Radiofrequency ablation catheter with a steerable guidewire

The integration of a steerable guidewire within a radiofrequency ablation catheter simplifies surgical procedures by eliminating the need for guidewire insertion and withdrawal, facilitating efficient ablation at multiple sites and reducing surgical time and risks.

JP7765684B2Active Publication Date: 2025-11-07SHANGHAI GOLDEN LEAF MED TEC CO LTD
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Patent Information

Application Number
JP2022543630
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-01-16
Filing Date
2021-01-15
Publication Date
2025-11-07
Estimated Expiration
2041-01-15

AI Technical Summary

Technical Problem

Conventional radiofrequency ablation catheters require frequent insertion and withdrawal of a guidewire, which is cumbersome and increases intraoperative risks, especially when multiple ablation regions are targeted, and guidewires lack auxiliary functions beyond guiding.

Method used

A radiofrequency ablation catheter integrated with a steerable guidewire that allows for the guidewire to be moved within the catheter, eliminating the need for separate guidewire insertion and withdrawal, and enabling the catheter to be steered to multiple ablation sites without additional guidewires.

Benefits of technology

Simplifies surgical procedures by reducing the need for guidewire manipulation, shortening surgical time, and minimizing intraoperative risks while allowing for efficient ablation at multiple locations within the body.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The radiofrequency ablation catheter with a movable guidewire comprises, in order, an electrode holder 1, an elongated catheter body 2, and a control handle 3. A lumen is provided inside the catheter body 2 for sliding a movable guidewire 10. The distal end of the movable guidewire 10 passes through the catheter body 2 and protrudes from the distal end of the electrode holder 1, and a flexible guidewire 12 attached to the distal end of the movable guidewire 10 is always held outside the electrode holder 1. The proximal end of the movable guidewire 10 exits the proximal end of the catheter body 2 and enters the control handle 3, where it is fixed to a pusher member 8 attached to the control handle 3 or to a pusher member 8 attached outside the control handle 3. The movable guidewire 10 is advanced or retracted by the action of the pusher member 8. In this way, the radiofrequency ablation catheter with the movable guidewire 10 combines the movable guidewire 10 with the radiofrequency ablation catheter, thereby eliminating the need to pull out the movable guidewire 10 from the radiofrequency ablation catheter, simplifying the operation of the movable guidewire 10 and making it convenient to move the radiofrequency ablation catheter during surgery.
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Description

[Technical Field]

[0001] The present invention relates to a radiofrequency ablation catheter with a steerable guidewire, which belongs to the field of medical devices. [Background technology]

[0002] Radiofrequency ablation technology is widely used in the medical field, and radiofrequency ablation catheters equipped with multiple electrodes can significantly improve radiofrequency efficiency.

[0003] Currently, radiofrequency ablation catheters must be advanced into blood vessels by guiding a guidewire before the procedure begins. Specifically, a guidewire is first advanced to the target ablation area (such as a branch vessel), and the guide catheter enters the human body along the guidewire. Once the desired location is reached, the guidewire is withdrawn. Next, a radiofrequency ablation catheter equipped with a contracted electrode holder is advanced into the guide catheter and delivered to the target ablation location. The guide catheter is then retracted, and the electrode holder is expanded, attaching the electrode to the wall and performing ablation. After ablation is completed, the electrode holder is contracted and the radiofrequency ablation catheter is withdrawn.

[0004] If the position of the radiofrequency ablation catheter needs to be moved during surgery, the guidewire must be reinserted and then moved. In particular, if multiple target ablation regions need to be ablated during the same procedure, such as ablation of multiple side or different branch vessels, the radiofrequency ablation catheter must be withdrawn and the guidewire must be used again to guide the radiofrequency ablation catheter into the target region. The need to insert and withdraw the guidewire multiple times is cumbersome and inconvenient, and may increase intraoperative risks.

[0005] In addition, conventional guidewires are generally installed as accessories to radiofrequency ablation catheters or as independent medical devices. Therefore, the guidewire and the radiofrequency ablation catheter are stored and managed separately, which is inconvenient. In addition, conventional guidewires have relatively simple functions and do not have any auxiliary functions other than guiding. Summary of the Invention [Problem to be solved by the invention]

[0006] The technical problem that the present invention aims to solve is to provide a radiofrequency ablation catheter having a steerable guidewire. [Means for solving the problem]

[0007] To achieve the above technical objectives, the present invention adopts the following technical solutions: A radiofrequency ablation catheter with a movable guidewire comprises an electrode holder, a catheter body, and a control handle, which are arranged in this order. Both ends of the catheter body are connected to the electrode holder and the control handle, respectively. A lumen is provided within the catheter body for sliding the movable guidewire. The far end of the movable guidewire passes through the catheter body and protrudes from the distal end of the electrode holder, always remaining outside the distal end of the electrode holder. The proximal end of the movable guidewire exits the near end of the catheter body and enters the control handle, where it is fixed to a pusher member provided on or outside the control handle. The movable guidewire advances or retreats under the action of the pusher member to change the contracted or expanded state of the electrode holder.

