IP Library Granted Patent US 10,010,666
Granted Patent B2
US 10,010,666 · App. 14/313,647 · Granted Jul 3, 2018

Balloon catheter method for reducing restenosis via irreversible electroporation

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Quick Facts
Patent No.
US 10,010,666
App. No.
14/313,647
Filed
Jun 24, 2014
Granted
Jul 3, 2018
Kind
B2
Art Unit
3763
USPC
606/41
Abstract

Restenosis or neointimal formation may occur following angioplasty or other trauma to an artery such as by-pass surgery. This presents a major clinical problem which narrows the artery. The invention provides a balloon catheter with a particular electrode configuration. Also provided is a method whereby vascular cells in the area of the artery subjected to the trauma are subjected to irreversible electroporation which is a non-thermal, non-pharmaceutical method of applying electrical pulses to the cells so that substantially all of the cells in the area are ablated while leaving the structure of the vessel in place and substantially unharmed due to the non-thermal nature of the procedure.

Claims (50)

1. A method of treatment, comprising:

ablating tissue cells in a blood vessel with a balloon catheter comprised of:

a flexible elongated shaft comprising a distal end portion for insertion into a vessel;

a balloon positioned at the distal end portion;

a first electrode positioned at the distal end portion of the shaft, the first electrode being comprised of a conductive material which is flexible and generally conforms to an outer surface of the balloon during expansion of the balloon;

a second electrode positioned at a point relative to the first electrode so as to allow electrical current to flow through vascular tissue between the first and second electrodes, the second electrode being comprised of a conductive material which is flexible and conforms to the outer surface of the balloon during expansion of the balloon, wherein the first electrode and second electrode are positioned in an overlapping relationship on a single longitudinal axis to form a double helix spanning an entire length of the balloon, and comprising multiple helical turns around the balloon, and wherein the first and second electrodes are positioned to generate an electric field encompassing substantially the entire outer balloon surface;

an electrical power source which provides electrical pulses to the electrodes in amounts sufficient to subject substantially all vascular tissue cells in a target area of the vessel to non-thermal irreversible electroporation (NTIRE);

whereby the step of ablating is carried out by providing the electrical pulses to the first and second electrodes.

2. The method of claim 1 , wherein the first and second electrodes comprise electrically conductive ink drawn on the balloon whereby the pulses are provided for durations and in amounts sufficient to subject substantially all vascular cells in a target area to irreversible electroporation (IRE).

3. The method of claim 1 , wherein the electrical power source is designed such that the IRE is carried out using a voltage and a current with defined ranges over a defined period of time and in absence of drug being delivered into the vascular tissue cells.

4. The method of claim 1 , wherein the electrical pulses each have a pulse duration of from 50 to 200 microseconds.

5. The method of claim 1 , wherein the electrical pulses are direct current pulses.

6. The method of claim 5 , wherein the electrical pulses each have a pulse duration of from 50 to 200 microseconds.

7. The method of claim 6 , wherein the electrical power source is configured to apply the electrical pulses of a current at a voltage in a range of from 2,000 V/cm to 6,000 V/cm.

8. The method of claim 7 , wherein the electrical power source is configured to apply between two and twenty-five pulses.

9. A method of treatment, comprising:

ablating tissue cells in a blood vessel with a balloon catheter comprised of:

a flexible elongated shaft comprising a distal end portion for insertion into a vessel;

a balloon positioned at the distal end portion;

a first electrode positioned at the distal end portion of the shaft, the first electrode being comprised of a conductive material which is flexible and generally conforms to an outer surface of the balloon during expansion of the balloon;

a second electrode positioned at a point relative to the first electrode so as to allow electrical current to flow through vascular tissue between the first and second electrodes, the second electrode being comprised of a conductive material which is flexible and conforms to the outer surface of the balloon during expansion of the balloon, wherein the first electrode and second electrode are positioned in an overlapping relationship on a single longitudinal axis to form a double helix spanning an entire length of the balloon, and comprising multiple helical turns around the balloon, and wherein the first and second electrodes are positioned to generate an electric field encompassing substantially the entire outer balloon surface;

an electrical power source which provides electrical pulses to the electrodes in amounts sufficient to subject substantially all vascular tissue cells in a target area of the vessel to non-thermal irreversible electroporation (NTIRE);

wherein the first and second electrodes comprise electrically conductive ink drawn on the balloon;

wherein the electrical power source is configured to apply the electrical pulses having a pulse duration of from 50 to 200 microseconds;

wherein the electrical power source is configured to apply the electrical pulses of a current at a voltage in a range of from 2,000 V/cm to 6,000 V/cm.

