Medical Devices and Systems

The medical device ensures controlled energy transmission by using a displacement shaft and detection system to prevent unintended energy application, enhancing safety and design flexibility.

JP7735198B2Active Publication Date: 2025-09-08TERUMO KK
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Patent Information

Application Number
JP2022016303
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-04
Publication Date
2025-09-08
Estimated Expiration
2042-02-04

AI Technical Summary

Technical Problem

Existing medical devices face challenges in preventing energy transmission to biological tissue without proper pressing, risking thrombus formation or damage due to electrode exposure.

Method used

A medical device with a displacement shaft, operation knob, detection unit, and power supply system that ensures energy is only supplied when the energy transmission unit is pressed against tissue, using a detection switch to prevent unintended energy transmission.

Benefits of technology

Prevents energy supply to the energy transmission unit unless the device is properly pressed against tissue, reducing risks of thrombus formation and tissue damage while simplifying wiring and improving design flexibility.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a medical device and a medical system capable of inhibiting energy from being supplied to an energy transmission part without executing an operation to press the energy transmission part to a living tissue.SOLUTION: A medical device 10 includes: an expansion body 21; a shaft part 31 connected to the expansion body 21; an energy transmission part 22 provided in the expansion body 21; a housing 100 connected to a base end part of the shaft part 31; a displacement shaft 33 for compressing the expansion body 21 in an axial direction; an operation knob 110 movable with respect to the housing 100; a detection part 130 stored in the housing 100 for detecting the compression of the expansion body 21 by the displacement shaft 33; and a wire 160 that can be connected to a power supply device 190 for supplying power to the energy transmission part 22, and extends to the energy transmission part 22. The detection part 130 outputs, to the power supply device 190, a change in the state of a detection switch 131 in which the state is switched accompanying the displacement of the displacement shaft 33 by the operation knob 110.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to a medical device and a medical system that include an expandable body in which an energy transmission section that is inserted into a living body and cauterizes living tissue is disposed. [Background technology]

[0002] Chronic heart failure is known as a type of heart disease. Chronic heart failure is broadly divided into systolic dysfunction and diastolic dysfunction based on indicators of cardiac function. In patients with diastolic dysfunction, the myocardium becomes enlarged and stiff, causing increased blood pressure in the left atrium and a decrease in the heart's pumping function. This can lead to the patient exhibiting symptoms of heart failure, such as pulmonary edema. There are also heart diseases in which increased blood pressure in the right atrium due to pulmonary hypertension and other conditions can cause the heart's pumping function to decrease, resulting in symptoms of heart failure.

[0003] In recent years, shunt therapy has been attracting attention for these heart failure patients, in which a shunt (a through-hole) is formed in the atrial septum as an escape route for elevated atrial pressure, thereby alleviating the symptoms of heart failure. In shunt therapy, the atrial septum is accessed via a transvenous approach, and a through-hole of a desired size is formed. A medical device for performing such a shunt therapy on the atrial septum is disclosed, for example, in Patent Document 1.

[0004] The medical device described in Patent Document 1 includes two expansion bodies arranged at the tip end of a long shaft, electrodes arranged in the expansion bodies, and an operating unit arranged at the base end of the shaft and capable of operating the two expansion bodies to clamp biological tissue. The electrodes can be supplied with power from a power supply device (console) connectable to the medical device. The surgeon can operate the operating unit to clamp biological tissue between the two expansion bodies and supply power to the electrodes arranged in the expansion bodies to cauterize the clamped biological tissue. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] U.S. Patent Application Publication No. 2020 / 094094 Summary of the Invention [Problem to be solved by the invention]

[0006] If energy is supplied to the electrode without pressing the electrode, which is the energy transmission unit, against biological tissue, there is a risk of thrombus formation due to the electrode being exposed to blood, or of the electrode damaging an unintended part of the body. However, with the medical device described in Patent Document 1, it is difficult for the power supply device to detect when the electrode is pressed against biological tissue.

[0007] The present invention has been made to solve the above-mentioned problems, and aims to provide a medical device and a medical system that can prevent energy from being supplied to the energy transmission unit without pressing the energy transmission unit against biological tissue. [Means for solving the problem]

[0008] a housing connected to a proximal end of the shaft; a long displacement shaft that compresses the expansion body in the axial direction by displacing from an initial position to a compressed position relative to the shaft along the axial direction of the expansion body; an operation knob movably arranged with respect to the housing; a detection unit housed in the housing and detecting compression of the expansion body by the displacement shaft; and an electric wire that is connectable to a power supply device for supplying power to the energy transmission unit and that passes through the housing and extends along the shaft to the energy transmission unit, wherein the expansion body has a recess recessed radially inward midway in the axial direction, a first connecting part connected to the shaft, and a second connecting part arranged to face the first connecting part across the recess in the axial direction, and the displacement shaft extends from within the housing along the shaft and is connected to the second connecting part of the expansion body, and the recess is a receiving part that can receive biological tissue. The distal upright portion and the proximal upright portion are configured to grasp the biological tissue by displacement of the displacement shaft from the initial position to the compression position, and the energy transmission unit is disposed along one of the distal upright portion and the proximal upright portion so as to face the receiving space. The operation knob protrudes from the housing and can be rotated relative to the housing. The device has a knob body for movement operation, and an acting portion that is movably arranged within the housing and acts on the base end of the displacement shaft housed within the housing in response to movement of the operation knob, thereby displacing the displacement shaft from the initial position to the compressed position, and the detection portion has a detection switch that changes state in response to displacement of the displacement shaft from the initial position to the compressed position by the operation knob, and an output portion that outputs the change in state of the detection switch to the power supply device, and the detection switch and the output portion are electrically independent of the electric wire. [Effects of the Invention]

[0009] In the medical device configured as described above, by moving the control knob relative to the housing, the displacement shaft moves from the initial position to the compressed position, and the compression of the expandable body is detected by the detection unit, and the result is output to the power supply device. Therefore, since the power supply device can determine whether the control knob has been operated, it is possible to prevent energy from being supplied to the energy transmission unit when the operation of pressing the energy transmission unit against biological tissue has not been performed.

[0010] The medical device may further include a connection terminal connectable to the power supply device and a circuit board accommodated in the housing, the connection terminal having a first terminal and a second terminal that are electrically independent from each other, the electric wire connectable to the power supply device via the first terminal and having a supply circuit arranged on the circuit board, an electric wire main body extending along the shaft portion from the supply circuit to the energy transmission unit, and a connecting electric wire portion extending from the supply circuit to the first terminal, the output unit being able to output a state change of the detection switch to the power supply device via the second terminal and having an output circuit electrically independent from the supply circuit on the circuit board, the detection switch having a switch body that changes the state of the detection switch when pressed, and a pressing portion that presses the switch body, and the pressing portion may be capable of shifting between a pressed state in which the switch body is pressed and a non-pressed state in which the switch body is not pressed in accordance with operation of the operation knob that moves the displacement shaft from the initial position to the compressed position. As a result, the operation of the operating knob is indirectly transmitted to the switch body via the pressing portion. By consolidating the supply circuit and output circuit on a single circuit board and consolidating the first terminal and second terminal into a single connection terminal, wiring and soldering become easier. Furthermore, by using a structure in which the pressing portion is located between the operating knob and the switch body, it is no longer necessary to impose a positional restriction on the operating knob, which requires it to be placed in a position where it can contact the switch body, thereby improving design freedom. Therefore, it is easier to realize a structure with desired functions within a limited space.