[0008] Preferably, the movable guidewire comprises a guidewire body and a soft guidewire located at the distal end of the guidewire body, and the soft guidewire located at the distal end of the movable guidewire is always held outside the electrode holder.

[0009] Preferably, the distal end of the movable guidewire is not fixed to the distal end of the electrode holder, and the distal end of the movable guidewire and the distal end of the electrode holder can slide freely relative to each other.

[0010] Preferably, a first stop point is set on the portion of the guide wire body of the movable guide wire that protrudes from the distal end of the electrode holder, and the first stop point is limited to the outside of the distal end of the electrode holder in order to expand the electrode holder.

[0011] Alternatively, preferably, a second stop point is set in the portion of the guidewire body of the movable guidewire that is parallel to the electrode holder, and the second stop point is limited between the distal end and proximal end of the electrode holder to contract the electrode holder.

[0012] Alternatively, preferably, a first stop point is set on a portion of the guidewire body of the movable guidewire that protrudes beyond the distal end of the electrode holder, and the first stop point is restricted to the outside of the distal end of the electrode holder to expand the electrode holder, and a second stop point is set on a portion of the guidewire body of the movable guidewire that is parallel to the electrode holder, and the second stop point is restricted between the distal and proximal ends of the electrode holder to contract the electrode holder.

[0013] Preferably, the portion of the guidewire body of the movable guidewire that is close to the soft guidewire is fixed to the distal end of the electrode holder, or the portion of the guidewire body of the movable guidewire that protrudes from the distal end of the electrode holder has a first stop point that is fixed to the distal end of the electrode holder.

[0014] Preferably, the shape of the distal end of the flexible guidewire is one or more of a straight line, a curved line, and an arc line.

[0015] Preferably, the distal end of the soft guidewire is angled at an angle of 0 to 90 degrees.

[0016] Preferably, the guidewire body of the movable guidewire is a support wire. [Effects of the Invention]

[0017] The radiofrequency ablation catheter with a movable guidewire provided by the present invention combines a movable guidewire with a radiofrequency ablation catheter, thereby eliminating the need to insert and remove the movable guidewire into the radiofrequency ablation catheter and simplifying the operation of the movable guidewire, facilitating the insertion of the radiofrequency ablation catheter into the target lumen before surgery and facilitating the movement of the radiofrequency ablation catheter during surgery. During surgery, the flexible guidewire installed at the distal end of the movable guidewire can guide the catheter into the target ablation area without using an additional guidewire. During the movement process after ablation on one side, there is no need to withdraw the catheter; the electrode holder is retracted and then retracted into the guide catheter, exposing the flexible guidewire to the outside of the guide catheter, facilitating entry into branch vessels. Entering a branch vessel can be achieved by moving or rotating the radiofrequency ablation catheter or the movable guidewire. These improvements shorten the surgical time and eliminate the need to frequently insert and remove the guidewire and radiofrequency ablation catheter during surgery, saving time and money. More importantly, once the radiofrequency ablation catheter is inserted into the body, it can be ablated at multiple locations (on both the left and right sides, or in different branch vessels) and then withdrawn after treatment is complete, eliminating the need to withdraw it midway, reducing intraoperative risks and surgical time. [Brief explanation of the drawings]

[0018] [Figure 1] 1 is a schematic structural diagram of a movable guide wire provided by a first embodiment; [Figure 2] FIG. 1 is a schematic structural diagram of a radiofrequency ablation catheter provided by a first embodiment, in which the mesh tubular holder is in a contracted state and a control member for controlling a movable guide wire is provided on a control handle. [Figure 3]FIG. 10 is a schematic structural diagram of another control handle in which the control member for controlling the movable guidewire is located outside the control handle. [Figure 4] FIG. 1 is a schematic structural diagram of an expanded mesh tubular holder in the first embodiment, in which the distal end of the movable guide wire is not fixed. [Figure 5] 1 is a schematic structural diagram of an expanded mesh tubular holder in the first embodiment, in which the distal end of the movable guide wire and the distal end of the electrode holder are fixed. FIG. [Figure 6] FIG. 10 is a schematic structural diagram of a movable guidewire provided by a second embodiment, in which a first stop point is set on the movable guidewire; [Figure 7] FIG. 10 is a schematic structural diagram of a radiofrequency ablation catheter provided by a second embodiment, in which the mesh tubular holder is in a contracted state. [Figure 8] FIG. 10 is a schematic structural diagram of an expanded mesh tubular holder in a second embodiment, in which the first stopping point is used to expand the electrode holder. [Figure 9] FIG. 10 is a schematic structural diagram of a movable guidewire provided by a third embodiment, in which a first stop point and a second stop point are set on the movable guidewire; [Figure 10] FIG. 10 is a schematic structural diagram of a radiofrequency ablation catheter provided by a third embodiment, in which the mesh tubular holder is in a contracted state and the second stop point is used to contract the electrode holder. [Figure 11] FIG. 10 is a schematic structural diagram of a radiofrequency ablation catheter provided by a third embodiment, in which the mesh tubular holder is in an expanded state and the first stop point is used to expand the electrode holder. DETAILED DESCRIPTION OF THE INVENTION

