IP Library › Granted Patent US 10,478,217
Granted Patent B2
US 10,478,217 · App. 16/155,010 · Granted Nov 19, 2019

Atherectomy devices and methods

Inventors: Paul Joseph Robinson (Mahtomedi, MN); Cassandra Ann Piippo Svendsen (Blaine, MN); Charles Anthony Plowe (Blaine, MN); Albert Selden Benjamin (St. Paul, MN)
Assignee: Cardio Flow, Inc.
A61B17/320758A61B2017/22038A61B2017/22069A61B2017/320004A61B2017/320766A61M2025/1047A61M2025/1097
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Quick Facts
Patent No.
US 10,478,217
App. No.
16/155,010
Granted
Nov 19, 2019
Kind
B2
Abstract

This document describes rotational atherectomy devices and systems for removing or reducing stenotic lesions in blood vessels by rotating an abrasive element within the vessel to partially or completely remove the stenotic lesion material.

Claims (47)

1. A rotational atherectomy device for removing stenotic lesion material from a blood vessel of a patient the device comprising:

an elongate flexible drive shaft comprising helically wound metallic filars that form a coil having an outer diameter, the drive shaft defining a longitudinal axis;

an array of at least two spherical eccentric abrasive elements being fixed to the drive shaft such that a center of mass of each abrasive element is offset from the longitudinal axis; and

a metallic stability element having a cylindrical shape and a center of mass aligned with the longitudinal axis; and

wherein the drive shaft, the abrasive elements, and the metallic stability element rotate together about the longitudinal axis,

wherein the metallic stability element being distally spaced apart from a distal-most abrasive element of the spherical eccentric abrasive elements by a distal separation distance,

wherein each abrasive element is spaced apart from an adjacent abrasive element by an element spacing distance, and wherein the center of mass for each eccentric spherical abrasive element in said array is offset from the longitudinal axis while contemporaneously the center of mass of the metallic stability element is aligned with the longitudinal axis, and

wherein the distal separation distance being greater than the element spacing distance.

2. The device of claim 1 , wherein the drive shaft has a central lumen extending along the longitudinal axis that is configured to receive a guidewire that is fully withdrawable into the central lumen, and wherein the coil formed by the helically wound metallic filars has a constant outer coil diameter.

3. The device of claim 1 , wherein the drive shaft comprises a fluid-impermeable lumen.

4. The device of claim 1 , wherein the coil of the drive shaft comprises a torque-transmitting coil and wherein the metallic stability element comprises a hollow metallic cylinder with an inner diameter that is fixed along the inner diameter to and outer diameter of the torque-transmitting coil.

5. The device of claim 1 , wherein the device further comprises a coating covering an outer diameter of the metallic stability element.

6. The device of claim 1 , wherein the drive shaft comprises a coating on the outer diameter of the drive shaft.

7. A rotational atherectomy device for removing stenotic lesion material from a blood vessel of a patient the device comprising:

an elongate flexible drive shaft comprising helically wound metallic filars that form a coil having an outer diameter, the drive shaft defining a longitudinal axis;

an array of at least three spherical eccentric abrasive elements being fixed to the drive shaft such that a center of mass of each abrasive element is offset from the longitudinal axis; and

a metallic stability element having a cylindrical shape and a center of mass aligned with the longitudinal axis; and

wherein the drive shaft, the abrasive elements, and the metallic stability element rotate together about the longitudinal axis,

and

wherein each spherical eccentric abrasive element of the at least three spherical eccentric abrasive elements has an abrasive outer surface, wherein a middle spherical abrasive element of the at least three spherical abrasive elements has a larger outer diameter than a proximal-most spherical abrasive element of the at least three spherical abrasive elements and a larger outer diameter than a distal-most spherical abrasive element of the at least three spherical abrasive elements, and wherein the center of mass for each eccentric spherical abrasive element in said array is offset from the longitudinal axis while contemporaneously the center of mass of the metallic stability element is aligned with the longitudinal axis.

8. The device of claim 7 , wherein the spherical eccentric abrasive elements comprises at least five spherical eccentric abrasive elements positioned along the drive shaft.

9. The device of claim 7 , wherein the drive shaft has a central lumen extending along the longitudinal axis that is configured to receive a guidewire that is fully withdrawable into the central lumen, and wherein the coil formed by the helically wound metallic filars has an constant outer coil diameter.