[0011] The operating portion of the operation knob may have a contact portion disposed within the housing, the contact portion being displaced between a non-contact position where it does not contact the pressing portion and a contact position where it contacts the pressing portion by operation of the operation knob to move the displacement shaft from the initial position to the compressed position, and the pressing portion may be brought into the pressing state by contacting the contact portion. In this way, the pressing portion can be effectively transitioned from the non-pressing state to the pressing state by utilizing the position change of the contact portion accompanying the axial movement of the operation knob.

[0012] The operating portion of the operating knob may be coupled to a base end of the displacement shaft, may be movable along the axial direction of the displacement shaft from a first position to a second position, and may move the displacement shaft from the initial position to the compressed position as the operating knob moves from the first position to the second position, thereby allowing the displacement shaft to be moved from the initial position to the compressed position by moving the operating knob along the axial direction.

[0013] The first connecting portion of the expansion body may be located closer to the proximal end than the second connecting portion, and the displacement shaft may be configured to compress the expansion body in the axial direction by pulling the second connecting portion in the proximal direction as the displacement shaft moves from the initial position to the compressed position located closer to the proximal end than the initial position, and the acting portion of the operation knob may move the displacement shaft from the initial position to the compressed position as the displacement shaft moves from the first position to the second position located closer to the proximal end than the first position. In this way, by moving the operation knob to the proximal end, the second connecting portion located closer to the distal end than the first connecting portion of the expansion body is pulled in the proximal direction via the displacement shaft, thereby effectively compressing the expansion body in the axial direction.

[0014] The medical system according to the present invention, which achieves the above object, includes the medical device and a power supply unit, whereby the medical system can determine whether the operation knob has been operated by the power supply unit, and can prevent energy from being supplied to the energy transmission unit when the operation of pressing the energy transmission unit against biological tissue has not been performed.

[0015] The power supply device may include an input unit that receives a state change of the detection switch output from the output unit, a power output unit that outputs power to the energy transmission unit via the electric wire, and a control unit that controls the output of power from the power output unit, wherein the power output unit has an output mode in which it can output power and a sleep mode in which it cannot output power, and the control unit may change the power output unit from the sleep mode to the output mode when the input unit receives a state change of the detection switch corresponding to compression of the expandable body. This allows the power supply device to determine whether the operation knob has been operated based on information obtained from the output unit of the medical device and change the power output unit from the sleep mode to the output mode. The change of the power output unit from the sleep mode to the output mode enables the power supply unit to supply energy, thereby reliably preventing energy from being supplied to the energy transmission unit when the energy transmission unit is not being pressed against biological tissue. [Brief explanation of the drawings]

[0016] [Figure 1] 1 is a side view illustrating an overall configuration of a medical system according to an embodiment of the present invention. [Figure 2] FIG. 1 is a side view showing the distal end of a medical device. [Figure 3] 3A and 3B are diagrams showing the inside of the operating unit before the operating knob is operated, in which (A) is a longitudinal cross-sectional view and (B) is a cross-sectional view taken along line AA in FIG. 3A. [Figure 4] 4A and 4B are diagrams showing the inside of the operating unit after the operating knob has been operated, in which (A) is a longitudinal cross-sectional view and (B) is a cross-sectional view taken along line BB in FIG. 4A. [Figure 5] 1A and 1B are plan views showing the switch mechanism of a medical device, where (A) shows the side with the terminals and (B) shows the side with the switch body. [Figure 6] 1A and 1B are circuit diagrams showing a switch mechanism of a medical device, in which (A) shows the supply circuit of the switch mechanism in an OFF state, and (B) shows the supply circuit in an ON state. [Figure 7]FIG. 10 is a schematic diagram showing a state in which an expandable body is placed in a through-hole in the atrial septum. [Figure 8] FIG. 10 is a cross-sectional view showing the state in which the balloon is inserted into the atrial septum. [Figure 9] FIG. 10 is a cross-sectional view showing the state in which the tip of the medical device is inserted into the atrial septum. [Figure 10] FIG. 10 is a cross-sectional view showing the state in which the expansion body is placed in the atrial septum. [Figure 11] 10 is a cross-sectional view showing a state in which the energy transmission section placed in the recess of the expandable body is in close contact with biological tissue. FIG. [Figure 12] 10 is a flowchart illustrating a method of using the medical system. [Figure 13] 10A and 10B are vertical cross-sectional views of the inside of the operation unit in the first modified example, where (A) shows the state before the operation knob is operated, and (B) shows the state after the operation knob is operated. [Figure 14] 10A and 10B are plan views showing the distal end of a medical device in a second modified example, where (A) shows the state before the expandable body grasps the biological tissue, and (B) shows the state after the biological tissue has been grasped by the expandable body. DETAILED DESCRIPTION OF THE INVENTION

[0017] Hereinafter, embodiments of the present invention will be described with reference to the drawings. Note that the dimensional proportions in the drawings may be exaggerated for convenience of explanation and may differ from the actual proportions. Furthermore, in this specification, the side of a medical device that is inserted into a body cavity will be referred to as the "distal side," and the side that is operated will be referred to as the "proximal side." Furthermore, in this specification, the range "X to Y" includes X and Y and means "X or more and Y or less."

[0018] As shown in Figure 7, the medical system 1 of this embodiment is configured to be able to perform maintenance procedures to maintain the size of the through-hole Hh formed in the atrial septum HA, which is the biological tissue of the patient's heart H, and expanded by a balloon.

[0019] As shown in FIGS. 1 and 2, the medical system 1 according to this embodiment includes a medical device 10 that is inserted into a living body to cauterize living tissue, and a power supply unit 190 that supplies power to the medical device 10.

[0020] First, we will explain the medical device 10. The medical device 10 has a long section 20 extending from the base end to the tip, an expansion body 21 provided at the tip of the long section 20, an energy transmission section 22 having a plurality of electrodes 24 provided along the expansion body 21, an operation section 23 connected to the base end of the long section 20, a connection terminal 27 connectable to a power supply device 190, and a connection cable 25 extending from the operation section 23 to the connection terminal 27.

[0021] The long portion 20 has a shaft portion 31 that holds the expansion body 21 at its tip, an outer tube 30 that houses the shaft portion 31, a displacement shaft 33, and a traction portion 35 that is fixed to the tip of the displacement shaft 33.

[0022] The shaft portion 31 is a long tubular body extending from the operation portion 23 to the expansion body 21. The base end of the shaft portion 31 is fixed to the tip end of the operation portion 23. The tip end of the shaft portion 31 is fixed to the base end of the expansion body 21.