[0019] The technical solutions of the present invention are described in further detail below with reference to the accompanying drawings and specific embodiments. First Example

[0020] 1 and 2, a radiofrequency ablation catheter with a movable guidewire provided by a first embodiment of the present invention comprises an electrode holder 1, an elongated catheter body 2, and a control handle 3, arranged in that order. Both ends of the catheter body 2 are connected to the electrode holder 1 and the control handle 3, respectively. The end of the radiofrequency ablation catheter closest to the patient is the distal end, and the end of the radiofrequency ablation catheter closest to the operator is the proximal end. The electrode holder 1 is located at the distal end of the catheter body 2, and the control handle 3 is connected to the proximal end of the catheter body 2.

[0021] As shown in Figures 4 and 5, the electrode holder 1 may be a mesh tubular holder, which is a mesh tube of a specific length. The mesh tubular holder contains grid meshes made of monofilament or multifilament, each spirally braided in the forward and reverse directions. As the mesh tubular holder expands and adheres to the wall, the braided wires woven around each node support each other and do not easily collapse.

[0022] The mesh tube may or may not be shaped prior to assembly, and the shape of the mesh tube may be distorted both during assembly and when expanded. Once assembled, the overall shape of the mesh tubular holder may be cylindrical or drum-shaped.

[0023] After assembly, the two ends of the mesh tube are gathered and connected with a connecting tube to form the distal and proximal ends of the mesh tubular holder. The midsection of the mesh tubular holder has a contracted state and an expanded state, and one or more electrodes 9 are attached to the braided wire of the midsection of the mesh tube. The midsection of the mesh tube 1 can expand around the lumen of the ablation site by itself or can be expanded around the lumen by the action of a wall-attachment adjustment wire or a movable guide wire, thereby attaching the electrodes 9 to the wall. The electrodes 9 can be block-shaped or ring-shaped, and the outer surface of the electrodes 9 is higher than the outer surface of the braided wire, allowing the electrodes 9 to fully contact the wall of the lumen of the target lumen and improving the wall-attachment effect.

[0024] The braiding wire used to braid the mesh tube can be a metal material such as stainless steel or a memory alloy, or a polymer material. When a memory alloy is used to fabricate the mesh tube, the mesh tube can self-expand by relying on the automatic deformation of the memory alloy once the electrode holder reaches the target lumen and the guide catheter is removed. To improve the wall adhesion of the electrode 9 attached to the electrode holder 1, the wall adhesion adjustment wire can be pulled to adjust the wall adhesion of the electrode holder, thereby adapting to lumens of various diameters. For mesh tubes without memory function, the electrode can be attached to the wall by directly adjusting the expanded diameter of the mesh tube with the wall adhesion adjustment wire after the guide catheter is removed. Of course, in other embodiments, the contraction and expansion of the mesh tube can be achieved by pulling the movable guide wire, thereby eliminating the need for a wall adhesion adjustment wire.

[0025] The elongated catheter body 2 is used to house and support the various lead wires of the radiofrequency ablation catheter and the movable guidewire 10. The catheter body 2 can also be used to deliver gas or liquid to a target lumen at the distal end. The catheter body 2 can be a perforated tube, with some of the lumens used to house radiofrequency wires, thermocouple wires, and other functional measurement leads, and other lumens used to house support wires, wall attachment adjustment wires, or the movable guidewire 10.

[0026] The lumen housing the movable guidewire 10 may be independent or may share a lumen with a wall-attachment adjustment wire or support wire. The lumen housing the movable guidewire 10 may be centrally located in the multi-lumen tube or eccentrically located. For example, the movable guidewire 10 may be located in the central lumen or one of the peripheral lumens of the multi-lumen tube.

[0027] A radio frequency wire and a thermocouple wire are fixed inside each electrode 9, and one end of the radio frequency wire and the thermocouple wire is fixed inside the electrode 9. The thermocouple wire is insulated and wrapped inside the thermocouple to avoid the influence of high frequency electricity. The other ends of the radio frequency wire and the thermocouple wire extend through a lumen inside the catheter body 2 from the distal end to the proximal end of the catheter body 2 and are fixed to the control handle 3. Thus, they are connected to a high frequency ablation device via an interface in the control handle 3.

