Overlaying Dynamic Spatial Data onto a User Interface for Irreversible Electroporation Ablation

The system overlays an electric field graphical representation with anatomical maps to plan irreversible electroporation, addressing the precision issues of existing ablation techniques and ensuring safe tissue necrosis.

JP7808645B2Active Publication Date: 2026-01-29BOSTON SCIENTIFIC SCIMED INC
View PDF 8 Cites 0 Cited by

Patent Information

Application Number
JP2024114466
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-26
Filing Date
2024-07-18
Publication Date
2026-01-29
Estimated Expiration
2041-05-14

AI Technical Summary

Technical Problem

Existing ablation techniques like RF and cryoablation indiscriminately damage healthy tissue, while irreversible electroporation lacks visualization and data acquisition for effective tissue necrosis planning.

Method used

A system with a catheter and controller generates a graphical representation of the electric field, overlaying it with an anatomical map to plan irreversible electroporation ablation, including threshold lines and predicted zones of reversible and irreversible electroporation.

Benefits of technology

Enhances the precision of irreversible electroporation by providing real-time visualization and data for safe and effective tissue ablation, minimizing damage to non-targeted tissues.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007808645000001
    Figure 0007808645000001
  • Figure 0007808645000002
    Figure 0007808645000002
  • Figure 0007808645000003
    Figure 0007808645000003
Patent Text Reader

Abstract

To provide a system for ablation by electroporation.SOLUTION: The system for ablation by electroporation includes a catheter 308 having electrodes 314 and 316, a display, and a controller. The controller is to generate, based on models of electric fields, graphical representations of the electric fields that can be produced using the electrodes 314 and 316, and overlay, on the display, the graphical representations of the electric fields and an anatomical map of a patient to aid in planning the ablation by electroporation, prior to delivering energy.SELECTED DRAWING: Figure 4A
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] FIELD OF THE DISCLOSURE The present disclosure relates to medical systems and methods for ablation of tissue within a patient, and more particularly, to medical systems and methods for tissue ablation by electroporation. [Background technology]

[0002] Ablation procedures are used to treat a variety of patient conditions. Ablation can be used to treat arrhythmias, benign tumors, cancerous tumors, and to control bleeding during surgery. Ablation is typically performed through thermal ablation techniques, including radiofrequency (RF) ablation and cryoablation. In RF ablation, a probe is inserted into the patient's body, and radiofrequency waves are sent through the probe to the surrounding tissue. The radiofrequency waves generate heat, which destroys the surrounding tissue and causes blood vessel necrosis. In cryoablation, a hollow needle, or cryoprobe, is inserted into the patient's body, and a low-temperature, heat-conducting fluid is circulated through the probe to cause cryonecrosis of the surrounding tissue. Both RF ablation and cryoablation techniques indiscriminately kill tissue through cell death, which can damage or kill otherwise healthy tissue, such as esophageal tissue, phrenic nerve cells, and coronary artery tissue.

[0003] Another ablation technique uses electroporation. Electroporation, or electropermeabilization, involves applying an electric field to cells to increase the permeability of the cell membrane. Electroporation can be reversible or irreversible, depending on the strength of the electric field. If electroporation is reversible, the increased permeability of the cell membrane can be used to facilitate the introduction of chemicals, drugs, and / or deoxyribonucleic acid (DNA) into the cells prior to cellular healing and recovery. If electroporation is irreversible, the affected cells are forced to die through apoptosis.

[0004] Irreversible electroporation can be used as a non-thermal ablation method. Irreversible electroporation uses a train of short, high-voltage pulses to generate an electric field strong enough to induce cellular necrosis through apoptosis. For cardiac tissue ablation, irreversible electroporation can offer a safe and effective alternative to indiscriminate necrosis caused by thermal ablation methods such as RF ablation and cryoablation. Irreversible electroporation can be used to necrotize targeted tissue, such as myocardial tissue, by using an electric field strength and duration that necrotizes the targeted tissue but does not permanently damage other cells or tissues, such as non-targeted myocardial tissue, red blood cells, vascular smooth muscle tissue, vascular endothelial tissue, and neurons. Planning an irreversible electroporation ablation procedure can be challenging because, unlike reversible electroporation, visualization and data acquisition are not readily available to demonstrate that tissue has been irreversibly electroporated. Tissue may recover within minutes, hours, or days after ablation is complete. Summary of the Invention

[0005] As described in the embodiments, embodiment 1 is a system for electroporation ablation. The system includes a catheter having electrodes, a display, and a controller. The controller generates a graphical representation of an electric field that can be generated using the electrodes based on an electric field model, and overlays the graphical representation of the electric field with an anatomical map of the patient on the display to assist in planning the electroporation ablation before delivering energy.

[0006] Embodiment 2 is the system of embodiment 1, wherein the controller is configured to generate a graphical representation of the electric field based on a characteristic of the catheter. Embodiment 3 is a system of any one of embodiments 1 and 2, wherein the controller is configured to include at least one electric field line within the graphical display of the electric field on the anatomical map, and to include at least one electric field strength threshold line within the graphical display of the electric field on the anatomical map.

[0007] Embodiment 4 is a system of any one of embodiments 1 to 3, wherein the controller is configured to include at least one of a reversible field strength threshold line in the range of 200 to 250 volts per centimeter, a critical field strength threshold line of 400 volts per centimeter for irreversible electroporation, and a maximum field strength threshold line of 1000 volts per centimeter.

[0008] Embodiment 5 is the system of any one of embodiments 1 to 4, wherein the controller is configured to include markings within the graphical representation of the electric field of where the electric field strength threshold line intersects with surrounding tissue.

[0009] Embodiment 6 is a system of any one of embodiments 1 to 5, wherein the controller is configured to include at least one of a predicted zone of reversible electroporation and a predicted zone of irreversible electroporation within the graphical display of the electric field.

[0010] Embodiment 7 is a system of any one of embodiments 1 to 6, wherein the controller is configured to include at least one marking in the graphical representation of the electric field at a location where the electric field intersects with a previously created wound and in the graphical representation of the electric field at a wound where the electric field is expected to intersect.

[0011] Embodiment 8 is a system for electroporation ablation. The system includes a catheter having electrodes and a controller. The controller generates a model of an electric field based on characteristics of the catheter, generates a graphical representation of the electric field using the electric field model, and displays the graphical representation of the electric field on an anatomical map of the patient to assist in planning the electroporation ablation prior to delivering energy.

[0012] Example 9 is the system of example 8, wherein the controller is configured to receive complex tissue impedance information about surrounding tissue to characterize the surrounding tissue and assist in generating a graphical representation of the electric field.

[0013] Embodiment 10 is a system of any one of embodiments 8 and 9, wherein the controller is configured to dynamically change the graphical display of the electric field based on one or more of changes in the position of the catheter relative to the surrounding tissue, changes in the catheter, changes in pulse parameters to be provided to the electrodes of the catheter, and changes in impedance measurements of the surrounding tissue.

