Printing Proximal Electrode on Expandable Catheters for Use as a Common Electrode
The catheter design integrates distal and proximal electrodes to form a common electrode, simplifying manufacturing and improving bipolar sensing and ablation without a separate ring electrode, reducing costs and enhancing functionality.
Patent Information
- Application Number
- JP2021164628
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-07
- Filing Date
- 2021-10-06
- Publication Date
- 2025-10-14
- Estimated Expiration
- 2041-10-06
AI Technical Summary
Existing catheters with expandable frames require a separate ring electrode for a common or return electrode, complicating manufacturing and limiting the surface area due to diameter and length constraints.
A catheter design with a first set of distal electrodes in contact with tissue and a second set of proximal electrodes not in contact with tissue, interconnected to form a common electrode, eliminating the need for a separate ring electrode and simplifying manufacturing.
Reduces manufacturing complexity and cost by using a flexible PCB to create a common electrode, enhancing bipolar electrophysiology sensing and ablation capabilities.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates generally to invasive medical probes, and more particularly to catheters including expandable frames for cardiac applications. [Background technology]
[0002] Electrical components disposed on a flexible printed circuit board (PCB) coupled to the distal end of a medical probe have previously been proposed in the patent literature. For example, U.S. Pat. No. 10,660,700 describes an irrigated balloon catheter for use at the ostium of a pulmonary vein. The balloon catheter includes a flex circuit electrode assembly adapted to circumferentially contact the ostium of a pulmonary vein when the balloon is inflated. The balloon is adapted for both diagnostic and therapeutic use and treatment. The flex circuit electrode assembly includes a substrate, contact electrodes on the outer surface of the substrate, wiring electrodes on the inner surface of the substrate, and conductive vias extending through the substrate electrically connecting the contact electrodes and wiring electrodes. A membrane supports and carries the combination of electrodes and temperature sensing members constructed as a multi-layer flexible circuit electrode assembly.
[0003] As another example, U.S. Patent No. 10,201,311 describes a flex PCB catheter configured for insertion into a body lumen. The flex PCB catheter includes an elongate shaft, an expandable assembly, a flexible printed circuit board (flex PCB) substrate, multiple electronic components, and multiple communication paths. The elongate shaft has a proximal end and a distal end. The expandable assembly is configured to change from a radially compact state to a radially expanded state. The multiple electronic elements are coupled to the flex PCB substrate and configured to receive and / or transmit electrical signals. The multiple communication paths are disposed on and / or within the flex PCB substrate. The communication paths selectively couple the multiple electronic elements to multiple electrical contacts configured to electrically connect the multiple electronic elements to an electronic module configured to process the electrical signals. The flex PCB substrate may have multiple layers, including one or more metal layers. Acoustic matching elements and conductive traces may be included in the flex PCB substrate. Summary of the Invention [Means for solving the problem]
[0004] One embodiment of the present invention, described below, provides a catheter including a shaft, an expandable frame, a first set of electrodes, and a second set of electrodes. The shaft is configured for insertion into a patient's organ. The expandable frame is attached to a distal end of the shaft. The first set of electrodes is disposed on a distal portion of the expandable frame and configured to be placed in contact with tissue within the organ. The second set of electrodes is disposed on a proximal portion of the expandable frame and configured to be interconnected to form a common electrode that is not in contact with tissue.
[0005] In some embodiments, the expandable frame is shaped to prevent the second set of electrodes from contacting tissue.
[0006] In some embodiments, the expandable frame comprises a membrane of an inflatable balloon, hi other embodiments, the expandable frame comprises a spine of an expandable basket catheter.
[0007] In some embodiments, the second set of electrodes are equiangularly distributed about the longitudinal axis of the distal end.
[0008] In some embodiments, the organ is the heart and the tissue is pulmonary vein (PV) ostium tissue.
[0009] According to another embodiment of the present invention, there is further provided a system including a catheter and a switching circuit. The catheter includes a shaft, an expandable frame, a first set of electrodes, and a second set of electrodes. The shaft is configured for insertion into a patient's organ. The expandable frame is attached to a distal end of the shaft. The first set of electrodes is disposed on a distal portion of the expandable frame and configured to be placed in contact with tissue within the organ. The second set of electrodes is disposed on a proximal portion of the expandable frame and configured to be interconnected to form a common electrode that is not in contact with tissue. The expandable frame is configured to be interconnected to form the common electrode. The switching circuit is configured to interconnect at least a portion of the second set of electrodes to form the common electrode.
