IP Library › Granted Patent US 12,414,816
Granted Patent B2
US 12,414,816 · App. 18/179,527 · Granted Sep 16, 2025

Temperature controlled short duration ablation with multiple electrodes

Inventors: Assaf Govari (Haifa, IL); Andres Claudio Altmann (Haifa, IL); Yaron Ephrath (Karkur, IL)
Assignee: Biosense Webster (Israel) Ltd.
A61B18/1492A61B18/1206A61B2018/00029A61B2018/0022A61B2018/00267A61B2018/00273A61B2018/00375A61B2018/00577A61B2018/00654A61B2018/00708A61B2018/00797A61B2018/00821A61B2018/00875A61B2018/00928A61B2018/1467
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Quick Facts
Patent No.
US 12,414,816
App. No.
18/179,527
Granted
Sep 16, 2025
Kind
B2
Abstract

Apparatus, including a catheter configured to be inserted into an organ of a human body. A plurality of electrodes are deployed on the catheter, the electrodes being configured to transfer radiofrequency (RF) ablation energy to tissue of the organ. The apparatus also includes a power supply configured to supply the RF ablation energy at a level of up to 100 W to each of the plurality of electrodes simultaneously, so as to ablate respective sections of the tissue of the organ in contact with the electrodes.

Claims (37)

1. An apparatus comprising:

one or more processors; and

a non-transitory computer readable medium storing a plurality of instructions, which when executed, cause the one or more processors to:

cause a first set of switches respectively associated with a first set of electrodes on a catheter to be closed to establish a conducting line from a power supply to the first set of electrodes and a second set of switches respectively associated with a second set of electrodes on the catheter to be open so there is no conducting line from the power supply to the second set of electrodes, the power supply being configured to provide radiofrequency (RF) ablation energy via the catheter to an organ of a human body;

cause the supply of RF ablation energy from the power supply to the first set of electrodes;

cause each switch of the first set of switches to be opened to halt the supply of RF ablation energy when the associated electrode of the first set of electrodes completes its respective assigned ablation or a temperature of the associated electrode exceeds its respective predetermined temperature threshold as measured by a temperature sensor associated with that electrode;

cause, in response to each switch of the first set of switches being opened, a switch of the second set of switches to be closed to establish a conducting line from the power supply to the electrode of the second set of electrodes associated with the closed switch; and

cause each switch of the second set of switches to be opened to halt the supply of RF ablation energy when the associated electrode of the second set of electrodes completes its respective assigned ablation or a temperature of the associated electrode exceeds its respective predetermined temperature threshold as measured by a temperature sensor associated with that electrode.

2. The apparatus according to claim 1 , wherein the one or more processors is configured to cause the first set of switches respectively associated with a first set of electrodes on a catheter to be closed to establish a conducting line from a power supply to the first set of electrodes so that the RF ablation energy required to be delivered to the first subset of electrodes does not exceed a maximum power rating of the power supply.

3. The apparatus according to claim 2 , wherein the one or more processors is configured to cause, in response to each switch of the first set of switches being opened, a switch of the second set of switches to be closed to establish a conducting line from the power supply to the electrode of the second set of electrodes associated with the closed switch consistent with the determination that the RF ablation energy required to be delivered to the electrodes from the first and second subsets of electrodes does not exceed a maximum power rating of the power supply.

4. The apparatus according to claim 1 , wherein the one or more processors is configured to store the identities of each electrode of the plurality of electrodes having a closed switch in an active electrode register and store the identities of each electrode of the plurality of electrodes having an open switch in a quiescent electrode register.

5. The apparatus according to claim 1 , wherein the one or more processors is configured to update the active electrode register and the quiescent electrode register in response to each switch of the first set of switches being opened and correspondingly each switch of the second set of switches being closed.

6. The apparatus according to claim 1 , wherein the catheter comprises a balloon catheter.

7. The apparatus according to claim 1 , wherein the catheter comprises a basket catheter.

8. A method, comprising:

causing a first set of switches respectively associated with a first set of electrodes on a catheter to be closed to establish a conducting line from a power supply to the first set of electrodes and a second set of switches respectively associated with a second set of electrodes on the catheter to be open so there is no conducting line from the power supply to the second set of electrodes, the power supply being configured to provide radiofrequency (RF) ablation energy via the catheter to an organ of a human body;

causing the supply of RF ablation energy from the power supply to the first set of electrodes;

causing each switch of the first set of switches to be opened to halt the supply of RF ablation energy when the associated electrode of the first set of electrodes completes its respective assigned ablation or a temperature of the associated electrode exceeds its respective predetermined temperature threshold as measured by a temperature sensor associated with that electrode;

causing, in response to each switch of the first set of switches being opened, a switch of the second set of switches to be closed to establish a conducting line from the power supply to the electrode of the second set of electrodes associated with the closed switch; and

causing each switch of the second set of switches to be opened to halt the supply of RF ablation energy when the associated electrode of the second set of electrodes completes its respective assigned ablation or a temperature of the associated electrode exceeds its respective predetermined temperature threshold as measured by a temperature sensor associated with that electrode.

