The present invention relates to inducing locoregional hyperthermia with deep centralized heating by using inductively coupled coil pairs such that multiple magnetic fields are created to additively combine E-fields between them. This invention allows an inductively coupled system to target the E-fields irrespective of the permittivity of the tissue and avoid generation of primarily superficial heating of muscle tissue. This invention allows the use of a simple, cost effective design that does not require broadband RF generators or phase-controlled antenna.
Targeted deep hyperthermia is known for therapeutic applications such as cancer treatment, tumor ablation and treatment of other diseases (Anderson et al., U.S. Patent Application Publication No. 20180015294 A1). A system for RF hyperthermia based on inductively coupled (H-field) antennae allow for advantages over other systems that primarily heat with radiated E-fields or coupled E-fields. The magnetic permeability of all relevant tissues is close to 1, so predicting the field pattern of the H-field is known to be highly accurate. Due to the orientation and method of generating E-fields for heating, preferential heating in fatty tissue can be avoided with a properly designed inductively coupled system.
Current methods of heating with H-field have lacked the ability to heat deeply, i.e., to desired clinical depths in large patients of more than 10 cm. The present invention relates to systems and methods to address these issues identified above.
The present invention demonstrated that, creating targeted heating in an inductively coupled system is not trivial. Conventional systems in this field, including adaptations of inductively coupled systems have failed to heat at clinically relevant depths of greater than 10 cm because methods used to control the resulting E-field locations have not been available and/or used. In simulation of other inductive systems around a virtual human model of an abdomen, systems utilizing surface pancake coils, circumferential coil windings, and Helmholtz-based circumferential coil pairs could not generate acceptable heating at depth because E-field generation patterns would always be limited by large energy deposition in the skeletal and abdominal muscles. The present invention uses multiple H-fields to create additive E-fields (primarily through generation of eddy currents) which can achieve clinically relevant heating at low frequencies without increasing the complexity or cost of a system by methods such as phase control. In particular, the design allows for relevant deep heating at open Industrial, Scientific, and Medical frequencies of 13.56 MHz, 27.1 MHz, and 40.68 MHz which do not respond well to phase-controlled antennas at the relevant geometry of humans or large animals. In addition, the present system is MRI-safe and transparent, allowing for simultaneous operation in order to take advantage of techniques such as magnetic resonance thermographic imaging.
In one embodiment of the present invention, a system for generating multiple H-fields to additively combine and control deep E-field generation resulting in clinically acceptable centralized heating is provided. This system comprises:
RF applied on each coil of the pair to move the Specific Absorption Rate (SAR) pattern in the desired direction.
In another embodiment of the present invention, a method for inducing locoregional hyperthermia in a subject in need thereof is provided. This method comprises:
In an additional embodiment of the present invention, a system for generating multiple H-fields to additively combine and control deep E-field generation resulting in clinically acceptable centralized heating is provided. This system comprises:
The patent or application file contains at least one drawing executed in color. Copies of this patent or patent application publication with color drawing(s) will be provided by the Office upon request and payment of the necessary fee.
The present invention discloses a system for generating multiple H-fields to additively combine and control deep E-field generation resulting in clinically acceptable centralized heating, and methods for inducing locoregional hyperthermia in a subject using the same.
One embodiment of the present invention is a system for generating multiple H-fields to additively combine and control deep E-field generation resulting in clinically acceptable centralized heating. This system comprises:
As used herein, “Specific Absorption Rate” or “SAR” refers to is a measure of the rate at which energy is absorbed by the human body when exposed to a radio frequency (RF) electromagnetic field. It can also refer to absorption of other forms of energy by tissue, including ultrasound. It is defined as the power absorbed per mass of tissue and has units of watts per kilogram (W/kg). An SAR greater than 20 W/kg is considered clinically relevant.