10. The device of claim 7 , wherein the drive shaft comprises a fluid-impermeable lumen.

11. The device of claim 7 , wherein the coil of the drive shaft comprises a torque-transmitting coil and wherein the metallic stability element comprises a hollow metallic cylinder with an inner diameter that is fixed along the inner diameter to and outer diameter of the torque-transmitting coil.

12. The device of claim 7 , wherein the device further comprises a coating covering an outer diameter of the metallic stability element.

13. The device of claim 7 , wherein the drive shaft comprises a coating on the outer diameter of the drive shaft.

14. A rotational atherectomy device for removing stenotic lesion material from a blood vessel of a patient the device comprising:

an elongate flexible drive shaft comprising helically wound metallic filars that form a coil having an outer diameter, the drive shaft defining a longitudinal axis;

an array of at least five spherical eccentric abrasive elements being fixed to the drive shaft such that a center of mass of each abrasive element is offset from the longitudinal axis; and

a metallic stability element having a cylindrical shape and a center of mass aligned with the longitudinal axis; and

wherein the drive shaft, the abrasive elements, and the metallic stability element rotate together about the longitudinal axis,

and

wherein the array comprises outer spherical eccentric abrasive elements and at least one inner spherical eccentric abrasive element, wherein an outer diameter of each of the outer spherical eccentric abrasive elements is smaller than an outer diameter of the at least one inner spherical eccentric abrasive element.

15. The device of claim 14 , wherein the metallic stability element defines an inner diameter and the metallic stability element is fixed along the inner diameter to the helically wound metallic filars of the drive shaft.

16. The device of claim 14 , wherein the at least five spherical eccentric abrasive elements are positioned adjacent to one another along the coil.

17. The device of claim 14 , wherein the spherical eccentric abrasive elements are positioned adjacent to one another along the drive shaft.

18. The device of claim 14 , wherein the drive shaft has a central lumen extending along the longitudinal axis that is configured to receive a guidewire that is fully withdrawable into the central lumen, and wherein the coil formed by the helically wound metallic filars has a constant outer coil diameter.

19. The device of claim 14 , wherein the drive shaft comprises a fluid-impermeable lumen.

20. The device of claim 14 , wherein the drive shaft comprises a torque-transmitting coil and wherein the metallic stability element comprises a hollow metallic cylinder with an inner diameter that is fixed along the inner diameter to an outer diameter of the torque-transmitting coil.

21. The device of claim 14 , wherein the device further comprises a coating covering an outer diameter of the metallic stability element.

22. The device of claim 14 , wherein the drive shaft comprises a means for surrounding an outer diameter of at least a portion of the drive shaft.

23. The device of claim 14 , wherein the drive shaft comprises a coating on the outer diameter of the drive shaft.

24. The device of claim 14 , wherein the metallic stability element being distally spaced apart from a distal-most abrasive element of the spherical eccentric abrasive elements by a distal separation distance.

25. The device of claim 24 , wherein each abrasive element is spaced apart from an adjacent abrasive element by an element spacing distance, and wherein the center of mass for each eccentric spherical abrasive element in said array is offset from the longitudinal axis while contemporaneously the center of mass of the metallic stability element is aligned with the longitudinal axis.

26. The device of claim 14 , wherein the device further comprises a means for extending the device distally from the metallic stability element by a distal extension distance.

27. The device of claim 26 , wherein the device comprises a distal-most extension portion that extends distally of the metallic stability element for the distal extension distance.

28. The system of claim 27 , wherein at least a portion of the distal-most extension portion is defined by the helically wound metallic filars of the drive shaft.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 23, 2019
From: ROBINSON, PAUL JOSEPH; PIIPPO SVENDSEN, CASSANDRA ANN; PLOWE, CHARLES ANTHONY; BENJAMIN, ALBERT SELDEN
To: CARDIO FLOW, INC.
Reel/Frame 049284/0541 →
Continuity (8)
Continuation 16151531 · Oct 4, 2018
Continuation 16150711 · Oct 3, 2018
Continuation 16150003 · Oct 2, 2018
Continuation 16148347 · Oct 1, 2018
Continuation 16142583 · Sep 26, 2018
Continuation 15707690 · Sep 18, 2017
Division 14155549 · Jan 15, 2014
Related Publication 20190038309A1 · Feb 7, 2019
Cited By (6)
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