[0010] In some embodiments, the system further includes a processor configured to control the switching circuitry.
[0011] In one embodiment, the processor is configured to use the switching circuitry to acquire bipolar electrophysiology (EP) signals and / or apply bipolar ablation signals.
[0012] According to another embodiment of the present invention, there is further provided a method including inserting a catheter into an organ of a patient, the catheter including a shaft, an expandable frame attached to a distal end of the shaft, a first set of electrodes disposed on a distal portion of the expandable frame, and a second set of electrodes disposed on a proximal portion of the expandable frame. The first set of electrodes is positioned in contact with tissue within the organ. At least some of the second set of electrodes are interconnected to each other to form a common electrode. One or both of acquiring and applying signals between the first set of electrodes and the common electrode is performed.
[0013] In some embodiments, acquiring the signals includes acquiring bipolar electrophysiology (EP) signals.
[0014] In some embodiments, applying the signal comprises applying a bipolar ablation signal.
[0015] In some embodiments, the organ is the heart and the tissue comprises pulmonary vein (PV) ostium tissue.
[0016] The present invention will be more fully understood from the following detailed description taken in conjunction with the drawings, in which: [Brief explanation of the drawings]
[0017] [Figure 1] 1 is a schematic, pictorial illustration of a catheter-based cardiac diagnostic and / or therapeutic system including a balloon catheter, in accordance with an embodiment of the present invention; [Figure 2] 2 is a schematic pictorial view of the balloon catheter used in FIG. 1, the balloon catheter including a distal electrode and a proximal electrode, according to one embodiment of the present invention. [Figure 3] 2 is a schematic, pictorial illustration of a basket catheter that can be used with the system of FIG. 1 , the basket catheter including a distal electrode and a proximal electrode, according to an embodiment of the present invention; [Figure 4]2 is a flow chart that schematically illustrates a method for applying bipolar EP sensing and IRE pulses using the balloon catheter of FIG. 1, in accordance with an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0018] Overview An expandable frame (e.g., a balloon or basket) attached to the distal end of the catheter can be navigated through the cardiovascular system and inserted into the heart to perform diagnosis and / or ablation of cardiac tissue using electrodes disposed on the frame.
[0019] Multiple electrodes can be used for tasks such as position and / or orientation tracking of the expandable frame, tissue contact sensing, bipolar electrophysiology (EP) sensing, and bipolar irreversible electroporation (IRE) and / or radiofrequency (RF) ablation.
[0020] Some of the tasks mentioned above, such as contact sensing, EP sensing, and some forms of IRE / RF ablation, typically use a "return" or "common" electrode. Such an electrode may be attached to the catheter itself, in which case sensing and ablation are bipolar. An additional electrode (e.g., a ring electrode) may be attached to the distal end of the catheter shaft, just proximal to the expandable frame, and used as the common or return electrode. However, the need for such a ring electrode complicates the catheter by adding manufacturing steps and special components, and the surface area of the ring electrode is limited due to the collapsed diameter and rigid length limitations.
[0021] The embodiments of the invention described below provide an expandable frame having a first set of electrodes, referred to as "distal electrodes," located on a distal portion of the expandable frame, and a second set of respective electrodes, referred to as "proximal electrodes," located on a proximal portion of the expandable frame. The distal electrodes are in contact with tissue and can be used for EP diagnosis and / or ablation. The proximal electrodes are positioned on the frame such that they are not in contact with tissue and are used together as a return or common electrode.
[0022] In some embodiments, the distal and proximal sets of electrodes are arranged in electrode pairs, each pair including a distal electrode and a proximal electrode. The electrode pairs are arranged (e.g., by mounting, plating, printing, depositing, or patterning) on a flexible printed circuit board (PCB). In one embodiment, the electrodes of the proximal set are equiangularly distributed around the longitudinal axis of the distal end. In the case of a balloon catheter, each PCB is cemented to the balloon membrane. For this purpose, each flexible PCB has an elongated shape such that the distal and proximal portions respectively cover the distal and proximal regions of the balloon.
