Tissue Processing System

The system addresses the challenge of precise tissue treatment by using a multi-dose energy delivery approach, combining reversible and irreversible energy delivery with cardiac cycle monitoring, to enhance treatment efficacy.

JP7803858B2Active Publication Date: 2026-01-21ENCHANNEL MEDICAL LTD
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Patent Information

Application Number
JP2022529739
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-09-07
Filing Date
2020-11-20
Publication Date
2026-01-21
Estimated Expiration
2040-11-20

AI Technical Summary

Technical Problem

Existing medical procedures face challenges in achieving precise and effective tissue treatment through energy delivery, often resulting in suboptimal outcomes.

Method used

A system comprising an energy delivery console and device with multiple energy delivery elements, including reversible and irreversible energy doses, to enhance tissue treatment efficacy, particularly for cardiac, neural, and other tissues, using various energy forms and monitoring cardiac cycles for precise delivery.

Benefits of technology

The system achieves improved tissue treatment by ensuring precise and controlled energy delivery, enhancing treatment outcomes by combining reversible and irreversible energy doses, and monitoring cardiac cycles for optimal timing.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided herein is a system for treating tissue of a patient. The system includes an energy delivery console and at least one energy delivery device. The energy delivery console is capable of providing a first dose of energy and a second dose of energy. The energy delivery device includes a first delivery element configured to deliver the first dose of energy to the target tissue and a second delivery element configured to deliver the second dose of energy to the target tissue. The first dose of energy can include delivery of energy that reversibly transforms the target tissue, and the second dose of energy can include delivery of energy that irreversibly transforms the target tissue. The first dose of energy is delivered to enhance therapy provided by the second dose of energy.
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Description

[Technical Field]

[0001] This application claims priority to U.S. Provisional Patent Application No. 62 / 939,412, entitled "Tissue Treatment Systems, Devices, and Methods," filed November 22, 2019, and U.S. Provisional Patent Application No. 63 / 075,280, entitled "Tissue Treatment Systems, Devices, and Methods," filed September 7, 2020, each of which is incorporated herein by reference.

[0002] This application does not claim priority to, but may be related to, U.S. Application No. 16 / 335,893, entitled "Ablation System with Force Control," filed March 22, 2019. This application is a national stage application under 35 U.S.C. § 371 of Patent Cooperation Treaty Application No. PCT / US2017 / 056064, entitled "Ablation System with Force Control," filed October 11, 2017, published as WO 2018 / 071490, and claims priority to U.S. Provisional Application No. 62 / 406,748, entitled "Ablation System with Force Control," filed October 11, 2016, and U.S. Provisional Application No. 62 / 504,139, entitled "Ablation System with Force Control," filed May 20, 2017. Each of these applications is incorporated herein by reference.

[0003] This application does not claim priority to, but may be related to, U.S. Application No. 16 / 097,955, entitled "Cardiac Information Dynamic Display System and Method," filed October 31, 2018. This application is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application No. PCT / US2017 / 030915, entitled "Cardiac Information Dynamic Display System and Method," filed May 3, 2017, published as WO 2017 / 192769, and claims priority to U.S. Provisional Application No. 62 / 331,351, entitled "Cardiac Information Dynamic Display System and Method," filed May 3, 2016. Each of these applications is incorporated herein by reference.

[0004] This application does not claim priority to, but may be related to, U.S. patent application Ser. No. 16 / 861,814, filed April 29, 2020, entitled "Catheter, System and Methods of Medical Uses of Same, Including Diagnostic and Treatment Uses for the Heart." This application is a continuation of U.S. Patent No. 10,667,753, entitled "Catheter, System and Methods of Medical Uses of Same, Including Diagnostic and Treatment Uses for the Heart," filed June 19, 2018, which is a continuation of U.S. Patent No. 10,004,459, entitled "Catheter, System and Methods of Medical Uses of Same, Including Diagnostic and Treatment Uses for the Heart," filed February 20, 2015, which is a national stage application under 35 U.S.C. § 371 of Patent Cooperation Treaty Application No. PCT / US2013 / 057579, entitled "Catheter System and Methods of Medical Uses of Same, Including Diagnostic and Treatment Uses for the Heart," filed August 30, 2013, which has been published as WO 2014 / 036439, and which is a continuation of U.S. Patent No. 10,004,459, entitled "Catheter, System and Methods of Medical Uses of Same, Including Diagnostic and Treatment Uses for the Heart," filed August 31, 2012. This application claims priority to U.S. Provisional Patent Application No. 61 / 695,535, entitled "Diagnosing and Treating Heart Tissue," each of which is incorporated herein by reference.

[0005] This application does not claim priority to, but may be related to, U.S. patent application Ser. No. 16 / 242,810, filed Jan. 8, 2019, entitled "Expandable Catheter Assembly with Flexible Printed Circuit Board (PCB) Electrical Pathways." This application is a continuation of U.S. patent application Ser. No. 14 / 762,944, filed July 23, 2015, entitled "Expandable Catheter Assembly with Flexible Printed Circuit Board (PCB) Electrical Pathways," which is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty application PCT / US2014 / 015261, filed February 7, 2014, entitled "Expandable Catheter Assembly with Flexible Printed Circuit Board (PCB) Electrical Pathways," published as WO 2014 / 124231, and claims priority to U.S. provisional patent application Ser. No. 61 / 762,363, filed February 8, 2013, entitled "Expandable Catheter Assembly with Flexible Printed Circuit Board (PCB) Electrical Pathways," each of which is incorporated herein by reference.

[0006] This application does not claim priority to, but may be related to, U.S. Patent Application No. 16 / 533,028, filed August 6, 2019, entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls." This application is a continuation of U.S. patent application Ser. No. 16 / 014,370, filed June 21, 2018, entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls," which is a continuation of U.S. patent application Ser. No. 15 / 435,763, filed February 17, 2017, entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls," which is a continuation of U.S. Patent Application No. 9,610,024, filed September 25, 2015, entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls," which is a continuation of U.S. Patent Application No. 9,610,024, filed November 19, 2014, entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls." No. 9,167,982, entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls," which issued on December 23, 2014, is a continuation of U.S. Patent No. 8,918,918, entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls."No. 8,700,119 (the '119 patent), entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls," issued April 15, 2014, which is a continuation of U.S. Pat. No. 8,417,313 (the '313 patent), entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls," issued April 9, 2013, which is a continuation of U.S. Pat. No. 8,417,313 (the '313 patent), entitled "Method and Device for Determining and Presenting Surface Charge and Dipole Densities on Cardiac Walls," filed August 3, 2007. 371 of Patent Cooperation Treaty Application PCT / CH2007 / 000380, entitled "Walls," which was published as WO 2008 / 014629 and claims priority to Swiss Patent Application No. 1251 / 06, filed August 3, 2006, each of which is incorporated herein by reference.

[0007] This application does not claim priority to, but may be related to, U.S. patent application Ser. No. 16 / 568,768, filed Sep. 12, 2019, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall." This application is a continuation of U.S. patent application Ser. No. 15 / 882,097, filed January 29, 2018, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall," which is a continuation of U.S. Patent Application No. 9,913,589, filed December 25, 2016, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall," which is a continuation of U.S. Patent Application No. 9,504,395, filed October 19, 2015, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall," which is a continuation of U.S. Patent Application No. 9,504,395, filed July 19, 2013, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall." No. 9,192,318, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall," which issued on August 20, 2013, is a continuation of U.S. Patent No. 8,512,318, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall."This application is a continuation of PCT Application No. 2009 / 0298690 (hereinafter the '690 publication), which is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application No. PCT / IB2009 / 000071, filed January 16, 2009, entitled "A Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall," which is published as WO 2009 / 090547 and claims priority to Swiss Patent Application No. 00068 / 08, filed January 17, 2008. Each of these applications is incorporated herein by reference.

[0008] This application does not claim priority to, but may be related to, U.S. patent application Ser. No. 16 / 389,006, filed April 19, 2019, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall." This application is a continuation of U.S. Application No. 15 / 926,187, filed March 20, 2018, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall," which is a continuation of U.S. Patent No. 9,968,268, filed August 8, 2017, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall," which is a continuation of U.S. Patent No. 9,757,044, filed September 6, 2013, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall," which was published as International Publication No. WO 2012 / 122517 (hereinafter the '517 publication). This is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application PCT / US2012 / 1212517 entitled "Wall," which claims priority to U.S. Provisional Patent Application No. 61 / 451,357, each of which is incorporated herein by reference.

[0009] This application does not claim priority to, but may be related to, U.S. Design Patent Application No. 29 / 681,827, entitled "Set of Transducer-Electrode Pairs for a Catheter," filed February 28, 2019. This application is a divisional application of U.S. Design Patent Application No. 29 / 593,043, entitled "Set of Transducer-Electrode Pairs for a Catheter," filed February 6, 2017, which is a divisional application of U.S. Design Patent Application No. D782,686, entitled "Transducer-Electrode Pair For a Catheter," filed December 2, 2013, which is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application No. PCT / US2013 / 057579, entitled "Catheter System and Methods of Medical Uses of Same, Including Diagnostic and Treatment Uses for the Heart," filed August 30, 2013, which claims priority to U.S. Provisional Patent Application No. 61 / 695,535, entitled "System and Method for Diagnosing and Treating Heart Tissue," filed August 31, 2012. Each of these applications is incorporated herein by reference.

[0010] This application does not claim priority to, but may be related to, U.S. Patent Application No. 16 / 111,538, entitled "Gas-Elimination Patient Access Device," filed August 24, 2018. This application is a continuation of U.S. Patent No. 10,071,227, entitled "Gas-Elimination Patient Access Device," filed July 14, 2016, which is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application No. PCT / US2015 / 11312, entitled "Gas-Elimination Patient Access Device," filed January 14, 2015, which claims priority to U.S. Provisional Patent Application No. 61 / 928,704, entitled "Gas-Elimination Patient Access Device," filed January 17, 2014. Each of these applications is incorporated herein by reference.

[0011] This application does not claim priority to, but may be related to, U.S. patent application Ser. No. 15 / 128,563, entitled "Cardiac Analysis User Interface System and Method," filed Sep. 23, 2016. This is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty application PCT / US2015 / 22187, entitled "Cardiac Analysis User Interface System and Method," filed Mar. 24, 2015, which claims priority to U.S. provisional patent application Ser. No. 61 / 970,027, entitled "Cardiac Analysis User Interface System and Method," filed Mar. 28, 2014, which is incorporated herein by reference.

[0012] This application does not claim priority to, but may be related to, U.S. Patent Application No. 17 / 063,901, filed October 6, 2020, entitled "Devices and Methods for Determination of Electrical Dipole Densities on a Cardiac Surface." This is a continuation of U.S. Patent No. 10,828,011, entitled "Devices and Methods for Determination of Electrical Dipole Densities on a Cardiac Surface," filed March 2, 2016, which is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application PCT / US2014 / 54942, entitled "Devices and Methods for Determination of Electrical Dipole Densities on a Cardiac Surface," filed September 10, 2014, which claims priority to U.S. Provisional Patent Application No. 61 / 877,617, entitled "Devices and Methods for Determination of Electrical Dipole Densities on a Cardiac Surface," filed September 13, 2013, which is incorporated herein by reference.

[0013] This application does not claim priority to, but may be related to, U.S. patent application Ser. No. 16 / 849,045, filed April 15, 2020, entitled "Localization System and Method Useful in Acquisition and Analysis of Cardiac Information." This application is a continuation of U.S. Patent No. 10,653,318, filed October 26, 2017, entitled "Localization System and Method Useful in the Acquisition and Analysis of Cardiac Information," and is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application No. PCT / US2016 / 032420, filed May 13, 2016, entitled "Localization System and Method Useful in the Acquisition and Analysis of Cardiac Information," which claims priority to U.S. Provisional Patent Application No. 62 / 161,213, filed May 13, 2015, entitled "Localization System and Method Useful in the Acquisition and Analysis of Cardiac Information," which is incorporated herein by reference.

[0014] This application does not claim priority to, but may be related to, U.S. patent application Ser. No. 15 / 569,231, entitled "Cardiac Virtualization Test Tank and Testing System and Method," filed Oct. 25, 2017. This application is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty application PCT / US2016 / 031823, filed May 11, 2016, which claims priority to U.S. provisional patent application Ser. No. 62 / 160,501, entitled "Cardiac Virtualization Test Tank and Testing System and Method," filed May 12, 2015, which is incorporated herein by reference.

[0015] This application does not claim priority to, but may be related to, U.S. patent application Ser. No. 15 / 569,185, entitled "Cardiac Virtualization Test Tank and Testing System and Method," filed Oct. 25, 2017. This application is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty application PCT / US2016 / 032017, filed May 12, 2016, which claims priority to U.S. provisional patent application Ser. No. 62 / 160,529, entitled "Ultrasound Sequencing System and Method," filed May 12, 2015, which is incorporated herein by reference.

[0016] This application does not claim priority to, but may be related to, U.S. Patent Application No. 16 / 097,959, entitled "Cardiac Mapping System with Efficiency Algorithm," filed October 31, 2018. This application is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application No. PCT / US2017 / 030922, entitled "Cardiac Mapping System with Efficiency Algorithm," filed May 3, 2017, which claims priority to U.S. Provisional Patent Application No. 62 / 413,104, entitled "Cardiac Mapping System with Efficiency Algorithm," filed October 26, 2016, which is incorporated herein by reference.

[0017] This application does not claim priority to, but may be related to, U.S. Patent Application No. 16 / 961,809, entitled "System for Identifying Cardiac Conduction Patterns," filed July 13, 2020. This application is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application No. PCT / US2019 / 014498, entitled "System for Identifying Cardiac Conduction Patterns," filed January 22, 2019, which claims priority to U.S. Provisional Patent Application No. 62 / 619,897, entitled "System for Recognizing Cardiac Conduction Patterns," filed January 21, 2018, and U.S. Provisional Patent Application No. 62 / 668,647, entitled "System for Identifying Cardiac Conduction Patterns," filed May 8, 2018, each of which is incorporated herein by reference.

[0018] This application does not claim priority to, but may be related to, U.S. Patent Application No. 17 / 048,151, entitled "Cardiac Information Processing System," filed October 16, 2020. This application is a national stage application under 35 U.S.C. 371 of Patent Cooperation Treaty Application No. PCT / US2019 / 031131, entitled "Cardiac Information Processing System," filed May 7, 2019, which claims priority to U.S. Provisional Application No. 62 / 668,659, entitled "Cardiac Information Processing System," filed May 8, 2018, and U.S. Provisional Application No. 62 / 811,735, entitled "Cardiac Information Processing System," filed February 28, 2019, each of which is incorporated herein by reference.

