IP Library Granted Patent US 12,733,970
Granted Patent B2
US 12,733,970 · App. 18/373,626 · Granted Sep 15, 2026

RF ablation systems with a bipolar RF electrode and methods for making and using

Inventors: Gregory Bates (Bend, OR); Courtney Johnson (Valencia, CA)
Assignee: Boston Scientific Neuromodulation Corporation
A61B18/1206A61B2018/00077A61B2018/00083A61B2018/00577A61B2018/126
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Quick Facts
Patent No.
US 12,733,970
App. No.
18/373,626
Granted
Sep 15, 2026
Kind
B2
Abstract

An RF ablation system can include a bipolar RF electrode that has two electrodes. Some bipolar RF electrodes can include a metal tube forming one of the electrodes. The metal tube can have cuts to facilitate bending of the metal tube. Some bipolar RF electrodes can include a multi-lumen tube for the conductors. Some multi-lumen tubes can be made of a relatively high durometer material to provide column strength to the bipolar RF electrodes. Some RF ablation systems can include an adapter for a RF generator to connect each electrode to a different channel. A variety of arrangement of the channels of the RF generator and the conductors of the bipolar RF electrode can be used to couple the electrodes and a temperature sensor to the RF generator.

Claims (34)

1 . A RF ablation electrode, comprising

an electrode shaft;

a metal tube forming at least a portion of the electrode shaft and comprising a proximal portion and a distal portion, wherein at least the distal portion of the metal tube comprises a plurality of cuts to facilitate bending of the distal portion, wherein at least part of the distal portion of the metal tube forms a first electrode;

a spacer disposed distally from the first electrode;

a second electrode disposed distally from the spacer;

a connector; and

at least two conductors electrically coupled to the connector with different conductors of the at least two conductors electrically coupled to the first electrode and the second electrode, respectively.

2 . The RF ablation electrode of claim 1 , wherein the plurality of cuts is arranged as an interrupted spiral pattern.

3 . The RF ablation electrode of claim 1 , further comprising a non-conductive jacket disposed over at least the proximal portion of the metal tube but not disposed over the first electrode.

4 . The RF ablation electrode of claim 1 , wherein the at least two conductors comprises a first conductor that is electrically attached to the proximal portion of the metal tube.

5 . The RF ablation electrode of claim 1 , wherein the proximal portion of the metal tube does not comprise any of the cuts.

6 . The RF ablation electrode of claim 1 , wherein the second electrode is a tip electrode.

7 . The RF ablation electrode of claim 1 , wherein the spacer, first electrode, or second electrode comprises a radiopaque marker.

8 . An RF ablation system, comprising:

the RF ablation electrode of claim 1 ; and

an RF generator coupled, or coupleable, to the RF ablation electrode.

9 . The RF ablation electrode of claim 1 , wherein the electrode shaft comprises a proximal portion, a distal portion, and a multi-lumen tube extending along at least part of the proximal portion of the electrode shaft, the multi-lumen tube defining a plurality of conductor lumens extending along the multi-lumen tube, wherein at least a portion of at least one of the at least two conductors extends along at least one of the conductor lumens of the multi-lumen tube.

10 . The RF ablation electrode of claim 9 , wherein the multi-lumen tube has exactly three or four of the conductor lumens.

11 . The RF ablation electrode of claim 9 , wherein the multi-lumen tube further comprises a stylet lumen that is different in size from the conductor lumens.

12 . The RF ablation electrode of claim 9 , wherein the multi-lumen tube is made of a higher durometer material than a material forming a portion of the electrode shaft adjacent the first electrode.

13 . The RF ablation electrode of claim 9 , wherein the second electrode is a tip or ring electrode.

14 . A RF ablation system, comprising:

the RF ablation electrode of claim 9 ; and

an RF generator coupled, or coupleable, to the RF ablation electrode.

15 . A RF ablation system, comprising

the RF ablation electrode of claim 9 ; and

an adapter comprising an electrode connector configured to connect to the connector of the RF ablation electrode, first and second port connectors configured to individually connect to different ports of a RF generator, a first adapter conductor configured to electrically couple the electrode connector to the first port connector, and a second adapter conductor configured to electrically couple the electrode connector to the second port connector, wherein, when the electrode connector of the adapter is coupled to the connector of the RF ablation electrode, a first one of the at least two conductors of the RF ablation electrode is electrically coupled to the first adapter conductor and a second one of the at least two conductors of the RF ablation electrode is electrically coupled to the second adapter conductor.

16 . The RF ablation system of claim 15 , further comprising the RF generator comprising a first port configured to receive the first port connector of the adapter and a second port configured to receive the second port connector of the adapter.

17 . A RF ablation system, comprising:

a RF generator comprising a RF source, a ground, a temperature measurement arrangement, and at least one port, wherein the RF generator defines at least three channels, wherein the RF source and ground are electrically coupled to different channels of the at least three channels and the temperature measurement arrangement is electrically coupled to two of the at least three channels; and

the RF ablation electrode of claim 1 , wherein the RF ablation electrodes further comprises a temperature sensor disposed along the distal portion of the electrode shaft, wherein the at least two conductors comprise at least three conductors extending along the electrode shaft and electrically coupled to the connector, wherein the first and second electrodes are electrically coupled to different conductors of the at least three conductors and the temperature sensor is coupled to two of the at least three conductors, wherein the connector is configured to electrically couple to at least one of the at least one port of the RF generator so that, when coupled, the first electrode is electrically coupled to the RF source, the second electrode is electrically coupled to the ground, and the temperature sensor is electrically coupled to the temperature measurement arrangement.

18 . The RF ablation system of claim 17 , wherein the at least three channels comprises a first channel, a second channel, a third channel, and a fourth channel and the at least three conductors comprises a first conductor coupled to the first electrode, a second conductor coupled to the second electrode, and third and fourth conductors coupled to the temperature sensor, wherein, when the connector is electrically coupled to the at least one port of the RF generator, the first conductor couples the first electrode to the first channel and the RF source, the second conductor couples the second electrode to the second channel and the ground, and the third and fourth conductors couple the temperature sensor to the third and fourth channels, respectively, and the temperature measurement arrangement.

19 . The RF ablation system of claim 17 , wherein the at least three channels comprises a first channel, a second channel, and a third channel and the at least three conductors comprises a first conductor coupled to the first electrode, a second conductor coupled to the second electrode, and a third conductor coupled to the temperature sensor, wherein the temperature sensor is also coupled to either the first or second conductor, wherein, when the connector is electrically coupled to the at least one port of the RF generator, the first conductor couples the first electrode to the first channel and the RF source, the second conductor couples the second electrode to the second channel and the ground, and the third conductor, as well as either the first or second conductor, couples the temperature sensor to the third channel, as well as either the first or second channel, respectively, and the temperature measurement arrangement.

20 . The RF ablation system of claim 19 , wherein the RF generator further comprises a RF filter coupled between either the first or second channel and the temperature measurement arrangement to filter out signals from the RF source.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2023
From: BATES, GREGORY; JOHNSON, COURTNEY
To: BOSTON SCIENTIFIC NEUROMODULATION CORPORATION
Reel/Frame 065050/0518 →
Continuity (2)
Provisional Application 63413133 · Oct 4, 2022
Related Publication 20240108394A1 · Apr 4, 2024
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