[0023] The outer tube 30 is a long tubular body that covers the shaft portion 31 and is movable back and forth in the axial direction (toward the axis of the long portion 20) relative to the shaft portion 31. When the outer tube 30 is moved toward the distal end of the long portion 20, it can house the expandable body 21, which has been contracted radially, inside it. The radial direction is the direction perpendicular to the axis of the shaft portion 31. By moving the outer tube 30 toward the proximal end from a state in which the expandable body 21 is housed, the surgeon can expose the expandable body 21 from the outer tube 30 and expand it radially.

[0024] The displacement shaft 33 is a long tubular body disposed inside the shaft portion 31 and is movable forward and backward in the axial direction relative to the shaft portion 31. The displacement shaft 33 protrudes distally from the distal end of the shaft portion 31 and protrudes distally from the distal end of the expansion body 21. The distal end of the displacement shaft 33, which is located distally of the expansion body 21, is fixed to the traction unit 35. The proximal end of the displacement shaft 33 is led out proximally from the operation unit 23. A guidewire lumen is formed inside the displacement shaft 33 along the axial direction, through which a guidewire 11 (see FIGS. 7 to 9) can be inserted. The displacement shaft 33 can be displaced from an initial position (see FIG. 3) to a compressed position (see FIG. 4) relative to the shaft portion 21 along the axial direction of the expansion body 21, thereby compressing the expansion body 21 in the axial direction.

[0025] The traction portion 35 is an annular member fixed to the outer peripheral surface of the tip of the displacement shaft 33, and protrudes radially outward from the outer peripheral surface of the displacement shaft 33. The traction portion 35 is not fixed to the expansion body 21. The outer diameter of the traction portion 35 is larger than the inner diameter of the tip of the expansion body 21. Therefore, the traction portion 35 abuts against the tip of the expansion body 21 from the tip side and pulls the expansion body 21 toward the base end, thereby applying a compressive force to the expansion body 21 that compresses it along the axial direction of the shaft portion 31.

[0026] As shown in Figures 1, 3 and 4, the operating unit 23 has a housing 100 held by the surgeon, an operating knob 110 that can be moved by the surgeon along the axial direction, an elastic body 120 that transmits the movement of the operating knob 110 to the displacement shaft 33, a detection unit 130 that detects the compression of the expansion body 21, an electric wire 160 that transmits power from a power supply device 190 to the electrode 24, and a shaft connection unit 180 that connects the shaft unit 31 to the housing 100.

[0027] The housing 100 has a guide rail 101 that holds the operation knob 110 so that the operation knob 110 can slide linearly in the axial direction, and an opening 102 that exposes a part of the operation knob 110 to the outside.

[0028] The operation knob 110 is disposed in the housing 100 so as to be slidable along the axial direction of the shaft portion 31. The operation knob 110 can move the displacement shaft 33 from an initial position (see FIG. 3) to a compressed position (see FIG. 4). The operation knob 110 has a knob body 111 exposed to the outside through an opening 102 in the housing 100 so as to be operable by the surgeon, a sliding portion 112 that makes linear axial slidable contact with the guide rail 101 inside the housing 100, and a contact portion 113 that can come into contact with the pressing portion 150. The operation knob 110 further has an action portion 114 that can come into contact with the tip of the elastic body 120 from the tip side, and a stopper 115 that can come into contact with the base end surface of a ring-shaped fixing member 170 fixed to the displacement shaft 33. The contact portion 113 is provided only in a portion of the axial direction of the operation knob 110. In this embodiment, the contact portion 113 is formed on the outer circumferential surface of a portion surrounding the displacement shaft 33 near the action portion 114. The contact portion 113 can be moved between a non-contact position where it does not contact the pressing portion 150 and a contact position where it contacts the pressing portion 150 by operating the operation knob 110, which moves the displacement shaft 33 from the initial position to the compressed position. By moving from the non-contact position to the contact position, the contact portion 113 can abut against the pressing portion 150 and press the pressing portion 150. The action portion 114 is a portion that applies a traction force to the displacement shaft 33 in the proximal direction via the elastic body 120. The action portion 114 is connected to the proximal end of the displacement shaft 33 via the elastic body 120 and is movable from a first position to a second position along the axial direction of the displacement shaft 33. As the action portion 114 moves from the first position to the second position, it can move the displacement shaft 33 from the initial position to the compressed position. The stopper 115 is disposed closer to the base end than the action portion 114. The stopper 115 abuts against the base end surface of a fixing member 170 fixed to the displacement shaft 33, thereby restricting the displacement shaft 33 from moving more than necessary in the base end direction relative to the operation knob 110.

[0029] As shown in FIGS. 3 and 4 , the elastic body 120 is disposed between the operation knob 110 and the displacement shaft 33 in order to adjust the traction force transmitted from the operation knob 110 to the displacement shaft 33. The elastic body 120 is a coil spring disposed so as to surround the displacement shaft 33. The elastic body 120 is elastically expandable and contractible along the axial direction of the displacement shaft 33. The tip of the elastic body 120 is capable of abutting against the base end surface of the action portion 114 of the operation knob 110. The base end of the elastic body 120 is capable of abutting against the tip end surface of a fixing member 170 fixed to the displacement shaft 33.

[0030] 3 to 6, the detection unit 130 has a detection switch 131 whose state changes in response to the displacement of the displacement shaft 33 by the operation knob 110, and an output unit 132 that outputs the state change of the detection switch 131 to the power supply device 190. The detection switch 131 and the output unit 132 are electrically independent from the electric wire 160.

[0031] The state of the detection switch 131 changes in response to the displacement of the displacement shaft 33 from the initial position (see FIG. 3) to the compressed position (see FIG. 4) by the operation knob 110. The detection switch 131 has a pressing part 150 that moves in response to the displacement of the operation knob 110, and a switch body 133 that can be pressed by the pressing part 150.

[0032] The pressing portion 150 has a rotation shaft 151 rotatably connected to the housing 100, a pressing input portion 152 that can come into contact with the contact portion 113 of the operation knob 110, and a pressing output portion 153 that can come into contact with the switch body 133 of the detection switch 131. The rotation shaft 151 is rotatable about an axis parallel to the central axis of the displacement shaft 33. When the operation knob 110 moves from the initial position shown in FIG. 3 along the axial direction toward the base end, the pressing input portion 152 is positioned at a compressed position where it can come into contact with the contact portion 113, as shown in FIG. 4. The pressing input portion 152 moves when pressed by the contact portion 113, causing the pressing portion 150 to rotate. When the contact portion 113 is pressed by the pressing input portion 152, the pressing portion 150 rotates, and the pressing output portion 153 can press the switch body 133. That is, the pressing portion 150 can be displaced between a pressed state in which it presses the switch body 133 described below and a non-pressed state in which it does not press the switch body 133, in accordance with the operation of the operating knob 110 that moves the displacement shaft 33 from the initial position to the compressed position.

[0033] When no external force is applied, the switch body 133 is biased by the force of a spring. When the switch body 133 is pressed by the pressing output portion 153 of the pressing portion 150, the spring contracts and the switch body 133 is pressed in.