[0019] This application does not claim priority to, but may be related to, Patent Cooperation Treaty Application No. PCT / US2019 / 060433, entitled "Systems and Methods for Calculating Patient Information," filed November 8, 2019. This application claims priority to U.S. Provisional Application No. 62 / 757,961, entitled "Systems and Methods for Calculating Patient Information," filed November 9, 2018, each of which is incorporated herein by reference.

[0020] This application does not claim priority to, but may be related to, Patent Cooperation Treaty Application No. PCT / US2020 / 028779, entitled "System for Creating a Composite Map," filed April 17, 2020. This application claims priority to U.S. Provisional Application No. 62 / 835,538, entitled "System for Creating a Composite Map," filed April 18, 2019, and U.S. Provisional Application No. 62 / 925,030, entitled "System for Creating a Composite Map," filed October 23, 2019, each of which is incorporated herein by reference.

[0021] This application does not claim priority to, but may be related to, Patent Cooperation Treaty Application No. PCT / US2020 / 036110, entitled "Systems and Methods for Performing Localization Within a Body," filed June 4, 2020. This application claims priority to U.S. Provisional Application No. 62 / 857,055, entitled "Systems and Methods for Performing Localization Within a Body," filed June 4, 2019, each of which is incorporated herein by reference.

[0022] The present concepts relate generally to systems, devices, and methods for ablating tissue, and in particular for ablating tissue in a patient's heart. [Background technology]

[0023] Many medical procedures involve the delivery of energy to ablate or otherwise treat tissue. Achieving the desired specificity and efficacy of tissue treatment can be difficult and may not produce the desired results. Summary of the Invention [Problem to be solved by the invention]

[0024] What is needed are systems, methods, and devices that achieve improved tissue treatment through the delivery of energy. [Means for solving the problem]

[0025] According to one aspect of the present inventive concept, there is provided a system for treating tissue of a patient, the system comprising: an energy delivery console for providing a first dose of energy and a second dose of energy; and an energy delivery device including a first delivery element configured to deliver the first dose of energy to a target tissue and a second delivery element configured to deliver the second dose of energy to the target tissue. The first dose of energy may include delivery of energy that reversibly alters the target tissue. The second dose of energy may include delivery of energy that irreversibly alters the target tissue. The first dose of energy may be delivered to enhance treatment provided by the second dose of energy.

[0026] In some embodiments, the target tissue comprises cardiac tissue.

[0027] In some embodiments, the target tissue comprises neural tissue.

[0028] In some embodiments, the target tissue comprises blood vessel wall tissue.

[0029] In some embodiments, the target tissue comprises tissue of an organ.

[0030] In some embodiments, the target tissue comprises tissue selected from the group consisting of cardiac tissue, neural tissue, blood vessel wall tissue, organ tissue, brain tissue, lung tissue, kidney tissue, liver tissue, stomach tissue, muscle tissue, and combinations thereof.

[0031] In some embodiments, the energy delivery device comprises a catheter.

[0032] In some embodiments, the energy delivery device comprises a device selected from the group consisting of a catheter, a surgical tool, a laparoscopic tool, an endoscopic tool, and combinations thereof.

[0033] In some embodiments, the first energy delivery element and the second energy delivery element comprise the same components.

[0034] In some embodiments, the first energy delivery element and the second energy delivery element comprise different components.

[0035] In some embodiments, the first energy delivery element comprises multiple energy delivery elements, the second energy delivery element may comprise a single energy delivery element, or the second energy delivery element may comprise multiple energy delivery elements that are the same component as the first energy delivery element.

[0036] In some embodiments, the second energy delivery element comprises a plurality of energy delivery elements, and the first energy delivery element may comprise a single energy delivery element.

[0037] In some embodiments, the energy delivery device includes a first energy delivery device and a second energy delivery device, and the plurality of energy delivery elements includes a first device element of the first energy delivery device and a second device element of the second energy delivery device, wherein the first device element can be configured to be positioned on an endocardial surface of the patient's heart during delivery of the second dose, and the second device element can be configured to be positioned on an epicardial surface of the patient's heart.

[0038] In some embodiments, the first dose of energy comprises delivery of insufficient energy to ablate, necrotize, and / or otherwise permanently alter the target tissue, and the second dose of energy comprises delivery of sufficient energy to ablate, necrotize, and / or otherwise permanently alter the target tissue, In some embodiments, parameters of the first dose of energy and / or the second dose of energy are determined by an algorithm of the system, e.g., an artificial intelligence based algorithm.

[0039] In some embodiments, the system is configured to deliver the first dose of energy and / or the second dose of energy to an endocardial tissue surface.

[0040] In some embodiments, the system is configured to deliver the first dose of energy and / or the second dose of energy to an epicardial tissue surface.

[0041] In some embodiments, the system is configured to deliver the second dose of energy after the first dose of energy is delivered, and the second dose of energy can be configured to irreversibly electroporate the target tissue.

[0042] In some embodiments, the system is configured to deliver the second dose of energy during at least a portion of the delivery of the first dose of energy.

[0043] In some embodiments, the first dose of energy comprises RF energy delivered at a level insufficient to ablate tissue.

[0044] In some embodiments, the first dose of energy comprises a form of energy selected from the group consisting of thermal energy, heat energy, cryogenic energy, electromagnetic energy, radio frequency (RF) energy, microwave energy, light energy, laser light energy, sonic energy, subsonic energy, ultrasonic energy, chemical energy, and combinations thereof.

[0045] In some embodiments, the energy of the second dose comprises a form of energy selected from the group consisting of thermal energy, heat energy, cryogenic energy, electromagnetic energy, radio frequency (RF) energy, microwave energy, light energy, laser light energy, sonic energy, subsonic energy, ultrasonic energy, chemical energy, and combinations thereof.

[0046] In some embodiments, the first dose of energy and the second dose of energy comprise different forms of energy.

[0047] In some embodiments, the second dose of energy comprises a pulse of irreversible electroporation energy, and the second dose may comprise parameters selected from the group consisting of: a dose delivered by electrodes having a length of at least 1.46 mm and / or a length of no more than 8 mm, a dose delivered by a pair of electrodes separated by a distance of at least 1 mm and / or no more than 11 mm, a dose based on an applied voltage of at least 500 V and / or no more than 5000 V, a dose comprising a field strength of at least 200 V / cm and / or no more than 1000 V / cm, a dose comprising a pulse width of at least 0.1 μsec and / or no more than 200 μsec, a dose comprising a series of pulses with a pulse repetition interval of at least 1 μsec, and combinations thereof.

[0048] In some embodiments, the first dose of energy is delivered over a period of time. The system can be configured to monitor the patient's cardiac cycle, and the second dose of energy can be initiated when the cardiac cycle reaches a desired cardiac cycle point. The system can be configured to enter an alert mode if a timeout period is reached after the first dose of energy is delivered and before the second dose is delivered.

[0049] In some embodiments, the system is configured to monitor the patient's cardiac cycle during delivery of the first dose and / or during delivery of the second dose. The system is configured to monitor the patient's cardiac cycle both during delivery of the first dose and during delivery of the second dose. The first dose can be delivered until the patient's cardiac cycle reaches a desired cardiac cycle point or until a timeout is reached.

[0050] In some embodiments, the system is configured to monitor the patient's heart prior to delivery of the first dose of energy. The system may be configured to predict a time T1 of the next desired cardiac cycle point after receiving an energy delivery signal. The first dose of energy includes energy delivery parameters based on a target amount of energy to be delivered and a time to reach T1. The second dose of energy may be delivered if the system determines that the patient's cardiac cycle is equal to the desired cardiac cycle point at time T1. The second dose of energy may not be delivered if the system determines that the patient's cardiac cycle is different from the desired cardiac cycle point at time T1.

[0051] In some embodiments, the first dose of energy is configured to increase the temperature of the target tissue by at least 2 degrees Celsius.

[0052] In some embodiments, the system is configured to deliver a third dose of energy and a fourth dose of energy to additional target tissue, where the first dose of energy comprises delivery of energy that reversibly transforms the target tissue and the second dose of energy comprises delivery of energy that irreversibly transforms the target tissue, and the third dose of energy can be similar to the first dose of energy and the fourth dose of energy can be similar to the second dose of energy.

[0053] In some embodiments, the system further includes a monitoring device configured to provide patient physiological information, and the energy delivery console provides the first dose of energy and / or the second dose of energy based on the provided physiological information. The physiological information may include cardiac cycle information. The physiological information may include information regarding physiological parameters selected from the group consisting of cardiac cycle, heart rate, blood pressure, blood flow velocity, respiration rate, brain activity, electrogram amplitude, tissue impedance, and combinations thereof.

[0054] According to another aspect of the inventive concept, a method for delivering energy to cardiac tissue includes: (1) inserting a device having at least one electrical energy delivery element into a patient's cardiac chamber; (2) positioning the at least one electrical energy delivery element proximate a target location including target tissue to receive energy; and (4) delivering a dose of energy to the target tissue sufficient to irreversibly electroporate the target tissue. The method may further include predicting a time T1 of a subsequent desired cardiac cycle point, with step (4) being performed at time T1. The method may further include, prior to step (4), performing the step of (3) delivering an additional dose of energy that elevates the temperature of the target tissue. The additional dose of energy may include delivery of RF energy. The RF energy may be delivered over a period of time. If the patient's cardiac cycle does not equal the desired cardiac cycle point, step (4) may not be performed at time T1.

[0055] According to another aspect of the inventive concept, a method of delivering energy to cardiac tissue includes: (1) inserting a device having at least one electrical energy delivery element into a patient's cardiac ventricle; (2) positioning the at least one electrical energy delivery element proximate to a target location including target tissue to receive energy; (3) heating the target tissue; and (4) subsequently delivering a second energy to the target tissue configured to irreversibly electroporate the target tissue.

[0056] In accordance with another aspect of the inventive concept, a system for treating tissue of a patient includes an energy delivery console for providing electrical pulses configured to perform pulsed electric field ablation of target tissue, an energy delivery device including two or more electrodes, the electrical pulses being delivered between the two or more electrodes, and a graphical user interface configured to provide information regarding the strength of an electric field generated by the electrical pulses.

[0057] In accordance with another aspect of the inventive concept, a system for treating tissue of a patient includes an energy delivery console for providing electrical pulses configured to perform pulsed electric field ablation of target tissue, an energy delivery device including two or more electrodes, and an irrigation fluid having an electrical conductivity different from that of blood, the electrical pulses being delivered between the two or more electrodes, and the system configured to control an electric field generated by the electrical pulses via delivery of the irrigation fluid.

[0058] The technology described herein, together with its attributes and attendant advantages, will be best understood in consideration of the following detailed description taken in conjunction with the accompanying drawings, in which exemplary embodiments are set forth by way of example.

[0059] Incorporation by Reference All publications, patents, and patent applications mentioned in this specification are herein incorporated by reference to the same extent as if each individual publication, patent, or patent application was specifically and individually indicated to be incorporated by reference. The contents of all publications, patents, and patent applications mentioned in this specification are incorporated by reference in their entirety for all purposes. [Brief explanation of the drawings]

[0060] [Figure 1] 1 is a schematic diagram of a system for performing a medical procedure on a patient consistent with the concepts of the present invention; [Figure 2]1 is a flowchart of a method for delivering energy to tissue of a patient consistent with the concepts of the present invention. [Figure 3] 10 is a flowchart of another method for delivering energy to tissue of a patient consistent with the concepts of the present invention. [Figure 3A] FIG. 1 illustrates a graph of a cardiac cycle including desired cycle points consistent with the concepts of the present invention. [Figure 4] 10 is a flowchart of another method for delivering energy to tissue of a patient consistent with the concepts of the present invention. [Figure 5] 10 is a flowchart of another method for delivering energy to tissue of a patient consistent with the concepts of the present invention. [Figure 6] 10 is a flowchart of another method for delivering energy to tissue of a patient consistent with the concepts of the present invention. [Figure 7] 10 is a flowchart of another method for delivering energy to tissue of a patient consistent with the concepts of the present invention. [Figure 8] FIG. 1 is a side view of an energy delivery device consistent with the concepts of the present invention. [Figure 8A] 10 is a graph illustrating lesion depths created with various energy delivery geometries consistent with the concepts of the present invention. [Figure 8B] 1 is a graph showing lesion surface areas created with various energy delivery geometries consistent with the concepts of the present invention. [Figure 9A] 1 is one of several graphs illustrating lesion volumes created with various energy delivery geometries consistent with the concepts of the present invention. [Figure 9B] 1 is one of several graphs illustrating lesion volumes created with various energy delivery geometries consistent with the concepts of the present invention. [Figure 9C] 1 is one of several graphs illustrating lesion volumes created with various energy delivery geometries consistent with the concepts of the present invention. [Figure 9D] 1 is one of several graphs illustrating lesion volumes created with various energy delivery geometries consistent with the concepts of the present invention. [Figure 10A] 1A-1C are cross-sectional anatomical views of a distal portion of an energy delivery device contacting a tissue surface at different orientation angles consistent with the concepts of the present invention. [Figure 10B] 1A-1C are cross-sectional anatomical views of a distal portion of an energy delivery device contacting a tissue surface at different orientation angles consistent with the concepts of the present invention. [Figure 11A] 1 is a user view of a graphical user interface displaying information related to different orientation angles of an energy delivery device consistent with the concepts of the present invention. [Figure 11B] 1 is a user view of a graphical user interface displaying information related to different orientation angles of an energy delivery device consistent with the concepts of the present invention. [Figure 12] FIG. 1 is a perspective view of a distal portion of an energy delivery device including multiple ports for delivering irrigation fluid consistent with the concepts of the present invention. [Figure 13] 1 is an anatomical side cross-section of a distal portion of an energy delivery device contacting a tissue surface and delivering irrigation fluid consistent with the concepts of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0061] Reference will now be made in detail to the present embodiments of the technology, examples of which are illustrated in the accompanying drawings. Like reference numerals may be used to indicate like elements. However, this description is not intended to limit the disclosure to the particular embodiments, but should be construed to include various modifications, equivalents, and / or alternatives to the embodiments described herein.

[0062] It will be understood that the terms "comprising" (and any form of "comprising", e.g., "comprise" and "comprises"), "having" (and any form of "having", e.g., "have" and "has"), "including" (and any form of "including", e.g., "includes" and "include"), or "containing" (and any form of "containing", e.g., "contains" and "contain"), as used herein, specify the presence of stated features, integers, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof.

[0063] It will be further understood that, although the terms "first," "second," "third," etc. are used herein to describe various limitations, elements, components, regions, layers, and / or sections, these limitations, elements, components, regions, layers, and / or sections are not to be limited by these terms. These terms are used only to distinguish one limitation, element, component, region, layer, or section from another limitation, element, component, region, layer, or section. Thus, a first limitation, element, component, region, layer, or section discussed below could also be termed a second limitation, element, component, region, layer, or section without departing from the scope of the present invention.