[0028] The support wire is fixedly installed inside the catheter body 2 to support the catheter body 2. If the guidewire body 11 of the movable guidewire 10 has appropriate strength, the guidewire body 11 can also function as a support wire for the catheter body 2. Therefore, the guidewire body 11 of the movable guidewire 10 can also be used as a support wire, eliminating the need for a separate support wire.

[0029] In the radiofrequency ablation catheter with a movable guidewire provided by the first embodiment, the movable guidewire 10 is integrated with the radiofrequency ablation catheter, and there is no need to withdraw the movable guidewire 10 during the surgical procedure, but it is always kept inside the radiofrequency ablation catheter.

[0030] Specifically, a lumen for sliding a movable guidewire is provided within the catheter body 2. The movable guidewire 10 includes a guidewire body 11 and a flexible guidewire 12 disposed at the distal end of the guidewire body 11. As shown in FIG. 2, the distal end of the movable guidewire 10 passes through the catheter body 2 and protrudes from the distal end of the electrode holder 1, always remaining outside the distal end of the electrode holder. The proximal end of the movable guidewire 10 passes through the proximal end of the catheter body 2 and enters the control handle 3, where it is fixed to a pusher member 4 disposed on the control handle 3. The movable guidewire 10 advances or retreats by the action of the pusher member 4, thereby changing the contracted and expanded states of the electrode holder. The control handle 3 may have a structure as shown in FIG. 3. After entering the control handle 3, the proximal end of the movable guidewire 10 passes only through the control handle 3 and is not fixed to any control member within the control handle 3; instead, it is fixed to a pusher member 8 disposed outside the control handle 3. The control handle 3 shown in Figures 2 and 3 is provided with several other interface or control members for securing radio frequency wires, thermocouple wires and other lead wires, as well as for connecting the control handle to an external radio frequency ablation device.

[0031] 2, in this embodiment, by setting the length of the movable guidewire 10, the flexible guidewire 12 placed at the distal end of the movable guidewire can be kept outside the electrode holder 1. In another embodiment, by setting a first stop point in a portion of the guidewire body 11 of the movable guidewire 10 close to the flexible guidewire 12 and limiting the first stop point to the outside of the distal end of the electrode holder 1, the flexible guidewire 12 can be kept outside the electrode holder 1.

[0032] The flexible guidewire 12 has a guiding function, which allows it to easily enter the target branched blood vessel. The distal end of the flexible guidewire 12, which is attached to the distal end of the movable guidewire 10, is angled at 0 to 90 degrees. The shape of the distal end of the flexible guidewire 12 can be configured as one or more of straight, curved, and arc shapes, including, but not limited to, an L-shape, a straight shape, or a U-shape, thereby enabling it to reach target lumens at different positions.

[0033] In this embodiment, the distal end of the movable guidewire 10 may or may not be fixed to the distal end of the electrode holder 1. When the distal end of the movable guidewire 10 and the distal end of the electrode holder 1 are not fixed, the distal end of the movable guidewire 10 and the distal end of the electrode holder 1 can slide freely relative to each other. When the distal end of the movable guidewire 10 is fixed to the distal end of the electrode holder 1, the portion of the guidewire body 11 of the movable guidewire 10 that is close to the flexible guidewire 12 can be directly or indirectly fixed to the distal end of the electrode holder 1 by welding, adhesive bonding, heat fusion, or other methods. In this case, the movable guidewire 10 has the function of expanding and contracting the electrode holder 1.

[0034] As shown in Figure 4, if the distal end of the movable guidewire 10 is not fixed to the distal end of the electrode holder 1, the distal end of the electrode holder 1 slides freely relative to the movable guidewire 10 during the process of contracting and expanding the electrode holder 1. The contraction and expansion of the electrode holder 1 can be achieved by other means, for example, by pulling the wall-attached adjustment wire backward to expand the electrode holder 1, and by pushing the wall-attached adjustment wire forward to contract the electrode holder 1. During the above process, the movable guidewire 10 does not slip relative to the catheter body 2.

[0035] 5, when the distal end of the movable guidewire 10 is fixed to the distal end of the electrode holder 1, the electrode holder 1 can be contracted and expanded by pushing the movable guidewire 10 forward or pulling it backward. During this process, the movable guidewire 10 slips inside the catheter body 2.

[0036] The radiofrequency ablation catheter provided by the first embodiment of the present invention combines a movable guidewire 10 with a radiofrequency ablation catheter, thereby eliminating the need to move the movable guidewire 10 in and out of the radiofrequency ablation catheter during surgery, simplifying the operation of the movable guidewire 10 and facilitating the movement of the radiofrequency ablation catheter during surgery.