[0034] As shown in FIGS. 5 and 6 , output unit 132 outputs a state change of detection switch 131 to power supply device 190 via cable 25. Output unit 132 has output circuit 134 on a circuit board that is electrically independent from supply circuit 161 that supplies power to electrode 24. Output circuit 134 has first fixed contact 135 and second fixed contact 136 that are spaced apart on the circuit board, movable contact 137 that can be pressed down by switch body 133 to contact both first fixed contact 135 and second fixed contact 136, and two status output terminals 138 that are electrically connected to first fixed contact 135 and second fixed contact 136, respectively. Each of first fixed contact 135 and second fixed contact 136 can be connected to power supply device 190 from either of the two status output terminals 138 via connection cable 25 via second terminal 139 that is arranged on connection terminal 27.

[0035] Movable contact 137 is normally separated from first fixed contact 135 and second fixed contact 136, but when switch body 133 is pressed in, it moves accordingly and comes into contact with both first fixed contact 135 and second fixed contact 136. As a result, first fixed contact 135 and second fixed contact 136 are brought into electrical contact via movable contact 137.

[0036] The electric wire 160 has a supply circuit 161 arranged on the circuit board, an electric wire main body 162 extending along the shaft portion 31 from the supply circuit 161 to the energy transmission unit 22, and a connecting electric wire portion 165 extending from the supply circuit 161 to a first terminal 166 arranged on the connection terminal 27. The supply circuit 161 has two energy input terminals 163 connected to the connecting electric wire portion 165 and two energy output terminals 164 connected to the electric wire main body 162.

[0037] The two energy input terminals 163 are connectable to a power supply device 190 via a connection cable 25 and a connection terminal 27 .

[0038] The two energy output terminals 164 are electrically connected to the respective electrode pairs of the bipolar energy transmission unit 22 via the electric wire main body 162 that extends from the detection switch 131 along the shaft portion 31 to the energy transmission unit 22.

[0039] As described above, the connection terminal 27 connectable to the power supply device 190 includes the first terminal 166 electrically connected to the supply circuit 161 and the second terminal 139 electrically connected to the output circuit 134. Note that the connection terminal 27 may not be directly connected to the power supply device 190, but may be indirectly connected to the power supply device 190 via another extension cable or the like.

[0040] 3 and 4, the shaft connecting portion 180 has a holding portion 181 that is fixedly held inside the housing 100, and a sealing member 182 that is arranged inside the holding portion 181. The holding portion 181 is a substantially cylindrical member that is connected in close contact with the base end of the shaft portion 31. The sealing member 182 is an annular member that is arranged inside the holding portion 181 on the base end side of the shaft portion 31 and that slidably contacts the outer circumferential surface of the displacement shaft 33. The sealing member 182 prevents blood and the like from flowing into the housing 100 from between the shaft portion 31 and the displacement shaft 33.

[0041] As shown in Figures 1 and 2, the expansion body 21 has a force receiving portion 51 arranged at the tip of the expansion body 21, a base end connecting portion 52 arranged at the base end of the expansion body 21, a second connecting portion 53 connected to the force receiving portion 51, a first connecting portion 54 connected to the base end connecting portion 52, and a recess 55 arranged between the second connecting portion 53 and the first connecting portion 54.

[0042] The force receiving portion 51 is annular and can receive a force directed toward the base end from the traction portion 35 arranged on the tip side. The base end connecting portion 52 is annular and is fixed to the tip end of the shaft portion 31.

[0043] The second connecting portion 53 is flexibly deformable and has a distal-side expanding portion 56 that extends radially outward from the force-receiving portion 51 toward the proximal end, and a distal-side apex portion 57 that is disposed on the proximal side of the distal-side expanding portion 56 and curves convexly outward in the radial direction.

[0044] The second connecting portion 53 has a plurality of distal strut structures 60 that extend radially outward from the force-receiving portion 51 toward the base end and form the distal expansion portion 56. The plurality of distal strut structures 60 are arranged at approximately equal intervals in the circumferential direction of the expandable body 21 when expanded.

[0045] Each of the multiple tip-side strut structures 60 has a first strut 61 extending from the force-receiving portion 51 toward the base end, and a second strut 62 extending from the base end of the first strut 61 toward the base end and connected to the tip-side apex 57.

[0046] Each first strut 61 extends from the force-receiving portion 51 substantially parallel to the axis of the expandable body 21 when viewed from the outside in the radial direction. Each second strut 62 branches into two branches extending in the circumferential direction of the expandable body 21 while moving from the base end of the respective first strut 61 toward the base end, and joins at a first junction 65 or a second junction 66. The first junctions 65 and second junctions 66 are arranged alternately at approximately equal intervals in the circumferential direction of the expandable body 21 when expanded.

[0047] Each first junction 65 is connected to a distal apex 57 that is arranged in the same phase as the electrode 24 in the circumferential direction of the expandable body 21. Each second junction 66 is connected to a distal apex 57 that is arranged in a different phase from the electrode 24 in the circumferential direction of the expandable body 21.

[0048] The first connecting portion 54 is flexibly deformable and has a base-end expanding portion 58 that extends radially outward from the base-end connecting portion 52 toward the tip, and a base-end apex portion 59 that is disposed distal to the base-end expanding portion 58 and curves convexly outward in the radial direction.

[0049] The proximal expansion section 58 has multiple proximal strut structures 90. Each proximal strut structure 90 and the multiple electrode placement sections 81 are arranged in the same phase in the circumferential direction of the expandable body 21. Each of the multiple proximal strut structures 90 has multiple third struts 91 extending from the tip of the shaft section 31 to the proximal apex 59, approximately parallel to the axis of the expandable body 21 when viewed from the outside in the radial direction, and multiple secondary struts 92 connecting adjacent third struts 91 in the circumferential direction. Each secondary strut 92 is connected to two adjacent third struts 91 in the circumferential direction. Each secondary strut 92 is curved. Therefore, even if the distance between two adjacent third struts 91 increases when the expandable body 21 expands, the secondary struts 92 can continue to support the two third struts 91 while deforming into a shape close to a straight line. Therefore, the expansion body 21 can be expanded by the compressive force applied by the displacement shaft 33 while spreading the third struts 91 at approximately equal intervals.

[0050] The recess 55 is flexibly deformable. When the expandable body 21 is expanded, the recess 55 is recessed radially inward and extends to connect the base end apex 59 and the tip end apex 57. The recess 55 defines a receiving space 74 that can receive biological tissue when the expandable body 21 is expanded.

[0051] The recess 55 has a bottom portion 71 located at the radially innermost position, a tip-side upright portion 72 extending radially outward from the tip of the bottom portion 71 to the tip-side apex 57, and a base-side upright portion 73 extending radially outward from the base end of the bottom portion 71 to the base-side apex 59.

[0052] It is preferable that the distance between the base-side upright portion 73 and the tip-side upright portion 72 is somewhat larger in the axial direction on the outer side than on the inner side in the radial direction when the expansion section is expanded. This makes it easy to place biological tissue between the base-side upright portion 73 and the tip-side upright portion 72 from the outer side in the radial direction.

[0053] The recess 55 has a plurality of recessed strut structures 80 arranged circumferentially. Each of the plurality of recessed strut structures 80 has a plurality of electrode placement portions 81 arranged on the base-end side upright portion 73, a plurality of opposing portions 82 arranged on the tip-end side upright portion 72, and a plurality of bottom connecting portions 83 on the bottom 71 that connect pairs of electrode placement portions 81 and opposing portions 82.