[0064] When an element is referred to as being "on," "attached," "connected," or "coupled" to another element, it can be directly on or above, connected to, or coupled to the other element, or one or more intervening elements may be present. Conversely, when an element is referred to as being "directly on," "directly attached," "directly connected," or "directly coupled" to another element, there are no intervening elements present. Other words used to describe relationships between elements should be interpreted similarly (e.g., "between" vs. "directly between," "adjacent" vs. "directly connected," etc.).

[0065] It will be further understood that when a first element is referred to as being "in," "on," and / or "within" a second element, the first element may be disposed inside an interior space of the second element, inside a portion of the second element (e.g., inside a wall of the second element), on the outer and / or inner surface of the second element, or a combination of one or more of these.

[0066] As used herein, the term "proximate," when used to describe the proximity of a first component or location to a second component or location, should be interpreted to include one or more locations near the second component or location, as well as locations within, on, and / or inside the second component or location. For example, a component positioned proximate to an anatomical location (e.g., the location of a target tissue) includes a component positioned near the anatomical location, as well as a component positioned within, on, and / or inside the anatomical location.

[0067] Spatial terms, such as "beneath," "below," "lower," "above," "upper," etc., may be used to describe the relationship of an element and / or feature to another element(s) and / or feature(s), e.g., as illustrated in the figures. It will be further understood that the spatial terms are intended to encompass various orientations of the device in use and / or operation in addition to the orientation shown in the figures. For example, if the device in the figures were inverted, elements described as "below" and / or "below" other elements or features would then be oriented "above" the other elements or features. The device may be otherwise oriented (e.g., rotated 90 degrees or at other orientations), and the spatial descriptions used herein would be interpreted accordingly.

[0068] The terms "reduce," "reducing," "reduction," and the like, as used herein, are intended to include a reduction in quantity, including a reduction to zero. Reducing the likelihood of occurrence is intended to include the prevention of occurrence. Similarly, the terms "prevent," "preventing," and "prevention" are intended to include the acts of "reducing," "reducing," and "reducing," respectively.

[0069] The term "and / or," as used herein, should be interpreted as a specific disclosure of each of the two specified features or components, with or without the other. For example, "A and / or B" should be interpreted as a specific disclosure of (i) A, (ii) B, and (iii) each of A and B, as if each were set forth individually herein.

[0070] The term "one or more," as used herein, may mean up to any number of 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, or more.

[0071] The terms "and combination thereof" and "and combination of these" may each be used herein after a list of items that are to be included singly or collectively. For example, a component, process, and / or other item selected from the group consisting of A, B, C, and combinations thereof, includes a set of one or more components that includes one, two, three, or more items A, one, two, three, or more items B, and / or one, two, three, or more items C.

[0072] In this specification, unless otherwise stated, "and" can mean "or" and "or" can mean "and." For example, if a feature is described as having A, B, or C, the feature can have A, B, and C, or any combination of A, B, and C. Similarly, if a feature is described as having A, B, and C, the feature can have only one or two of A, B, or C.

[0073] As used herein, when a quantifiable parameter is described as having a value "between" a first value X and a second value Y, it is intended to include parameters having values ​​at least X, less than or equal to Y, and / or at least X and less than or equal to Y. For example, a value between 1 and 10 is intended to include at least 1 (including values ​​greater than 10), less than 10 (including values ​​less than 1), and / or values ​​greater than 1 and less than 10.

[0074] As used in this disclosure, the phrase "configured (or set) to" may be used interchangeably with phrases such as "suitable for," "having the capacity to," "designed to," "adapted to," "made to," and "capable of," depending on the context. The phrase "configured (or set) to" does not only mean "specifically designed to" in hardware. Alternatively, depending on the context, the phrase "a device configured to" may mean that the device "can" operate with another device or component.

[0075] As used herein, the term "threshold" refers to a maximum level, a minimum level, and / or a range of values ​​that correlates with a desired or undesirable state. In some embodiments, a system parameter is maintained above a minimum threshold, below a maximum threshold, within a threshold range of values, and / or outside a threshold range of values ​​to produce a desired effect (e.g., effective treatment) and / or prevent or otherwise reduce (hereinafter "prevent") an undesirable event (e.g., adverse device and / or clinical event). In some embodiments, a system parameter is maintained above a first threshold (e.g., above a first temperature threshold to produce a desired therapeutic effect on tissue) and below a second threshold (e.g., below a second temperature threshold to prevent undesirable tissue damage). In some embodiments, the thresholds are determined to include a safety margin, e.g., to account for patient variability, system variability, tolerances, etc. As used herein, "exceeding a threshold" refers to a parameter being above a maximum threshold, below a minimum threshold, within a threshold range, and / or outside a threshold range.

[0076] As used herein, "room pressure" shall mean the pressure of the environment surrounding the systems and devices of the present inventive concept. Positive pressure includes pressure greater than room pressure or simply pressure greater than another pressure, e.g., a positive pressure differential across a fluid path component such as a valve. Negative pressure includes pressure less than room pressure or pressure less than another pressure, e.g., a negative pressure differential across a fluid component path such as a valve. Negative pressure can include a vacuum, but does not mean a pressure less than a vacuum. As used herein, the term "vacuum" may be used to refer to a full vacuum or a partial vacuum, or any negative pressure as described above.

[0077] The term "diameter" as used herein to describe non-circular shapes should be considered the diameter of an imaginary circle that approximates the shape being described. For example, when describing a cross-section, such as a cross-section of a component, the term "diameter" shall be interpreted as representing the diameter of an imaginary circle having the same cross-sectional area as the cross-section of the component being described.

[0078] As used herein, the terms "major axis" and "minor axis" of a component are the length and diameter, respectively, of an imaginary cylinder of smallest volume that can completely enclose the component.

[0079] As used herein, the term "functional element" should be interpreted to include one or more elements configured and arranged to perform a function. A functional element may include a sensor and / or a transducer. In some embodiments, a functional element is configured to deliver energy and / or otherwise treat tissue (e.g., a functional element configured as a therapeutic element). Alternatively or additionally, a functional element (e.g., a functional element including a sensor) may be configured to record one or more parameters, such as patient physiological parameters, patient anatomical parameters (e.g., tissue topography parameters), patient environmental parameters, and / or system parameters. In some embodiments, a sensor or another functional element is configured to perform a diagnostic function (e.g., to collect data used to perform a diagnosis). In some embodiments, a functional element is configured to perform a therapeutic function (e.g., to deliver therapeutic energy and / or a therapeutic agent). In some embodiments, a functional element includes one or more elements configured and arranged to perform a function, the function being selected from the group consisting of: Functional elements may perform functions such as delivering energy, extracting energy (e.g., to cool a component), delivering drugs or other agents, manipulating a system component or patient tissue, recording or otherwise sensing a parameter, such as a patient physiological parameter or a system parameter, and one or more combinations thereof. Functional elements may include fluids and / or fluid delivery systems. Functional elements may include reservoirs, such as expandable balloons or other fluid-holding reservoirs. A "functional assembly" may include an assembly constructed and arranged to perform a function, such as a diagnostic and / or therapeutic function. A functional assembly may include an expandable assembly. A functional assembly may include one or more functional elements.

[0080] The term "transducer," as used herein, should be interpreted to include any component or combination of components that receives energy or any input and generates an output. For example, a transducer may include an electrode, which receives electrical energy and distributes the electrical energy to tissue (e.g., based on the size of the electrode). In some configurations, a transducer converts an electrical signal into any output. These outputs may be, for example, light (e.g., a transducer including a light-emitting diode or a light bulb), sound (e.g., a transducer including a piezoelectric crystal configured to deliver ultrasound energy), pressure (e.g., applied pressure or force), thermal energy, cryogenic energy, chemical energy, mechanical energy (e.g., a transducer including a motor or solenoid), magnetic energy, and / or a different electrical signal (e.g., different from the input signal to the transducer). Alternatively or additionally, a transducer may convert a physical quantity (e.g., a variation in a physical quantity) into an electrical signal. A transducer can include any component that delivers energy and / or an agent to tissue, for example, a transducer configured to deliver one or more of the following: That is, electrical energy to tissue (e.g., a transducer including one or more electrodes), optical energy to tissue (e.g., a transducer including a laser, a light emitting diode, and / or an optical component such as a lens or prism), mechanical energy to tissue (e.g., a transducer including a tissue manipulation element), acoustic energy to tissue (e.g., a transducer including a piezoelectric crystal), chemical energy, electromagnetic energy, magnetic energy, and combinations of one or more of these.

[0081] As used herein, the term "fluid" may refer to a liquid, gas, gel, or any flowable material, for example, a material that can be propelled through a lumen and / or opening.

[0082] As used herein, the term "material" may refer to a single material or a combination of two, three, four, or more materials.

[0083] It will be understood that any features of the invention that are, for clarity, described in the context of separate embodiments, may also be provided in combination in a single embodiment. Conversely, various features of the invention that are, for brevity, described in the context of a single embodiment, may also be provided separately or in any suitable subcombination. For example, it will be understood that all features (whether independent or dependent) recited in any claim may be combined in any given manner.

[0084] It will be understood that at least some of the drawings and descriptions of the present invention have been simplified to focus on elements relevant to a clear understanding of the inventive concepts, but that other elements, i.e., elements that one skilled in the art would understand may also comprise part of the inventive concepts, have been excluded for clarity. However, because such elements are known in the art and they do not necessarily facilitate a better understanding of the inventive concepts, descriptions of such elements are not provided herein.

[0085] The terms defined in this disclosure are used only to describe specific embodiments of the present disclosure and are not intended to limit the scope of the present disclosure. Terms provided in the singular are intended to include the plural unless the context clearly indicates otherwise. All terms used herein, including technical or scientific terms, have the same meaning as commonly understood by those skilled in the relevant art, unless otherwise defined herein. Terms defined in commonly used dictionaries should be interpreted as having the same or similar meaning as the contextual meaning of the relevant art, and should not be interpreted as having an ideal or exaggerated meaning unless clearly defined herein. In some cases, terms defined in this disclosure should not be interpreted to exclude embodiments of the present disclosure.

[0086] Provided herein are systems, devices, and methods for treating tissue in a patient. An energy delivery console can be configured to deliver various "doses" of energy to be delivered by one or more energy delivery devices, e.g., catheters or surgical tools including electrodes or other energy delivery elements. In some embodiments, multiple interdependent energy doses are delivered to a common tissue location, e.g., to provide an improved therapeutic benefit to the patient. An initial dose can be configured to heat the tissue, such as by delivering radiofrequency (RF), heat, and / or other energy. Subsequent doses can include doses of energy configured to irreversibly electroporate previously heated tissue, e.g., while the tissue is in a hyperthermic state (e.g., above body temperature).

[0087] Referring now to FIG. 1 , there is shown a schematic diagram of a system for performing a medical procedure on a patient (e.g., a human or other living mammal) consistent with the concepts of the present invention. The medical procedure may include a diagnostic procedure, a therapeutic procedure, or a combined diagnostic and therapeutic procedure. The system 10 may include one or more ablation catheters and / or other energy delivery devices, EDD 100, one or more mapping devices, mapping catheters 200, one or more sheaths, sheath 12, one or more patient patches, patches 60, and / or an energy delivery console, EDC 300. The EDC 300 is operably attached (e.g., electrically, mechanically, fluidically, acoustically, and / or optically attached) to one or more devices 100, 200 (e.g., two, three, or more devices 100, 200) and / or one or more patient patches 60.

[0088] The EDC 300 may include a console or other device configured to deliver one or more forms of energy (e.g., to tissue via a catheter or other energy delivery device of the system 10). As used herein, delivery of energy to tissue includes not only the transfer of energy to tissue (e.g., to heat, ablate, and / or otherwise affect tissue), but also the extraction of energy from tissue (e.g., to cool, freeze, and / or cryogenically ablate tissue). The EDC 300 may be configured to deliver energy to tissue (e.g., via the EDD 100) to form lesions within the tissue, such as to form one or more therapeutic lesions in cardiac tissue to treat atrial fibrillation (AF) and / or other arrhythmias in a patient.

[0089] The EDC 300 can deliver one or more forms of energy to one or more electrodes and / or other energy delivery elements 130 (also referred to herein as electrodes 130) of the EDD 100. In FIG. 1, the EDD 100 includes four energy delivery elements 130, an element at the distal end of the EDD 100 (e.g., the "tip electrode"), and three more proximally attached elements 130, elements 130b-130d (e.g., the "ring electrodes"). In some embodiments, the EDD 100 includes between 1 and 64 energy delivery elements 130, e.g., between 1 and 12 elements 130 arranged in a linear or curved configuration.

[0090] In some embodiments, the EDC 300 can be configured to deliver a first dose of energy, Dose DOE1, and a second dose of energy, Dose DOE2, where Dose DOE2 is different from Dose DOE1 (e.g., Dose DOE1 and DOE2 include different types of energy, levels of energy, waveforms of energy delivery, duration of energy delivery, and / or other different energy parameters). In some embodiments, Dose DOE1 and DOE2 have differences in energy delivery parameters. In some embodiments, Dose DOE1 is delivered to a first portion of tissue and Dose DOE2 is delivered to a second portion of tissue. The first portion of tissue and the second portion of tissue may be the same portion of tissue. At least a portion of the first portion of tissue may be included in the second portion of tissue.

[0091] Dose DOE1 can include delivery of energy that reversibly changes the target tissue (e.g., the volume of tissue intended to be reversibly changed by Dose DOE1), while Dose DOE2 can include delivery of energy that irreversibly changes the target tissue (e.g., the volume of tissue intended to be irreversibly changed by Dose DOE2). Changes, or lack of changes, to tissue (e.g., target tissue) will be described herein in terms of the effect that most, if not all, of the target tissue will experience. For example, as used herein, "reversibly altering tissue" and the like can refer to the reversible alteration of all of the tissue, or simply a majority of the tissue (e.g., a majority of the target tissue); in other words, a small portion (e.g., less than 30%, 20%, or 10%) of the target tissue (e.g., the tissue intended to be reversibly altered by Dose DOE1) may be irreversibly altered or not altered at all by the delivery of energy, while a majority of the target tissue (e.g., at least 70%, 80%, or 90%, respectively) may be reversibly altered. Similarly, as used herein, "irreversibly altering tissue" and the like can refer to the irreversible alteration of all of the target tissue, or simply a majority (e.g., a majority of the tissue intended to be altered by Dose DOE2). In other words, a small portion (e.g., less than 30%, 20%, or 10%) of the target tissue may be reversibly altered or not altered at all by the delivery of energy, while a large portion (e.g., at least 70%, 80%, or 90%, respectively) of the target tissue may be irreversibly altered.

[0092] Dose DOE1 may be configured to enhance the effect (e.g., tissue effect) caused by Dose DOE2, as described herein (e.g., when at least a portion of Dose DOE2 is delivered after completion of delivery of Dose DOE1).