In some embodiments, the predetermined design is configured in the form of a “butterfly” substantially as shown in
In some embodiments, the system further comprises a switching setup previously described in Anderson et al., U.S. Ser. No. 15/653,462 filed Jul. 18, 2017, which is hereby incorporated by reference herein. By incorporating such a switching setup, the present invention allows for a highly cost effective and competitive system that contains one or more RF generators, such as 1-10 or preferably 1, 2, 3, or 4 RF generators and switching networks to control the pairs of coils and create selective heating at depth. In certain embodiments, the switching setup comprises a solid-state switch that selects the sectors and amplitude in discrete time slices to heat desired regions while avoiding inadvertent hotspot generation.
In some embodiments, the system further comprises a magnetic resonance thermographic imaging (MRTI) system for treatment monitoring, adjustment, and reporting.
In some embodiments, each sector further comprises one or more series-tuning capacitors placed along the length of one or more coils in order to increase the homogeneity of the field and reduce the magnitude of the radiated E-field, and improve tuning.
In some embodiments, the size of the base is adjustable/interchangeable, and the size of the coils is adjustable/interchangeable, in order to treat subjects of different size, or to provide additional therapeutic treatment options, while minimizing component cost.
In some embodiments, the system further comprises an air-cooling setup through a membrane in, e.g., the base, in order to maximize subject comfort throughout the procedure. An exemplary air-cooling setup can be, e.g., a diffuse air-cooling foam, which is open-celled with a packing density no greater than 0.5 and with sufficient modulus to support the subject. The air-cooling setup is significant in RF hyperthermia because it takes up minimal space in the MRI room and thus minimally impacts the normal MRI workflow. Air is brought in from outside and passes through a 2″ waveguide. The main routing for the air is as follow: the air is split into subject cooling (dark blue) and electrical component cooling (light blue) (
Another embodiment of the present invention is a method for inducing locoregional hyperthermia in a subject in need thereof. This method comprises:
As used herein, a “subject” is a mammal, preferably, a human. In addition to humans, categories of mammals within the scope of the present invention include, for example, agricultural animals, veterinary animals, laboratory animals, etc. Some examples of agricultural animals include cows, pigs, horses, goats, etc. Some examples of veterinary animals include dogs, cats, etc. Some examples of laboratory animals include primates, rats, mice, rabbits, guinea pigs, etc.
In some embodiments, the desired depth of heating is greater than 2 cm, greater than 5 cm, greater than 10 cm, greater than 15 cm, greater than 20 cm, greater than 25 cm, greater than 30 cm, greater than 35 cm, greater than 40 cm, greater than 45 cm or greater than 50 cm. In certain embodiments, the desired depth of heating is around 55 cm.
Yet another embodiment of the present invention is a system for generating multiple H-fields to additively combine and control deep E-field generation resulting in clinically acceptable centralized heating. This system comprises:
In some embodiments, the radio-frequency (RF) applied in the systems and methods disclosed herein can be selected from 13.56 MHz, 27.1 MHz, or 40.68 MHz.
Another embodiment of the present invention is an apparatus substantially as disclosed in
Another embodiment of the present invention is a system substantially as disclosed in
The invention is further illustrated by the following examples, which are offered for illustrative purposes, and are not intended to limit the invention in any manner. Those of skill in the art will readily recognize a variety of noncritical parameters, which can be changed or modified to yield essentially the same results.
The system was connected as shown in
Probes were placed using a depth introducer to control placement of the temperature point. Temperature was measured with a fiber optic temperature system that is immune to electromagnetic fields. The axis for the probe placement points is show in
The test results were recorded and shown in
All patents, patent applications, and publications cited above are incorporated herein by reference in their entirety as if recited in full herein.
The invention being thus described; it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention and all such modifications are intended to be included within the scope of the following claims.
The present application claims benefit of U.S. Provisional Patent Application Ser. No. 62/614,993, filed on Jan. 8, 2018 which application is incorporated by reference herein in its entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/US2019/012712 | 1/8/2019 | WO | 00 |
Number | Date | Country | |
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62614993 | Jan 2018 | US |