[0054] The multiple electrode placement sections 81 are arranged at approximately equal intervals in the circumferential direction of the expansion body 21. The multiple opposing sections 82 are arranged at approximately equal intervals in the circumferential direction of the expansion body 21. The multiple bottom connecting sections 83 are arranged at approximately equal intervals in the circumferential direction of the expansion body 21.

[0055] Each of the facing portions 82 faces a corresponding one of the electrodes 24 when the expandable body 21 is expanded. Each of the facing portions 82 has a plurality of bifurcated distal-side standing struts 84 that branch out from the distal end of each of the bottom connecting portions 83 toward the distal end, generally along the circumferential direction of the expandable body 21, and a plurality of back support portions 85. The back support portions 85 connect the two distal-side standing struts 84 that branch out from each of the bottom connecting portions 83. The back support portions 85 are arranged side by side from the side closer to the bottom 71 to the side closer to the distal apex 57. Each of the back support portions 85 is curved so that the portion between the ends connected to the two distal-side standing struts 84 protrudes toward the distal apex 57. The side of each of the back support portions 85 closer to the distal apex 57 is easily bent, with the ends connected to the distal-side standing struts 84 as fulcrums. Therefore, the back support portion 85 can bend due to a force acting toward the distal end from the electrode 24 arranged on the base-side standing portion 73. Therefore, the biological tissue sandwiched between the electrode 24 and the back support portion 85 can be brought into close contact with the electrode 24. Of the multiple back support portions 85 forming each opposing portion 82, the back support portion 85 closest to the distal end apex 57 is connected to the distal end apex 57 at a portion that protrudes toward the distal end apex 57. The number of back support portions 85 forming each opposing portion 82 is not particularly limited.

[0056] The energy transfer unit 22 has a plurality of electrodes 24. Each electrode 24 is arranged on a surface that forms the inside of the recess 55 of each electrode placement unit 81. The electrode 24 is arranged in close contact with the surface that forms the inside of the recess 55 of the electrode placement unit 81. At least a portion of the electrode 24 has a surface that faces the receiving space 74 when expanded, and has a convex curved shape. Note that the surface of the electrode 24 that faces the receiving space 74 when expanded may also have a flat shape.

[0057] When the expandable body 21 is expanded, the electrode 24 is disposed on the surface of the base-side upright portion 73 facing the distal end. Because the electrode 24 is provided on the base-side upright portion 73, when the recess 55 clamps the atrial septum HA, energy from the electrode 24 is transmitted to the atrial septum HA from the right atrium side. Note that if the electrode 24 were provided on the distal upright portion 72, energy from the electrode 24 would be transmitted to the atrial septum HA from the left atrium side.

[0058] The electrodes 24 are configured, for example, as bipolar electrodes that receive power from a power supply device 190. In this case, electricity is passed between the electrodes 24 arranged in each electrode arrangement portion 81.

[0059] Alternatively, electrode 24 may be configured as a monopolar electrode. In this case, electricity is passed between electrode 24 and a return electrode plate prepared outside the body. Electrode 24 may also be a heating element (electrode tip) that receives high-frequency electrical energy from an energy supply device and generates heat.

[0060] In this embodiment, the electrode 24 is provided on the base end standing portion 73 and the back support portion 85 is provided on the tip end standing portion 72, but the electrode 24 may also be provided on the tip end standing portion 72 and the back support portion 85 may also be provided on the base end standing portion 73.

[0061] In this embodiment, the operating knob 110, elastic body 120, displacement shaft 33 and traction section 35, which can move the tip of the expansion body 21, and the housing 100 and shaft section 31, which can move the base end of the expansion body 21, function as a displacement mechanism 26 that compresses the expansion body 21 in the axial direction by displacing the base end of the expansion body 21 relative to the tip of the expansion body 21 approximately along the central axis.

[0062] The expandable body 21 is formed integrally, for example, by cutting out from a cylinder. The struts forming the expandable body 21 may have a thickness of 50 to 500 μm and a width of 0.3 to 2.0 mm, for example. However, the struts forming the expandable body 21 may have dimensions outside these ranges. Furthermore, the shape of the struts is not particularly limited, and may have, for example, a circular cross-sectional shape or other cross-sectional shapes.

[0063] The expandable body 21 can be made of a metal material. Examples of such metal materials include titanium alloys (Ti-Ni, Ti-Pd, Ti-Nb-Sn, etc.), copper alloys, stainless steel, β-titanium steel, and Co-Cr alloys. It is preferable to use alloys with spring properties, such as nickel-titanium alloys. However, the material of the wire portion is not limited to these, and other materials may also be used.

[0064] The outer cylinder 30 and shaft portion 31 of the long portion 20 are preferably formed from a material having a certain degree of flexibility. Examples of such materials include polyolefins such as polyethylene, polypropylene, polybutene, ethylene-propylene copolymer, ethylene-vinyl acetate copolymer, ionomer, and mixtures of two or more of these, soft polyvinyl chloride resin, polyamide, polyamide elastomer, polyester, polyester elastomer, polyurethane, fluororesins such as polytetrafluoroethylene, polyimide, PEEK, silicone rubber, and latex rubber.

[0065] The displacement shaft 33 and the traction section 35 can be formed from a long wire rod made of, for example, a superelastic alloy such as a nickel-titanium alloy or a copper-zinc alloy, a metal material such as stainless steel, a resin material with relatively high rigidity, etc. Alternatively, the above may be coated with a resin material such as polyvinyl chloride, polyethylene, polypropylene, an ethylene-propylene copolymer, or a fluororesin.

[0066] Next, a description will be given of the power supply device 190. The power supply device 190 has a power output unit 191, a notification unit 192, a control unit 193, and an input unit 194, as shown in FIG.

[0067] The power output unit 191 is a component that outputs power for performing maintenance treatment to the first terminal 166 of the medical device 10. The power output unit 191 is controlled by the control unit 193 and can output high-frequency current at any power for any period of time. The power output unit 191 has an output mode in which it can output power and a sleep mode in which it cannot output power. Only when the power output unit 191 is in the output mode can the surgeon perform an operation to start cauterization.

[0068] The input section 194 is a section to which information on the change in state of the detection switch 131 output from the output section 132 of the medical device 10 is input from the second terminal 139.

[0069] The notification unit 192 is a component that notifies the operator of the control status, warnings, and the like. The notification unit 192 is, for example, a speaker that notifies by sound or an image monitor that notifies by image. The display method of the image monitor and the output method by the speaker are not particularly limited. The notification unit 192 may not be configured in the power supply device 190, but may be an external device that is communicably connected to the power supply device 190.

[0070] The control unit 193 is configured with a CPU (Central Processing Unit), a storage circuit, and an operation program. Interfaces such as a keyboard and a mouse may be connected to the control unit 193. The control unit 193 is, for example, a computer.