[0093] Dose DOE1 can include delivery of energy below a threshold, such as a threshold delivered energy, that causes the target tissue (e.g., the tissue receiving the energy and potentially some adjacent tissue) to change from an initial state (e.g., initial temperature, pressure, level of cell membrane permeability, viability level, health state, and / or other tissue state) and then return to that initial state over time (e.g., within 10 minutes, within 1 hour, or within 1 day). For example, Dose DOE1 can include energy delivery that simply cools or warms the target tissue from body temperature, where the target tissue returns to body temperature within a relatively short time after energy delivery has ceased. This may be the case, for example, when Dose DOE1 includes energy delivery that is insufficient to ablate, necrotize, and / or otherwise permanently alter the target tissue (e.g., RF energy delivery having an amplitude, frequency, duration, and / or other parameters that are insufficient to ablate, necrotize, and / or otherwise permanently alter the target tissue). Dose DOE1 may include delivery of RF energy delivered in a monopolar mode (e.g., between the energy delivery element 130a and / or another energy delivery element 130 and the return electrode 130′ of the EDD 100) and / or RF energy delivered in a bipolar mode (e.g., between two delivery elements 130 of the EDD 100). Dose DOE1 may include delivery of non-electrical energy (e.g., optical energy, ultrasound energy, and / or thermal energy) that causes an increase in temperature in the tissue receiving Dose DOE1 (e.g., the same tissue as the tissue receiving Dose DOE2).

[0094] Dose DOE2 can include delivery of energy above a threshold, such as a threshold delivered energy, that alters the target tissue (e.g., the tissue receiving the energy and potentially some adjacent tissue) from an initial state (e.g., initial pressure, cell membrane permeability level, viability level, health state, and / or other tissue state) such that the target tissue does not revert to its initial state over time (e.g., not within 4 hours, 1 week, 1 month, 3 months, 6 months, 1 year, or 2 years). For example, Dose DOE2 can include delivery of energy that produces irreversible changes and / or other desirable long-term effects in the target tissue. These are, for example, cases where dose DOE2 includes an energy level sufficient to ablate, necrose, and / or otherwise permanently alter the target tissue (e.g., energy delivered in the form of an IEP dose, as described below, having amplitude, frequency, duration, and / or other parameters sufficient to create a desired lesion in the tissue, e.g., to treat AF or other arrhythmia in a patient).

[0095] Doses DOE1 and DOE2 may be delivered sequentially, such as when dose DOE2 is delivered immediately or at least immediately after completion of delivery of dose DOE1. In some embodiments, at least a portion of the delivery of dose DOE2 (e.g., an initial portion of dose DOE2) is delivered during at least a portion of the delivery of dose DOE1 (e.g., a final portion of dose DOE1), e.g., in an overlapping and / or alternating configuration.

[0096] In some embodiments, Dose DOE2 includes the delivery of energy that causes irreversible electroporation of the target tissue. For example, Dose DOE2 can include the delivery of an "IEP" dose. As used herein, an IEP dose can include one or more electrical pulses delivered between two or more electrodes, where the pulses are configured to generate an electric field in tissue adjacent to the two electrodes. Parameters of the electrical pulses can be selected such that the resulting electric field causes irreversible electroporation of the tissue, for example, while avoiding significant thermal damage to the tissue (e.g., avoiding excessive heat delivery to the tissue). For example, the IEP dose can be configured to prevent the tissue receiving the dose from exceeding a temperature of 50°C. In some embodiments, the IEP dose is configured to limit the temperature rise occurring in the tissue (e.g., tissue receiving the IEP dose) to no more than 13°C, 11°C, 9°C, or 7°C.

[0097] In some embodiments, the IEP dose is delivered by an EDD 100 having an electrode-based energy delivery element 130, the delivery element 130 being at least 1.46 mm long and / or no more than 8 mm long. In some embodiments, the IEP dose is delivered by an EDD 100 having two electrode-based energy delivery elements 130, the delivery elements 130 being spaced apart by at least 1 mm and / or no more than 11 mm. In some embodiments, the IEP dose is delivered based on an applied voltage (e.g., provided by an EDC 300) of at least 500 V and / or no more than 5000 V. In some embodiments, the IEP dose comprises a field strength of at least 200 V / cm and / or no more than 1000 V / cm. In some embodiments, the IEP dose comprises a pulse width of at least 0.1 μsec and / or no more than 200 μsec. In some embodiments, the IEP dose comprises a series of pulses with a pulse repetition interval of at least 1 μsec.

[0098] In some embodiments, an IEP dose of the present inventive concept comprises an energy delivery parameter level selected from the group consisting of: a voltage gradient of at least 50 V / cm, at least 100 V / cm, at least 300 V / cm, or at least 400 V / cm; a voltage gradient of 8000 V / cm or less, or 800 V / cm or less; an amplitude of 5000 V or less, an amplitude of 2000 V or less, an amplitude of 1000 V or less; at least two sets of pulses; a set of 15 pulses or less, each set of pulses of at least 1 microsecond duration; an IEP duration of at least 5 microseconds, an IEP duration of 30 seconds or less, and combinations thereof. In some embodiments, dose DOE2 comprises an IEP dose delivered between two electrode-based energy delivery elements 130 spaced at least 2 mm, 5 mm, 7 mm, or 10 mm apart. In some embodiments, one of the delivery elements 130 that receives and / or delivers the IEP dose is located at the distal end (tip) of the EDD 100 (e.g., element 130a is shown). In some embodiments, one or both of the delivery elements 130 that receive and / or deliver the IEP dose include a circular electrode (e.g., a ring electrode).

[0099] In some embodiments, Dose DOE2 includes an IEP dose, and Dose DOE1 includes delivery of energy (e.g., RF energy) that warms the target tissue (e.g., tissue warming that occurs prior to delivery of Dose DOE2). The increased heating caused by Dose DOE1 can provide one or more benefits, such as reducing the required amplitude of the IEP dose of Dose DOE2 for successful energy delivery (successful lesion formation), reducing the duration of the IEP dose, modifying the frequency of the IEP dose, modifying the waveform shape of the IEP dose, and / or improving the efficacy (ablation effect) of the IEP dose. In some embodiments, Dose DOE1 is configured to raise the temperature of the tissue receiving the dose by at least 2°C, e.g., at least 3°C, or at least 4°C.

[0100] In some embodiments, dose DOE2 includes an IEP dose delivered by one or more pairs of electrode-based energy delivery elements 130, e.g., where one element 130 of each pair is configured as a cathode and the other as an anode. System 10 (e.g., EDC 300) can be configured (e.g., via algorithm 335 described herein) to select which element 130 should deliver the IEP dose (e.g., which pair of three or more sets of elements 130) and which element 130 should be the cathode and which should be the anode. In some embodiments, a distally disposed element 130 (e.g., element 130a of FIG. 1 disposed at the distal end of shaft 110) is configured as the cathode, and a more proximal element 130 (e.g., a ring electrode, e.g., one or more of elements 130b-130d of FIG. 1) is configured as the anode. In some embodiments, Dose DOE1 and / or DOE2 includes delivering electrical energy between a pair of electrodes including one or more elements 130 configured as an anode and one or more elements 130 configured as a cathode. For example, system 10 (e.g., one or more EDDs 100) may include multiple energy delivery elements 130 configured to function as anodes, cathodes, or both.

[0101] Dose DOE2 may include an IEP dose delivered while the impedance of the tissue receiving the dose is monitored by system 10. This may be the case, for example, when system 10 delivers the IEP dose in a closed-loop manner and / or when successful irreversible electroporation of the tissue is confirmed via impedance measurement (e.g., when system 10 automatically stops the IEP dose).

[0102] Doses DOE1 and / or DOE2 can be delivered by one or more energy delivery elements 130 to one or more types of target tissue. These target tissues can be, for example, cardiac tissue, neural tissue, blood vessel wall tissue, and / or organ tissue. In some embodiments, doses DOE1 and / or DOE2 can be configured to be delivered to tissue selected from the group consisting of cardiac tissue, neural tissue, blood vessel wall tissue, organ tissue, brain tissue, lung tissue, kidney tissue, liver tissue, stomach tissue, muscle tissue, and combinations of these tissues. Doses DOE1 and / or DOE2 can be delivered to a surface of an organ (e.g., the endocardial and / or epicardial surface of the heart) and / or within tissue of an organ (e.g., within cardiac wall tissue and / or within another type of organ tissue).

[0103] The EDC 300 can include an energy delivery module, shown in the drawings as energy delivery module 360. The energy delivery module 360 ​​is configured to provide ablation energy to the EDD 100 (e.g., provide energy for doses DOE1 and DOE2 and / or other energy to one or more energy delivery elements 130, including one or more electrodes and / or other energy delivery elements). The energy delivery module 360 ​​can provide energy to the EDD 100 via a patient interface unit, a PIU 310 (as shown and described herein), or in other ways. As described herein, the energy provided by module 360 ​​can include energy selected from the group consisting of thermal energy, such as heat energy or cryogenic energy, electromagnetic energy, such as radio frequency (RF) energy and / or microwave energy, light energy, such as light energy provided by a laser, sonic energy, such as subsonic energy or ultrasonic energy, chemical energy (e.g., as delivered by a pharmaceutical agent or other agent), and combinations of these energies. The energy delivery module 360 ​​may include an energy delivery module selected from the group consisting of an RF generator, an optical energy delivery unit, a cryogenic energy delivery unit, an ultrasonic energy delivery unit, a microwave energy delivery unit, an electroporation energy delivery unit, and combinations of these units. In some embodiments, the energy delivery module 360 ​​includes an RF generator configured to provide RF ablation energy to one or more energy delivery elements 130 (i.e., where each energy delivery element 130 includes an electrode). Doses DOE1 and DOE2 may include similar or dissimilar forms of energy (e.g., RF energy and another form of energy).

[0104] In some embodiments, EDC 300 includes one or more functional elements, such as functional element 309 shown and described herein.

[0105] The EDD 100 can include one or more devices configured to deliver energy, such as energy delivery devices including, for example, catheters, surgical tools, laparoscopic tools, and / or endoscopic tools. The EDD 100 can include a shaft 110, which is generally a flexible shaft, including a proximal end 111. The EDD 100 includes a distal portion 102, as shown. A handle 120, which is an operator-graspable portion, can be disposed on the proximal end 111 of the shaft 110. The handle 120 can include one or more controls (e.g., one or more buttons, switches, levers, etc.), such as the control 121 shown in the figure. In some embodiments, the distal portion 102 of the EDD 100 is configured and arranged similarly to the EDD 100 of FIG. 8 described herein.

[0106] The EDD 100 includes one or more elements configured to deliver energy to tissue, such as shown in FIG. 1 as energy delivery elements 130a-130d. In some embodiments, one or more energy delivery elements 130 are configured to deliver a first dose of energy, Dose DOE1 (e.g., RF energy delivered in a monopolar or bipolar configuration, as provided by the EDC 300 and described herein), and a pair of energy delivery elements 130 are configured to deliver a second dose of energy, Dose DOE2 (e.g., also as provided by the EDC 300 and described herein). In some embodiments, Dose DOE1 and Dose DOE2 are delivered by the same set of components (e.g., the same pair of elements 130). Alternatively, the energy delivery element 130 used to deliver Dose DOE1 may not be included in the set of elements 130 used to deliver Dose DOE2, or vice versa. In some embodiments, dose DOE1 is delivered by one or more energy delivery elements 130 (e.g., at least element 130a), and dose DOE2 is delivered by at least two energy delivery elements 130 (e.g., at least element 130a and one or more of elements 130b-130d).

[0107] Each energy delivery element 130 may include one or more elements configured to deliver one, two, or more forms of energy selected from the group consisting of: thermal energy, such as heat energy or cryogenic energy; electromagnetic energy, such as radio frequency (RF) energy and / or microwave energy; light energy, such as light energy provided by a laser; sonic energy, such as subsonic energy or ultrasonic energy; chemical energy; and combinations thereof. In some embodiments, the energy delivery element 130 delivers at least two forms of energy, selected from the group consisting of: thermal energy, such as heat energy or cryogenic energy; electromagnetic energy, such as radio frequency (RF) energy and / or microwave energy; light energy, such as light energy provided by a laser; sonic energy, such as subsonic energy or ultrasonic energy; chemical energy; and combinations thereof. The energy delivery element 130 may include one or more energy delivery elements disposed on a distal portion of the EDD 100, such as the illustrated device distal portion 102. The energy delivery element 130 can include at least one energy delivery element (e.g., at least one electrode, at least one optical element configured to deliver light energy, and / or at least one cryogenic fluid delivery element) arranged in a “tip electrode” configuration on the distal end of the EDD 100. In some embodiments, the EDD 100 can include two, three, or more energy delivery elements 130, e.g., multiple electrodes configured to deliver monopolar and / or bipolar electromagnetic (e.g., RF) energy to heat, ablate, and / or otherwise affect tissue (e.g., to form a desired lesion in tissue). One or more energy delivery elements 130 can each include an electrode, e.g., an electrode configured to deliver radio frequency (RF) and / or other electromagnetic energy. Two or more energy delivery elements 130 can be configured as a pair of electrodes that deliver a pulse of irreversible electroporation energy (e.g., as provided by the EDD 300 as dose DOE2).The energy delivery element 130 may include one or more electrodes (e.g., element 130a shown in FIG. 1) disposed on the end of the EDD 100. The energy delivery element 130 may include an array of energy delivery elements (e.g., an array of electrodes) as shown in FIGS. 1 and 8. In some embodiments, the energy delivery element 130 includes an electrode 130' that is a return electrode pad shown in FIG. 1. The element 130' may include an electrode configured as a return electrode for energy delivery between one or more elements 130 of the EDD 100 (e.g., for delivery of monopolar RF energy by the EDD 100).

[0108] In some embodiments, the EDD 100 includes two or more devices for delivering energy to tissue, such as a first EDD 100′ including one or more energy delivery elements 130 and a second EDD 100″ including one or more energy delivery elements 130 (the EDD 100′ and EDD 100″ are not shown, but may be similar or dissimilar energy delivery devices, each including one or more delivery elements 130). In these embodiments, dose DOE1 and / or dose DOE2 may include doses delivered between elements 130 of the EDD 100′ and elements 130 of the EDD 100″. For example, an RF energy dose and / or an IEP dose may be delivered between elements 130 of the EDD 100′ positioned at a site on the endocardial surface of the heart and elements 130 of the EDD 100″ positioned at a site on the epicardial surface of the heart (e.g., an epicardial surface site relatively close to the endocardial surface location of the elements 130 of the EDD 100′).