[0023] In one embodiment, the proximal electrodes are all electrically interconnected to form one common proximal electrode, e.g., replacing the proximal ring electrodes. In another embodiment, the proximal electrodes are selectively connected to each other.
[0024] Typically, the proximal electrodes are interconnected using switching circuitry that may be contained in a switching box or in the ablation generator. In one embodiment, the proximal electrodes have a permanent electrical interconnection by means of a conductive link between them.
[0025] By providing a technique for realizing a proximal common electrode with a flexible PCB, the cost of disposable multi-electrode catheters can be significantly reduced.
[0026] System Description 1 is a schematic, pictorial illustration of a catheter-based cardiac diagnostic and / or therapeutic system 20 including a balloon catheter 21, according to one embodiment of the present invention. A physician 30 inserts a shaft 22 of catheter 21 through a sheath 23 and the vascular system of a patient 28. The physician then navigates a distal end 22a of shaft 22 to a target location within the patient's heart 26.
[0027] Once the distal end 22a of the shaft 22 reaches the target location, the physician 30 retracts the sheath 23 and expands the balloon 40, typically by pumping saline. The physician 30 then manipulates the shaft 22 so that a distal set of electrodes 50 disposed on the balloon catheter 40 engages the inner wall of a PV ostium 46 in the left atrium 45, seen in inset 25. If the bipolar EP sensor detects the presence of arrhythmogenic tissue, a high-voltage bipolar IRE pulse is applied to the ostium 46.
[0028] More specifically, the flat shape of the distal portion of the balloon 40 (as seen in inset 27) allows the distal electrodes 50 to contact tissue. At the same time, the disclosed set of proximal electrodes 52 are not in contact with tissue. Some of the proximal electrodes 52 are interconnected to one another via conductors 53, e.g., by using the switching circuitry 36 of the console 24, to form the aforementioned common electrode immersed in blood (e.g., for bipolar EP sensing and IRE ablation). Alternatively, all of the proximal electrodes 52 are connected to the switching circuitry 36 via respective conductors 53.
[0029] Particular aspects of inflatable balloons are described, for example, in U.S. Provisional Patent Application No. 62 / 899,259, filed September 12, 2019, entitled "Balloon Catheter with Force Sensor," U.S. Patent Application No. 16 / 726,605, filed December 24, 2019, entitled "Contact Force Spring with Mechanical Stops," and U.S. Patent Application No. 16 / 892,514, filed June 4, 2020, entitled "Smooth-Edge and Equidistantly Spaced Electrodes on an Expandable Frame of a Catheter for Irversible Electroporation (IRE)," all of which are assigned to the assignee of the present patent application, the disclosures of which are incorporated herein by reference in their appendix copies.
[0030] The proximal end of catheter 21 is connected to console 24, which includes a processor 41, typically a general-purpose computer, with suitable front-end and interface circuitry 37 for receiving signals from catheter 21 and external electrodes 49, which are typically positioned around the chest of patient 26. To this end, processor 41 is connected to external electrodes 49 by wires extending from interface circuitry 37 through cable 39.
[0031] Console 24 further includes an IRE pulse generator 38 configured to apply bipolar IRE pulses between electrode 50 and an interconnected proximal electrode 52. Both sets of electrodes are connected to IRE pulse generator 38 by electrical wiring that runs within shaft 22 of catheter 21. Memory 48 of console 24 stores an IRE protocol, including IRE pulse parameters such as peak voltage and pulse width.
[0032] During the procedure, the system 20 can track the location of each of the electrodes 50 within the heart 26 using the Advanced Catheter Location (ACL) method from Biosense-Webster (Irvine, California), described in U.S. Patent No. 8,456,182, the disclosure of which is incorporated herein by reference.
[0033] The processor 41 is typically programmed in software to carry out the functions described herein, which software may be downloaded to the computer in electronic form, for example over a network, or alternatively or additionally may be provided and / or stored on a non-transitory tangible medium, such as magnetic, optical, or electronic memory.
[0034] In particular, processor 41 executes the dedicated algorithms disclosed herein, including FIG. 3, which enable processor 41 to perform the steps of the present disclosure, as further described below.