[0014] Embodiment 11 is a system of any one of embodiments 8 to 10, wherein the controller is configured to provide one or more of suggested changes to pulse parameters and automatic dynamic changes to pulse parameters in response to at least one of impedance measurements of surrounding tissue and changes in the catheter to maintain a critical field strength at a location.

[0015] Embodiment 12 is a method for planning electroporation ablation, the method including: generating, by a controller, a graphical representation of an electric field that can be generated using electrodes of a catheter based on an electric field model; and displaying the graphical representation of the electric field and an anatomical map of the patient on a display to assist in planning the electroporation ablation prior to energy delivery.

[0016] Embodiment 13 is a method of embodiment 12, comprising the steps of displaying at least one electric field line within a graphical display of the electric field on the anatomical map, and displaying at least one electric field strength threshold line within the graphical display of the electric field on the anatomical map.

[0017] Embodiment 14 is a method of any one of embodiments 12 and 13, and includes one or more of the following steps: displaying markings of where the electric field intensity threshold line intersects with surrounding tissue; displaying a predicted zone of reversible electroporation; displaying a predicted zone of irreversible electroporation; displaying markings of where the electric field intersects with previously created wounds; and displaying the predicted wounds on an anatomical map.

[0018] Embodiment 15 is a method of any one of embodiments 12 to 14, including a step in which the controller dynamically changes the graphical display of the electric field based on one or more of changes in the position of the catheter relative to the surrounding tissue, changes in the catheter, changes in pulse parameters to be provided to the electrodes of the catheter, and changes in impedance measurements of the surrounding tissue.

[0019] Embodiment 16 is a system for electroporation ablation. The system includes a catheter having electrodes, a display, and a controller. The controller generates a graphical representation of an electric field that can be generated using the electrodes based on an electric field model, and overlays the graphical representation of the electric field with an anatomical map of the patient on the display to assist in planning the electroporation ablation prior to delivering energy.

[0020] Example 17 is the system of example 16, wherein the controller is configured to generate a graphical display of the electric field based on the characteristics of the catheter and the position of the catheter relative to the surrounding tissue.

[0021] Example 18 is the system of example 16, wherein the controller is configured to display the electric field strength based on the electrical pulse parameters of the electrical pulse to be provided to the electrode of the catheter.

[0022] Embodiment 19 is a system of embodiment 16, wherein the controller is configured to include at least one electric field line within the graphical display of the electric field on the anatomical map, and to include at least one electric field strength threshold line within the graphical display of the electric field on the anatomical map.

[0023] Embodiment 20 is a system of embodiment 16, wherein the controller is configured to include at least one of a reversible electric field strength threshold line in the range of 200 to 250 volts per centimeter, a critical electric field strength threshold line of 400 volts per centimeter for irreversible electroporation, and a maximum electric field strength threshold line of 1000 volts per centimeter.

[0024] Example 21 is the system of example 16, wherein the controller is configured to include markings in the graphical display of the electric field of where the electric field strength threshold line intersects with the surrounding tissue.

[0025] Embodiment 22 is the system of embodiment 16, wherein the controller is configured to include at least one of a predicted zone of reversible electroporation and a predicted zone of irreversible electroporation within the graphical display of the electric field.

[0026] Embodiment 23 is the system of embodiment 16, wherein the controller is configured to include markings in the graphical display of the electric field of points where the electric field intersects with previously created wounds.

[0027] Embodiment 24 is the system of embodiment 16, wherein the controller is configured to include the predicted lesion within the graphical display of the electric field. Embodiment 25 is a system for electroporation ablation. The system includes a catheter having electrodes and a controller. The controller is configured to generate a model of an electric field based on characteristics of the catheter, generate a graphical representation of the electric field using the model of the electric field, and display the graphical representation of the electric field on an anatomical map of the patient to assist in planning the electroporation ablation prior to delivering energy.

[0028] Example 26 is the system of example 25, wherein the controller is configured to receive complex tissue impedance information about surrounding tissue to characterize the surrounding tissue and assist in generating a graphical display of the electric field.

[0029] Embodiment 27 is a system of embodiment 25, wherein the controller is configured to dynamically change the graphical display of the electric field based on one or more of changes in the position of the catheter relative to the surrounding tissue, changes in the catheter, changes in pulse parameters to be provided to the electrodes of the catheter, and changes in impedance measurements of the surrounding tissue.

[0030] Embodiment 28 is a system of embodiment 25, wherein the controller is configured to provide one or more of suggested changes to pulse parameters and automatic dynamic changes to pulse parameters in response to at least one of impedance measurements of surrounding tissue and changes in the catheter to maintain a critical field strength at a location.

[0031] Embodiment 29 is a system of embodiment 25, including a detection electrode on the catheter, and the controller is configured to display real-time information from the detection electrode and a graphical representation of the electric field on an anatomical map of the patient to assist the user in optimizing catheter deployment before energy delivery.

[0032] Embodiment 30 is a method for planning electroporation ablation, the method including generating, by a controller, a graphical representation of an electric field that can be generated using electrodes on a catheter based on a model of the electric field, and displaying, on a display, the graphical representation of the electric field and an anatomical map of the patient to assist in planning the electroporation ablation prior to delivery of energy.

[0033] Embodiment 31 is the method of embodiment 30, wherein the step of generating a graphical representation of the electric field includes a step of generating a graphical representation of the electric field based on the characteristics of the catheter and the position of the catheter within the patient's body relative to the surrounding tissue.

[0034] Example 32 is the method of example 30, including a step of displaying the strength of the electric field based on electrical pulse parameters of the electrical pulse to be provided to the electrodes of the catheter. Embodiment 33 is a method of embodiment 30, including the steps of displaying at least one electric field line within a graphical display of the electric field on the anatomical map, and displaying at least one electric field strength threshold line within the graphical display of the electric field on the anatomical map.

[0035] Embodiment 34 is a method of embodiment 30, comprising one or more of the following steps: displaying markings of where the electric field intensity threshold line intersects with surrounding tissue; displaying a predicted zone of reversible electroporation; displaying a predicted zone of irreversible electroporation; displaying markings of where the electric field intersects with previously created wounds; and displaying the predicted wounds on an anatomical map.

[0036] Embodiment 35 is a method of embodiment 30, including a step in which the controller dynamically changes the graphical display of the electric field based on one or more of changes in the position of the catheter relative to the surrounding tissue, changes in the catheter, changes in pulse parameters to be provided to the electrodes of the catheter, and changes in impedance measurements of the surrounding tissue.