[0071] The control unit 193 controls the power output unit 191 to control the output of high-frequency current from the power output unit 191. The control unit 193 can cause the power output unit 191 to output any power at any time. Therefore, when the input unit 194 receives a state change of the detection switch 131 corresponding to compression of the expandable body 21, the control unit 193 can change the power output unit 191 from the sleep mode to the output mode. The control unit 193 can cause the notification unit 192 to notify the user of information indicating which mode the power output unit 191 is in and whether the mode has changed.

[0072] Next, a method of using the medical device 10 according to this embodiment will be described with reference to the flowchart shown in Fig. 12. This method is performed on a patient suffering from heart failure (left ventricular failure). More specifically, as shown in Fig. 4, this is a treatment method performed on a patient suffering from chronic heart failure in which the blood pressure in the left atrium HLa increases due to hypertrophy of the myocardium of the left ventricle of the heart H and increased stiffness.

[0073] The method of using the medical device 10 of this embodiment includes the steps of: forming a through-hole Hh in the atrial septum HA (S1); placing an expansion body 21 in the through-hole Hh (S2); receiving biological tissue in the receiving space 74 (S3); checking hemodynamics near the through-hole Hh (S4); grasping the through-hole Hh with the expansion body 21 (S5); performing maintenance treatment to maintain the size of the through-hole Hh (S6); and checking hemodynamics near the through-hole Hh after the maintenance treatment has been performed (S7).

[0074] When forming the through-hole Hh, the surgeon delivers an introducer, which is a combination of a guiding sheath and a dilator, to the vicinity of the interatrial septum HA. The introducer can be delivered to the right atrium HRa, for example, via the inferior vena cava IV. The introducer can also be delivered using a guidewire 11. The surgeon can insert the guidewire 11 into the dilator and deliver the introducer along the guidewire 11. The insertion of the introducer and the guidewire 11 into the living body can be performed by a known method, such as using an introducer for introducing blood vessels.

[0075] In step S1, the surgeon passes a puncture device (not shown) from the right atrium HRa side toward the left atrium HLa side to form a through-hole Hh in the fossa ovalis of the interatrial septum HA. For example, a device such as a sharp-tipped wire can be used as the puncture device. The puncture device is inserted through a dilator and delivered to the interatrial septum HA. After removing the guidewire 11 from the dilator, the puncture device can be delivered to the interatrial septum HA in place of the guidewire 11.

[0076] Next, the surgeon delivers the balloon catheter 250 to the vicinity of the atrial septum HA along the pre-inserted guide wire 11. As shown in Fig. 8, the balloon catheter 250 has a balloon 252 at the distal end of the shaft portion 251. Once the balloon 252 is positioned in the atrial septum HA, it is expanded radially to expand the through-hole Hh.

[0077] In step S2, as shown in FIG. 9, the medical device 10 is delivered near the atrial septum HA along the pre-inserted guidewire 11. At this time, the distal end of the medical device 10 penetrates the atrial septum HA and reaches the left atrium HLa. During insertion of the medical device 10, the expandable body 21 is housed in the outer tube 30. The medical device 10 may also be a device without the outer tube 30. In this case, a sheath corresponding to the outer tube 30 is separately prepared, and in step S2, the sheath is delivered in advance near the atrial septum HA along the guidewire 11 so that the distal end of the sheath reaches the left atrium HLa through the through-hole Hh in the atrial septum HA. Next, the expandable body 21 of the medical device 10 is inserted into the sheath from its proximal end, and the distal end of the expandable body 21 is delivered into the left atrium HLa through the through-hole Hh in the atrial septum HA, as in FIG. 9.

[0078] Next, in step S3, the expandable body 21 is exposed by moving the outer tube 30 toward the proximal end. As a result, as shown in Fig. 10, the expandable body 21 expands in diameter, the recess 55 is positioned in the through-hole Hh in the atrial septum HA, and the receiving space 74 receives the biological tissue surrounding the through-hole Hh. Note that when the through-hole Hh is expanded with the balloon 252 in step S1, the through-hole Hh may not be expanded uniformly in the radial direction and may become slit-shaped. In this case, when the expandable body 21 is expanded in diameter to receive the biological tissue surrounding the through-hole Hh into the receiving space 74, the expandable body 21 expands the through-hole Hh in a direction different from the direction in which the slit extends.

[0079] Once the biological tissue surrounding the through-hole Hh is received in the receiving space 74, hemodynamics is confirmed in step S4. As shown in FIG. 7, the surgeon delivers the hemodynamic confirmation device 200 to the right atrium HRa via the inferior vena cava IV. For example, a known echo catheter can be used as the hemodynamic confirmation device 200. The surgeon can display an echo image acquired by the hemodynamic confirmation device 200 on a display or other display device and confirm the amount of blood passing through the through-hole Hh based on the displayed image. If the amount of blood passing through the through-hole Hh does not reach the desired amount, the surgeon moves the outer tube 30 toward the distal end to store the expandable body 21 inside the outer tube 30, and then removes the expandable body 21 together with the outer tube 30 from the through-hole Hh. Next, the through-hole Hh is expanded again using a balloon catheter having a balloon with a larger expansion diameter than the balloon 252 used in step S1, and the process returns to step S2.

[0080] In step S5, with the atrial septum HA received in the receiving space 74 of the recess 55, the surgeon operates the operation unit 23 to move the knob body 111 toward the proximal end relative to the housing 100. This moves the displacement shaft 33 from the initial position shown in FIG. 3 to the compressed position shown in FIG. 4 , and the operating unit 114 provided on the operation knob 110 presses the distal end of the elastic body 120 toward the proximal end. As a result, the proximal end of the elastic body 120 presses the fixing member 170 toward the proximal end, and the displacement shaft 33 fixed to the fixing member 170 moves toward the proximal end. As a result, as shown in FIG. 11 , the recess 55 of the expandable body 21 clamps the biological tissue. At this time, the biological tissue surrounding the through-hole Hh is clamped and well-held between the electrode unit 22 and the opposing portion 82. The operation knob 110 applies a traction force to the displacement shaft 33 via the elastic body 120. This prevents a traction force that exceeds the force that can be supported by the elastic body 120 from acting on the displacement shaft 33. In other words, when the force with which the expandable body 21 clamps the biological tissue becomes excessive, the elastic body 120 contracts, and the compressive force that compresses the expandable body 21 in the axial direction is automatically adjusted. As a result, the force with which the biological tissue is clamped is automatically adjusted.

[0081] When the knob body 111 is moved toward the base end relative to the housing 100, moving the displacement shaft 33 from the initial position to the compressed position, as shown in FIG. 4, the contact portion 113 of the operation knob 110 moves from a non-contact position where it does not contact the pressing portion 150 to a contact position where it contacts the pressing portion 150, and comes into contact with the pressing input portion 152 of the pressing portion 150. As a result, the pressing input portion 152 is pressed by the contact portion 113 and moves, causing the pressing portion 150 to rotate. As the pressing portion 150 rotates, the pressing output portion 153 changes from a non-pressing state where it does not press the switch body 133 of the detection switch 131 to a pressing state where it presses the switch body 133, thereby pressing the switch body 133. As a result, the movable contact 137 arranged on the switch body 133 comes into contact with both the first fixed contact 135 and the second fixed contact 136, as shown in FIG. 6, and establishes electrical continuity. This causes a change in the current input to the input section 194 electrically connected to the first fixed contact 135 and the second fixed contact 136, and the control section 193 (see Figure 1) can determine from the change in resistance value between the first fixed contact 135 and the second fixed contact 136 that the displacement shaft 33 has reached the compressed position and the expansion body 22 has been compressed in the axial direction.