[0035] Generally, in the embodiments described herein, using a first set of distal electrodes 50 and a second set of proximal electrodes 52, both sets disposed on the balloon 40 of the catheter 21, the system 20 can perform any of the aforementioned tasks of position and / or ordination tracking of the balloon 40, tissue contact sensing, bipolar electrophysiology (EP) sensing, and bipolar irreversible electroporation (IRE) and / or radiofrequency (RF) ablation of, for example, PV ostium 46 tissue of the heart 26.
[0036] 1 is provided by way of example only, and thus, proximal electrodes 52 may be interconnected by circuitry other than circuitry 36. The switching elements to interconnect electrodes 52 may be realized by different electronic devices located at different locations in the system, such as in catheter 21.
[0037] In various embodiments, the different interface circuits and / or switching circuit elements of the system shown in FIG. 1 may be implemented using suitable hardware, such as using one or more discrete components (e.g., solid-state relays) or one or more application-specific integrated circuits (ASICs).
[0038] Printed proximal electrode of balloon catheter Figure 2 is a schematic pictorial view of balloon catheter 40 used in Figure 1, which includes distal electrode 50 and proximal electrode 52, according to one embodiment of the present invention. In Figure 2, catheter 40 extends along longitudinal axis LL from a proximal location (closest to the operator) to a distal location furthest from the operator along axis LL. For example, portion 42b may be considered the "proximal" portion, while portion 42a may be considered the "distal" portion relative to portion 42b.
[0039] Each pair of distal electrode 50 and respective proximal electrode 52 is disposed on a flexible PCB 54 that is adhered to the membrane 42 of the balloon 40. Each distal electrode is connected to a respective conductor 51, and each proximal electrode is connected to a respective conductor 53. Additional conductors, such as temperature sensors, may together form a conductor ribbon with conductors 51 / 53 and are not shown for clarity of presentation.
[0040] The conductors 51 / 53 are glued (57) at their proximal portions to the balloon (glue not shown) and are connected (58) to wires (wire not shown) that run through the shaft 22a.
[0041] In the illustrated embodiment, each of the electrodes 50 and 52 is connected by its own conductor to a respective wire extending, for example, to the switching circuitry 36 of the system 20. Thus, the proximal electrodes 52 are interconnected by the switching circuitry 36 in the console 24 to form the aforementioned common electrode.
[0042] For clarity of presentation, numerous elements of the balloon are omitted. The omitted elements may include, but are not limited to, (i) conductive vias extending through the substrate to electrically couple the electrodes to conductors 51 and 53, (ii) a thread layer between membrane 42 and flexible PCB 54 to reduce the risk of flexible PCB 54 peeling or tearing, and (iii) an edge layer of flexible substrate 54 that is added to increase adhesion of flexible substrate 54 to membrane 42 after flexible substrate 54 is bonded to membrane 43. Additional functional elements that may be located on balloon 40, such as temperature sensors and irrigation holes, are also omitted for clarity of presentation.
[0043] Printed proximal electrode of basket catheter FIG. 3 is a schematic, pictorial illustration of a basket catheter 340 that can be used with the system 20 of FIG. 1, according to one embodiment of the present invention, the basket catheter including a distal electrode 350 and a proximal electrode 352, according to one embodiment of the present invention.
[0044] 4, catheter 340 extends along longitudinal axis L-L 362 from a proximal location (closest to the operator) to a distal location furthest from the operator along axis LL. Catheter 340 includes a plurality of expandable spines 354 arranged about longitudinal axis 362. A distal end 365 of shaft 322 is slidable over a guidewire 360, as described below. Guidewire 360 extends through a lumen within shaft 322.
[0045] Each pair of distal electrode 350 and respective proximal electrode 352 is disposed on a flexible PCB 355 that is attached to the spine 354 of the catheter 340. Each distal electrode is connected to a respective conductor 351, and each proximal electrode is connected to a respective conductor 353. Additional conductors, such as temperature sensors, may together form a conductor ribbon with conductors 351 / 353 and are not shown for clarity of presentation.
[0046] Conductors 351 / 353 are glued to the inside of the spine at their proximal portions (glue not shown) and connected to wires that run inside shaft 322 (wires not shown).