[0037] While several embodiments are disclosed, still other embodiments of the present disclosure will become apparent to those skilled in the art from the following detailed description, which shows and describes illustrative embodiments of the present disclosure. Accordingly, the drawings and detailed description are to be regarded as illustrative in nature and not restrictive. [Brief explanation of the drawings]

[0038] [Figure 1] 1 is a schematic diagram illustrating an exemplary clinical setting for treating a patient and for treating the patient's heart with an electrophysiological system according to an embodiment of the presently disclosed subject matter. [Figure 2A] 1 is a schematic diagram illustrating a catheter according to an embodiment of the presently disclosed subject matter. [Figure 2B] 1 is a schematic diagram illustrating a catheter according to an embodiment of the presently disclosed subject matter. [Figure 3] 1 is a schematic diagram illustrating an electroporation catheter adjacent to cardiac tissue within a patient's heart, in accordance with an embodiment of the presently disclosed subject matter. [Figure 4A] 1 is a schematic diagram illustrating electric field lines and field strength threshold lines in an overlay of a graphical representation of an electric field on an anatomical map, in accordance with an embodiment of the presently disclosed subject matter. [Figure 4B] 1 is a schematic diagram illustrating the intersection of an electric field with cardiac tissue at a certain electric field strength, e.g., 400 V / cm, in an overlay of a graphical representation of the electric field on an anatomical map, in accordance with an embodiment of the presently disclosed subject matter. [Figure 4C] 1 is a schematic diagram illustrating expected zones of reversible and irreversible electroporation in an overlay of a graphical representation of an electric field on an anatomical map, according to an embodiment of the presently disclosed subject matter. [Figure 4D] 1 is a schematic diagram illustrating previously created lesions in cardiac tissue intersecting electric field lines in an overlay of a graphical representation of the electric field on an anatomical map, in accordance with an embodiment of the presently disclosed subject matter. [Figure 5] A method for planning ablation by irreversible electroporation, according to an embodiment of the presently disclosed subject matter. DETAILED DESCRIPTION OF THE INVENTION

[0039] While the present disclosure may be susceptible to various modifications and alternative forms, specific embodiments have been shown by way of example in the drawings and are described in detail below. It is not the intention, however, to limit the disclosure to the particular embodiments described. On the contrary, the disclosure is intended to cover all modifications, equivalents, and alternatives falling within the scope of the present disclosure as defined by the appended claims.

[0040] 1 is a schematic diagram illustrating an exemplary clinical setting 10 for treating a patient 20 and treating a heart 30 of the patient 20 using an electrophysiology system 50 according to an embodiment of the presently disclosed subject matter. The electrophysiology system 50 includes an electroporation catheter system 60 and an electroanatomical mapping (EAM) system 70, which includes a localized electric field generator 80, a mapping and navigation controller 90, and a display 92. The clinical setting 10 also includes other equipment, such as imaging equipment 94 (represented by a C-arm), and various controller elements, such as a foot controller 96, configured to allow an operator to control various aspects of the electrophysiology system 50. As will be appreciated by those skilled in the art, the clinical setting 10 may include components and arrangements of components other than those shown in FIG. 1 .

[0041] Electroporation catheter system 60 includes an electroporation catheter 105, an introducer sheath 110, and an electroporation console 130. In addition, electroporation catheter system 60 includes various connecting elements, such as cables, umbilicals, etc., that operate to operatively connect the components of electroporation catheter system 60 to each other and to the components of EAM system 70. The arrangement of the connecting elements is not critical to the present disclosure, and one of ordinary skill in the art will recognize that the various components described herein can be interconnected in a variety of ways.

[0042] In embodiments, the electroporation catheter system 60 is configured to deliver electric field energy to target tissue within the patient's heart 30 to cause tissue apoptosis, thereby rendering the tissue unable to conduct electrical signals. As described in more detail below, the electroporation catheter system 60 is also configured to generate a graphical representation of the electric field that can be generated using the electroporation catheter 105 based on a model of the electric field, and to overlay the graphical representation of the electric field over an anatomical map of the patient's heart on the display 92 to assist a user in planning irreversible electroporation ablation using the electroporation catheter 105 prior to delivering the energy. In embodiments, the electroporation catheter system 60 is configured to generate the graphical representation of the electric field based on characteristics of the electroporation catheter 105 and the position of the electroporation catheter 105 within the patient's 20, e.g., within the heart 30 of the patient 20. In an embodiment, the electroporation catheter system 60 is configured to generate a graphical display of the electric field based on the characteristics of the electroporation catheter 105 and the location of the electroporation catheter 105 within the body of the patient 20, e.g., within the heart 30 of the patient 20, as well as the characteristics of the tissue surrounding the catheter 105, e.g., tissue impedance measurements.

[0043] Electroporation console 130 is configured to control functional aspects of electroporation catheter system 60. In embodiments, electroporation console 130 is configured to provide one or more of the following: modeling the electric field that can be generated by electroporation catheter 105, often including taking into account the physical characteristics of electroporation catheter 105, including the electrodes, and the spatial relationship of the electrodes on electroporation catheter 105; generating a graphical representation of the electric field, often including taking into account the location of electroporation catheter 105 within patient 20 and the characteristics of the surrounding tissue; and overlaying the generated graphical representation with an anatomical map on display 92. In some embodiments, electroporation control console 130 is configured to generate the anatomical map. In some embodiments, EAM system 70 is configured to generate the anatomical map for display on display 92.

[0044] In embodiments, electroporation console 130 includes one or more controllers, microprocessors, and / or computers that execute code read from memory to control and / or perform functional aspects of electroporation catheter system 60. In embodiments, memory can be part of one or more controllers, microprocessors, and / or computers and / or part of memory capacity accessible over a network, such as the world wide web.

[0045] In embodiments, the introducer sheath 110 is operable to provide a delivery conduit through which the electroporation catheter 105 can be deployed to a specific target site within the patient's heart 30 .

[0046] The EAM system 70 is operable to track the positions of various functional components of the electroporation catheter system 60 and generate high-fidelity three-dimensional anatomical and electroanatomical maps of the ventricular chamber of interest. In embodiments, the EAM system 70 may be a RHYTHMIA™ HDx mapping system sold by Boston Scientific Corporation. Also, in embodiments, the mapping and navigation controller 90 of the EAM system 70 includes one or more controllers, microprocessors, and / or computers that execute code read from memory to control and / or perform the functional aspects of the EAM system 70, where in embodiments the memory may be part of the one or more controllers, microprocessors, and / or computers and / or part of memory capacity accessible over a network, such as the world wide web.

[0047] 1 is intended to provide an overview of the various components of system 50 and is in no way intended to suggest that the present disclosure is limited to any particular set of components or arrangement of components. For example, one skilled in the art will readily recognize that other hardware components, such as breakout boxes, workstations, etc., may be included in electrophysiology system 50.

[0048] EAM system 70 generates localized electric fields via electric field generator 80 to define a localized volume around heart 30, and one or more position sensors or sensing elements on the tracked device, e.g., electroporation catheter 105, generate outputs that are processed by mapping and navigation controller 90 to enable tracking of the position of the sensors, and therefore the corresponding devices, within the localized volume. In the illustrated embodiment, device tracking is achieved using magnetic tracking techniques, in which field generator 80 is a magnetic field generator that generates a magnetic field that defines the localized volume, and the tracked device's position sensors are magnetic sensors.

[0049] In other embodiments, impedance tracking methods may be used to track the location of various devices. In such embodiments, the localized electric field may be, for example, an electric field generated by an external field generator device, e.g., a surface electrode, by an internal or intracardiac device, e.g., an intracardiac catheter, or both. In these embodiments, the position sensing elements may comprise electrodes on the tracked device, which generate outputs that are received and processed by the mapping and navigation controller 90 to track the location of the various position sensing electrodes within the localized volume.