[0037] When using the radiofrequency ablation catheter with the movable guidewire, the radiofrequency ablation catheter with the movable guidewire is advanced directly to the target ablation area under the guidance of the flexible guidewire 12 at the distal end of the movable guidewire. The electrode holder 1 reaches the target ablation location by retracting the guide catheter or pushing the radiofrequency ablation catheter forward, and the electrode holder 1 expands and opens by its own elasticity. Depending on the structure of the radiofrequency ablation catheter, the expansion of the electrode holder 1 and the attachment of the electrodes 9 to the wall can be adjusted using the wall attachment adjustment wire. Alternatively, after the radiofrequency ablation catheter is removed from the guide catheter, the expansion of the electrode holder 1 can be directly controlled using the wall attachment adjustment wire to attach multiple electrodes 9 to the wall. After ablation is completed, the radiofrequency ablation catheter is retracted into the guide catheter, and the electrode holder 2 is retracted using the guide catheter. In the case of a radiofrequency ablation catheter in which the distal end of the movable guidewire 10 and the distal end of the electrode holder 1 are fixed, the electrode holder 1 can be contracted and expanded by pushing the movable guidewire 10 forward or pulling it backward.

[0038] When it is necessary to move the position of the radiofrequency ablation catheter within the blood vessel, the flexible guide wire 12 is used to move the contracted radiofrequency ablation catheter to a new target ablation position, and then the guide catheter is retracted, the electrode holder 1 of the radiofrequency ablation catheter is expanded, and a new ablation is performed.

[0039] During the above surgical procedure, there is no need to guide the insertion and withdrawal of a guidewire, which simplifies the operation of the movable guidewire, facilitates the movement of the radiofrequency ablation catheter during the surgical procedure, and saves surgical time.

[0040] If the shape of the blood vessel bifurcation is special and the shape of the soft guidewire 12 at the distal end of the movable guidewire 10 is not suitable for entering the target branched blood vessel, for a radiofrequency ablation catheter in which the distal end of the movable guidewire 10 is not fixed and the proximal end of the movable guidewire 10 is fixed to a pusher member 8 outside the control handle 3, the movable guidewire 10 can be pulled out of the catheter body 2 and the control handle 3 and replaced with a movable guidewire having a soft guidewire of an appropriate shape. Second Example

[0041] As shown in FIGS. 6 to 8 , the second embodiment provides a radiofrequency ablation catheter with a movable guidewire, similar in structure to the first embodiment. The radiofrequency ablation catheter includes an electrode holder 1, an elongated catheter body 2, and a control handle 3, which are arranged in that order. The ends of the catheter body 2 are connected to the electrode holder 1 and the control handle 3, respectively. A lumen is provided within the catheter body 2 for sliding a movable guidewire 20. The distal end of the movable guidewire 20 passes through the catheter body 2 and protrudes from the distal end of the electrode holder 1, remaining confined outside the distal end of the electrode holder. The proximal end of the movable guidewire 20 exits the proximal end of the catheter body 2 and enters the control handle 3, where it is fixed to a pusher member attached to the control handle 3 or to a pusher member attached outside the control handle 3. The movable guidewire 20 advances or retreats under the action of the pusher member, thereby changing the contracted or expanded state of the electrode holder.

[0042] In this embodiment, except that the structure of the movable guidewire 20 is different from that of the movable guidewire 10 in the first embodiment, the structures of the other parts are the same as those of the high-frequency ablation catheter provided by the first embodiment, and will not be described again here.

[0043] Hereinafter, only the structure and function of the movable guide wire 20 used in the second embodiment will be described.

[0044] As shown in FIG. 6, the movable guidewire 20 used in this embodiment includes a guidewire body 21 and a flexible guidewire 22 installed at the distal end of the guidewire body 21. The flexible guidewire 22 at the distal end has a guiding function that facilitates entry into the target branched blood vessel. The distal end of the flexible guidewire 22 is angled at a 0-90 degree angle. The shape of the distal end of the flexible guidewire 22 can be configured in one or more of the following shapes, including, but not limited to, an L-shape, a straight shape, or other conventional guidewire end shapes, such as a straight line, a curve, and an arc, and is used to enter different ablation locations.

[0045] The movable guidewire 20 has a first stop point 23. The first stop point 23 may be a connecting tube with a diameter larger than the inner diameter of the distal end connecting tube of the electrode holder 1, or may be a protrusion or connecting block with a height greater than the inner diameter of the distal end connecting tube of the electrode holder 1. As shown in FIG. 7 , the first stop point 23 is set at the portion of the guidewire body 21 that protrudes from the distal end of the electrode holder 1 and is restricted to the outside of the distal end of the electrode holder 1. Therefore, the flexible guidewire 22 installed at the distal end of the movable guidewire 20 is restricted to the outside of the electrode holder 1. The first stop point 21 has the function of expanding the electrode holder 1, allowing the electrode to be securely attached to the wall.

[0046] In this embodiment, a first stop point 23 is set on the movable guide wire 20, so that when the movable guide wire 20 is pulled backward, as shown in FIG. 8, the first stop point 23 moves the distal end 15 of the electrode holder 1 to the proximal end of the electrode holder 1, thereby expanding the electrode holder 1 and completing the operation of attaching the electrode 9 to the wall.