[0109] The EDD 100 can include an assembly configured to measure, monitor, respond to, and / or maintain a force (e.g., a force between tissue and one or more portions of the EDD 100), shown for example as force maintenance assembly 150. The force maintenance assembly 150 can be disposed within the handle 120, within a portion of the shaft 110 (e.g., within the distal portion 102 of the EDD 100), and / or on the distal end of the shaft 110 (e.g., within the distal portion 102 of the EDD 100 as shown). The force maintenance assembly 150 can include one or more elements configured to provide or maintain a force, i.e., force maintenance elements 160 as shown and described herein. By way of example, such force maintenance elements 160 can be or include one or more of a hydraulic element, a spring, a magnet, a compressible fluid, a memory material, or the like. The force maintenance element 160 can be disposed at the distal end, the proximal end, or an intermediate portion of the EDD 100, or a combination of two or more thereof. Force maintenance assembly 150 can also include one or more sensing elements, such as the illustrated sensing element 158, which can take the form of and / or include one or more sensors. In some embodiments, force maintenance assembly 150 can include similar structures and arrangements, and similar components, to those described in applicant's co-pending U.S. patent application Ser. No. 16 / 335,893, entitled "Ablation System with Force Control," filed Mar. 22, 2019.

[0110] Force maintenance assembly 150 can be axially aligned with shaft 110, such as when assembly 150 is aligned with distal portion 102 (e.g., a major axis of force maintenance assembly 150 is aligned with a central axis of distal portion 102). Force maintenance assembly 150 can be configured to absorb mechanical shock and / or to dynamically (e.g., dynamically and automatically) respond to movement of the heart wall or other cardiac tissue (e.g., avoiding reliance on a clinician manually responding to endocardial surface movement in a cardiac ablation procedure). Force maintenance assembly 150 can tolerate and / or compensate for high-frequency and / or low-frequency movement, various ranges of movement, etc. Force maintenance assembly 150 can be configured to compress over a “travel distance” (also referred to as a “compression distance,” which is equal to the distance force maintenance assembly 150 compresses when a force is applied), up to a predetermined maximum distance (“maximum compression distance” or “maximum travel distance”). A "maximum compression distance" may be, for example, a maximum distance between 0.1 mm and 10 mm inclusive, a maximum distance between 0.1 mm and 5 mm inclusive, and / or any other predetermined distance range and / or limit.

[0111] Force maintenance assembly 150 can be configured to provide a predetermined range of force over all or a portion of the travel distance. This force range can be, for example, a predetermined constant and / or variable force (e.g., a force between 0.1 gmf and 100 gmf, between 5 gmf and 30 gmf, and / or between 10 gm and 30 gmf). In some embodiments, force maintenance assembly 150 can be configured to provide a relatively constant force over all or a portion of the travel distance. This force can be, for example, a predetermined constant force between 0.1 gmf and 100 gmf, for example, between 5 gmf and 30 gmf, or between 10 gm and 30 gmf. Additionally or alternatively, in some embodiments, force maintenance assembly 150 can be configured to provide a variable force over all or a portion of the travel distance, for example, a variable force that varies within a predetermined range of forces (e.g., a range of forces proportional to the amount of compression). For example, the force maintenance assembly 150 can be configured to apply a force that varies between 5 gmf and 30 gmf, such as a force that varies between 10 gm and 30 gmf.

[0112] As described above, force maintenance assembly 150 may include one or more sensing elements or sensors, such as the illustrated sensing element 158, which may be configured to generate a signal correlating to the amount of compression of force maintenance assembly 150. Additionally or alternatively, sensing element 158 ​​may be configured to generate a signal correlating to the maximum compression of force maintenance assembly 150 (e.g., the maximum force achieved during compression).

[0113] The energy delivery element 130 may be disposed on the distal end of the shaft 110, such as when the force maintenance assembly 150 is disposed within the shaft 110. Alternatively, the energy delivery element 130 may be disposed on the distal end of the force maintenance assembly 150.

[0114] EDD 100 may be configured for ablation of an atrium of the heart (e.g., forming one or more lesions for the treatment of atrial fibrillation or right atrial flutter) and / or ablation of a ventricle of the heart (e.g., for the treatment of ventricular tachycardia). For atrial ablation, force maintenance assembly 150 may be configured to have a first maximum compression distance, e.g., a distance of 10 mm or less, 5 mm or less, or 3 mm or less. Alternatively, for ventricular ablation, force maintenance assembly 150 may be configured to have a second maximum compression distance. The second maximum compression distance may be, for example, a distance greater than the first maximum compression distance, e.g., at least 1 mm greater than the first maximum compression distance, e.g., the second (ventricular) maximum compression distance may be at least 3 mm or at least 6 mm. In some embodiments, the first (atrial) maximum compression distance may include a distance of approximately 2 mm to 3 mm. In some embodiments, the second (ventricular) maximum compression distance may include a distance of approximately 4 mm to 6 mm.

[0115] The system 10 can include at least a second energy delivery device, EDD 100′, e.g., a second EDD 100′ configured for use in the atria and / or ventricles of the heart (e.g., the EDD 100′ includes a catheter for insertion into the patient's vasculature and a ventricle of the patient's heart). In some embodiments, the first EDD 100 is configured for use in the atria (e.g., not the ventricles) and the second EDD 100′ is configured for use in the ventricles (e.g., not the atria). In these embodiments, the first EDD 100 can include a force maintenance assembly 150 that includes a shorter maximum compression distance compared to the maximum compression distance of the force maintenance assembly 150 disposed within the second EDD 100′. In some embodiments, the dose DOE2 includes an IEP pulse configured to create an effective lesion in a ventricle of the patient's heart, e.g., when the IEP dose is based on a voltage of 5 kV or less. In some embodiments, dose DOE2 includes an IEP pulse configured to create an effective lesion in the atrium of the patient's heart, for example, when the IEP dose is based on a voltage of 2 kV or less.

[0116] The EDD 100 can include one or more electrodes, shown as mapping electrodes 135, that can be configured to record biopotential information (e.g., cardiac electrical activity data, etc.) and / or positional information (e.g., data related to the location of the EDD 100 within the patient's anatomy). The mapping electrodes 135 can include one or more electrodes disposed on the distal portion 102 of the EDD 100, as shown. The mapping electrodes 135 can include ring electrodes. In some embodiments, the mapping electrodes 135 include at least one sensor or sensing element (herein "sensor"), such as an electrode-based sensor and / or a non-electrode-based sensor (e.g., an optical sensor, a temperature sensor, a pH sensor, a physiological sensor, e.g., a blood sensor, a blood gas sensor, etc.). In some embodiments, the one or more mapping electrodes 135 and the one or more energy delivery elements 130 include the same components.

[0117] The EDD 100 is configured to be operably attached to the EDC 300. The EDD 100 includes one or more wires, filaments, and / or other conduits, conduits 125, and one or more associated connectors, connectors 126. The connectors 126 are operably attached to a mating connector, connector 301b, of the EDC 300. The conduits 125 include one or more wires or conductive traces (herein "wires"), optical fibers, tubing (e.g., hydraulic, pneumatic, irrigation, or other fluid delivery tubing), waveguides, and / or mechanical links (e.g., translating filaments), each of which may be used to operably attach one or more components of the EDC 300 to one or more components of the EDD 100.

[0118] System 10 can include one or more functional elements, such as functional elements 119, 129, 219, 229, and / or 309 shown in FIG. 1 and described in detail herein. Functional elements 119, 129, 219, 229, and / or 309 can each include one or more sensors and / or one or more transducers, as described herein. In some embodiments, functional elements 119, 129, 219, 229, and / or 309 include a transducer selected from the group consisting of a heating element, a cooling element, a vibration transducer, an ultrasound transducer, an electrode, a light delivery element, a drug or other substance delivery element, and one or more combinations thereof. In some embodiments, functional elements 119, 129, 219, 229, and / or 309 include a sensor selected from the group consisting of a sensor, a transducer, a vibration transducer, an ultrasound transducer, an electrode, a light delivery element, a drug or other substance delivery element, and one or more combinations thereof. The functional elements 129 and / or 229 may include, for example, physiological sensors, blood pressure sensors, blood gas sensors, pressure sensors, strain gauges, force sensors, chemical sensors, impedance sensors, magnetic sensors, electrodes, displacement sensors (e.g., sensors configured to determine the distance that force maintenance assembly 150 is compressed), flow sensors, and combinations of one or more of these. In some embodiments, functional elements 129 and / or 229 include functional elements configured to provide feedback and / or otherwise alert a user to a condition of one or more components of system 10 (e.g., when an undesirable condition exists). Functional elements 129 and / or 229 may include an element selected from the group consisting of a tactile transducer, a light source such as an LED light source, an audio transducer such as a speaker, and combinations of one or more of these.

[0119] The mapping catheter 200 of the system 10 includes a shaft 210, typically a flexible shaft containing one or more lumens. A basket assembly 230 is disposed on the distal end 213, as shown, or on at least a distal portion of the shaft 210. A handle 220, which is the portion that can be held by an operator, is disposed on the proximal end 211 of the shaft 210. The handle 220 may include one or more controls, such as the control 221 shown.

[0120] The basket assembly 230 may include an expandable assembly configured to be resiliently biased, for example, to a radially expanded or compressed state, and correspondingly compressed or expanded. This compression or expansion is achieved by advancing it from the distal end of a sheath (radially expanded) and / or by retracting it into a sheath, such as the sheath 12 (radially compressed), via the control 221. The basket assembly 230 includes an array of filaments, splines 231, which may include metal (e.g., stainless steel and / or nickel-titanium alloy) and / or plastic filaments that are resiliently biased (e.g., biased to an expanded and / or compressed state). The basket assembly 230 may include a plurality of electrodes, electrodes 232, connected to the splines 231. Additionally or alternatively, the basket assembly 230 may include a plurality of ultrasound transducers, transducers 233, which may also be connected to the splines 231. In some embodiments, the basket assembly 230 and / or mapping catheter 200 have a structure and arrangement similar to that of similar components described in commonly-owned, co-pending U.S. patent application Ser. No. 16 / 389,006, filed April 19, 2019, entitled "Device and Method for the Geometric Determination of Electrical Dipole Densities on the Cardiac Wall," and / or commonly-owned, co-pending U.S. patent application Ser. No. 16 / 242,810, filed January 8, 2019, entitled "Expandable Catheter Assembly with Flexible Printed Circuit Board (PCB) Electrical Pathways." In some embodiments, one or more electrodes 232 and / or ultrasound transducer 233 additionally or alternatively include a sensor, such as a physiological sensor and / or another sensor as described herein.

[0121] The mapping catheter 200 of the system 10 can include one or more functional elements, such as the functional elements 219, 229 shown and described herein. In some embodiments, one or more of the functional elements 219 and / or 229 are disposed on the basket assembly 230 (e.g., on one or more splines 231).

[0122] Mapping catheter 200 may be configured to be operably attached to EDC 300. Mapping catheter 200 includes one or more wires, filaments, and / or other conduits, conduit 225, and one or more accessory connectors, connector 226, each as shown. Connector 226 is operably attached to a mating connector, connector 301 a, of EDC 300. Conduit 225 may include one or more wires, optical fibers, tubing (e.g., hydraulic, pneumatic, irrigation, or other fluid delivery tubing), waveguides, and / or mechanical links (e.g., translation filaments), each of which may be used to operably attach one or more components of EDC 300 to one or more components of mapping catheter 200.

[0123] System 10 may include one or more patch electrodes, shown as patch electrodes 60, which may include standard skin electrodes and / or other electrodes configured to adhere to a patient's skin and transmit and / or receive electrical signals through and / or from the patient. In some embodiments, patch electrodes 60 are configured to record the patient's electrocardiogram (ECG) and / or transmit and / or receive localized signals from system 10. Patch electrodes 60 may be configured to be operably attached (e.g., electrically attached) to EDC 300. Each patch electrode 60 may include one or more conduits, conduit 65 (e.g., one or more electrical wires), and one or more associated connectors, connector 66. Connector 66 is operably attached to a mating connector, connector 301c, of EDC 300.

[0124] The EDC 300 includes one or more internal components configured to control and / or otherwise interface with one or more energy delivery devices, EDDs 100, one or more mapping catheters 200, and / or one or more patient patches 60. The EDC 300 includes one or more wires, filaments, and / or other conduits 302, e.g., conduits 302a, 302b, and 302c, that operably connect to one or more EDDs 100, one or more mapping catheters 200, and / or one or more patient patches 60 via connectors 301a, 301b, and / or 301c, respectively. The conduits 302 may include one or more wires, optical fibers, tubing (e.g., hydraulic, pneumatic, irrigation, or other fluid supply tubing), waveguides, and / or mechanical links (e.g., translation filaments).

[0125] The EDC 300 may include a patient interface unit (PIU) 310. The PIU 310 may be connected (e.g., electrically connected) to one or more of units 320, 330, 340, 350, 360, and / or 370, each of which is described in detail herein, via a bus 305. The bus 305 may include one or more wires, optical fibers, and / or other conduits configured to provide power, transmit data, and / or receive data. In some embodiments, the bus 305 includes one or more fluid delivery tubes configured to provide hydraulic fluid, irrigation fluid, and / or other fluids, as described herein. The PIU 310 may be operably attached to units 340, 350, 360, 330, and / or 320 such that power, data, fluid, and / or mechanical connections may pass between the PIU 310 and one or more of the EDD 100, the mapping catheter 200, and / or the patch 60. In some embodiments, the PIU 310 can reduce undesired electrical interactions between two or more modules of the EDC 300. For example, the PIU 310 can include one or more filters (e.g., one, two, or more parallel LC notch filters and / or low-pass filters) configured to reduce electrical interference between the mapping module and the RF generator, such as interference from signals transmitted to and received from the patient. The PIU 310 can include one or more components selected from the group consisting of filters, transformers, buffers, amplifiers, pass-throughs (e.g., conduits, e.g., fluid conduits, that are not filtered or otherwise altered by the PIU 310), and one or more combinations thereof. In some embodiments, the PIU 310 includes electrical protection circuitry configured to protect the EDC 300 from damage from high-energy signals, such as defibrillation pulses and / or RF ablation energy, delivered to the patient.

[0126] EDC 300 can include a clinician or other user interface, shown as user interface unit 320, which includes one or more user input and / or user output components. In some embodiments, user interface unit 320 includes a joystick, keyboard, mouse, touch screen, and / or other human interface device, such as the shown HID 321. In some embodiments, user interface unit 320 includes a display, such as the also shown display 322.