[0050] In embodiments, EAM system 70 is equipped for both magnetic and impedance tracking capabilities. In such embodiments, impedance tracking accuracy can be improved in some instances by first using a probe with a magnetic position sensor to create a map of the electric field induced by the electric field generator within the ventricular cavity of interest, which can be accomplished using the RHYTHMIA HDx™ mapping system mentioned above. One exemplary probe is the 1000 Hz MRI probe manufactured by Boston Scientific Corporation. and the INTELLAMAP ORION™ mapping catheter, sold by NIH Scientific Corporation.

[0051] Regardless of the tracking method employed, EAM system 70 utilizes the position information of the various tracked devices, along with cardiac electrical activity acquired, for example, by electroporation catheter 105 or other catheter or probe equipped with sensing electrodes, to generate and display on display 92 a detailed three-dimensional anatomical geometric map or representation of the ventricular cavity, as well as an electroanatomical map in which the cardiac electrical activity of interest is superimposed on the anatomical geometric map. Additionally, EAM system 70 can generate a graphical representation of the various tracked devices within the anatomical geometric map and / or electroanatomical map.

[0052] In embodiments of the present disclosure, electroporation catheter system 60 can be integrated with EAM system 70 to visualize a graphical representation of the electric field that can be generated by electroporation catheter 105 on an anatomical map of the patient, and in some embodiments, on an electroanatomical map of the patient's heart. The integrated system of the present disclosure therefore has the potential to improve the efficiency of clinical workflow, including improved planning for ablation of a portion of a patient's heart via irreversible electroporation. Embodiments of the present disclosure include generating a graphical representation of the electric field that can be generated by electroporation catheter 105, generating an anatomical map, generating an electroanatomical map, and displaying information regarding the location and field strength of the electric field that can be generated by electroporation catheter 105.

[0053] 2A and 2B are schematic diagrams illustrating catheters 200 and 250 that can be used for electroporation, including ablation by irreversible electroporation, according to embodiments of the presently disclosed subject matter. Catheters 200 and 250 include electrodes spaced apart from one another and configured to conduct electricity, as described below. Catheter characteristics are used to model the electric field that can be generated by the catheter. In embodiments, the characteristics used to model the electric field can include the type of catheter (e.g., a basket catheter that has a fixed shape after deployment and a spline catheter that has a variable shape that can gradually open and close), the catheter form factor (e.g., a balloon catheter, a basket catheter, and a spline catheter), the number of electrodes, the inter-electrode spacing on the catheter, the spatial relationship and orientation of the electrodes, particularly with respect to other electrodes on the same catheter, the type of electrode material, and the electrode shape. In embodiments, the catheter type and / or catheter form factor can include catheters such as linear ablation catheters and point ablation catheters. In this case, the catheter type and / or catheter form factor is not limited to those mentioned herein.

[0054] 2A is a schematic diagram illustrating a catheter 200 according to an embodiment of the presently disclosed subject matter. The catheter 200 includes a catheter shaft 202 and a catheter basket 204 connected to a distal end 206 of the catheter shaft 202. The catheter basket 204 includes a first group of electrodes 208 arranged circumferentially around the catheter basket 204 and a second group of electrodes 210 arranged near a distal end 212 of the catheter basket 204. Each of the first group of electrodes 208 and each of the second group of electrodes 210 are configured to conduct electricity and to be operatively connected to the electroporation console 130. In an embodiment, one or more of the electrodes in the first group of electrodes 208 and the second group of electrodes 210 include a metal.

[0055] The electrodes in the first electrode group 208 are spaced apart from the electrodes in the second electrode group 210. The first electrode group 208 includes electrodes 208a to 208f, and the second electrode group 210 includes electrodes 210a to 210f. Furthermore, the electrodes in the first electrode group 208, for example, electrodes 208a to 208f, are spaced apart from one another, and the electrodes in the second electrode group 210, for example, electrodes 210a to 210f, are spaced apart from one another.

[0056] The spatial relationship and orientation of the electrodes in the first electrode group 208 and the second electrode group 210 relative to other electrodes on the same catheter 200 are known or can be determined. In an embodiment, once the catheter is deployed, the spatial relationship and orientation of the electrodes in the first electrode group 208 and the second electrode group 210 relative to other electrodes on the same catheter 200 are constant.

[0057] With respect to the electric field, in embodiments, each of the electrodes in the first electrode group 208 and each of the electrodes in the second electrode group 210 can be selected to be an anode or a cathode so that an electric field can be established between any two or more of the electrodes in the first and second electrode groups 208 and 210. Also, in embodiments, each of the electrodes in the first electrode group 208 and each of the electrodes in the second electrode group 210 can be selected to be biphasic so that the electrodes are alternately configured as anodes and cathodes. Also, in embodiments, the electrodes in the first electrode group 208 and the electrodes in the second electrode group 210 can be selected to be an anode or a cathode or biphasic so that an electric field can be established between any two or more of the electrodes in the first and second electrode groups 208 and 210. Additionally, in embodiments, the electrodes in the first electrode group 208 and the second electrode group 210 can be selected to be biphasic pole electrodes such that selected electrodes alternately operate as anodes and cathodes during pulse trains, including biphasic pulse trains, and the electrodes are not relegated to monophasic delivery, where one electrode is always configured as an anode and the other electrode is always configured as a cathode.

[0058] Furthermore, while, as described herein, electrodes are selected to be one of an anode and a cathode, it should be understood that throughout this disclosure, electrodes may be selected to be biphasic poles, whereby they switch or alternately operate to be configured as an anode and a cathode.

[0059] 2A , one or more of the electrodes in the first electrode group 208 are selected to be cathodes, and one or more of the electrodes in the second electrode group 210 are configured to be anodes. Also, in embodiments, one or more of the electrodes in the first electrode group 208 can be selected as cathodes, and one or more other of the electrodes in the first electrode group 208 can be selected as anodes. Additionally, in embodiments, one or more of the electrodes in the second electrode group 210 can be selected as cathodes, and one or more other of the electrodes in the second electrode group 210 can be selected as anodes. Using the characteristics of the catheter 200, the electroporation console 130 can determine models of various electric fields that can be generated by the catheter 200.

[0060] 2B is a schematic diagram illustrating a catheter 250 according to an embodiment of the presently disclosed subject matter. The catheter 250 includes a catheter shaft 252 and a catheter spline 254 connected to the catheter shaft 252 at a distal end 256 of the catheter shaft 252. The catheter spline 254 includes a first group of electrodes 258 disposed proximal to a maximum circumference of the catheter spline 254 and a second group of electrodes 260 disposed distal to the maximum circumference of the catheter spline 254. Each of the electrodes in the first group of electrodes 258 and each of the electrodes in the second group of electrodes 260 are configured to conduct electricity and to be operatively connected to the electroporation console 130. In an embodiment, one or more of the electrodes in the first group of electrodes 258 and the second group of electrodes 260 comprise a metal.

