IP Library Granted Patent US 12,376,901
Granted Patent B2
US 12,376,901 · App. 17/502,902 · Granted Aug 5, 2025

Radio-frequency ablation and direct current electroporation catheters

Inventors: Derek C. Sutermeister (Ham Lake, MN); Troy T. Tegg (Elk River, MN); Salo Arias (Brooklyn Park, MN)
Assignee: St. Jude Medical, Cardiology Division, Inc.
A61B18/1492A61B5/287A61B5/6858A61B2018/00267A61B2018/00351A61B2018/00577A61B2018/00613A61B2018/00839A61B2018/1405A61B2018/1467A61B2562/0209
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Quick Facts
Patent No.
US 12,376,901
App. No.
17/502,902
Granted
Aug 5, 2025
Kind
B2
Abstract

Aspects of the present disclosure are directed to flexible catheters for both electrophysiology mapping and ablation using a high-density array of electrodes. These catheters may be used to detect electrophysiological characteristics of tissue in contact with the electrodes, and conduct monopolar and bipolar ablations of the tissue.

Claims (34)

1. A planar array catheter comprising:

an elongated catheter shaft including a proximal end and a distal end, and defining a longitudinal axis;

a flexible, planar array coupled to the distal end of the elongated catheter shaft, the planar array configured to conform to tissue, and including struts extending substantially parallel with the longitudinal axis, each of the struts lying in a common plane and comprising electrodes coupled thereto, wherein the electrodes are configured to detect electrophysiological characteristics of a contacted tissue in contact with the planar array and operate in a combination of a bipolar configuration and a monopolar configuration to conduct an ablation therapy of the contacted tissue; and

controller circuitry communicatively coupled to the electrodes and configured to receive signals from the electrodes indicative of the electrophysiological characteristics of the contacted tissue, generate an electrophysiology map of the contacted tissue, operate one or more pairs of the electrodes in the combination of the bipolar configuration and the monopolar configuration based at least in part on the electrophysiology map to ablate a volume of tissue in contact with one of the electrodes of the one or more pairs of the electrodes, and control a depth or width of the ablated volume of tissue using the combination of the bipolar configuration and the monopolar configuration, wherein operation of the planar array in each of the bipolar configuration and the monopolar configuration each comprises applying a voltage differential between 400 and 4,000 volts to produce irreversible electroporation.

2. The planar array catheter of claim 1 , wherein:

at least one of the electrodes is a ring electrode that extends circumferentially around one of the struts; and

at least one of the struts comprises a flexible electronic circuit that extends along a length of the strut and is communicatively coupled with one or more of the electrodes supported by the strut.

3. The planar array catheter of claim 1 , wherein:

the electrodes comprise one or more spot electrodes; and

at least one of the struts comprises a flexible electronic circuit board that is communicatively and mechanically coupled to at least one of the one or more spot electrodes.

4. The planar array catheter of claim 1 , wherein the controller circuitry is configured to identify a pulmonary vein associated with stray electrical signals and control the ablation therapy of the contacted tissue to form an ablation lesion that circumferentially extends about the identified pulmonary vein.

5. The planar array catheter of claim 1 , wherein the bipolar configuration includes bipole electrode pairs on adjacent struts of the planar array.

6. The planar array catheter of claim 5 , wherein the ablation therapy of the contacted tissue comprises using the bipole electrode pairs to sample electrical characteristics of the contacted tissue and conduct the ablation therapy of the contacted tissue.

7. The planar array catheter of claim 1 , wherein the bipolar configuration includes bipole electrode pairs that extend diagonally across adjacent struts of the planar array.

8. The planar array catheter of claim 1 , wherein the controller circuitry is further configured to minimize a current supplied to the electrodes and deliver a desired voltage gradient to the contacted tissue.

9. The planar array catheter of claim 1 , wherein the controller circuitry is further configured to:

identify one or more pulmonary veins emitting stray electrical signals based upon signals received from the electrodes; and

control the ablation therapy of the tissue to form at least one ablation lesion that circumferentially extends about one of the one or more pulmonary veins to isolate the stray electrical signals.

10. The planar array catheter of claim 1 , wherein:

each of the struts comprises a flexible electronic circuit; and

the controller circuitry is communicatively coupled to the electrodes via the flexible electronic circuits.

11. The planar array catheter of claim 1 , wherein:

the electrodes are further configured to be operated in the combination of the bipolar configuration and the monopolar configuration to deliver radio frequency energy to the contacted tissue; and

the controller circuitry is configured to control the ablation therapy to vary the depth of the ablation therapy using the combination of the bipolar configuration and the monopolar configuration to deliver radio frequency energy to the contacted tissue.

12. The planar array catheter of claim 1 , wherein the controller circuitry is configured to determine a treatment approach used to conduct the ablation therapy of the contacted tissue.

13. The planar array catheter of claim 1 , wherein the controller circuitry is further configured to conduct radio frequency ablation in a monopolar configuration using an external ground pad and any one of one or more of the electrodes.

14. The planar array catheter of claim 1 , wherein the controller circuitry is configured to control the depth of the ablated volume of tissue to mitigate risk of nerve damage.

15. The planar array catheter of claim 1 , wherein the controller circuitry is configured to control the depth of the ablated volume of tissue to compromised myocardial tissue.

16. The planar array catheter of claim 1 , wherein the controller circuitry is configured to alternate polarities of two of the one or more pairs of electrodes in combination with an external ground pad having a negative polarization.

17. The planar array catheter of claim 1 , wherein the controller circuitry is configured to alternate polarities of two of the one or more pairs of electrodes in combination with an external ground pad having an alternating polarization.

18. A planar array catheter comprising:

an elongated catheter shaft including a proximal end and a distal end, and defining a longitudinal axis;

a flexible, planar array coupled to the distal end of the elongated catheter shaft, the planar array configured to conform to tissue, and including struts extending substantially parallel with the longitudinal axis, each of the struts lying in a common plane and comprising electrodes coupled thereto, wherein the electrodes are configured to detect electrophysiological characteristics of a contacted tissue in contact with the planar array and operate in a combination of a bipolar configuration and a monopolar configuration to conduct an ablation therapy of the contacted tissue; and

controller circuitry communicatively coupled to the electrodes and configured to receive signals from the electrodes indicative of the electrophysiological characteristics of the contacted tissue, generate an electrophysiology map of the contacted tissue, and operate one or more pairs of the electrodes in the combination of the bipolar configuration and the monopolar configuration based at least in part on the electrophysiology map to ablate a volume of tissue in contact with one of the electrodes of the one or more pairs of the electrodes so as to mitigate risk of nerve damage, wherein operation of the planar array in each of the bipolar configuration and the monopolar configuration each comprises applying a voltage differential between 400 and 4,000 volts to produce irreversible electroporation.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 30, 2022
From: SUTERMEISTER, DEREK; TEGG, TROY T.; GONZALEZ, SALOME A.
To: ST. JUDE MEDICAL, CARDIOLOGY DIVISION, INC.
Reel/Frame 059447/0415 →
Continuity (3)
Continuation 16418296 · May 21, 2019
Provisional Application 62674314 · May 21, 2018
Related Publication 20220175445A1 · Jun 9, 2022
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