[0127] The EDC 300 may include a signal processing assembly, processor 330. In some embodiments, processor 330 includes one or more algorithms, such as the illustrated algorithm 335. Processor 330 may receive signals, such as signals from one or more sensors (as described herein) of the EDD 100 and / or mapping catheter 200. Processor 330 may be configured to perform one or more mathematical operations on the received signals to derive a result that correlates to a quantitative or qualitative measure of the force applied by the EDD 100 to tissue, the amount of compression of the force maintenance assembly 150, the orientation of the EDD 100, the proximity of a portion of the EDD 100 to cardiac tissue, and / or the level or quality of contact between a portion of the EDD 100 and cardiac tissue. The one or more mathematical operations may include operation of a function selected from the group consisting of arithmetic operations, statistical operations, linear and / or nonlinear functions, operations as a function of time, operations as a function of space or distance, comparison to a threshold, comparison to a range, and one or more combinations thereof. In some embodiments, algorithm 335 includes a machine learning or other artificial intelligence (AI) algorithm. In some embodiments, algorithm 335 is configured to monitor, evaluate, and / or control (herein "control") force maintenance assembly 150 (e.g., adjust one or more parameters of the force maintenance assembly in a closed-loop or semi-closed-loop manner), e.g., based on sensor signals. In some embodiments, algorithm 335 is configured to determine and / or evaluate at least one of the contact, force, or pressure applied to tissue by EDD 100. In some embodiments, algorithm 335 processes one or more signals received from one or more sensors of system 10, e.g., signals correlated to: the temperature of the energy delivery element, the temperature of the tissue surrounding the energy delivery element, the duration of energy delivery to the tissue, the level of energy delivered to the tissue, the force and / or pressure applied to the tissue, and one or more combinations thereof.The algorithm 335 can be configured to modify the energy delivery based on these signals, for example, to stop the energy delivery when a sufficient combination of parameter levels is reached, for example, when sufficient energy delivery at sufficient pressure for a sufficient time is reached. In some embodiments, the system 10 is configured to deliver an increased energy level to decrease the duration of energy delivery to the tissue. Alternatively, or additionally, the system 10 can be configured to increase the duration of energy delivery to the tissue to decrease the energy level. In some embodiments, the system 10 controls the force between one or more energy delivery elements 130 and the tissue to adjust one or more of the duration of energy delivery and / or the level of energy delivery (e.g., voltage level, current level, and / or power level). In some embodiments, the system 10 adjusts the duration of energy delivery and / or the level of energy delivery based on the measured and / or controlled level of force between the one or more energy delivery elements 130 and the tissue.

[0128] In some embodiments, algorithm 335 (e.g., an AI algorithm) is configured to define, adjust, and / or otherwise control the delivery of energy by EDC 300 to EDD 100 to control doses DOE1 and / or DOE2. In some embodiments, algorithm 335 is configured to modify (e.g., in a closed-loop configuration) the delivery of doses DOE1 and / or DOE2, for example, based on tissue impedance and / or other physiological parameters of the patient. In some embodiments, algorithm 335 is configured to modify dose DOE2 based on parameters (e.g., measured parameters) related to the previously delivered dose DOE1.

[0129] Algorithm 335, as described herein with reference to Figures 10-11, can be used to determine the orientation angle of EDD 100, which determination is based, for example, on data provided by a sensor and / or another imaging device in system 10.

[0130] Algorithm 335 can be used to measure electric field strength, for example, the electric field strength used to perform pulsed electric field ablation as described herein with reference to FIGS.

[0131] Algorithm 335 may be used to provide lesion information, such as the predicted size (e.g., length, width, depth, and / or volume) of the lesion to be created, as described herein with reference to Figures 10-13.

[0132] The EDC 300 can include a fluid delivery module, shown as module 370, which can be configured to deliver fluid (e.g., hydraulic fluid and / or irrigation fluid as described herein) to the EDD 100 and / or mapping catheter 200, for example, via the PIU 310, as shown. In an alternative embodiment, the fluid delivery module 370 is connected to the EDD 100 and / or mapping catheter 200 without the PIU 310. The fluid delivery module 370 can include one or more fluid delivery devices (e.g., peristaltic pumps, syringe pumps, gravity-fed flow controllers, and / or other fluid delivery devices), which can be attached to one or more sources of fluid 70, shown as saline and / or other fluids.

[0133] Fluid 70 may include fluids of known conductivity (e.g., relatively low conductivity and / or at least lower than the conductivity of blood), such as fluids delivered for manipulation of electrical currents and / or electromagnetic fields (e.g., to surround one or more electrodes, such as during delivery of energy to produce pulsed electric field ablation of target tissue).

[0134] EDC 300 may include a force maintenance module, shown as module 340. Force maintenance module 340 may be configured to provide control signals, for example, to force maintenance assembly 150, to provide signals that enable system 10 to adjust the force applied to tissue by EDD 100. In some embodiments, force maintenance module 340 is configured to deliver and / or at least control (e.g., control the pressure of) a supply of hydraulic fluid to EDD 100 (e.g., via fluid delivery module 370).

[0135] In some embodiments, the force maintenance module 340 is configured to automatically adjust the force between the electrode 130 and the tissue to create a desired electric field during pulsed electric field ablation of the target tissue.

[0136] The EDC 300 may include a mapping module, shown as module 350. In some embodiments, the mapping module 350 includes a module configured to record and / or process ultrasound information, such as the illustrated ultrasound module 351. In some embodiments, the mapping module 350 includes a module configured to record and process biopotential information, such as the illustrated biopotential module 352. The mapping module 350 can transmit energy and / or signals to the EDD 100, the mapping catheter 200, and / or the patches 60 via the PIU 310 (as shown) or otherwise. The mapping module 350 can be configured to transmit one or more signals into the patient (e.g., via one or more patches 60) to form a localized field within the patient. Additionally, the mapping module 350 can receive signals from one or more electrodes (or other sensors) of the EDD 100 and / or the mapping catheter 200. These signals may be, for example, signals correlated to the localization signal, for example, to determine the localization of one or more electrodes within the localization field (e.g., to determine the position and / or orientation of the associated catheter(s) within the patient). In some embodiments, two or more localization fields may be used simultaneously. Components used to generate and / or sense the localization field (e.g., patch 60 and / or one or more electrodes of EDD 100 or mapping catheter 200) may be configured to transmit (herein referred to as a "source") a localization signal, receive (herein referred to as a "sink") a localization signal, and / or interchangeably transmit and receive localization signals. For example, components may be multiplexed to source and sink localization signals between each other in a pattern configured to enhance the localization information received by mapping module 350. Localization information may be, for example, information regarding the relative position between a component of system 10 and cardiac tissue or other structures within a chamber and / or another component of system 10.

[0137] For example, the direction of current flow between two or more components used to perform localized measurements can be reversed. For example, in an impedance-based system, multiple frequency ranges can be used to simultaneously generate multiple (e.g., three or four) localized fields. All electrodes and / or sensors within the field can be used to sense the localized field. The components used to source (e.g., transmit the localized signal) and sink (e.g., sense the localized signal) the localized field can be fixed and static, such as a patch 60 placed on the body surface used to source the localized field, and electrodes placed on one or more components of system 10 and within the patient used to sink the localized signal. Alternatively, the components can be time-multiplexed and / or frequency-multiplexed, for example, by sourcing and sinking current from different sets of components at different frequencies and / or at different times. As an example of a time-multiplexed localization method, a system can include three source / sink components A-C. In a first configuration, component A is used as a source and component B is used as a sink. In a second configuration, B can be used as the source and A as the sink. In a third configuration, C can be used as the source and B as the sink. Multiplexing these three configurations can provide an enhanced localization method. Using all possible permutations could provide the full complement of information available through source-sink configurations. A subset of these configurations can be selected to reduce electronic and algorithmic complexity while still providing sufficient information to determine the number of conditions and / or states required. In some embodiments, the electronics are configured to minimize current leakage (e.g., paths to ground) within a frequency range (e.g., 10 kHz to 100 kHz) via sensors and / or electrodes present within and / or used to measure the localized field. For example, current leakage can be minimized by designing a sufficiently high input impedance in the localized frequency range of interest.

[0138] In some embodiments, the ultrasound module 351 of the mapping module 350 is configured to transmit and receive ultrasound signals via one or more ultrasound transducers 233 of the mapping catheter 200 to determine distances between the ultrasound transducers 233 and cardiac tissue, e.g., in conjunction with the localization data, to generate an anatomical model of the cardiac tissue. The biopotential module 352 of the mapping module 350 may be configured to record one or more biopotential signals, e.g., via the electrodes 232 of the mapping catheter 200, to thereby generate a map of electrical activity of the cardiac chambers. In some embodiments, the mapping module 350, including the ultrasound module 351 and the biopotential module 352, is configured and arranged similarly to similar components described in the applicant's co-pending U.S. patent application Ser. No. 15 / 569,185, filed Oct. 25, 2017, entitled "Ultrasound Sequencing System and Method," and / or the applicant's co-pending U.S. patent application Ser. No. 16 / 849,045, filed Apr. 15, 2020, entitled "Localization System and Method Useful in the Acquisition and Analysis of Cardiac Information."

[0139] One or more sensors of the EDD 100 (e.g., one or more of the functional elements 119 or 129 configured as one or more sensors and / or other sensors described herein) can be configured to generate a signal related to the level of contact between one or more energy delivery elements 130 and tissue (e.g., cardiac tissue). The signal provided can easily distinguish between a minimal (sufficient) level of contact versus an insufficient level of contact (e.g., absence of contact) and / or can provide data distinguishing between various levels of contact (e.g., a quantitative assessment of the force between one or more energy delivery elements 130 and tissue). The EDD 300 can provide qualitative and / or quantitative contact information to a user (e.g., a clinician), for example, via the display 322, indicating the level of contact between the one or more energy delivery elements 130 and tissue (e.g., ventricular wall and / or other cardiac tissue). In some embodiments, the system 10 is configured to provide information (through the display 322) including: This information may include sufficient contact achieved (e.g., sufficient contact to effect effective delivery of energy to the tissue), insufficient contact achieved, level of force achieved, level of pressure achieved, distance or proximity to the boundary, orientation or angle of attack relative to the boundary or other tissue location, topology of the adjacent boundary, contact efficiency, and one or more combinations thereof.

[0140] The tissue treatment methods described below with reference to Figures 2-7 are described with reference to a catheter, e.g., energy delivery device EDD 100, that delivers the two forms of energy described herein to target tissue in a patient. It should be considered within the spirit and scope of the present application that other types of energy delivery devices, e.g., surgical tools, laparoscopic tools, endoscopic tools, and / or other energy delivery tools, may also be used. The methods described below with reference to Figures 2-7 are described with reference to target tissue including cardiac tissue, e.g., ventricular tissue, where energy is delivered to the endocardial surface of the heart. It should be considered within the spirit and scope of the present application that energy may alternatively be delivered within the cardiac wall and / or to the epicardial surface, and that other tissues in a patient may be treated using the systems, devices, and methods of the present inventive concepts. The energy doses Dose DOE1 and Dose DOE2 described with reference to FIGS. 2-7 may include similar forms of energy (e.g., when both include RF energy delivery) or different forms of energy (e.g., when Dose DOE2 includes RF or other electromagnetic energy delivery and Dose DOE1 includes non-electromagnetic energy delivery). Dose DOE1 may include delivery of energy configured to reversibly warm the target tissue, and Dose DOE2 may include delivery of energy configured to irreversibly electroporate the target tissue. This electroporation occurs, for example, via delivery of an IEP as described herein, to form a desired lesion in the tissue (e.g., to treat AF or other arrhythmias in a patient). This pre-warming of the tissue may provide numerous benefits, as described herein. For example, Dose DOE2 may include delivery of energy (e.g., RF energy) at a lower amplitude than would be required to irreversibly electroporate the target tissue if the target tissue were at body temperature (e.g., not pre-warmed by Dose DOE1).

[0141] In some embodiments, the EDC 300 is configured as a monitoring device, for example, when one or more sensors of the system 10 provide physiological information of the patient and / or information related to the patient's environment. In some embodiments, the EDC 300 configures Dose DOE1 and / or Dose DOE2 based on this information. For example, the EDC 300 may be configured to provide Dose DOE1 and / or Dose DOE2 based on physiological information of the patient selected from the group consisting of: cardiac cycle, heart rate, blood pressure, blood flow velocity, respiration rate, brain activity, electrogram amplitude (e.g., measured in unipolar and / or bipolar mode), tissue impedance, and combinations thereof.

[0142] 2, there is shown a flow chart of a method for delivering energy to tissue consistent with the concepts of the present invention. Method 2000 is illustrated using system 10 and its components described herein.

[0143] In step 2010, a distal portion of the EDD 100 is inserted into the patient's cardiac chamber. In some embodiments, a distal portion of the catheter 200 is also inserted into the patient's cardiac chamber to provide biopotential, anatomical visualization, and / or other cardiac mapping functions.

[0144] In step 2020, one or more energy delivery elements 130 of the EDD 100 are moved near (proximate) a tissue site for treatment (herein "target tissue").

[0145] In step 2030, a first dose of energy, dose DOE1 as described herein, is provided by the EDC 300 to the EDD 100 and delivered to the target tissue by one or more energy delivery elements 130.

[0146] In step 2040, a second dose of energy, Dose DOE2 described herein, is provided to EDD 100 by EDC 300 and delivered to the target tissue by one or more energy delivery elements 130 (e.g., the same and / or different energy delivery elements 130 that delivered Dose DOE1 in step 2030).

[0147] A check for completeness of the treatment is performed in step 2050. If the treatment is not complete, for example, if additional tissue (e.g., additional target tissue) is to be treated, the method returns to step 2020. If the treatment is complete, the treatment ends in step 2070.

[0148] 3, there is shown a flowchart of a method for delivering energy to tissue consistent with the concepts of the present invention. Method 3000 is illustrated using system 10 and its components described herein.

[0149] In step 3010, a distal portion of the EDD 100 is inserted into a patient's cardiac chamber. In some embodiments, a distal portion of the catheter 200 is also inserted into the patient's cardiac chamber to provide biopotential, anatomical visualization, and / or other cardiac mapping functions.

[0150] In step 3020, one or more energy delivery elements 130 of the EDD 100 are moved into the vicinity of the target tissue.

[0151] In step 3030, a first dose of energy, Dose DOE1, as described herein, is provided by the EDC 300 to the EDD 100 and delivered to the target tissue by one or more energy delivery elements 130. In some embodiments, Dose DOE1 includes delivery of energy (e.g., RF energy) over a period of time.

[0152] In step 3032 , the patient's cardiac cycle is monitored, such as by the EDC 300 or other components of the system 10 .

[0153] In step 3033, a check is performed to determine whether a "timeout" has been reached, e.g., a timeout period comprising the time since delivery of dose DOE1 ended. If the timeout period has been reached, step 3060 is performed, in which system 10 enters a warning mode, and method 3000 continues to step 3050, described below. If the timeout period has not been reached, step 3035 is performed.

[0154] In step 3035, the patient's cardiac cycle reaches the desired cycle point, cycle point CP D A check is made to determine if the patient's cardiac cycle is at point CP D If not, the method 3000 returns to step 3033. If the patient's cardiac cycle is not at point CP D If so, step 3040 is performed.

[0155] In step 3040, a second dose of energy, Dose DOE2 described herein, is provided to EDD 100 by EDC 300 and delivered to the target tissue by one or more energy delivery elements 130 (e.g., the same and / or different energy delivery elements 130 that delivered Dose DOE1 in step 3030).

[0156] In some embodiments, the cycle point CP D is selected in step 3035 such that dose DOE2 is delivered in step 3040 between 50 milliseconds and 200 milliseconds after the R wave occurs (see FIG. 3A).