[0061] The electrodes in the first electrode group 258 are spaced apart from the electrodes in the second electrode group 260. The first electrode group 258 includes electrodes 258a to 258f, and the second electrode group 260 includes electrodes 260a to 260f. Furthermore, the electrodes in the first electrode group 258, for example, electrodes 258a to 258f, are spaced apart from one another, and the electrodes in the second electrode group 260, for example, electrodes 260a to 260f, are spaced apart from one another.

[0062] The spatial relationship and orientation of the electrodes in the first electrode group 258 and the second electrode group 260 relative to other electrodes on the same catheter 250 is known or can be determined. In embodiments, the spatial relationship and orientation of the electrodes in the first electrode group 258 and the second electrode group 260 relative to other electrodes on the same catheter 250 is variable, in which case the tip 262 of the catheter 250 is extendable, thereby changing the spatial relationship and orientation of the electrodes 258 and 260. In some embodiments, the spatial relationship and orientation of the electrodes in the first electrode group 258 and the second electrode group 260 on the same catheter 250 remains constant once the catheter 250 is deployed.

[0063] With respect to the electric field, in embodiments, each of the electrodes in the first electrode group 258 and each of the electrodes in the second electrode group 260 can be selected as an anode or a cathode, whereby an electric field can be established between any two or more of the electrodes in the first and second electrode groups 258 and 260. Also, in embodiments, the electrodes in the first electrode group 258 and the electrodes in the second electrode group 260 can be selected as an anode or a cathode, whereby an electric field can be established between any two or more of the electrodes in the first and second electrode groups 258 and 260.

[0064] 2B , one or more of the electrodes in first electrode group 258 are selected to be cathodes, and one or more of the electrodes in second electrode group 260 are selected to be anodes. Also, in embodiments, one or more of the electrodes in first electrode group 258 can be selected to be cathodes, and one or more other of the electrodes in first electrode group 258 can be selected as anodes. Additionally, in embodiments, one or more of the electrodes in second electrode group 260 can be selected as cathodes, and one or more other of the electrodes in second electrode group 260 can be selected as anodes. Using the properties of catheter 250 and the surrounding tissue, electroporation console 130 can determine models of various electric fields that can be generated by catheter 250.

[0065] 3 is a schematic diagram illustrating an electroporation catheter 300 adjacent to cardiac tissue 302 within a patient's heart, according to an embodiment of the presently disclosed subject matter. The cardiac tissue 302 includes endocardial tissue 304 and myocardial tissue 306, at least a portion of which may need to be ablated, for example, by irreversible electroporation. In an embodiment, the cardiac tissue 302 is part of the heart 30 of the patient 20.

[0066] The electroporation catheter 300 is suitable for performing irreversible electroporation of cardiac tissue 302. The electroporation catheter 300 includes a catheter shaft 308 and a basket or spline 310 connected to a distal end 312 of the catheter shaft 308. The catheter basket 310 includes a first group of electrodes 314 arranged circumferentially around the catheter basket 310 and a second group of electrodes 316 arranged near a distal end 318 of the catheter basket 310. Each of the electrodes in the first group of electrodes 314 and each of the electrodes in the second group of electrodes 316 are configured to conduct electricity and to be operatively connected to the electroporation console 130. In an embodiment, one or more of the electrodes in the first group of electrodes 314 and the second group of electrodes 316 comprise a metal. In an embodiment, electroporation catheter 300 and electrodes 314 and 316 are similar to catheter 200 and electrodes 208 and 210 described previously herein, and in an embodiment, electroporation catheter 300 and electrodes 314 and 316 are similar to catheter 250 and electrodes 258 and 260 described previously herein.

[0067] Electroporation catheter 300 and electrodes 314 and 316 are or can be operatively connected to electroporation console 130, which is configured to provide electrical pulses to electrodes 314 and 316 to generate an electric field capable of ablating cardiac tissue 302 by irreversible electroporation. The application conditions of the electric field provided by catheter 300 to cardiac tissue 302, including the field strength and the length of time it is applied to cardiac tissue 302, determine whether ablation of cardiac tissue 302 occurs.

[0068] For example, a field strength of approximately 400 volts per centimeter (V / cm) is believed to be sufficient for irreversible electroporation of cardiac tissue 302, including myocardial tissue 306, within the heart. Irreversible electroporation of tissues such as red blood cells, vascular smooth muscle, vascular endothelial tissue, and neural tissue requires a field strength of 1600 V / cm or greater. Reversible electroporation of cardiac tissue 302 within the heart can be achieved with a field strength of 200-250 V / cm.

[0069] The console 130 is configured to apply an electric field to the target tissue 302 for ablation or reversible electroporation. The console 130 provides electrical pulses of different lengths and magnitudes to the electrodes 314 and 316 on the catheter 300. The electrical pulses can be provided in a continuous stream of pulses or in multiple separate pulse trains. Pulse parameters of interest include the number of pulses, the pulse duty cycle, the spacing between pulse trains, the voltage or magnitude of the pulses, including peak voltage, and the duration of the voltage. For the target tissue 302, the console 130 selects two or more of the electrodes 314 and 316 and provides pulses to the selected electrodes to generate an electric field between the selected electrodes, which is indicated by the arrows in FIG. 3 .

[0070] To plan irreversible electroporation ablation, the position of the electroporation catheter 300 within the heart, including the location of the electrodes 314 and 316 relative to the cardiac tissue 302, must be known or determined prior to selecting one of the electrodes 314 and 316 for stimulation. The electrodes on the catheter 300 that are best suited for electroporation ablation of the cardiac tissue 302, including ablation of the target superficial tissue, e.g., endocardial tissue 304, and the target deeper tissue, e.g., myocardial tissue 306, can be selected for electric field delivery. An electrical pulse is determined to generate an electric field between the selected electrodes to ablate the tissue 302 by irreversible electroporation. The application parameters for the electric field include the field strength and the length of time the field is applied to the tissue 302.

[0071] To aid in planning and improve the planning procedure for electroporation ablation, console 130 is configured to determine the location of electrodes 314 and 316 within the patient relative to cardiac tissue 302 after catheter 300 is inserted therein, model the electric fields that can be generated by different combinations of electrodes 314 and 316 on catheter 300, determine characteristics of cardiac tissue 302 near or surrounding catheter 300 within the patient, determine the surface area and depth of cardiac tissue 302 that will be affected or subjected to the electric fields, including determining the strength of the electric fields in different portions of cardiac tissue 302, generate a graphical representation of the electric fields of interest, and overlay the graphical representation of the electric fields on an anatomical map of the heart. In embodiments, the displayed electric fields can be dynamically updated based on which electrodes and vectors are selected for use in ablation. Also, in embodiments, the displayed electric fields can be dynamically updated based on changes in selectable parameters, such as voltage amplitude.

