IP Library Granted Patent US 12,076,074
Granted Patent B2
US 12,076,074 · App. 17/545,098 · Granted Sep 3, 2024

Electrosurgical device and methods

Inventors: Neil Godara (Milton, CA); Jason Woo (Mississauga, CA); Emily Won (Toronto, CA)
Assignee: MEDTRONIC HOLDING COMPANY SÀRL
A61B18/1402A61B18/14A61B18/148A61B18/1482A61B2018/00005A61B2018/00023A61B2018/0044A61B2018/00565A61B2018/00577A61B2018/00791A61B2018/00797A61B2018/126A61B18/1485
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Quick Facts
Patent No.
US 12,076,074
App. No.
17/545,098
Granted
Sep 3, 2024
Kind
B2
Abstract

An electrosurgical probe with internal cooling for use in systems and methods for lesioning in bone and other tissue is disclosed. The probe includes a distal electrical insulator, a proximal electrical insulator, a distal electrical conductor defining a distal electrode with a closed distal end and a proximal electrical conductor defining a proximal electrode, the distal electrode longitudinally spaced apart and electrically isolated from the proximal electrode by the distal electrical insulator. The distal electrode has a closed proximal end formed by a distal face of the distal electrical insulator to thereby define a closed distal inner lumen for circulating the cooling fluid. The proximal electrode has a closed distal end formed by a proximal face of the distal electrical insulator and a closed proximal end formed by a distal face of the proximal electrical insulator to thereby define a closed proximal inner lumen for circulating the cooling fluid.

Claims (45)

1. A method of lesioning in a bone of a patient using a unitary electrosurgical ablation probe, the method comprising:

inserting at least a portion of the unitary electrosurgical ablation probe, having a proximal end, an opposite distal end, and a mid-longitudinal axis into the patient;

positioning the distal end of the unitary electrosurgical ablation probe adjacent a portion of the bone;

supplying energy from an electrosurgical generator to a first electrode forming a closed distal end portion of the unitary electrosurgical ablation probe via a first inner conductor extending through at least a portion of the unitary electrosurgical ablation probe;

delivering energy between the first electrode and a second electrode spaced apart from the first electrode, and to the portion of the bone to create a lesion;

electrically isolating the first electrode and the second electrode from one another using an insulator positioned therebetween;

flowing a cooling fluid supplied by a fluid supply line within the unitary electrosurgical ablation probe, and through at least a portion of the closed distal end portion that abuts the distal end of the unitary electrosurgical ablation probe; and

removing the cooling fluid flowing through the closed distal end portion through a fluid return line;

wherein an exit of the fluid supply line is closer to the proximal end of the unitary electrosurgical probe than an entrance of the fluid return line.

2. The method of claim 1 , further comprising monitoring a temperature of the portion of the bone to which the energy is being delivered, and controlling the delivering of the energy in response to the monitored temperature.

3. The method of claim 1 , further comprising using an introducer assembly to position the portion of the unitary electrosurgical ablation probe adjacent the portion of the bone.

4. The method of claim 1 , wherein a passageway extends through at least a portion of the unitary electrosurgical ablation probe, the passageway being configured to afford flow of the cooling fluid to cool at least portions of the first electrode and the second electrode.

5. The method of claim 1 , wherein the second electrode is electrically interconnected with a second inner conductor, and the first inner conductor and the second inner conductor are coaxial with one another.

6. The method of claim 1 , wherein the first electrode is closer to the distal end of the unitary electrosurgical ablation probe than the second electrode, and the exit of the fluid supply line is closer to the proximal end of the unitary electrosurgical probe than at least one on the first electrode and the second electrode.

7. The method of claim 1 , wherein the delivered energy is radiofrequency energy, and further comprising maintaining a temperature of the portion of the bone at between about 40 degrees and about 100 degrees Celsius using the radiofrequency energy.

8. The method of claim 7 , wherein the radiofrequency energy is delivered at power levels between about 1 Watt and about 50 Watts.

9. The method of claim 7 , wherein the radiofrequency energy is delivered for between about 2 minutes to about 30 minutes.

10. The method of claim 7 , wherein the radiofrequency energy is delivered such that a temperature of the portion of the bone increases at a ramp rate from about 10 degree C./min to about 80 degree C./min.

