IP Library Granted Patent US 11,950,799
Granted Patent B2
US 11,950,799 · App. 17/847,874 · Granted Apr 9, 2024

Propulsion system for inertial energy transfer to disrupt vascular lesions

Inventors: Daniel Frank Massimini (Brooklyn Park, MN); Roger W. McGowan (Otsego, MN); Christopher Smuk (Champlin, MN); Binh C. Tran (Minneapolis, MN)
Assignee: Boston Scientific Scimed, Inc.
A61B17/32037A61B2017/22051
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Quick Facts
Patent No.
US 11,950,799
App. No.
17/847,874
Granted
Apr 9, 2024
Kind
B2
Abstract

Embodiments herein relate to systems and methods for intravascular lesion disruption. In an embodiment, a catheter system for imparting pressure to induce fractures upon a vascular lesion within or adjacent a blood vessel wall is included. The system includes a catheter configured to advance to a vascular lesion, the catheter including an elongate shaft that defines at least a first orifice for fluid flow; a balloon, coupled to the elongate shaft, that surrounds the first orifice where the balloon can expand from a collapsed configuration suitable for advancing the catheter through a patient's vasculature to a first expanded configuration suitable for anchoring the catheter in position relative to a treatment site; and a propulsion system configured to propel a fluid from the first orifice toward the balloon wall to create an inertial impulse in a vessel wall to transfer momentum to the vascular lesion. Other embodiments are also included herein.

Claims (32)

1. A catheter system to induce fractures upon a vascular lesion, comprising:

a catheter configured to advance to a vascular lesion location within a blood vessel, the catheter comprising:

an elongate shaft wherein the elongate shaft defines at least a first orifice for fluid flow, wherein the elongate shaft further defines a propulsion fluid lumen; and

an expandable balloon coupled to the elongate shaft and surrounding the first orifice;

a propulsion system comprising an external fluid flow source in fluid communication with a proximal region of the propulsion fluid lumen, wherein the propulsion system is configured to propel a fluid from the first orifice toward a balloon wall; and

an actuation valve at a distal region of the propulsion fluid lumen configured to create a pulsed fluid jet propelled from the first orifice.

2. The catheter system of claim 1 , wherein the propulsion system is configured to propel the fluid toward the balloon wall at a velocity comprising a minimum of 1 meter per second (m/s), 5 m/s, or 10 m/s, wherein the velocity is measured where a fluid jet exits from the first orifice.

3. The catheter system of claim 1 , wherein the elongate shaft defines at least two orifices, at least three orifices, or at least four orifices from which fluid is propelled within the balloon toward the balloon wall.

4. The catheter system of claim 3 , wherein the orifices defined in the elongate shaft are spaced around a diameter of the elongate shaft, are spaced along a length of the elongate shaft, or both.

5. The catheter system of claim 1 , wherein the actuation valve comprises an electromechanical valve and a control wire extending along the elongate shaft, or a rotary mechanical valve and a rotary control shaft extending along the elongate shaft.

6. The catheter system of claim 1 , wherein the catheter system is configured to impart pressure to induce the fractures upon the vascular lesion within or adjacent a vessel wall of the blood vessel.

7. The catheter system of claim 1 , wherein the expandable balloon is configured to expand from a collapsed configuration suitable for advancing the catheter through a patient's vasculature to a first expanded configuration suitable for anchoring the catheter in position relative to a treatment site.

8. The catheter system of claim 7 , wherein the propulsion system is configured to propel the fluid from the first orifice toward the balloon wall when the balloon wall is in contact with a vessel wall and the balloon is maintained in the first expanded configuration.

9. The catheter system of claim 1 , wherein the propulsion system is configured to propel the fluid from the first orifice toward the balloon wall to create an inertial impulse in a vessel wall to transfer momentum to the vascular lesion.

10. A method to induce fractures upon a vascular lesion, comprising:

advancing a catheter to a vascular lesion location within a blood vessel, the catheter comprising a balloon coupled to an elongate shaft;

expanding the balloon to a first expanded configuration; and

while maintaining the balloon in the first expanded configuration, propelling a fluid from a first orifice defined in the elongate shaft toward a balloon wall, wherein propelling the fluid further comprises operating an actuation valve located at a distal region of a propulsion fluid lumen defined in the elongate shaft to pulse the fluid and create a pulsed jet of fluid.

11. The method of claim 10 , wherein expanding the balloon further comprises expanding the balloon from a collapsed configuration suitable for advancing the catheter through a patient's vasculature to the first expanded configuration suitable for anchoring the catheter in position relative to the vascular lesion location.

12. The method of claim 10 , further comprising, after propelling the fluid, further inflating the balloon to a second further expanded configuration.

13. The method of claim 10 , wherein propelling the fluid further comprises propelling the fluid toward the balloon wall at a velocity comprising a minimum of 1 meter per second (m/s), 5 m/s, or 10 m/s, wherein the velocity is measured where a fluid jet exits from the first orifice.

14. The method of claim 10 , wherein the actuation valve is an electromechanical actuation valve and activating the actuation valve comprises applying a voltage to a control wire extending along the elongate shaft.

15. The method of claim 10 , wherein propelling the fluid further comprises imparting pressure upon the vascular lesion to induce fractures in the vascular lesion.

16. A catheter system to induce fractures upon a vascular lesion, comprising:

a catheter configured to advance to a vascular lesion location within a blood vessel, the catheter comprising:

an elongate shaft wherein the elongate shaft defines at least a first orifice and a second orifice for fluid flow, wherein the elongate shaft further defines a propulsion fluid lumen; and

an expandable balloon coupled to the elongate shaft and surrounding the first orifice and the second orifice; and

a propulsion system comprising an external fluid flow source in fluid communication with a proximal end of the propulsion fluid lumen and an actuation valve at a distal end of the propulsion fluid lumen, wherein the propulsion system is configured to propel a pulsed jet of fluid propelled from the first orifice and from the second orifice toward a balloon wall.

17. The catheter system of claim 16 , wherein the pulsed jet of fluid is propelled toward the balloon wall at a velocity comprising a minimum of 1 meters per second (m/s), 5 m/s, or 10 m/s wherein the velocity is measured where a fluid jet exits from the first orifice.

18. The catheter system of claim 16 , wherein the actuation valve comprises an electromechanical valve and a control wire extending along the elongate shaft, or a rotary mechanical valve and a rotary control shaft extending along the elongate shaft.

19. The catheter system of claim 16 , wherein the first orifice and the second orifice are spaced from each other circumferentially.

20. The catheter system of claim 16 , wherein the expandable balloon is configured to expand from a collapsed configuration suitable for advancing the catheter through a patient's vasculature to a first expanded configuration suitable for anchoring the catheter in position relative to a treatment site.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2025
From: BOLT MEDICAL, INC.
To: BOSTON SCIENTIFIC SCIMED, INC.
Reel/Frame 073266/0423 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 3, 2022
From: MASSIMINI, DANIEL FRANK; MCGOWAN, ROGER W.; SMUK, CHRISTOPHER; TRAN, BINH C.
To: CARDIAC PACEMAKERS, INC.
Reel/Frame 061293/0667 →
Continuity (3)
Continuation 16909687 · Jun 23, 2020
Provisional Application 62865379 · Jun 24, 2019
Related Publication 20220313304A1 · Oct 6, 2022
Cited By (3)
US 12,594,406 US 12,642,946 US 12,714,836