[0072] In embodiments, console 130 receives information from EAM system 70 and displays an anatomical map of the heart and determines the positions of electrodes 314 and 316 within the patient's body relative to cardiac tissue 302. In embodiments, EAM system 70 generates an anatomical map of the heart and uses the position information for catheter 300 to generate and display on display 92 a detailed three-dimensional anatomical geometric map or representation of the ventricular chambers of the heart and catheter 300, including the positions of electrodes 314 and 316 relative to cardiac tissue 302. In some embodiments, EAM system 70 generates an anatomical map of the heart and uses the position information for catheter 300, along with cardiac electrical activity acquired, for example, by electroporation catheter 105 or another mapping catheter (not shown), to generate and display on display 92 a detailed three-dimensional anatomical geometric map of the ventricular chambers, as well as an electroanatomical map in which cardiac electrical activity of interest is overlaid on the anatomical geometric map.

[0073] In an embodiment, the console 130 models the electric fields that can be generated by different combinations of electrodes 314 and 316 on the catheter 300 based on the characteristics of the catheter 300. These characteristics can include the type of catheter, such as a basket catheter that has a fixed shape after deployment and a spline catheter that has a variable shape depending on the expansion and contraction of the splines, the form factor of the catheter, such as a balloon catheter, a basket catheter, and a spline catheter, the number of electrodes and inter-electrode spacing of the electrodes on the catheter, the spatial relationship and orientation of the electrodes on the catheter relative to other electrodes on the catheter, the type of electrode material, and the shape of the electrodes.

[0074] In an embodiment, the electric field that can be generated by electrodes on a spline catheter, such as electrodes 258 and 260 on spline catheter 250, dynamically changes in response to the expansion and contraction of catheter 250. Therefore, in an embodiment, console 130 models the electric field of spline catheter 250 and the dynamically changing positions of electrodes 258 and 260 in relation to the expansion and contraction of catheter 250. In an embodiment, determining the electric field from different combinations of electrodes 314 and 316 can be accomplished on a real-time basis, with the position of catheter 300 and the positions of electrodes 314 and 316 monitored by a system such as EAM system 70.

[0075] In embodiments, console 130 determines the properties of cardiac tissue 302 surrounding catheter 300 by providing electrical signals to electrodes 314 and 316 on catheter 300 and / or through other electrodes on catheter 300 or other catheters to measure conductance / impedance and / or other properties of the surrounding cardiac tissue 302. In embodiments, console 130 may receive information regarding the properties of cardiac tissue 302 near or surrounding catheter 300 from EAM system 70 or from other sources. In embodiments, console 130 may receive information regarding the properties of cardiac tissue 302 near or surrounding catheter 300 from other sources, such as cardiac computed tomography (CT) scans, magnetic resonance imaging (MRI) scans, and / or ultrasound scans. This provides console 130 with information indicating the thickness of the tissue and how much of the tissue thickness is affected by the electric field of interest. In an embodiment, the console 130 may utilize information from cardiac CT scans, MRI, and / or ultrasound in addition to the EAM data to create the display.

[0076] The console 130 determines the surface area and depth of the cardiac tissue 302 that will be affected or affected by different electric fields of interest that may be generated by different combinations of electrodes 314 and 316. This includes determining the strength of the electric field in different portions of the cardiac tissue 302 using different pulses. In determining the surface area and depth of the affected cardiac tissue 302, the console 130 may take into account electrical pulses of different lengths and magnitudes, which may be a continuous stream of pulses or multiple separate pulse trains or other configurations. Pulse parameters of interest include the number of pulses, the duty cycle of the pulses, the interval between pulse trains, the voltage or magnitude of the pulses, including peak voltage, and the duration of the voltage.

[0077] From this information, console 130 generates a graphical representation of the electric field of interest and overlays the graphical representation of the electric field on an anatomical map of the heart, which is displayed on a display, such as display 92. The electric field of interest to be displayed can be automatically selected by console 130 based on parameters of the cardiac tissue 302 to be ablated and / or manually selected by the user based on the amount of cardiac tissue 302 to be ablated. In embodiments, the graphical representation and anatomical map are three-dimensional representations. In embodiments, console 130 and / or EAM system 70 can update the electrocardiogram information displayed on the anatomical map to guide the user and / or console 130 in selecting the electric field to use in electroporation, including the field strength.

[0078] In an embodiment, console 130 is configured to graphically indicate on the anatomical map where the electric field intersects cardiac tissue 302. In an embodiment, console 130 is configured to tag the anatomical map with electric field strength information. In an embodiment, console 130 is configured to mark the graphical depiction of the electric field and the anatomical map with voltage thresholds, e.g., 200-250 V / cm for reversible electroporation, 400 V / cm for irreversible electroporation, and 1000 V / cm for a maximal or maximum threshold.

[0079] 4A-4D are schematic diagrams illustrating graphical displays that may be displayed in an overlay of the graphical display of the electric field on an anatomical map, according to embodiments of the presently disclosed subject matter. In embodiments, console 130 is configured to display these and other graphical displays in an overlay of the graphical display of the electric field on an anatomical map on display 92. In some embodiments, console 130 is configured to display only a three-dimensional surface, without thickness, in an overlay of the graphical display of the electric field on an anatomical map.

[0080] 4A-4D each show an electroporation catheter 300 adjacent to cardiac tissue 302 within a patient's heart, the cardiac tissue 302 including endocardial tissue 304 and myocardial tissue 306. The electroporation catheter 300 includes a catheter shaft 308 and a basket 310 connected to the catheter shaft 308. Also, as previously described, the catheter 310 includes a first set of electrodes 314 disposed around the circumference of the catheter basket 310 and a second set of electrodes 316 disposed near the distal end 318 of the catheter basket 310.

[0081] 4A is a schematic diagram illustrating electric field lines 400 and field strength threshold lines 402 and 404 in an overlay of a graphical representation of an electric field on an anatomical map, according to an embodiment of the presently disclosed subject matter. The electric field lines 400 displayed on the display 92 extend between the first group of electrodes 314 and the second group of electrodes 316. The electric field lines 400 are denser, i.e., closer to each other, closer to the electrodes 314 and 316, indicating a stronger electric field, and the field lines 400 are more widely spaced apart, farther from the electrodes 314 and 316, indicating a weaker electric field. In embodiments, the resolution of the electric field lines 400 may be user-selectable. Also, in embodiments, the electric fields may be displayed using different colors and minimum / maximum field strength values.

[0082] The field strength threshold lines 402 and 404 provide the user with an indication of the field strength at various distances from the electrodes 314 and 316. Using this information, the user can target the cardiac tissue 302 for ablation via irreversible electroporation, and / or, in embodiments, the user can target the cardiac tissue 302 for reversible electroporation. As shown, in embodiments, the field strength threshold lines 402 and 404 can be bold or wider. In embodiments, the field strength threshold lines 402 and 404 can be bold or wider relative to the uncertainty in the expected field strength. In embodiments, the field strength threshold lines 402 and 404 can be used to indicate voltage thresholds, such as 200-250 V / cm for reversible electroporation, 400 V / cm for irreversible electroporation, or 1000 V / cm for a maximal or maximum threshold.

[0083] In an embodiment, field strength threshold line 402 indicates a field strength of 400 V / cm, which is considered sufficiently high for ablation of cardiac tissue 302, including myocardial tissue 306, by irreversible electroporation. By viewing field strength threshold line 402 on an anatomical map of the heart and the higher density of field lines 400 closer to electrodes 314 and 316, a user can determine that cardiac tissue 302 between field strength threshold line 402 and electrodes 314 and 316 will or can be ablated by irreversible electroporation. Also, in an embodiment, field strength threshold line 404 indicates a field strength of 200 V / cm, which provides a user with an indication of the limit for reversible electroporation of cardiac tissue 302.