10. A method of treatment, comprising:

ablating tissue cells in a blood vessel with a balloon catheter comprised of:

a flexible elongated shaft comprising a distal end portion for insertion into a vessel;

a balloon comprising a proximal balloon neck and a distal balloon neck, the balloon positioned at the distal end portion;

a first electrode comprising a distal collar coaxially surrounding the distal balloon neck, the first electrode positioned at the distal end portion of the shaft, the first electrode being comprised of a conductive material which is flexible and generally conforms to an outer surface of the balloon during expansion of the balloon;

a second electrode comprising a proximal collar coaxially surrounding the proximal balloon neck, the second electrode positioned at a point relative to the first electrode so as to allow electrical current to flow through vascular tissue between the first and second electrodes, the second electrode being comprised of a conductive material which is flexible and conforms to the outer surface of the balloon during expansion of the balloon, wherein the first electrode and second electrode are positioned in an overlapping relationship on a single longitudinal axis to form a double helix comprising multiple helical turns around the balloon, and wherein the first and second electrodes are positioned to generate an electric field encompassing substantially the entire outer balloon surface;

an electrical power source which provides electrical pulses to the electrodes in amounts sufficient to subject substantially all vascular tissue cells in a target area of the vessel to non-thermal irreversible electroporation (NTIRE);

whereby the step of ablating is carried out by providing the electrical pulses to the first and second electrodes.

11. The method of claim 10 , wherein the first and second electrodes comprise electrically conductive ink drawn on the balloon whereby the pulses are provided for durations and in amounts sufficient to subject substantially all vascular cells in a target area to irreversible electroporation (IRE).

12. The method of claim 10 , wherein the electrical power source is designed such that the IRE is carried out using a voltage and a current with defined ranges over a defined period of time and in absence of drug being delivered into the vascular tissue cells.

13. The method of claim 10 , wherein the electrical pulses each have a pulse duration of from 50 to 200microseconds.

14. The method of claim 10 , wherein the electrical pulses are direct current pulses.

15. The method of claim 14 , wherein the electrical pulses each have a pulse duration of from 50 to 200 microseconds.

16. The method of claim 15 , wherein the electrical power source is configured to apply the electrical pulses of a current at a voltage in a range of from 2,000 V/cm to 6,000 V/cm.

17. The method of claim 16 , wherein the electrical power source is configured to apply between two and twenty-five pulses.

18. A method of treatment, comprising:

ablating tissue cells in a blood vessel with a balloon catheter comprised of:

a flexible elongated shaft comprising a distal end portion for insertion into a vessel;

a balloon comprising a proximal balloon neck and a distal balloon neck, the balloon positioned at the distal end portion;

a first electrode comprising a distal collar coaxially surrounding the distal balloon neck, the first electrode positioned at the distal end portion of the shaft, the first electrode being comprised of a conductive material which is flexible and generally conforms to an outer surface of the balloon during expansion of the balloon;

a second electrode comprising a proximal collar coaxially surrounding the proximal balloon neck, the second electrode positioned at a point relative to the first electrode so as to allow electrical current to flow through vascular tissue between the first and second electrodes, the second electrode being comprised of a conductive material which is flexible and conforms to the outer surface of the balloon during expansion of the balloon, wherein the first electrode and second electrode are positioned in an overlapping relationship on a single longitudinal axis to form a double helix comprising multiple helical turns around the balloon, and wherein the first and second electrodes are positioned to generate an electric field encompassing substantially the entire outer balloon surface;

an electrical power source which provides electrical pulses to the electrodes in amounts sufficient to subject substantially all vascular tissue cells in a target area of the vessel to non-thermal irreversible electroporation (NTIRE);

wherein the first and second electrodes comprise electrically conductive ink drawn on the balloon;

wherein the electrical power source is configured to apply the electrical pulses having a pulse duration of from 50 to 200 microseconds;

wherein the electrical power source is configured to apply the electrical pulses of a current at a voltage in a range of from 2,000 V/cm to 6,000 V/cm.

Assignments (7)
RELEASE OF SECURITY INTEREST Recorded Jun 8, 2023
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
To: ANGIODYNAMICS, INC.
Reel/Frame 063940/0362 →
SECURITY INTEREST Recorded Aug 31, 2022
From: ANGIODYNAMICS, INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 061360/0668 →
RELEASE OF SECURITY INTEREST Recorded Aug 31, 2022
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
To: ANGIODYNAMICS, INC.
Reel/Frame 061363/0446 →
CONFIRMATORY GRANT OF SECURITY INTEREST IN UNITED STATES PATENTS Recorded Jun 5, 2019
From: ANGIODYNAMICS, INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 049371/0657 →
SECURITY INTEREST Recorded Nov 8, 2016
From: ANGIODYNAMICS, INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 040613/0049 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2014
From: RUBINSKY, BORIS; MAOR, ELAD; IVORRA, ANTONI
To: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
Reel/Frame 033929/0626 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2014
From: MITCHELL, JAMES J.; HAMILTON, WILLIAM C.
To: ANGIODYNAMICS, INC.
Reel/Frame 033929/0772 →
Cited By (19)
US 12,186,011 US 12,201,349 US 12,239,365 US 12,349,967 US 12,396,742 US 12,402,901 US 12,403,305 US 12,426,948 US 12,575,879 US 12,582,433 US 12,599,397 US 12,622,716 US 12,622,718 US 12,661,136 US 12,685,578 US 12,702,433 US 12,708,385 US 12,714,449 US 12,714,450