IP Library Granted Patent US 12,173,280
Granted Patent B2
US 12,173,280 · App. 18/120,158 · Granted Dec 24, 2024

Methods of reducing adverse effects of non-thermal ablation

Inventors: Robert E. Neal, II (Richmond, VA); Paulo A. Garcia (Cambridge, MA); Rafael V. Davalos (Blacksburg, VA); John H. Rossmeisl (Blacksburg, VA); John L. Robertson (Floyd, VA)
Assignee: Virginia Tech Intellectual Properties, Inc.
C12N13/00A61B18/12A61B18/1477A61B34/10A61B2018/00577A61B2018/00613A61B2018/00791A61B2018/00875A61B2034/104A61B2034/105A61N1/0412G16H50/50
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Quick Facts
Patent No.
US 12,173,280
App. No.
18/120,158
Granted
Dec 24, 2024
Kind
B2
Abstract

The present invention provides systems, methods, and devices for electroporation-based therapies (EBTs). Embodiments provide patient-specific treatment protocols derived by the numerical modeling of 3D reconstructions of target tissue from images taken of the tissue, and optionally accounting for one or more of physical constraints or dynamic tissue properties. The present invention further relates to systems, methods, and devices for delivering bipolar electric pulses for irreversible electroporation exhibiting reduced or no damage to tissue typically associated with an EBT-induced excessive charge delivered to the tissue.

Claims (36)

1. A method comprising:

operatively coupling a first monopolar electrode and a second monopolar electrode to a generator, wherein the first monopolar electrode comprises an active distal tip;

inserting the active distal tip of the first monopolar electrode into a target tissue; and

activating the generator to apply biphasic electrical pulses between the first monopolar electrode and the second monopolar electrode in an amount sufficient to non-thermally ablate cells in the target tissue, wherein the biphasic electrical pulses comprise a voltage of up to 5,000 volts and a frequency in the range of 200 kHz-100 MHz;

wherein each of the biphasic electrical pulses comprises a first polarity portion and a second polarity portion separated by a delay such that following the delay the second polarity portion alternates polarity relative to the first polarity portion.

2. The method of claim 1 , wherein the biphasic electrical pulses are configured to maintain a temperature of the target tissue at 60° C. or less.

3. The method of claim 1 , wherein the first monopolar electrode further comprises a lumen, the active distal tip further comprises a needle shape and the electrode has a length in the range of 0.1 mm to 30 cm.

4. The method of claim 1 , wherein an outer surface of the first monopolar electrode is at least partially covered by a non-conductive material and the active distal tip comprises a conductive material.

5. The method of claim 1 , wherein the biphasic electrical pulses comprise a voltage of up to 3,000 volts.

6. The method of claim 1 , wherein the target tissue comprises soft tissue, prostate tissue, liver tissue, kidney tissue, pancreatic tissue, breast tissue, or brain tissue.

7. The method of claim 1 , wherein the active distal tip comprises either a single conductive layer or at least two conductive layers, the first monopolar electrode comprises a diameter between 0.001 millimeter to 1 centimeter, and the electrode has a length of 0.1 millimeter to 30 centimeters.

8. The method of claim 1 , wherein the step of activating the generator to apply biphasic electrical pulses between the first monopolar electrode and the second monopolar electrode in an amount sufficient to non-thermally ablate cells in the target tissue is configured to promote a beneficial immune response in the target tissue.

9. The method of claim 1 , further comprising the step of operatively coupling the first monopolar electrode to a remotely controllable apparatus.

10. The method of claim 1 , wherein the biphasic electrical pulses comprise multiple sets of pulse parameters for a single treatment.

11. The method of claim 10 , wherein the multiple sets of pulse parameters are configured to result in different electric field distributions within the target tissue.

12. The method of claim 10 , wherein the step of activating the generator to apply biphasic electrical pulses between the first monopolar electrode and the second monopolar electrode in an amount sufficient to non-thermally ablate cells in the target tissue is configured to reduce a likelihood of electrolysis, or a formation of bubbles at an interface of the monopolar electrode.

13. A method comprising:

inserting an expandable electrode into a target tissue, wherein the expandable electrode is operatively coupled to a generator;

expanding the expandable electrode from a constricted state to an expanded state; and

activating the generator to apply biphasic electrical pulses from the expandable electrode in an amount sufficient to non-thermally ablate cells in the target tissue, wherein the biphasic electrical pulses comprise a voltage of up to 5,000 volts and a frequency in the range of 200 kHz-100 MHZ;

wherein each of the biphasic electrical pulses comprises a first polarity portion and a second polarity portion separated by a delay such that following the delay the second polarity portion alternates polarity relative to the first polarity portion.

14. The method of claim 13 , wherein the step of activating the generator to apply biphasic electrical pulses from the expandable electrode in an amount sufficient to non-thermally ablate cells in the target tissue is configured to reduce a likelihood of electrolysis, or a formation of bubbles at an interface of the monopolar electrode.

15. The method of claim 13 , further comprising the step of:

monitoring an impedance of the target tissue in real-time.

16. The method of claim 13 , further comprising the step of:

mapping an electrical conductivity of the target tissue.

17. The method of claim 13 , wherein the biphasic electrical pulses comprise multiple sets of pulse parameters for a single treatment and the multiple sets of pulse parameters are configured to result in different electric field distributions within the target tissue.

18. A method comprising,

inserting an electrode into a target tissue, wherein the electrode is operatively coupled to a generator;

mapping an electrical conductivity of the target tissue;

activating the generator to apply biphasic electrical pulses from the electrode in an amount sufficient to non-thermally ablate cells in the target tissue; and

monitoring an impedance of the target tissue in real-time;

wherein the mapping is performed before and during non-thermally ablating the cells in the target tissue.

19. The method of claim 18 , wherein the step of monitoring the impedance is configured to be used during a treatment prediction or a treatment planning.

20. The step of claim 18 , further comprising the step of:

adjusting one or more pulse parameters based at least in part on the mapping.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 30, 2024
From: NEAL, ROBERT E., II; GARCIA, PAULO A.; DAVALOS, RAFAEL V.; ROSSMEISL, JOHN H.; ROBERTSON, JOHN L.
To: VIRGINIA POLYTECHNIC AND STATE UNIVERSITY
Reel/Frame 069070/0179 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 30, 2024
From: VIRGINIA POLYTECHNIC AND STATE UNIVERSITY
To: VIRGINIA TECH INTELLECTUAL PROPERTIES, INC.
Reel/Frame 069070/0271 →
Continuity (16)
Continuation 14808679 · Jul 24, 2015
Continuation In Part 13332133 · Dec 20, 2011
Continuation In Part 12757901 · Apr 9, 2010
Division 12906923 · Oct 18, 2010
Continuation In Part 12757901 · Apr 9, 2010
Continuation In Part 12609779
Continuation In Part 12491151 · Oct 30, 2009
Continuation In Part 12432295 · Apr 29, 2009
Provisional Application 61424872 · Dec 20, 2010
Provisional Application 61285618 · Dec 11, 2009
Provisional Application 61252445 · Oct 16, 2009
Provisional Application 61171564 · Apr 22, 2009
Provisional Application 61167997 · Apr 9, 2009
Provisional Application 61075216 · Jun 24, 2008
Provisional Application 61125840 · Apr 29, 2008
Related Publication 20230212551A1 · Jul 6, 2023
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