[0084] In some embodiments, a maximum or maximal field strength threshold line is provided on display 92 to warn the user of excessive field strength, since at field strengths of 1600 V / cm or greater, tissues such as red blood cells, vascular smooth muscle, endocardial tissue, and neural tissue are irreversibly electroporated and ablated or necrotic.

[0085] 4B is a schematic diagram illustrating the intersection 410 of a field strength, e.g., 400 V / cm, with cardiac tissue 302 in an overlay of a graphical representation of the electric field on an anatomical map, according to an embodiment of the presently disclosed subject matter. The intersection 410 of the electric field with cardiac tissue 302 on the anatomical map provides an indication of the size of the lesion that has been or may be created in cardiac tissue 302. Also, in an embodiment, a thick line 412 in the graphical representation marks or indicates the surface area of ​​endocardial tissue 304 that is affected by the electric field.

[0086] In embodiments, intersection 410 can be combined with a three-dimensional image of the cardiac anatomy, such as a CT, MRI, or ultrasound image, to provide a three-dimensional image of the lesion depth at a critical or certain field strength. Of course, the lesion size, including the lesion area and depth, will vary based on different pulse parameters of the electrical pulses applied to electrodes 314 and 316 of catheter 300.

[0087] 4C is a schematic diagram illustrating predicted zones of reversible electroporation 420 and irreversible electroporation 422 in an overlay of a graphical representation of an electric field on an anatomical map, according to an embodiment of the presently disclosed subject matter. In an embodiment, predicted zones 420 and 422 are determined based on a model of the electric field that is or can be generated using electrodes selected from electrodes 314 and 316, and based on simulations of various electrical pulses applied to the selected electrodes. In this case, the areas and depths of predicted zones 420 and 422 vary with different pulse parameters of the electrical pulses applied to electrodes 314 and 316 of catheter 300.

[0088] Field strength threshold lines 424 and 426 define the expected zone of reversible electroporation 420. In an embodiment, field strength threshold line 424 represents 200 V / cm and field strength threshold line 426 represents 250 V / cm.

[0089] The boundary between the field strength threshold line 428 and the endocardial tissue 304 defines the expected zone of irreversible electroporation 422. In an embodiment, the field strength threshold line 428 represents a field strength of 400 V / cm.

[0090] FIG. 4D is a schematic diagram showing a previously created lesion 430 in cardiac tissue 302 intersecting electric field lines 432 in an overlay of a graphical representation of the electric field on an anatomical map, according to an embodiment of the presently disclosed subject matter.

[0091] In some embodiments, during the initial mapping process and / or after ablation, local tissue complex impedance values ​​of the cardiac tissue 302 surrounding the catheter 300 can be added to the anatomical map. These local tissue complex impedance values ​​can be used to indicate underlying tissue support, including vital and diseased myocardium, fibrosis, venous tissue, inflammation, and previously ablated cardiac tissue 302. Because local tissue complex impedance affects the local electric field, this can be useful in predicting reversible and irreversible electroporation zones.

[0092] In other aspects of the present disclosure, set points can be established to provide a constant critical field magnitude and / or depth relative to the anatomy of the catheter 300 and surrounding cardiac tissue 302. In embodiments, the console 130 is configured to dynamically change, or suggest manual changes to, the voltage amplitude and / or other pulse parameters to provide a constant critical field magnitude, depth, and / or location in response to dynamically measured changes in impedance within the surrounding cardiac tissue 302 and / or changes in the shape of the catheter 300 and the location of the electrodes 314 and 316.

[0093] 5 is a method for planning irreversible electroporation ablation according to an embodiment of the presently disclosed subject matter. While the method is described with respect to catheter 300, any suitable electroporation catheter may be used in the method. Also, in embodiments, console 130 and / or EAM 70 are configured or can be configured to provide the functionality of the various steps of the method.

[0094] In step 500, the method includes determining the position of the electrodes 314 and 316 within the patient's body relative to the cardiac tissue 302 after inserting the catheter 300 into the patient's body, and in step 502, the method includes determining characteristics of the cardiac tissue 302 near or surrounding the catheter 300 within the patient's body.

[0095] In step 504, the method includes modeling electric fields that can be generated by different combinations of electrodes 314 and 316 on catheter 300. In some embodiments, the method also includes selecting from electrodes 314 and 316 those electrodes that are most likely to be suitable for ablation of targeted cardiac tissue 302 via electroporation, including ablation of targeted superficial and deeper tissue. In embodiments, this includes providing user input, such as voltage amplitude.

[0096] In step 506, the method includes determining the surface area and depth of the cardiac tissue 302 that will be affected or have been affected by the electric field, which includes determining the electric field strength in different portions of the cardiac tissue 302. In embodiments, this includes determining an electrical pulse to generate an electric field between selected electrodes for irreversible electroporation ablation of the tissue 302. In embodiments, this also includes determining application parameters for the electric field, such as the field strength and the length of time the field is applied to the cardiac tissue 302.

[0097] In step 508, the method includes generating, by a controller such as console 130, a graphical representation of the electric field that can be generated using selected electrodes on catheter 300 based on a model of the electric field. In an embodiment, the method includes generating the graphical representation of the electric field based on characteristics of catheter 300, the position or location of catheter 300 within the patient's body, and characteristics of cardiac tissue 302 surrounding catheter 300 within the patient's body.

[0098] In step 510, the method includes displaying a graphical representation of the electric field and an anatomical map of the patient on a display, such as display 92, which can be used to assist in planning the electroporation ablation prior to delivering energy. In an embodiment, this includes overlaying a graphical representation of the electric field of interest on an anatomical map of the heart. In an embodiment, displaying the graphical representation includes displaying a field strength based on electrical pulse parameters of an electrical pulse to be provided to a selected one of electrodes 314 and 316.

[0099] In embodiments, the graphical display may include displaying one or more of the following: displaying at least one electric field line in a graphical display of the electric field on an anatomical map, displaying a field strength threshold line in the graphical display of the electric field on an anatomical map, displaying markings where the field strength threshold line intersects with surrounding tissue, displaying an expected zone of reversible electroporation, displaying an expected zone of irreversible electroporation, displaying markings where the electric field intersects with a previously created lesion, and displaying the expected lesion on the anatomical map.

[0100] Also, in an embodiment, the method includes dynamically changing, by the controller, the graphical representation of the electric field based on one or more of changes in the position of the catheter relative to the surrounding tissue, changes in the catheter, changes in pulse parameters to be provided to the electrodes of the catheter, and changes in impedance measurements of the surrounding tissue.