11. A method of lesioning in a bone of a patient using a unitary electrosurgical ablation probe, the method comprising:

positioning an introducer assembly into the patient;

inserting at least a portion of the unitary electrosurgical ablation probe having a proximal end, an opposite distal end, and a mid-longitudinal axis through the introducer assembly and into the patient;

positioning the distal end of the unitary electrosurgical ablation probe adjacent a portion of the bone;

supplying energy from an electrosurgical generator to a first electrode forming a closed distal end portion of the unitary electrosurgical ablation probe via a first inner conductor;

delivering energy between the first electrode and a second electrode spaced apart from the first electrode, and to the portion of the bone to create a lesion;

electrically isolating the first electrode and the second electrode from one another using an insulator positioned therebetween; and

circulating a cooling fluid supplied by a fluid supply line within the unitary electrosurgical ablation probe, and through at least a portion of the closed distal end portion that abuts the distal end of the unitary electrosurgical ablation probe; and

removing the cooling fluid flowing through the closed distal end portion through a fluid return line;

wherein an exit of the fluid supply line is closer to the proximal end of the unitary electrosurgical probe than an entrance of the fluid return line.

12. The method of claim 11 , further comprising monitoring a temperature of the portion of the bone to which the energy is being delivered, and controlling the delivering of the energy in response to the monitored temperature.

13. The method of claim 11 , wherein a passageway extends through at least a portion of the unitary electrosurgical ablation probe, the passageway being configured to afford flow of the cooling fluid to cool at least portions of the first electrode and the second electrode.

14. The method of claim 13 , wherein the second electrode is electrically interconnected with a second inner conductor, and the first inner conductor and the second conductor are coaxial with one another.

15. The method of claim 13 , wherein the first electrode is closer to the distal end of the unitary electrosurgical ablation probe than the second electrode, and the exit of the fluid supply line is closer to the proximal end of the unitary electrosurgical probe than at least one of the first electrode and the second electrode.

16. The method of claim 13 , wherein the delivered energy is radiofrequency energy, and further comprising maintaining a temperature of the portion of the bone at between about 40 degrees and about 100 degrees Celsius using the radiofrequency energy.

17. A method of lesioning in a bone of a patient using a unitary electrosurgical probe, the method comprising:

positioning an introducer assembly into the patient;

inserting at least a portion of the unitary electrosurgical ablation probe through the introducer assembly and into the patient;

positioning a distal end of the unitary electrosurgical ablation probe adjacent a portion of the bone;

supplying energy from an electrosurgical generator to a first electrode forming a closed distal end portion of the unitary electrosurgical ablation probe via a first inner conductor;

delivering energy between the first electrode and a second electrode to the portion of the bone to create a lesion; and

circulating a cooling fluid supplied by a fluid supply line within the unitary electrosurgical ablation probe, and through at least a portion of the closed distal end portion that abuts the distal end of the unitary electrosurgical ablation probe; and

removing the cooling fluid flowing through the closed distal end portion through a fluid return line;

wherein an exit of the fluid supply line is closer to the proximal end of the unitary electrosurgical probe than an entrance of the fluid return line.

18. The method of claim 17 , further comprising monitoring a temperature of the portion of the bone to which the energy is being delivered, and controlling the delivering of the energy in response to the monitored temperature.

19. The method of claim 17 , wherein the second electrode is electrically interconnected with a second inner conductor, and the first inner conductor and the second inner conductor are coaxial with one another.

20. The method of claim 17 , wherein the first electrode is closer to the distal end of the unitary electrosurgical ablation probe than the second electrode, and the exit of the fluid supply line is closer to the proximal end of the unitary electrosurgical probe than at least one of the first electrode and the second electrode.

Assignments (4)
MERGER Recorded Apr 10, 2025
From: MEDTRONIC HOLDING COMPANY SÀRL
To: MEDTRONIC EUROPE SÀRL
Reel/Frame 070809/0661 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2021
From: 9234438 CANADA INC.
To: KYPHON SARL
Reel/Frame 058332/0527 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2021
From: KYPHON SÀRL
To: MEDTRONIC HOLDING COMPANY SÀRL
Reel/Frame 058382/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2021
From: GODARA, NEIL; WOO, JASON; WON, EMILY
To: 9234438 CANADA INC.
Reel/Frame 059907/0504 →
Continuity (6)
Continuation 16660067 · Oct 22, 2019
Continuation 15782229 · Oct 12, 2017
Continuation 14928568 · Oct 30, 2015
Division 13643310
Provisional Application 61328118 · Apr 26, 2010
Related Publication 20220096143A1 · Mar 31, 2022
Cited By (1)
US 12,569,290