9. The method according to claim 8 , wherein causing the first set of switches respectively associated with a first set of electrodes on a catheter to be closed to establish a conducting line from a power supply to the first set of electrodes is based upon a determination that the RF ablation energy required to be delivered to the first subset of electrodes does not exceed a maximum power rating of the power supply.

10. The method according to claim 9 , wherein causing, in response to each switch of the first set of switches being opened, a switch of the second set of switches to be closed to establish a conducting line from the power supply to the electrode of the second set of electrodes associated with the closed switch is consistent with the determination that the RF ablation energy required to be delivered to the electrodes from the first and second subsets of electrodes does not exceed a maximum power rating of the power supply.

11. The method according to claim 8 , further comprising storing the identities of each electrode of the plurality of electrodes having a closed switch in an active electrode register and storing the identities of each electrode of the plurality of electrodes having an open switch in a quiescent electrode register.

12. The method according to claim 11 , further comprising updating the active electrode register and the quiescent electrode register in response to each switch of the first set of switches being opened and correspondingly each switch of the second set of switches being closed.

13. The method according to claim 8 , wherein the catheter comprises a balloon catheter.

14. The method according to claim 8 , wherein the catheter comprises a basket catheter.

15. A computer program product, comprising a non-transitory computer-readable medium having computer-readable program code embodied therein to be executed by one or more processors, the program code including instructions to:

cause a first set of switches respectively associated with a first set of electrodes on a catheter to be closed to establish a conducting line from a power supply to the first set of electrodes and a second set of switches respectively associated with a second set of electrodes on the catheter to be open so there is no conducting line from the power supply to the second set of electrodes, the power supply being configured to provide radiofrequency (RF) ablation energy via the catheter to an organ of a human body;

cause the supply of RF ablation energy from the power supply to the first set of electrodes;

cause each switch of the first set of switches to be opened to halt the supply of RF ablation energy when the associated electrode of the first set of electrodes completes its respective assigned ablation or a temperature of the associated electrode exceeds its respective predetermined temperature threshold as measured by a temperature sensor associated with that electrode;

cause, in response to each switch of the first set of switches being opened, a switch of the second set of switches to be closed to establish a conducting line from the power supply to the electrode of the second set of electrodes associated with the closed switch; and

cause each switch of the second set of switches to be opened to halt the supply of RF ablation energy when the associated electrode of the second set of electrodes completes its respective assigned ablation or a temperature of the associated electrode exceeds its respective predetermined temperature threshold as measured by a temperature sensor associated with that electrode.

16. The computer program product according to claim 15 , wherein the program code includes further instructions to cause the first set of switches respectively associated with a first set of electrodes on a catheter to be closed to establish a conducting line from a power supply to the first set of electrodes is based upon a determination that the RF ablation energy required to be delivered to the first subset of electrodes does not exceed a maximum power rating of the power supply.

17. The computer program product according to claim 16 , wherein the program code includes further instructions to cause, in response to each switch of the first set of switches being opened, a switch of the second set of switches to be closed to establish a conducting line from the power supply to the electrode of the second set of electrodes associated with the closed switch consistent with the determination that the RF ablation energy required to be delivered to the electrodes from the first and second subsets of electrodes does not exceed a maximum power rating of the power supply.

18. The computer program product according to claim 15 , wherein the program code includes further instructions to store the identities of each electrode of the plurality of electrodes having a closed switch in an active electrode register and store the identities of each electrode of the plurality of electrodes having an open switch in a quiescent register.

19. The computer program product according to claim 15 , wherein the program code includes further instructions to update the active electrode register and the quiescent electrode register in response to each switch of the first set of switches being opened and correspondingly each switch of the second set of switches being closed.

20. The computer program according to claim 15 , wherein the catheter comprises one of a balloon catheter or a basket catheter.

Continuity (3)
Division 15994459 · May 31, 2018
Provisional Application 62529158 · Jul 6, 2017
Related Publication 20230200902A1 · Jun 29, 2023
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Cited By (1)
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