[0101] (Addendum) As a preferred embodiment, the technical concept that can be grasped from the above embodiment will be described below. [Item 1] 1. A system for ablation of cardiac tissue by irreversible electroporation, comprising: a catheter having an electrode; The display and a controller, the controller comprising: displaying an anatomical map of the patient's heart on said display; generating a graphical representation of the electric field when an electric pulse is applied to the electrodes based on the electric field model; overlaying the graphical representation of the electric field on the display over the anatomical map to assist in planning the electroporation ablation prior to delivering the electrical pulse to the electrodes, the overlay including a representation of an intersection of the electric field with an endocardial surface of cardiac tissue having a field strength sufficient for irreversible electroporation tissue ablation. The system is configured as follows: [Item 2] Item 10. The system of item 1, wherein the controller is configured to generate the graphical representation of the electric field based on characteristics of the catheter. [Item 3] 3. The system of claim 1, wherein the controller is configured to include at least one electric field line in the graphical representation of the electric field on the anatomical map and to include at least one electric field strength threshold line in the graphical representation of the electric field on the anatomical map. [Item 4] 4. The system of any one of items 1 to 3, wherein the controller is configured to include at least one of a reversible field strength threshold line in the range of 200 to 250 volts per centimeter, a critical field strength threshold line of 400 volts per centimeter for irreversible electroporation, and a maximum field strength threshold line of 1000 volts per centimeter. [Item 5] 5. The system of any one of items 1 to 4, wherein the controller is configured to include markings in the graphical representation of the electric field where a field strength threshold line intersects with surrounding tissue. [Item 6] 6. The system of any one of items 1 to 5, wherein the controller is configured to include at least one of an expected zone of reversible electroporation and an expected zone of irreversible electroporation within the graphical representation of the electric field. [Item 7] 7. The system of any one of claims 1 to 6, wherein the controller is configured to include at least one marking in the graphical representation of the electric field at a location where the electric field intersects a previously created wound and at a predicted wound where the electric field is expected to intersect in the graphical representation of the electric field. [Item 8] 1. A method for planning cardiac tissue ablation by irreversible electroporation, comprising: displaying an anatomical map of the patient's heart on a display; generating, by the controller and based on the electric field model, an overlay of a graphical representation of the electric field that may be generated when an electrical pulse is applied to the electrodes of the catheter; displaying on the display an overlay of the graphical representation of the electric field on the anatomical map to assist in planning the electroporation ablation prior to delivering the electrical pulse to the electrodes, the overlay including a representation of an intersection of the electric field with an endocardial surface of cardiac tissue having a field strength sufficient for irreversible electroporation tissue ablation; A method for providing the above. [Item 9] 9. The method of claim 8, comprising displaying at least one electric field line within the graphical representation of the electric field on the anatomical map; and displaying at least one electric field strength threshold line within the graphical representation of the electric field on the anatomical map. [Item 10] 10. The method of claim 8 or 9, comprising one or more of the steps of displaying markings of where a field strength threshold line intersects with surrounding tissue, displaying a predicted zone of reversible electroporation, displaying a predicted zone of irreversible electroporation, displaying markings of where the field intersects with a previously created lesion, and displaying a predicted lesion on the anatomical map. [Item 11] The controller a change in the position of the catheter relative to the surrounding tissue; a change in the catheter; Varying the pulse parameters to be provided to the electrodes of the catheter; and Changes in impedance measurements of the surrounding tissue 11. The method of any one of items 8 to 10, comprising dynamically modifying the graphical representation of the electric field based on one or more of: Various modifications and additions can be made to the exemplary embodiments described above without departing from the scope of the present disclosure. For example, while the embodiments described above refer to particular features, the scope of the present disclosure also includes embodiments having different combinations of features and embodiments that do not include all of the described features. Accordingly, the scope of the present disclosure is intended to embrace all such alternatives, modifications, and variations that fall within the scope of the claims, together with all equivalents thereof.

Claims

1. 1. A system for ablation by irreversible electroporation, comprising: a catheter having a plurality of electrodes; The display and Controller and wherein the controller displaying an anatomical map of the patient's heart on said display; generating a graphical representation of the electric field generated when the electric pulse is applied to the electrodes based on the electric field model; overlaying on the display a graphical representation of the electric field on the anatomical map prior to delivering electrical pulses to the plurality of electrodes, the overlay including an indication that the electric field crosses an endocardial surface of cardiac tissue; marking on the anatomical map where the electric field intersects with the previously created wound; It is configured as follows: system.

2. The system of claim 1 , wherein the catheter includes a plurality of splines, and one or more of the plurality of electrodes is disposed on each of the plurality of splines.

3. The system of claim 2 , wherein the plurality of electrodes includes a first group of electrodes and a second group of electrodes, the second group of electrodes being spaced apart from the first group of electrodes and positioned on the spline.

4. The system of claim 3 , wherein one or more electrodes of the first group of electrodes are selected as cathodes and one or more other electrodes of the first group of electrodes are selected as anodes.

5. The system of claim 3 , wherein the plurality of electrodes can be configured as biphasic electrodes.

6. The system of any one of claims 1 to 5, wherein the controller is configured to generate a graphical representation of the electric field based on a characteristic of the catheter.

7. The system of any one of claims 1 to 6, wherein the graphical representation of the electric field includes at least one of electric field lines and field strength threshold lines.

8. 8. The system of claim 1, wherein the graphical representation of the electric field includes at least one of a reversible field strength threshold line in the range of 200-250 volts per centimeter, a critical field strength threshold line for irreversible electroporation at 400 volts per centimeter, and a maximum field strength threshold line at 1000 volts per centimeter.

9. The system of any one of claims 1 to 8, wherein the controller is further configured to apply markings on the anatomical map indicating where field strength threshold lines intersect with surrounding tissue.

10. The system of any one of claims 1 to 9, wherein the controller is configured to include at least one of a predicted zone of reversible electroporation and a predicted zone of irreversible electroporation on the anatomical map.

11. 11. The system of claim 1, wherein the controller is configured to receive complex tissue impedance information about surrounding tissue to characterize the surrounding tissue and to assist in generating a graphical representation of the electric field.

12. The controller a change in the position of the catheter relative to the surrounding tissue; a change in the configuration of the catheter; Varying the pulse parameters to be provided to the electrodes of the catheter; and Changes in impedance measurements of the surrounding tissue The system of any one of claims 1 to 11, configured to dynamically change the graphical representation of the electric field based on one or more of:

13. 13. The system of claim 1, wherein the controller is configured to provide one or more of proposed changes to pulse parameters and automatic dynamic changes to pulse parameters to maintain a critical field strength at a location in response to at least one of surrounding tissue impedance measurements and changes in the catheter.

14. The system of any one of claims 1 to 13, wherein the electrical pulse is a biphasic pulse.

15. The system of any one of claims 1 to 13, wherein the electrical pulse is a monophasic pulse.

Citation Information

Patent Citations

  • Endocardial imaging system

    JP1996501477A

  • System and method for estimating the treatment area of ​​a therapeutic device and for interactive patient treatment planning.

    JP2012521863A

  • Systems, devices, and methods for delivering pulsed electric field ablation energy to endocardial tissue

    JP2019503773A

  • JPP7525655B

  • Orientation Independent Sensing, Mapping, Interface and Analysis Systems and Methods

    US20180296111A1