[0047] The movable guide wire 20 can be combined with a guide catheter to expand and contract the electrode holder 1 .

[0048] When performing surgery using the radiofrequency ablation catheter with the movable guidewire, the radiofrequency ablation catheter with the movable guidewire is guided directly into the target lumen by the flexible guidewire 22 at the distal end of the movable guidewire. The radiofrequency ablation catheter is then removed from the inside of the guide catheter by either withdrawing the guidewire or pushing the radiofrequency ablation catheter forward, and the electrode holder 1 reaches the target ablation location. The electrode holder 1 then expands and opens using its own elasticity. At this time, the movable guidewire 20 is pulled to adjust the expansion of the electrode holder 1 and the attachment of the electrodes 9 to the wall, or, after the radiofrequency ablation catheter is removed from the inside of the guide catheter, the movable guidewire 20 is used to directly control the expansion of the electrode holder 1 and attach the multiple electrodes 9 to the wall. After the ablation is completed, the movable guidewire 20 is pushed forward, releasing the restriction of the movable guidewire 20 on the distal end of the electrode holder 1. The radiofrequency ablation catheter then retracts into the inside of the guide catheter, and the guide catheter is used to retract the electrode holder 2.

[0049] When it is necessary to move the position of the radiofrequency ablation catheter within the blood vessel, the contracted radiofrequency ablation catheter is moved to a new target ablation position using the flexible guidewire 22, and then the guide catheter is retracted and the electrode holder 1 of the radiofrequency ablation catheter is expanded via the movable guidewire 20 to perform a new ablation.

[0050] During the above-described surgical procedure, there is no need to guide the insertion and withdrawal of the guidewire, which simplifies the operation of the movable guidewire 20 and facilitates the movement of the radiofrequency ablation catheter during the surgical procedure. In addition, in this embodiment, by setting the first stop point 23 at the distal end of the movable guidewire 20, the movable guidewire 20 also functions as a wall attachment adjustment wire, eliminating the need to install an additional wall attachment adjustment wire on the radiofrequency ablation catheter.

[0051] In this embodiment, the expansion of the electrode holder 1 is achieved by setting the first stop point 23 at the distal end of the movable guidewire 20, which is similar to the function achieved in the first embodiment by fixing the distal end of the movable guidewire 20 to the distal end of the electrode holder 1. However, as opposed to fixing the distal end of the movable guidewire 20 to the distal end of the electrode holder 1, setting the first stop point 23 at the distal end of the movable guidewire 20 in this manner is more convenient for installation. Furthermore, the distal end of the electrode holder 1 and the distal end of the movable guidewire 20 can slide relatively freely, which improves the adaptability of the electrode holder 1 to the blood vessel.

[0052] In this embodiment, the first stop point 23 set on the movable guidewire 20 can be fixed to the distal end of the electrode holder 1, so that the movable guidewire 20 functions as a wall attachment adjustment wire. In this case, the function of the movable guidewire 20 is the same as the function that can be achieved by fixing the distal end of the movable guidewire 20 to the distal end of the electrode holder 1 in the first embodiment. Third Example

[0053] As shown in FIGS. 9 to 11 , the third embodiment provides a radiofrequency ablation catheter with a movable guidewire, similar in structure to the first embodiment. The radiofrequency ablation catheter includes an electrode holder 1, an elongated catheter body 2, and a control handle 3, which are arranged in that order. The catheter body 2 has two ends connected to the electrode holder 1 and the control handle 3, respectively. A lumen is provided within the catheter body 2 for sliding a movable guidewire 30. The distal end of the movable guidewire 30 passes through the catheter body 2 and protrudes from the distal end of the electrode holder 1, remaining confined outside the distal end of the electrode holder. The proximal end of the movable guidewire 30 exits the proximal end of the catheter body 2 and enters the control handle 3, where it is secured to a pusher member attached to the control handle 3 or to a pusher member attached outside the control handle 3. The movable guidewire 30 advances or retreats under the action of the pusher member, thereby changing the contracted or expanded state of the electrode holder.

[0054] In this embodiment, except that the structure of the movable guidewire 30 is different from that of the movable guidewire 10 in the first embodiment, the structures of the other parts are the same as those of the high-frequency ablation catheter provided by the first embodiment, and will not be described again here.

[0055] Hereinafter, only the structure of the movable guide wire 30 used in the third embodiment will be described.

[0056] As shown in FIG. 9, the movable guidewire 30 used in this embodiment includes a guidewire body 31 and a flexible guidewire 32 attached to the distal end of the guidewire body 31. The flexible guidewire 32 at the distal end has a guiding function that facilitates entry into the target branched blood vessel. The distal end of the flexible guidewire 32 is angled at a 0-90 degree angle. The shape of the distal end of the flexible guidewire 32 may be one or more of a straight, curved, or arc shape, including, but not limited to, an L-shape, a straight shape, or other conventional guidewire end shapes, and is used to enter different ablation locations.