[0157] A check for completeness of the treatment is performed in step 3050. If the treatment is not complete, for example, if additional tissue (e.g., additional target tissue) is to be treated, the method returns to step 3020. If the treatment is complete, the treatment ends in step 3070.

[0158] 4, there is shown a flowchart of a method for delivering energy to tissue consistent with the concepts of the present invention. Method 4000 is illustrated using system 10 and its components described herein.

[0159] In step 4010, a distal portion of the EDD 100 is inserted into a patient's cardiac chamber. In some embodiments, a distal portion of the catheter 200 is also inserted into the patient's cardiac chamber, for example, to provide biopotential, anatomical visualization, and / or other cardiac mapping functions.

[0160] In step 4020, one or more energy delivery elements 130 of the EDD 100 are moved into the vicinity of the target tissue.

[0161] In step 4030, delivery of a first dose of energy, dose DOE1 as described herein, is initiated. The energy is delivered by the EDC 300 to the EDD 100 and delivered by one or more energy delivery elements 130 to the target tissue.

[0162] In step 4032 , the patient's cardiac cycle is monitored, such as by the EDC 300 or other components of the system 10 .

[0163] In step 4033, a check is performed to see if a "timeout" has been reached, e.g., a timeout period comprising the time since delivery of dose DOE1 has ended. If the timeout period has been reached, step 4060 is performed, in which system 10 enters a warning mode, delivery of dose DOE1 is stopped, and method 4000 continues to step 4050, described below. If the timeout period has not been reached, step 4035 is performed.

[0164] In step 4035, the patient's cardiac cycle reaches the desired cycle point, cycle point CP D A check is made to determine if the patient's cardiac cycle is at point CP DIf not, the method 4000 returns to step 4033. If the patient's cardiac cycle is not at point CP D If so, step 4040 is performed.

[0165] In step 4040, the delivery of dose DOE1 is stopped and a second dose of energy, dose DOE2 described herein, is provided to EDD100 by EDC300 and delivered to the target tissue by one or more energy delivery elements 130 (e.g., the same and / or different energy delivery elements 130 as those that delivered dose DOE1 in step 4030).

[0166] A check is made to ensure the treatment is complete at step 4050. If the treatment is not complete, for example, if additional tissue (e.g., additional target tissue) is to be treated, the method returns to step 4020. If the treatment is complete, the treatment ends at step 4070.

[0167] 5, there is shown a flowchart of a method for delivering energy to tissue consistent with the concepts of the present invention. Method 5000 is illustrated using system 10 and its components described herein.

[0168] In step 5010, a distal portion of the EDD 100 is inserted into a patient's cardiac chamber. In some embodiments, a distal portion of the catheter 200 is also inserted into the patient's cardiac chamber, for example, to provide biopotential, anatomical visualization, and / or other cardiac mapping functions.

[0169] In step 5020, one or more energy delivery elements 130 of the EDD 100 are moved into the vicinity of the target tissue.

[0170] In step 5022 , the patient's cardiac cycle is monitored, such as by the EDC 300 or other components of the system 10 .

[0171] In step 5024, a desired future cardiac cycle point CP D The time T1 is predicted by the system 10 (eg, via algorithm 335).

[0172] In step 5030, an optional step of delivering a first dose of energy, Dose DOE1, described herein, can be provided by EDC 300 to EDD 100 and delivered to the target tissue by one or more energy delivery elements 130. In some embodiments, Dose DOE1 includes the delivery of energy (e.g., RF energy) for a period of time (e.g., a period of time ending before time T1).

[0173] In step 5035, the patient's cardiac cycle at time T1 is at a desired cycle point, cycle point CP D A check is performed (e.g., at or just before time T1) to determine whether the patient's cardiac cycle is at point CP D If the patient's cardiac cycle is at point CP D If not, step 5060 is executed, system 10 enters warning mode, delivery of dose DOE1 is stopped (if delivered via optional step 5030), and method 5000 continues to step 5050, described below.

[0174] In step 5040, a dose of energy (e.g., a first dose of energy or a second dose of energy), Dose DOE2, as described herein, is provided by EDC 300 to EDD 100 and delivered to the target tissue by one or more energy delivery elements 130 (e.g., the same and / or different energy delivery elements 130 that may have delivered Dose DOE1 in optional step 5030).

[0175] A check for completeness of the treatment is performed in step 5050. If the treatment is not complete, for example, if additional tissue (e.g., additional target tissue) remains to be treated, the method returns to step 5020. If the treatment is complete, the treatment ends in step 5070.

[0176] 6, there is shown a flowchart of a method for delivering energy to tissue consistent with the concepts of the present invention. Method 6000 is illustrated using system 10 and its components described herein.

[0177] In step 6010, a distal portion of the EDD 100 is inserted into a patient's cardiac chamber. In some embodiments, a distal portion of the catheter 200 is also inserted into the patient's cardiac chamber to provide, for example, biopotential, anatomical visualization, and / or other cardiac mapping functions.

[0178] In step 6020, one or more energy delivery elements 130 of the EDD 100 are moved into the vicinity of the target tissue.

[0179] In step 6022 , the patient's cardiac cycle is monitored, such as by the EDC 300 or other components of the system 10 .

[0180] In step 6024′, after receiving a “go” signal (e.g., a start request) from an operator of the system 10 (e.g., the patient’s clinician provided via the user interface 320 of the EDC 300), the desired cardiac cycle point CP D The time T1 is predicted by the system 10 (eg, via algorithm 335).

[0181] In step 6026, a dose DOE1, the energy of the first dose, is determined to achieve a target amount of energy (e.g., a target amount in Joules) to be delivered by time T1 (e.g., delivered continuously until time T1 and / or delivered in intermittent pulses until time T1). This target amount of energy may be determined by system 10 and / or the patient's clinician.

[0182] In step 6030, a dose DOE1, as described herein and defined in step 6026, is provided by the EDC 300 to the EDD 100 and delivered to the target tissue by one or more energy delivery elements 130.

[0183] In step 6035, the patient's cardiac cycle at time T1 is at a desired cycle point, cycle point CP D A check is performed (e.g., at or just before time T1) to determine whether the patient's cardiac cycle is at point CP D If the patient's cardiac cycle is at point CP D If not, step 6060 is executed, in which the system 10 enters a warning mode, delivery of dose DOE1 is stopped, and method 6000 continues to step 6050, described below.

[0184] In step 6040, a second dose of energy, Dose DOE2 described herein, is provided to EDD100 by EDC300 and delivered to the target tissue by one or more energy delivery elements 130 (e.g., the same and / or different energy delivery elements 130 that delivered Dose DOE1 in step 6030).

[0185] A check for completeness of the treatment is performed in step 6050. If the treatment is not complete, for example, if additional tissue (e.g., additional target tissue) remains to be treated, the method returns to step 6020. If the treatment is complete, the treatment ends in step 6070.

[0186] 7, there is shown a flowchart of a method for delivering energy to tissue consistent with the concepts of the present invention. Method 7000 is illustrated using system 10 and its components described herein.

[0187] In step 7010, a distal portion of the EDD 100 is inserted into a patient's cardiac chamber. In some embodiments, a distal portion of the catheter 200 is also inserted into the patient's cardiac chamber, for example, to provide biopotential, anatomical visualization, and / or other cardiac mapping functions.

[0188] In step 7020, one or more energy delivery elements 130 of the EDD 100 are moved into the vicinity of the target tissue.

[0189] In step 7030, a dose DOE1 as described herein is provided by the EDC 300 to the EDD 100 and delivered by one or more energy delivery elements 130 to the target tissue.

[0190] In step 7040, a second dose of energy, Dose DOE2 as described herein, is provided to EDD 100 by EDC 300 and delivered to the target tissue by one or more energy delivery elements 130 (e.g., the same and / or different energy delivery elements 130 that delivered Dose DOE1 in step 7030).

[0191] In step 7045, a check is performed to determine whether additional energy should be delivered to the current target tissue. If additional energy should be delivered (e.g., as determined manually by an operator of system 10 and / or automatically by algorithm 335, e.g., if algorithm 335 includes an AI algorithm), method 7000 returns and repeats step 7030. Otherwise, step 7050 is performed.

[0192] A check for completeness of the treatment is performed in step 7050. If the treatment is not complete, for example, if additional tissue (e.g., additional target tissue) is to be treated, the method returns to step 7020. If the treatment is complete, the treatment ends in step 7070.

[0193] In method 7000 of FIG. 7 , the delivery of energy in steps 7030 and 7040 may include delivery of alternating Dose DOE1 and Dose DOE2 (e.g., at least a portion of Dose DOE1 is delivered during step 7040 and / or at least a portion of Dose DOE2 is delivered during step 7030). For example, a portion of Dose DOE1 can be delivered during a portion of Dose DOE2, or vice versa. In some embodiments, Dose DOE1 includes energy (e.g., RF energy) delivered in a pulsed configuration, e.g., Dose DOE1 is delivered during an “off time” period (DOE1TP). OFF ) separated by one or more "on times" (DOE1TP ON ) period, in which case the energy is ON Delivered during the period, DOE1TP OFF In these embodiments, dose DOE2 is not delivered during the period DOE1TP of dose DOE1. OFF In some embodiments, Dose DOE2 includes energy delivered in a pulsed configuration (e.g., an IEP dose). This can occur, for example, when Dose DOE2 is delivered during an "off time" period (DOE2TP OFF ) separated by one or more "on-time" periods (DOE2TP ON ) is included. In this case, the energy is ON In these embodiments, dose DOE1 is delivered during the DOE2TPOFF period and not delivered during the DOE2TPOFF period (e.g., pulse width modulation configuration). OFFIn some embodiments, Dose DOE1 and Dose DOE2 may each include energy delivered in a pulsed configuration. In these embodiments, the energy delivered during Dose DOE1 and Dose DOE2 may be delivered in an alternating configuration. For example, the energy delivery of Dose DOE1 may be delivered during Dose DOE2's DOE2TP. OFF The energy delivery of Dose DOE2 is delivered during the DOE1TP period. OFF This is the case when the delivery is made within the period.

[0194] Referring now to FIG. 8 , a side view of the distal portion of an energy delivery device consistent with the concepts of the present invention is shown. FIGS. 8A and 8B are two graphs of lesion depth versus electrode pairing during electroporation experiments using the device of FIG. 8 , consistent with the concepts of the present invention. Further referring to FIGS. 9A-9D , four graphs depicting lesion volume versus electrode pairing during electroporation experiments using the device of FIG. 8 are shown, also consistent with the concepts of the present invention. Applicant conducted in silico experiments in which an EDD 100, such as the EDD 100 shown in FIG. 8 , delivers a dose of energy to tissue that includes an IEP, as defined herein (the IEP dose provided by the EDC 300 described herein with reference to FIG. 1 ). The EDD 100 of FIG. 8 includes four electrodes 130 (e.g., four electrode-based energy delivery elements 130) disposed on the distal portion 102. The EDD 100 includes electrode 130a located on the distal end of the shaft 110 and three electrodes located more proximally on the shaft 110 in a continuous linear arrangement. Electrode 130b is located closest to tip electrode 130a, electrode 130c is located distal to electrode 130b, and electrode 130d is located distal to electrode 130c, all of which are shown in FIG. 8. In silico experiments demonstrated that control of the shape and size of lesions in tissue can be achieved by selecting specific pairs of electrodes 130 and delivering IEPs to those pairs. FIGS. 8A-8B show tests with three pairs of electrodes 130: pair "1-2" consisting of electrodes 130a and 130b, pair "1-3" consisting of electrodes 130a and 130c, and pair "1-4" consisting of electrodes 130a and 130d. In the simulation, the distal portion of the EDD 100 was positioned approximately perpendicular (90 degrees) to the tissue surface receiving the energy, the electrodes 130a had a length of 3.46 mm, and the electric field amplitude was kept constant. The test was repeated for each of the three pairs at different voltages: 500 V, 1000 V, 1500 V, and 2000 V, as indicated in the figures. Figure 8A is a graph showing the lesion depth for each electrode 130 pair, and Figure 8B is a graph showing the lesion surface area for each electrode 130 pair. Figures 9A-9C are graphs of the lesion volume created using pairs 1-2, 1-3, and 1-4, respectively, with the distal portion of the EDD 100 positioned on the tissue (e.g., at an angle of approximately 0 degrees).FIG. 9D is a graph combining (overlapping) the lesions from FIGS. 9A-9C.

[0195] Experiments have shown that the system 10 can be configured to switch (without modifying amplitude) between pairs of electrodes 130 receiving and / or delivering IEPs to thereby modify lesion depth and / or create lesions with desired geometric volumes. For example, as shown in FIG. 8A, a lesion created with a 1000V IEP, when delivered by pairs 1-3, creates a deeper lesion than when delivered by pairs 1-2. As shown in FIGS. 9A-9D, longer lesions (approximately 1.5 cm as shown) can be created by delivering an IEP dose between multiple pairs of electrodes (e.g., without repositioning the distal portion of the EDD 100).

[0196] 10A-10B, two anatomical cross-sectional views of a distal portion of an energy delivery device contacting a tissue surface at different orientation angles are shown, consistent with the concepts of the present invention. As described herein, the system 10 can be configured to deliver one or more electrical pulses via the EDD 100 between two or more electrodes 130 (e.g., one or more electrodes 130 configured to source current and one or more electrodes 130 configured to sink current). Parameters of each of the pulses (e.g., voltage, current, frequency, pulse width, etc.) can be selected to generate a high-voltage electric field in tissue adjacent to the two or more electrodes to perform "pulsed field ablation" to ablate the tissue. Energy is provided to the EDD 100 by the EDC 300, as described herein. Parameters of the electrical pulses can also be selected such that the resulting electric field causes reversible or irreversible electroporation of the tissue. The spatial extent (e.g., complete volume) of tissue ablated and the effectiveness of pulsed electric field ablation depend on the strength of the electric field at the target location (e.g., the target location selected for ablation to provide a therapeutic benefit to the patient as described herein). The strength of the electric field is related to the distance from the electrode (e.g., the electrode 130 attached to the shaft 110 of the EDD 100 as shown), with the field strength decreasing exponentially with increasing distance from the electrode. The system 10 is configured to provide a sufficient level of electric field strength to all of the target tissue to be ablated (e.g., all intended widths, lengths, and depths of the target tissue).

[0197] The system 10 (e.g., algorithm 335 described herein) may calculate lesion size parameters (e.g., lesion length, width, depth, and / or volume), L P (Here, L P is the peak voltage of pulsed field ablation (PFA), pulse V PEAK ), the orientation angle α, and / or one or more electrophysical parameters EP PThe angle α is the angle between the axis of the distal portion 102 of the EDD 100 and the plane of the tissue surface proximate the distal portion 102 of the EDD 100. In FIG. 10A, the angle α is 90 degrees (i.e., the distal portion 102 of the EDD 100 is perpendicular to the adjacent tissue surface), and in FIG. 10B, the angle α is 0 degrees (i.e., the distal portion 102 of the EDD 100 is parallel to and in contact with the adjacent tissue surface). The parameter EP P may include one, two, or more of contact force, pulse amplitude, pulse duration, number of pulses, number of electrodes sourcing and / or sinking current, tissue temperature, and / or tissue impedance.

