductive liquid proximate to the pair of electrodes and thereby allow the temperature of the conductive liquid proximate to the pair of electrodes to decrease.

5 . The catheter of claim 1 , wherein the power source includes a sensor for monitoring a voltage across the pair of electrodes during each voltage pulse, the sensor generating a signal that causes the power source to terminate the delivery of each voltage pulse across the pair of electrodes after the sensed voltage decreases by a predetermined value, the predetermined value being selected to ensure the creation of the arc for each voltage pulse, wherein the termination includes opening the switch in order to prevent the remaining charge on the capacitor from being delivered to the pair of electrodes thereby conserving electrode material.

6 . The catheter of claim 5 , wherein the power source is configured to terminate the delivery of each voltage pulse across the pair of electrodes by activating a delay timer in response to the sensing of the voltage decreasing by the predetermined value prior to the switch being opened.

7 . The catheter of claim 5 , wherein the predetermined value is selected to ensure the creation of the shock wave associated with the expansion of the steam bubble and minimize energy available for a trailing shock wave associated with the subsequent collapse of the steam bubble.

8 . The catheter of claim 5 , wherein a dwell time between initial delivery of a given voltage pulse and creation of the arc is variable from pulse to pulse and the predetermined value is selected to ensure the creation of the arc while compensating for the variable dwell time.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 7, 2025
From: ADAMS, JOHN M.
To: SHOCKWAVE MEDICAL, INC.
Reel/Frame 071044/0351 →
Continuity (6)
Division 17885481 · Aug 10, 2022
Continuation 16694712 · Nov 25, 2019
Continuation 15347486 · Nov 9, 2016
Division 14218858 · Mar 18, 2014
Continuation In Part 13615107 · Sep 13, 2012
Related Publication 20250082350A1 · Mar 13, 2025
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“FDA Clears Lithoplasty Balloon That Shatters Calcified Lesions With Ultrasound”, Diagnostic and Interventional Cardiology, Available Online at <https://www.dicardiology.com/product/fda-clearslithoplasty-balloon-shatter… [cited by applicant]
“Top Cardiovascular Innovation Award”, Cardiovascular Research Technologies (CRT), 2015, p. 1. [cited by applicant]
Achim et al., “Applications of shock waves in medicine”, Handbook of Shock Waves. Academic Press, 2001, pp. 1-80. [cited by applicant]
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Advisory Action received for U.S. Appl. No. 13/267,383, mailed on Jan. 6, 2014, 4 pages. [cited by applicant]
Advisory Action received for U.S. Appl. No. 13/615,107, mailed on Nov. 6, 2015, 3 pages. [cited by applicant]
Affirmance of FWD under Fed. Cir. R. 36, United States Court of Appeals for the Federal Circuit, dated Jan. 18, 2022 (Affirmance), 2 pages. [cited by applicant]
Akiyama et al., “Current-voltage characteristics of a high-current pulsed discharge in air”, IEEE, Apr. 1988, 1 page. [cited by applicant]
Annotated Diagram from U.S. Pat. No. 8,728,091, May 20, 2014, 1 page. [cited by applicant]
Ardley, T., (2008). “First Principles of a Gas Discharge Tube (GOT) Primary Protector”, Bourns, Rev. 2, Available Online at <https://www.mouser.com/pdfdocs/bourns_gdt_white_paper.pdf>, pp. 1-34. [cited by applicant]
Armstrong Ehrin, “Responses to Question 6 by Patent Owner's Declarants Ehrin Armstrong”, Jan. 29, 2020, 5 pages. [cited by applicant]
Armstrong Ehrin, “Responses to Questions 1-5 by Patent Owner's Declarants Ehrin Armstrong”, Jan. 24, 2020., 4 pages. [cited by applicant]
Bank of America Merrill Lynch, (2019). “A Simple Solution to a Difficult (and Large) Problem—Initiating Coverage of SWAY”, Shockwave Medical Inc., pp. 1-22. [cited by applicant]
Barkhordarian, Vrej, “Power Mosfet basics”, Powerconversion and Intelligent Motion-English Edition, 1996, pp. 1-13. [cited by applicant]
Bittl et al., (1993). “Coronary Artery Perforation during Excimer Laser Coronary Angioplasty”, Journal of the American College of Cardiology, 21(5):1158-1165. [cited by applicant]
Bittl et al., (1993). “Publication Information—Coronary Artery Perforation during Excimer Laser Coronary Angioplasty”, Journal of the American College of Cardiology, 21(5):1158-1165, 6 pages. [cited by applicant]
Breakthrough Devices Program Guidance for Industry and Food and Drug Administration Staff, U.S. Food & Drug Administration, Dec. 18, 2018. [cited by applicant]
Brinton et al., (2016). “Publication Information—TCT-777 Safety and Performance of the Shockwave Medical Lithoplasty® System in Treating Calcified Peripheral Vascular Lesions: 6-Month Results from the Two-Phase Disrupt … [cited by applicant]
Brinton et al., (2016). “TCT-777 Safety and Performance of the Shockwave Medical Lithoplasty® System in Treating Calcified Peripheral Vascular Lesions: 6-Month Results from the Two-Phase Disrupt PAD Study”, Journal of t… [cited by applicant]