[0057] The movable guidewire 30 is provided with a first stop point 33 and a second stop point 34. The first stop point 33 and the second stop point 34 may each be a connecting tube with a diameter larger than the inner diameter of the distal end connecting tube of the electrode holder 1, or may be a protrusion or connecting block with a height greater than the inner diameter of the distal end connecting tube of the electrode holder 1. The second stop point 34 is located a predetermined distance from the first stop point 33. The first stop point 33 is located at a portion of the guidewire body 31 that protrudes from the distal end of the electrode holder 1 and is limited to the outside of the distal end of the electrode holder 1. Therefore, the flexible guidewire 32 located at the distal end of the movable guidewire 30 is always kept outside the electrode holder 1. The first stop point 33 causes the electrode holder 1 to expand. The second stop point 34 is set in a portion of the guidewire body 31 parallel to the electrode holder 1, is limited between the distal end 15 and the proximal end 16 of the electrode holder 1, and is used to retract the electrode holder 1.

[0058] In this embodiment, a first stop point 33 and a second stop point 34 are provided on the movable guidewire 30. The first stop point 33 functions to expand the electrode holder 1, ensuring that the electrode 9 is securely attached to the wall, while the second stop point 34 is used to contract the electrode holder 1. As shown in FIG. 11 , when the movable guidewire 30 is pulled backward, the first stop point 33 moves the distal end 15 of the electrode holder 1 toward the proximal end 16 of the electrode holder 1, thereby expanding the electrode holder 1 and completing the action of attaching the electrode 9 to the wall. As shown in FIG. 10 , when the movable guidewire 30 is pushed forward, the second stop point 34 moves the distal end 15 of the electrode holder 1 away from the proximal end 16 of the electrode holder 1, thereby contracting the electrode holder 1. In this embodiment, the expansion and contraction of the electrode holder 1 can be achieved using only the movable guidewire.

[0059] When performing surgery using the radiofrequency ablation catheter with the movable guidewire, the radiofrequency ablation catheter with the movable guidewire is directly advanced into the lumen of the target ablation area under the guidance of the flexible guidewire 32 at the distal end of the movable guidewire. The guide catheter is then retracted or pushed forward to remove the radiofrequency ablation catheter from the inside of the guide catheter, and the electrode holder 1 is placed at the target ablation location. The electrode holder 1 expands by relying on its own elasticity. At this time, the movable guidewire 30 is pulled to adjust the expansion of the electrode holder 1 and the adhesion of the electrodes 9 to the wall, or the radiofrequency ablation catheter is removed from the inside of the guide catheter and the movable guidewire 30 is used to directly control the expansion of the electrode holder 1, causing the multiple electrodes 9 to adhere to the wall. After ablation is completed, the movable guidewire 30 is pushed forward to contract the electrode holder 1, and the radiofrequency ablation catheter is then retracted into the guide catheter and removed from the body.

[0060] When it is necessary to reposition the radiofrequency ablation catheter within the blood vessel, the retracted radiofrequency ablation catheter is moved to a new target ablation location using the flexible guidewire 32. The guide catheter is then retracted, and the electrode holder 1 of the radiofrequency ablation catheter is expanded via the movable guidewire 30 to perform a new ablation.

[0061] During the above surgical procedure, there is no need to guide the insertion and withdrawal of the guidewire, which simplifies the operation of the movable guidewire 30, facilitates the movement of the radiofrequency ablation catheter during the surgical procedure, and saves surgical time. In addition, in this embodiment, by setting a first stop point 33 and a second stop point 34 at the distal end of the movable guidewire 30, the movable guidewire 30 also functions as a wall attachment adjustment wire. Therefore, there is no need to install an additional wall attachment adjustment wire on the radiofrequency ablation catheter.

[0062] In this embodiment, by setting a first stop point 33 and a second stop point 34 at the distal end of the movable guidewire 30, a function similar to that of the first embodiment, in which the distal end of the movable guidewire 30 is fixed to the distal end of the electrode holder 1, can be achieved. However, compared to fixing the distal end of the movable guidewire 30 to the distal end of the electrode holder 1, this method of setting a first stop point 33 and a second stop point 34 at the distal end of the movable guidewire 30 is more convenient to install, allows for more flexible adjustment to the electrode holder 1, and provides better adaptability of the electrode holder 1 to blood vessels. Fourth Example

[0063] The three embodiments of the present invention have been described in detail above with reference to the accompanying drawings. In addition to the three types of movable guidewires installed in radiofrequency ablation catheters, a movable guidewire with only a second stop point can also be installed inside the radiofrequency ablation catheter as needed. The second stop point is set in a portion of the guidewire body parallel to the electrode holder and is limited between the distal and proximal ends of the electrode holder to allow the electrode holder to contract.