[0047] In the illustrated embodiment, each of the electrodes 350 and 352 is connected by its own conductor to a respective wire extending, for example, to the switching circuitry 36 of the system 20. Thus, the proximal electrodes 352 are interconnected by the switching circuitry 36 in the console 24 to form the aforementioned common electrode.
[0048] For clarity of presentation, numerous elements of the basket are omitted. The omitted elements may include, but are not limited to, (i) conductive vias extending through the spine to electrically couple the electrodes to conductors 351 and 353, (ii) a thread layer between spine 354 and flexible PCB substrate 355 to reduce the risk of flexible PCB 355 peeling or tearing, and (iii) an edge layer of flexible substrate 355 added to increase adhesion of flexible substrate 355 to spine 354 after flexible substrate 355 is adhered to the spine. Additional functional elements that may be located on basket 340, such as temperature sensors and irrigation holes, are also omitted for clarity of presentation.
[0049] Figure 4 is a flow chart that schematically illustrates a method for applying bipolar EP sensing and IRE pulses using the balloon (40) catheter 21 of Figure 1, in accordance with one embodiment of the present invention. According to the presented embodiment, the algorithm executes a process that begins when the physician 30 navigates the balloon catheter, at balloon catheter navigation step 80, to a target tissue location within the patient's organ, such as the PV ostium 46, using, for example, electrode 50 as an ACL sensing electrode.
[0050] Next, in a balloon catheter positioning step 82, physician 30 positions the balloon catheter at the ostium 46. Next, in a balloon expansion step 84, physician 30 fully inflates the balloon 40, bringing the target tissue into contact with the electrodes 50 around the entire circumference of the PV ostium 46.
[0051] Next, in a switching step 86, processor 41 commands switching circuitry 36 to interconnect all of the proximal electrodes 52 to each other to form a common electrode.
[0052] In an EP diagnosis step 88, the system 20 acquires bipolar EP potentials between the distal electrode 50 and the common electrode 52 around the entire circumference of the balloon 40 to locate arrhythmogenic tissue.
[0053] If the analysis determines in confirmation step 90 that the EP signal is normal, or at least insufficient to indicate EP abnormal tissue, physician 30 moves the catheter to another cardiac location in catheter movement step 92, and the process returns to step 88.
[0054] On the other hand, if analysis of the EP signal indicates arrhythmogenic tissue in confirmation step 90, physician 30 operates system 20 to apply a bipolar IRE pulse between distal electrode 50 and common electrode 52 to ablate tissue surrounding balloon 40 in IRE ablation step 94 to isolate the arrhythmia.
[0055] Although the embodiments described herein relate primarily to cardiac applications, the methods and systems described herein may also be used in other medical applications, such as neurology and oncology.
[0056] It will therefore be understood that the above-described embodiments are cited by way of example, and that the present invention is not limited to what has been particularly shown and described in the foregoing specification. Rather, the scope of the present invention includes both combinations and subcombinations of the various features described in the above specification, as well as variations and modifications thereof not disclosed in the prior art that would occur to one skilled in the art upon reading the foregoing description. Documents incorporated by reference into this patent application are to be considered an integral part of this application, except that if any term is defined in these incorporated documents in a way that contradicts the definition expressly or impliedly given herein, then only the definition in this specification shall be considered.
[0057] [Embodiment] (1) A catheter, a shaft for insertion into a patient's organ; an expandable frame extending along a longitudinal axis from a proximal portion to a distal portion, the expandable frame attached to a distal end of the shaft; a first set of electrodes disposed on a distal portion of the expandable frame and configured to be placed in contact with tissue within the organ; a second set of electrodes disposed on a proximal portion of the expandable frame; a switching circuit for connecting at least two or more electrodes disposed in the proximal portion to form a common electrode; a catheter. (2) A catheter as described in embodiment 1, wherein the expandable frame is shaped to prevent the second set of electrodes from contacting the tissue. (3) A catheter as described in embodiment 1, wherein the expandable frame comprises a membrane of an inflatable balloon. (4) The catheter of embodiment 1, wherein the expandable frame comprises a spine of an expandable basket catheter. (5) A catheter as described in embodiment 1, wherein the second set of electrodes are equiangularly distributed around the longitudinal axis of the expandable frame.