Brinton, et al., “Feasibility of Shockwave Coronary Intravascular Lithotripsy for the Treatment of Calcified Coronary Stenoses”, Circulation, vol. 139, Feb. 5, 2019, pp. 1-2. [cited by applicant]
Broyer et al., (1996). “High-Efficiency Shock-Wave Generator for Extracorporeal Lithotripsy”, Medical and Biological Engineering and Computing, 34:321-328. [cited by applicant]
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Cardiology Today's Intervention, (2019). “Shockwave Attracts Additional Investment from Abiomed, has IPO”, Available Online at <https://www.healio.com/cardiac- vascular-intervention/peripheral/news/online/%7Bf96c1e20-b4… [cited by applicant]
Cavanaugh, Kennethj. “Shockwave Intravascular Lithotripsy System with the Shockwave C2 Coronary IVL Catheter”, U.S. Food & Drug Administration, Center for Devices and Radiological Health., Aug. 19, 2019, 2 pages. [cited by applicant]
Challenging Calcium Made Shockingly Easy, Shockwave IVL, 2019, 4 pages. [cited by applicant]
Citel Inc., “Gas Discharge Overview”, Available Online at <http://www.citel.us/gas_discharge_tubes_overview.html>, pp. 1-2. [cited by applicant]
Claim Chart showing correspondence between the claims of U.S. Pat. No. 8,728,091 and the Shockwave C2 Device, 2020, 6 pages. [cited by applicant]
Claim Chart showing correspondence between the claims of U.S. Pat. No. 8,728,091 and the Shockwave M5 Device, 2020, 6 pages. [cited by applicant]
Claim Chart showing correspondence between the claims of U.S. Pat. No. 8,728,091 and the Shockwave S4 Device, 2020, 6 pages. [cited by applicant]
Clara, Santa, “Shockwave Medical Reports Second Quarter 2019 Financial Results”, Globe Newswire, Aug. 5, 2019, 3 pages. [cited by applicant]
Cleveland et al., (2000). “Design and Characterization of a Research Electrohydraulic Lithotripter Patterned after the Dornier HM3”, Review of Scientific Instruments, 71(6):2514-2525. [cited by applicant]
Cleveland et al., (2012). “The Physics of Shock Wave Lithotripsy”, Extracorporeal Shock Wave Lithotripsy Part IV, Chapter 38, pp. 317-332. [cited by applicant]
Concise Description of Relevance Accompanying Third Party Preissuance Submission Under 37 CFR 1.290 for U.S. Appl. No. 16/694,712, filed Apr. 10, 2020, 27 pages. [cited by applicant]
Connors et al., (2003). “Renal Nerves Mediate Changes in Contralateral Renal Blood Flow after Extracorporeal Shockwave Lithotripsy”, Nephron Physiol., 95:67-75. [cited by applicant]
CoolMOS 1) Power MOSFET Advanced Technical Information IXKR 47N60C5, IXYS, 2008, pp. 1-5. [cited by applicant]
Coronary Intravascular Lithotripsy (IVL) System Instructions for Use (IFU), Shockwave C2., May 2018, pp. 1-48. [cited by applicant]
Coronary IVL System Step-by-Step Setup, Shockwave C2, 2018, pp. 1-11. [cited by applicant]
Coronary Tech Sheet, Shockwave C2, 2018, pp. 1-2. [cited by applicant]
Deagon, Brian Technology—Shockwave Medical IPO Soars on First Day of Trading Investor's Business Daily, Available Online at <https://www.investors.com/news/technology/shockwave-medical-ipo-soars-trading/> Mar. 7, 2019, … [cited by applicant]
Decision for U.S. Pat. No. 8,728,091, by the Patent Trial and Appeal Board dated Jul. 11, 2020, IPR2019-00409, Jul. 11, 2020, pp. 1-72. [cited by applicant]
Decision of Inter Partes Review for U.S. Pat. No. 8,728,091, by the Patent Trial and Appeal Board dated Jul. 11, 2019, pp. 1-32. [cited by applicant]
Decision to Grant received for European Patent Application No. 13756766.5, mailed on May 27, 2016, 2 pages. [cited by applicant]
Decision to Grant received for Japanese Patent Application No. 2011-513694, mailed on Oct. 7, 2014, 3 pages. [cited by applicant]
Declaration and Curriculum Vitae of Dr. Daniel W. Van Der Weide, Case IPR2019-00409, 2020, 148 pages. [cited by applicant]
Declaration of Dean Kereiakes, Case IPR2019-00409, Oct. 31, 2019, 12 pages. [cited by applicant]
Declaration of Dr. Morten Olgaard Jensen, Dec. 6, 2018, 138 pages. [cited by applicant]
Declaration of Ehrin J. Armstrong, Nov. 2, 2019, 69 pages. [cited by applicant]
Declaration of Jonathan M. Hill, Case IPR2019-00409, Mar. 11, 2019, 32 pages. [cited by applicant]
Declaration of Natalie J. Grace on Apr. 14, 2019, pp. 1-5. [cited by applicant]
Declaration of Natalie J. Grace, Case IPR2019-00409, Nov. 3, 2019, 9 pages. [cited by applicant]
Declaration of Peter Soukas, Case IPR2019-00409, Nov. 2016, 66 pages. [cited by applicant]
Declaration of Sean Lyden, Case IPR2019-00409, Oct. 31, 2019, 12 pages. [cited by applicant]
Declaration of William Patrick Stephens on Apr. 14, 2019, pp. 1-6. [cited by applicant]
Declaration of William Patrick Stephens, Case IPR2019-00409, Nov. 2, 2019, 4 pages. [cited by applicant]
Deposition Exhibit from Deposition of Dr. Jensen, Handwritten Diagram, Feb. 24, 2020, 1 page. [cited by applicant]
Deposition of Peter Soukas, Case TPR2019-00405, Nov. 2016, pp. 1-66. [cited by applicant]
Deposition Transcript (compressed) of Daniel van der Weide, Case No. IPR2019-00409, Jan. 10, 2020, 111 pages. [cited by applicant]
Deposition Transcript (compressed) of Dr. Morten Olgaard Jensen in Case No. IPR2019-00409, Oct. 14, 2019., pp. 1-90. [cited by applicant]