[0064] In this case, the movable guidewire can be combined with a self-expanding electrode holder to realize the contraction and expansion of the electrode holder. By pushing the movable guidewire forward, the electrode holder can be contracted, and by pulling the movable guidewire backward, the restriction of the second stop point on the distal end of the electrode holder is released, allowing the electrode holder to self-expand inside the lumen. The movable guidewire can also be combined with a wall-attached adjustment wire to realize the expansion and contraction of the electrode holder.

[0065] The structure of the radiofrequency ablation catheter with a movable guidewire provided by the present invention has been described above by taking a radiofrequency ablation catheter with a mesh tubular holder as an example. The electrode holder structure can also be other structures, such as a spiral electrode holder and a mesh basket electrode holder. Various expandable and contractible electrode holders in the prior art can be combined with the movable guidewire structure provided in the above embodiments to form a radiofrequency ablation catheter with a movable guidewire. The movable guidewire structure can be any of the structures in the above embodiments.

[0066] To summarize the above, the radiofrequency ablation catheter with a movable guidewire provided by the present invention combines the movable guidewire with the catheter, thereby eliminating the need to insert and remove the movable guidewire into the radiofrequency ablation catheter, simplifying the operation of the movable guidewire and facilitating catheter movement during the surgical procedure. During the surgical procedure, there is no need to use an additional guidewire; the target ablation area can be accessed via the soft guidewire at the distal end of the movable guidewire. After ablation on one side is completed, there is no need to completely withdraw the catheter; simply retract the electrode holder and retract it into the guide catheter, exposing the soft guidewire to the outside of the guide catheter, facilitating entry into branch vessels. To enter a branch vessel, the target branch vessel can be accessed by moving or rotating the radiofrequency ablation catheter or by moving or rotating the movable guidewire. This improvement shortens the surgical time and eliminates the need to insert an additional guidewire during the surgical procedure, thereby reducing costs. More importantly, once the radiofrequency ablation catheter is inserted into the body, it can be withdrawn after ablation is completed at multiple locations (on both sides or in different branching vessels), eliminating the need for withdrawal midway, reducing intraoperative risks and surgical time.

[0067] Furthermore, by improving the structure of the movable guidewire, the movable guidewire can also function as a wall attachment adjustment wire or a support wire. By setting a first stop point and / or a second stop point on the movable guidewire, the contraction and expansion of the electrode holder can be achieved, and the movable guidewire can also function as a wall attachment adjustment wire. Furthermore, by adjusting the strength and stiffness of the movable guidewire, the movable guidewire can also function as a support wire.

[0068] The above is a detailed description of the radiofrequency ablation catheter with a steerable guidewire provided by the present invention. Any obvious modifications made thereto by those skilled in the art without departing from the essential spirit of the present invention will constitute infringement of the patent rights of the present invention and will incur corresponding legal liability.

Claims

1. A radiofrequency ablation catheter with a movable guidewire, comprising an electrode holder, a catheter body, and a control handle arranged in that order, the catheter body having opposite ends connected to the electrode holder and the control handle, respectively; A lumen for sliding the movable guidewire is provided inside the catheter body, the movable guidewire comprises a guidewire body and a flexible guidewire disposed at a distal end of the guidewire body; a first stop point is set on a portion of the guidewire body that protrudes from the distal end of the electrode holder, the first stop point being restricted to an exterior of the distal end of the electrode holder in order to expand the electrode holder; and a second stop point is set on a portion of the guidewire body that is parallel to the electrode holder, the second stop point being restricted between the distal end and the proximal end of the electrode holder in order to contract the electrode holder; the distal end of the movable guidewire and the distal end of the electrode holder are freely slidable relative to each other; a distal end of the movable guidewire passes through the catheter body and protrudes from the distal end of the electrode holder and is always confined outside the distal end of the electrode holder; the proximal end of the movable guidewire exits the proximal end of the catheter body and enters the control handle and is secured to a pusher member on or external to the control handle; A radiofrequency ablation catheter, characterized in that the movable guide wire advances or retreats by the action of the pusher member to change the contracted or expanded state of the electrode holder.

2. 2. The radiofrequency ablation catheter according to claim 1, wherein the flexible guidewire is always held outside the electrode holder.

3. 2. The radiofrequency ablation catheter with a movable guidewire according to claim 1, wherein the shape of the distal end of the flexible guidewire is one or more of a straight line, a curve, and an arc.

4. 2. The radiofrequency ablation catheter according to claim 1, wherein the distal end of the flexible guidewire is angled at an angle of 0 to 90 degrees.

5. The radiofrequency ablation catheter according to claim 1 , wherein the guidewire body of the movable guidewire is a support wire.

6. 2. The radiofrequency ablation catheter according to claim 1, wherein the electrode holder is a mesh tube holder, a spiral holder, or a mesh basket holder, and the electrode holder is provided with a plurality of electrodes.

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