[0198] In some embodiments, EDD 100 includes a sensor or other component configured to determine orientation angle α, as used in the calculations for determining lesion size, as described above. For example, one or more sensors (e.g., sensing element 158) of force maintenance assembly 150 (e.g., as described herein) can be configured to provide signals from which angle α can be determined (e.g., by algorithm 335), such as when force maintenance assembly 150 includes optical fibers, magnetic sensors, impedance measurement sensors, and / or other sensing elements configured to provide signals related to angle α. Alternatively or additionally, angle α can be determined via signals provided by mapping and / or navigation sensors of system 10, such as when algorithm 335 performs impedance- and / or magnetic-based localization to determine angle α. Alternatively or additionally, system 10 can include an imaging device, not shown, selected from the group consisting of, for example, an intracardiac ultrasound imager, an X-ray, a fluoroscope, a magnetic resonance imager, a computed tomography imager, a visible light camera, an infrared camera, and combinations thereof. The algorithm 335 can use the information provided by the imaging device to determine the angle α.

[0199] In some embodiments, the electrical pulses are applied between tip electrode 130a and one or more adjacent electrodes 130 (e.g., electrodes 130b, 130c, and / or 130d are shown). Related solely to angle α, the electric field strength within the tissue is lowest when angle α is 90 degrees, as shown in FIG. 10A, increases as angle α decreases from 90 degrees, and ultimately reaches a maximum when angle α is 0 degrees, as shown in FIG. 10B. In other words, as one or more PFA pulses are delivered to tissue by EDD 100, the spatial extent of the resulting lesion (e.g., the depth of the resulting lesion) increases as the electrode 130 associated with each PFA pulse (e.g., the electrode sourcing and / or sinking the current) is brought closer to the tissue surface.

[0200] 11A-11B, two user views of a graphical user interface displaying information regarding different orientation angles of an energy delivery device are shown, consistent with the concepts of the present invention. The system 10 can include a graphical user interface, the illustrated GUI 3200, via the user interface unit 320 of the EDC 300. The GUI 3200 can be configured to provide information regarding the orientation angle α, such as provided by the illustrated orientation angle display 3250, as described herein. The GUI 3200 can display current (e.g., real-time) position information associated with the EDD 100 (e.g., associated with the distal portion 102 of the EDD 100). The GUI 3200 can include a catheter display 3210 representing the position of the distal portion 102 and / or a tissue display 3220 representing the position of a tissue surface to be ablated (e.g., a tissue surface proximate the distal portion 102), each of which is shown.

[0201] The GUI 3200 may further include an indicator graph 3230 that can provide field strength feedback to the operator, such as a graphical representation of an estimate of the field strength in tissue proximate the electrode 130. The indicator graph 3230 can indicate the field strength of the energy (e.g., the PFA pulse currently being delivered or the field strength that will exist if the operator initiates energy delivery). The information provided by the indicator graph 3230, and other information provided by the GUI 3200, can be used by the operator (e.g., in an iterative or other adjustable manner) to create a lesion of a desired size (e.g., a desired length, width, and / or depth dimension). The indicator graph 3230 can include a first marker 3231 and a second marker 3232, each of which is shown. The relative positions of markers 3231 and 3232 can be correlated to the electric field strength within the tissue, such that as the electric field strength increases, marker 3231 moves closer to marker 3232 (e.g., as shown in the transition from the orthogonal catheter orientation depicted in catheter view 3210 of FIG. 11A to the catheter orientation depicted in catheter view 3210 of FIG. 11B where angle α is 5 degrees). It will be appreciated that system 10 can provide various other forms of visual feedback to the operator regarding the field strength and / or other ablation parameters of current (e.g., real-time) or future (delivered based on current conditions) pulsed electric field ablation energy delivery.

[0202] In some embodiments, the GUI 3200 may be configured to provide information regarding contact force, such as provided by the illustrated contact force indicator 3260. The contact force indicator 3260 includes a force indicator 3261 that indicates the current contact force being applied (shown at the same level in each of FIGS. 11A and 11B ). The contact force indicator 3260 may further include a threshold indicator 3262 that may indicate a desired or recommended limit for the contact force being applied (e.g., an amount less than the maximum available contact force). The provided contact force information may provide an absolute measure of force (e.g., a measure expressed in grams or other metric indicating contact force) and / or a relative measure (e.g., a percentage of the maximum amount of contact force). In some embodiments, the GUI 3200 may further be configured to change the distance between the first marker 3231 and the second marker 3232 in response to changes in contact force; for example, the distance may decrease as the contact force increases (e.g., indicating an increase in the electric field within the tissue). In some embodiments, the distance between the two markers is based on both the angle α and the contact force, and the operator can change either or both of these to change the electric field strength in the tissue. In some embodiments, the GUI 3200 determines the distance between the two markers based on the angle α, the contact force, and / or one or more electrophysical parameters EP P The changes are based on all or some of the following:

[0203] Referring now to FIG. 12 , a perspective view of a distal portion of an energy delivery device including multiple ports for delivering irrigation fluid is shown, consistent with the concepts of the present invention. The EDD 100 of FIG. 12 includes an electrode 130a shown on the distal portion 102. The distal portion 102 of the EDD 100 can include one or more ports 1305 (six shown) for delivering irrigation fluid 70. The irrigation fluid 70 can be, for example, one or more similar or dissimilar irrigation fluids 70 provided by the fluid delivery module 370 of the EDC 300 described herein. The two or more ports 1305 can be spatially distributed in a desired pattern, for example, a pattern covering part or most of the distal portion 102 including the electrode 130. The two or more ports 1305 can be connected to independent lumens for delivering different irrigation fluids 70 (e.g., different fluids 70a, 70b, such as fluids of dissimilar conductivity as described herein). Alternatively or additionally, two or more ports 1305 may be connected to a common lumen to deliver the same irrigation fluid 70 .

[0204] 13, there is shown an anatomical side cross-sectional view of a distal portion of an energy delivery device contacting a tissue surface and delivering irrigation fluid consistent with the concepts of the present invention. The distal portion 102 of the EDD 100 is shown with an orientation angle α equal to 0 degrees, such that each of the electrodes 130a, 130b, 130c, and 130d is in contact with the tissue surface to be ablated. Irrigation fluid 70 is delivered through ports 1305 (eight shown), and the delivered fluid 70 surrounds the electrodes 130a and 130b as shown (e.g., preventing blood, a relatively conductive substance, from surrounding the electrodes).

[0205] The EDD 100 can be configured to deliver PFA pulses that create an electromagnetic field to ablate tissue (e.g., to cause reversible or irreversible electroporation of tissue as described herein). One or more irrigation fluids 70 can be delivered via port 1305 to influence the pulsed electric field. For example, the delivered electric field will "bunch" when passing through a conductive medium, and will "spread" when passing through a more resistive medium, with the current taking the path of least resistance (i.e., the path of highest conductivity). The system 10 can be configured to deliver one or more irrigation fluids 70 of known conductivity to the area surrounding the electrode 130 and actively "steer" the delivered current and, therefore, the generated electric field.

[0206] In some embodiments, the distal portion 102 of the EDD 100 includes at least six ports 1305 (e.g., twelve ports 1305), with at least two ports 1305 (e.g., four ports 1305) facing forward (e.g., facing distally from the distal end of the shaft 110), at least two ports 1305 (e.g., four ports 1305) located at the distal end of the tip electrode 130a, and at least two ports 1305 (e.g., four ports 1305) located at the proximal end of the tip electrode 130a. The system 10 may include an irrigation fluid 70 having a conductivity different from (e.g., lower than) that of blood. Prior to application of pulsed electric field energy, the EDD 100 may be oriented such that one or more ports 1305 are blocked from contact with tissue (e.g., blocked by a tissue surface in the left atrium or other chamber of the heart). Delivery of irrigation fluid 70 through the remaining ports 1305 will have a steering effect on the desired electric field. For example, delivery of irrigation fluid 70 having a lower conductivity than that of blood will concentrate the current delivered by the electrodes 130 in the contacting tissue, increasing the electric field to the tissue (e.g., because the fluid around the electrodes 130 delivering the current is surrounded by irrigation fluid 70 with a relatively low conductivity).

[0207] Before and / or during PFA pulse delivery, the orientation angle α can be monitored as described herein (e.g., via one or more sensors in system 10 and / or by a separate imaging device), thereby providing feedback information related to the electric field to be delivered and / or being delivered. System 10 (e.g., algorithm 335, e.g., if algorithm 335 includes an AI algorithm) can account for the increase in electric field strength (e.g., steering of the electric field) due to the delivery of low-conductivity irrigation fluid 70.

[0208] It should be understood that the above-described embodiments serve only as illustrative examples, and further embodiments are contemplated. Any feature described herein in connection with any one embodiment may be used alone or in combination with other features described, or may be used in combination with one or more features of any other embodiment or any combination of embodiments. Furthermore, equivalents and modifications not described above may be employed without departing from the scope of the inventive concept as defined in the appended claims.

Claims

1. 1. A system for treating cardiac tissue of a patient, comprising: an energy delivery console for providing a first dose of energy and a second dose of energy; an energy delivery device including a first energy delivery element configured to deliver the first dose of energy to a target tissue and a second energy delivery element configured to deliver the second dose of energy to the target tissue; the system is configured to monitor a cardiac cycle of the patient, and the energy delivery device is configured to initiate the second dose of energy when the cardiac cycle reaches a desired cardiac cycle point after delivery of the first dose of energy is initiated; the first dose of energy includes delivery of energy that reversibly transforms the target tissue; the second dose of energy includes delivery of energy that irreversibly transforms the target tissue; The system wherein the first dose of energy is delivered to enhance the therapeutic effect provided by the second dose of energy.

2. The system of claim 1 , wherein the energy delivery device comprises a catheter.

3. The system of claim 1 , wherein the first energy delivery element and the second energy delivery element comprise the same component.

4. The system of claim 1 , wherein the first energy delivery element and the second energy delivery element comprise different components.

5. The system of claim 1 , wherein the first energy delivery element comprises a plurality of energy delivery elements.

6. The system of claim 5 , wherein the second energy delivery element comprises a plurality of energy delivery elements.

7. 7. The system of claim 6, wherein the energy delivery device comprises a first energy delivery device and a second energy delivery device, the plurality of energy delivery elements of the first energy delivery device comprising a first device element, and the plurality of energy delivery elements of the second energy delivery device comprising a second device element.

8. 8. The system of claim 7, wherein the first device element is configured to be positioned on an endocardial surface of the patient's heart and the second device element is configured to be positioned on an epicardial surface of the patient's heart during delivery of the second dose.

9. 10. The system of claim 1, wherein the energy of the first dose is insufficient to ablate, necrotize, and / or otherwise permanently alter the target tissue, and the energy of the second dose is sufficient to ablate, necrotize, and / or otherwise permanently alter the target tissue.

10. The system of claim 1 , wherein the system is configured to deliver the first dose of energy and / or the second dose of energy to an endocardial tissue surface.

11. The system of claim 1 , wherein the system is configured to deliver the first dose of energy and / or the second dose of energy to an epicardial tissue surface.

12. The system of claim 1 , wherein the system is configured to deliver the second dose of energy after the first dose of energy is delivered.

13. 13. The system of claim 12, wherein the second dose of energy is configured to irreversibly electroporate the target tissue.

14. The system of claim 1 , wherein the first dose of energy comprises radio frequency (RF) energy delivered at a level insufficient to ablate the target tissue.

15. 10. The system of claim 1, wherein the first dose of energy comprises a form of energy selected from the group consisting of thermal energy, heat energy, cryogenic energy, electromagnetic energy, radio frequency (RF) energy, microwave energy, light energy, laser light energy, sonic energy, subsonic energy, ultrasonic energy, chemical energy, and combinations thereof.

16. 10. The system of claim 1, wherein the second dose of energy comprises a form of energy selected from the group consisting of thermal energy, heat energy, cryogenic energy, electromagnetic energy, radio frequency (RF) energy, microwave energy, light energy, laser light energy, sonic energy, subsonic energy, ultrasonic energy, chemical energy, and combinations thereof.

17. The system of claim 1 , wherein the first dose of energy and the second dose of energy comprise different forms of energy.

18. The system of claim 1 , wherein the second dose of energy comprises a pulse of irreversible electroporation energy.

19. 2. The system of claim 1, wherein the energy of the second dose comprises parameters selected from the group consisting of: a dose delivered by an electrode having a length of at least 1.46 mm and / or a length of 8 mm or less; a dose delivered by a pair of electrodes separated by a distance of at least 1 mm and / or 11 mm or less; a dose based on an applied voltage of at least 500 V and / or 5000 V or less; a dose comprising a field strength of at least 200 V / cm and / or 1000 V / cm or less; a dose comprising a pulse width of at least 0.1 μsec and / or 200 μsec or less; a dose comprising a series of pulses with a pulse repetition interval of at least 1 μsec; and combinations thereof.

20. The system of claim 1 , wherein the energy delivery device is configured to deliver the first dose of energy over a period of time.

21. 21. The system of claim 20, wherein the system is configured to enter a warning mode if a timeout period is reached after the first dose is delivered and before the second dose is delivered.

22. The system of claim 1 , wherein the system is configured to monitor the patient's cardiac cycle during delivery of the first dose and / or during delivery of the second dose.

23. 23. The system of claim 22, wherein the system is configured to monitor the patient's cardiac cycle during both delivery of the first dose and delivery of the second dose.

24. 23. The system of claim 22, wherein the energy delivery device is configured to deliver the first dose until a patient's cardiac cycle reaches a desired cardiac cycle point or until a timeout is reached.

25. The system of claim 1 , wherein the system is configured to monitor the patient's heart prior to delivery of the first dose of energy.

26. 26. The system of claim 25, wherein the system is configured to predict a time T1 of the next desired cardiac cycle point after receiving an energy delivery signal including a "go" signal transmitted from an operator via a user interface of the energy delivery console.

27. 27. The system of claim 26, wherein the first dose of energy comprises energy delivery parameters based on a target amount of energy to be delivered and a time to reach T1.

28. 28. The system of claim 27, wherein the energy delivery device is configured to deliver the second dose of energy when the system determines that the patient's cardiac cycle is equal to the desired cardiac cycle point at time T1.

29. 28. The system of claim 27, wherein the energy delivery device is configured to withhold delivery of the second dose of energy if the patient's cardiac cycle is determined to differ from the desired cardiac cycle point at time T1.

30. The system of claim 1 , wherein the first dose of energy is configured to increase the temperature of the target tissue by at least 2° C.

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