IP Library › Granted Patent US 10,799,712
Granted Patent B2
US 10,799,712 · App. 15/653,462 · Granted Oct 13, 2020

Systems and methods for targeted deep hyperthermia by time-shared RF inductive applicators

Inventors: Charles Eric Anderson, Jr. (Lee's Summit, MO); Michael George Wandell (Seattle, WA); Randall Wayne Jones (Omaha, NE)
Assignee: NEOTHERMA ONCOLOGY, INC.
A61N1/403A61B5/015A61B5/055A61B5/4836A61N5/025G01R33/34084G01R33/3415G01R33/4804
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Quick Facts
Patent No.
US 10,799,712
App. No.
15/653,462
Filed
Jul 18, 2017
Granted
Oct 13, 2020
Kind
B2
Art Unit
3794
USPC
607/102
Abstract

The present disclosure provides, inter alia, a system and methods for targeted hyperthermia effective to differentially heat target organs. In certain embodiments, the system and/or method utilizes one or more pairs of inductive applicators coupled to the one or more RF generators and configured to deposit radio frequency radiation on a region of interest based on a set of configurable parameters.

Claims (19)

1. A system for targeted hyperthermia, the system comprising:

one or more radio frequency (RF) generators; one or more pairs of inductive applicators coupled to the one or more RF generators and configured to deposit radio frequency radiation on a region of interest based on a set of configurable parameters; a temperature measuring device coupled to the one or more pairs of inductive applicators; and a hardware processor configured to receive temperature measurements from the temperature measuring device and cause a change on the set of configurable parameters of the one or more pairs of inductive applicators based on the received temperature measurements;

wherein the one or more pairs of inductive applicators operate in Helmholtz mode and are oriented in opposite sides causing H-field coupling and deep-seated E-field penetration.

2. A system for targeted hyperthermia, the system comprising:

one or more radio frequency (RF) generators; one or more pairs of inductive applicators coupled to the one or more RF generators and configured to deposit radio frequency radiation on a region of interest based on a set of configurable parameters; a temperature measuring device coupled to the one or more pairs of inductive applicators, wherein the temperature measuring device is a Magnetic Resonance Imaging (MRI) device; a hardware processor configured to receive temperature measurements from the temperature measuring device and cause a change on the set of configurable parameters of the one or more pairs of inductive applicators based on the received temperature measurements; and magnetic resonance (MR) compatible solid-state switches that switch at the point of the one or more inductive applicators in order to minimize cable matching issues.

3. The system of claim 2 , wherein the one or more pairs of inductive applicators and a set of MR coils of the MRI device are transparent to each other by geometric and tuned blocking circuitry.

4. The system of claim 3 , wherein geometric and tuned blocking circuitry include reflective floating shields.

5. A system for targeted hyperthermia, the system comprising:

one or more radio frequency (RF) generators; one or more pairs of inductive applicators coupled to the one or more RF generators and configured to deposit radio frequency radiation on a region of interest based on a set of configurable parameters; a temperature measuring device coupled to the one or more pairs of inductive applicators, wherein the temperature measuring device is a Magnetic Resonance Imaging (MRI) device; a hardware processor configured to receive temperature measurements from the temperature measuring device and cause a change on the set of configurable parameters of the one or more pairs of inductive applicators based on the received temperature measurements; and magnetic resonance (MR) compatible solid-state switches that switch inside a magnet room in order to minimize a number of cables needed to pass through a penetration panel.

6. The system of claim 5 , wherein the one or more pairs of inductive applicators and a set of MR coils of the MRI device are transparent to each other by geometric and tuned blocking circuitry.

7. The system of claim 6 , wherein geometric and tuned blocking circuitry include reflective floating shields.

8. A system for targeted hyperthermia, the system comprising:

one or more radio frequency (RF) generators; one or more pairs of inductive applicators coupled to the one or more RF generators and configured to deposit radio frequency radiation on a region of interest based on a set of configurable parameters; a temperature measuring device coupled to the one or more pairs of inductive applicators; and a hardware processor configured to receive temperature measurements from the temperature measuring device and cause a change on the set of configurable parameters of the one or more pairs of inductive applicators based on the received temperature measurements;

wherein the hardware processor is configured to automatically extract and update pre-planned heat deposition patterns using real-time magnetic resonance (MR) feedback.

9. The system of claim 8 , wherein the pre-planned heat deposition patterns are obtained using population estimates.

10. The system of claim 8 , wherein the hardware processor is configured to generate a temporally-adjusted plan for the one or more pairs of inductive applicator and power for the remainder of treatment with MR feedback.

11. A system for targeted hyperthermia, the system comprising:

one or more radio frequency (RF) generators; one or more pairs of inductive applicators coupled to the one or more RF generators and configured to deposit radio frequency radiation on a region of interest based on a set of configurable parameters; a temperature measuring device coupled to the one or more pairs of inductive applicators; a hardware processor configured to receive temperature measurements from the temperature measuring device and cause a change on the set of configurable parameters of the one or more pairs of inductive applicators based on the received temperature measurements; and one or more flexible articulated links enclosing the one or more pairs of inductive applicators to ensure consistent contact with a patient in order to limit the required tuning range and increase patient comfort;

wherein the one or more flexible articulated links overlap creating a wide variety of patient sizes that can be accommodated with a single coil.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 18, 2017
From: ANDERSON, CHARLES ERIC, JR.; WANDELL, MICHAEL GEORGE; JONES, RANDALL WAYNE
To: NEOTHERMA ONCOLOGY, INC.
Reel/Frame 043037/0649 →
Continuity (2)
Provisional Application 62363795 · Jul 18, 2016
Related Publication 20180015294A1 · Jan 18, 2018
Cited By (2)
US 12,465,752 US 12,708,787