[0058] (6) The catheter of embodiment 1, wherein the organ includes a heart and the tissue includes pulmonary vein (PV) ostium tissue. (7) A system comprising: A catheter comprising: a shaft for insertion into a patient's organ; an expandable frame extending along a longitudinal axis from a proximal portion to a distal portion, the expandable frame attached to a distal end of the shaft; a first set of electrodes disposed on a distal portion of the expandable frame and configured to be placed in contact with tissue within the organ; a second set of electrodes disposed on a proximal portion of the expandable frame and configured to be interconnected to form a common electrode that is not in contact with tissue; and a catheter comprising: a switching circuit for interconnecting at least a portion of the second set of electrodes to each other to form the common electrode; Including, the system. (8) The system of embodiment 7, including a processor configured to control the switching circuit. (9) The system of embodiment 8, wherein the processor is configured to use the switching circuit to perform one or both of acquiring bipolar electrophysiology (EP) signals and applying bipolar ablation signals. (10) A method comprising: Inserting a catheter into an organ of a patient, the catheter comprising: A shaft and an expandable frame attached to the distal end of the shaft; a first set of electrodes disposed on a distal portion of the expandable frame; a second set of electrodes disposed on a proximal portion of the expandable frame; and placing the first set of electrodes in contact with the tissue within the organ; interconnecting at least a portion of the second set of electrodes to each other to form a common electrode; acquiring and / or applying signals between the first set of electrodes and the common electrode; A method comprising:
[0059] (11) The method of embodiment 10, wherein acquiring the signal includes acquiring a bipolar electrophysiology (EP) signal. (12) The method of embodiment 10, wherein applying the signal includes applying a bipolar ablation signal. (13) The method of embodiment 10, wherein the organ comprises a heart and the tissue comprises pulmonary vein (PV) ostium tissue.
Claims
1. A catheter comprising: a shaft for insertion into a patient's organ; an expandable frame extending along a longitudinal axis from a proximal portion to a distal portion, the expandable frame attached to a distal end of the shaft; a first set of electrodes disposed on the distal portion of the expandable frame and configured to be placed in contact with tissue within the organ; a second set of electrodes disposed on the proximal portion of the expandable frame and configured to be interconnected to form a common electrode that is not in contact with the tissue; and switching circuitry for interconnecting at least two or more of the second set of electrodes to form the common electrode; Including, the expandable frame defines a first diameter at a maximum width; the distal portion of the expandable frame defines a second diameter smaller than the first diameter and spaced distally a first distance from the first diameter; the proximal portion of the expandable frame defines a third diameter spaced proximally from the first diameter a second distance; The catheter, wherein the second distance is greater than the first distance and the second diameter is greater than the third diameter.
2. The catheter of claim 1 , wherein the expandable frame comprises a membrane of an inflatable balloon.
3. The catheter of claim 1 , wherein the expandable frame comprises a spine of an expandable basket catheter.
4. The catheter of claim 1 , wherein the second set of electrodes are equiangularly distributed about the longitudinal axis of the expandable frame.
5. The catheter of claim 1 , wherein the organ comprises a heart and the tissue comprises pulmonary vein (PV) ostium tissue.
6. 1. A system comprising: A catheter comprising: a shaft for insertion into a patient's organ; an expandable frame extending along a longitudinal axis from a proximal portion to a distal portion, the expandable frame attached to a distal end of the shaft; a first set of electrodes disposed on the distal portion of the expandable frame and configured to be placed in contact with tissue within the organ; a second set of electrodes disposed on the proximal portion of the expandable frame and configured to be interconnected to form a common electrode that is not in contact with the tissue; and a catheter comprising: a switching circuit for interconnecting at least a portion of the second set of electrodes to each other to form the common electrode; Including, the expandable frame defines a first diameter at a maximum width; the distal portion of the expandable frame defines a second diameter smaller than the first diameter and spaced distally a first distance from the first diameter; the proximal portion of the expandable frame defines a third diameter spaced proximally from the first diameter a second distance; The second distance is greater than the first distance and the second diameter is greater than the third diameter.
7. The system of claim 6 , including a processor configured to control the switching circuitry.
8. 8. The system of claim 7, wherein the processor is configured to use the switching circuitry to acquire bipolar electrophysiology (EP) signals and / or apply bipolar ablation signals.
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