[0082] When the first fixed contact 135 and the second fixed contact 136 become conductive, the control unit 193 determines that the displacement shaft 33 has reached the compressed position, and changes the power output unit 191 from the sleep mode to an output mode that can output power for cauterization, and causes the notification unit 192 (see Figure 1) to notify information that the output mode has been entered.

[0083] Next, in step S6, the surgeon performs a maintenance procedure to maintain the size of the through-hole Hh. In the maintenance procedure, high-frequency energy is applied to the edge of the through-hole Hh via the electrode 24, thereby cauterizing (heating and cauterizing) the edge of the through-hole Hh with the high-frequency energy. The surgeon recognizes from the information obtained from the notification unit 192 that the power output unit 191 has entered the output mode and is now able to output power, and causes the power output unit 191 to output power using an interface such as a keyboard, mouse, or dedicated button connected to the control unit 193.

[0084] When the biological tissue near the edge of the through-hole Hh is cauterized through the electrode 24, a denatured portion is formed near the edge where the biological tissue is denatured. Because the biological tissue in the denatured portion loses its elasticity, the through-hole Hh can maintain the shape it had when expanded by the expandable body 21. The through-hole Hh is held at an appropriate size by the expandable body 21, which has a buffer portion, and is cauterized, so it maintains its appropriate size and shape. This allows the through-hole Hh to be used as a shunt.

[0085] After step S6 is completed, the surgeon reduces the diameter of the expandable body 21, stores it in the outer tube 30, and removes it from the through-hole Hh. Furthermore, the entire medical device 10 is removed from the living body, completing the procedure.

[0086] As described above, the medical device 10 according to this embodiment includes the expansion body 21 having a central axis and capable of expanding and contracting in the radial direction, the long shaft portion 31 connected to the expansion body 21, the energy transmission portion 22 provided along the expansion body 21, the housing 100 connected to the base end of the shaft portion 31, the long displacement shaft 33 that compresses the expansion body 21 in the axial direction by displacing from an initial position to a compressed position relative to the shaft portion 31 along the axial direction of the expansion body 21, the operation knob 110 arranged movably relative to the housing 100, and the expansion body 21 accommodated in the housing 100 and configured to compress the expansion body 21 by the displacement shaft 33. and an electric wire 160 that can be connected to a power supply device 190 for supplying power to the energy transmission unit 22 and that passes through the housing 100 and extends along the shaft unit 31 to the energy transmission unit 22. The expansion body 21 has a recess 55 recessed radially inward midway in the axial direction, a first connecting unit 54 connected to the shaft unit 31, and a second connecting unit 53 that is arranged to face the first connecting unit 54 across the recess 55 in the axial direction. The displacement shaft 33 extends from within the housing 100 along the shaft unit 31 and is connected to the second connecting unit 53 of the expansion body 21. The recess 55 has a distal upright portion 72, a proximal upright portion 73, and a bottom portion 71 located radially innermost between the distal upright portion 72 and the proximal upright portion 73 so as to define a receiving space 74 capable of receiving biological tissue, and the distal upright portion 72 and the proximal upright portion 73 are configured to grasp biological tissue by displacement of the displacement shaft 33 from its initial position to its compression position, and the energy transmission unit 22 is arranged along either the distal upright portion 72 or the proximal upright portion 73 so as to face the receiving space 74, and the operation knob 110 is attached to the housing the operating knob 110 is moved relative to the housing 100; and an operating unit 114 is movably disposed within the housing 100 and acts on a base end of the displacement shaft 33 housed within the housing 100 as the operation knob 110 is moved, thereby displacing the displacement shaft 33 from an initial position to a compressed position; the detection unit 130 has a detection switch 131 whose state changes as the displacement shaft 33 is displaced from the initial position to the compressed position by the operation knob 110, and an output unit 132 that outputs a change in state of the detection switch 131 to a power supply device 190;The detection switch 131 and the output section 132 are electrically independent from the electric wire 160.

[0087] In the medical device 10 configured as described above, by moving the operation knob 110 relative to the housing 100, the displacement shaft 33 moves from the initial position to the compressed position, and the detection unit 130 detects the compression of the expandable body 21 caused by this movement and outputs the result to the power supply device 190. Therefore, the power supply device 190 can determine whether the operation knob 110 has been operated, thereby preventing energy from being supplied to the energy transmission unit 22 when the energy transmission unit 22 is not being pressed against biological tissue. This reduces the risk of thrombus formation due to exposure of the energy transmission unit 22 to blood and the risk of the energy transmission unit 22 injuring an unintended part of the body. Furthermore, in the medical device 10, the detection switch 131 and the output unit 132 are independent of the electric wire 160 that supplies the energy for cauterization, and therefore do not directly turn on / off the circuit from the power output unit 191 to the energy transmission unit 22. This reduces the risk of fire or electrical leakage due to poor contact, and also makes it possible to check whether the circuit from the power output unit 191 for cauterization to the energy transmission unit 22 is short-circuited.

[0088] The medical device 10 further comprises a connection terminal 27 connectable to a power supply device 190 and a circuit board housed within the housing 100, the connection terminal 27 having a first terminal 166 and a second terminal 139 that are electrically independent from each other, the electric wire 160 connectable to the power supply device 190 via the first terminal 166, and having a supply circuit 161 arranged on the circuit board, an electric wire main body portion 162 extending from the supply circuit 161 to the energy transmission portion 22 along the shaft portion 31, and a connecting electric wire portion 165 extending from the supply circuit 161 to the first terminal 166, and the output portion 132 A change in the state of the detection switch 131 can be output to the power supply device 190 via the second terminal 139, and an output circuit 134 electrically independent of the supply circuit 161 is provided on the circuit board. The detection switch 131 has a switch body 133 that changes the state of the detection switch 131 when pressed, and a pressing portion 150 that presses the switch body 133. The pressing portion 150 can be displaced between a pressed state in which it presses the switch body 133 and a non-pressed state in which it does not press the switch body 133, in accordance with the operation of the operation knob 110 that moves the displacement shaft 33 from the initial position to the compressed position. As a result, the operation of the operation knob 110 is indirectly transmitted to the switch body 133 via the pressing portion 150. By integrating the supply circuit 161 and the output circuit 134 on a single circuit board and integrating the first terminal 166 and the second terminal 139 into a single connection terminal 27, wiring and soldering are simplified. Furthermore, by using a structure in which pressing portion 150 is disposed between operation knob 110 and switch body 133, there is no need to impose a positional restriction that requires operation knob 110 to be disposed at a position where it can come into contact with switch body 133, thereby improving design freedom. Therefore, it becomes easy to realize a structure with desired functions within a limited space.

[0089] Furthermore, the action portion 114 of the operation knob 110 has a contact portion 113 arranged inside the housing 100, and the contact portion 113 is displaced between a non-contact position where it is not in contact with the pressing portion 150 and a contact position where it is in contact with the pressing portion 150 by the operation of the operation knob 110 to move the displacement shaft 33 from the initial position to the compressed position, and the pressing portion 150 is in a pressing state by contacting the contact portion 113. As a result, the position change of the contact portion 113 accompanying the axial movement of the operation knob 110 can be used to effectively transition the pressing portion 150 from a non-pressing state to a pressing state.

[0090] Furthermore, the operating portion 114 of the operating knob 110 is connected to the base end of the displacement shaft 33 and is movable along the axial direction of the displacement shaft 33 from a first position to a second position, and as the operating knob 110 moves from the first position to the second position, the displacement shaft 33 moves from the initial position to the compressed position. As a result, by moving the operating knob 110 along the axial direction, the displacement shaft 33 can be moved from the initial position to the compressed position.

[0091] Furthermore, the first connecting portion 54 of the expansion body 21 is located closer to the base end than the second connecting portion 53, and the displacement shaft 33 is configured to compress the expansion body 21 in the axial direction by pulling the second connecting portion 53 in the base end direction as it moves from the initial position to a compressed position located closer to the base end than the initial position, and the action portion 114 of the operation knob 110 moves the displacement shaft 33 from the initial position to the compressed position as it moves from the first position to a second position located closer to the base end than the first position. As a result, by moving the operation knob 110 to the base end, the second connecting portion 53, which is located closer to the tip end than the first connecting portion 54 of the expansion body 21, is pulled in the base end direction via the displacement shaft 33, and the expansion body 21 can be effectively compressed in the axial direction.

[0092] The present invention may also provide a medical system 1. The medical system 1 includes the above-described medical device 10 and a power supply device 190. As a result, the medical system 1 can determine whether or not the operation knob 110 has been operated using the power supply device 190, and can therefore prevent energy from being supplied to the energy transmission unit 22 when no operation of pressing the energy transmission unit 22 against biological tissue has been performed. This reduces the risk of thrombus formation due to exposure of the energy transmission unit 22 to blood, and the risk of the energy transmission unit 22 damaging an unintended site.

[0093] The power supply device 190 also has an input unit 194 that receives a state change of the detection switch 131 output from the output unit 132, a power output unit 191 that outputs power to the energy transmission unit 22 via the electric wire 160, and a control unit 193 that controls the output of power from the power output unit 191, the power output unit 191 having an output mode in which power can be output and a sleep mode in which power cannot be output, and the control unit 193 changes the power output unit 191 from the sleep mode to the output mode when the input unit 194 receives a state change of the detection switch 131 corresponding to compression of the expandable body 21. As a result, the power supply device 190 can determine whether the operation knob 110 has been operated based on information obtained from the output unit 132 of the medical device 10 and change the power output unit 191 from the sleep mode to the output mode. When the power output unit 191 changes from the sleep mode to the output mode, energy can be supplied from the power supply unit, so that it is possible to reliably prevent energy from being supplied to the energy transmission unit 22 when no operation is being performed to press the energy transmission unit 22 against biological tissue.

[0094] It should be noted that the present invention is not limited to the above-described embodiment, and various modifications can be made by those skilled in the art within the technical spirit of the present invention. Therefore, in the above-described embodiment, the power output unit 191 changes from the sleep mode to the output mode when the operation knob 110 moves and the switch body 133 of the detection switch 131 is pressed via the pressing portion 150. However, as in a first modified example shown in Fig. 13 , the power output unit 191 may change from the sleep mode to the output mode when the operation knob 110 moves and the switch body 133 is directly pressed by the operation knob 110.

[0095] 14 , the second connecting portion 53 and the first connecting portion 54 of the expandable body 21 may have separate structures. A distal upright portion 72 and a bottom portion 71 are disposed in the second connecting portion 53, and a proximal upright portion 73 is disposed in the first connecting portion 54. The distal upright portion 72, the bottom portion 71, and the proximal upright portion 73 define a receiving space 74 of the recess 55. The bottom portion 71 may be disposed in the first connecting portion 54. The energy transmission unit 22 is disposed in the first connecting portion 54, but may also be disposed in the second connecting portion 53. The first connecting portion 54 and the second connecting portion 53 are housed in the outer tube 30 in an elastically deformed and contracted state, and when exposed from the outer tube 30, they expand by their own elastic expansion force (restoring force). The shaft portion 31 is fixed to the base end of the first connecting portion 54, and the displacement shaft 33 is fixed to the base end of the second connecting portion 53. The displacement shaft 33 is slidable inside the shaft portion 31. Therefore, the displacement mechanism that axially compresses the expandable body 21 is a mechanism that pulls the displacement shaft 33 toward the base end or pushes the shaft portion 31 toward the distal end. By operating the displacement mechanism, as shown in FIG. 14(B), the distal upright portion 72 and the proximal upright portion 73 approach each other, reducing the receiving space 74, and the atrial septum HA, which is biological tissue, can be grasped between the distal upright portion 72 and the proximal upright portion 73.

[0096] Furthermore, the detection switch 131 may have a structure in which the conduction of the switch is always on and the off state is detected, rather than the conduction of the switch being always off and the on state is detected. [Explanation of symbols]

[0097] 1. Healthcare system 10 Medical Devices 21 Extension 22 Energy transmission section 27 Connection terminal 31 Shaft section 33 Displacement shaft 53 2nd connection part 54 1st connection part 55 recess 71 Bottom 72 Tip side upright part 73 Proximal upright part 74 Receptive Space 100 cabinets 110 Control knob 111 Knob body 113 Contact part 114 Acting part 130 Detector 131 Detector switch 132 Output section 133 Switch body 134 Output circuit 139 2nd terminal 150 Pressing part 160 Electric wire 161 Supply circuit 162 Wire body 165 Connecting wire section 166 1st terminal 190 Power supply equipment 191 Power output section 193 Control Unit 194 Input section

Claims

1. the device comprises an expansion body having a central axis and capable of expanding and contracting radially, a long shaft portion connected to the expansion body, an energy transmission portion provided along the expansion body, a housing connected to the base end of the shaft portion, a long displacement shaft that compresses the expansion body in the axial direction by displacing from an initial position to a compressed position relative to the shaft portion along the axial direction of the expansion body, an operation knob arranged movably relative to the housing, a detection portion housed in the housing and detecting compression of the expansion body by the displacement shaft, and an electric wire connectable to a power supply device for supplying power to the energy transmission portion, passing through the housing and extending along the shaft portion to the energy transmission portion; The expansion body has a recess recessed radially inward in the middle of the axial direction, a first connecting portion connected to the shaft portion, and a second connecting portion arranged to face the first connecting portion across the recess in the axial direction, The displacement shaft extends from within the housing along the shaft portion and is connected to the second connection portion of the expansion body, The recess has a distal upright portion, a proximal upright portion, and a bottom portion located radially innermost between the distal upright portion and the proximal upright portion so as to define a receiving space capable of receiving biological tissue, the distal end side standing portion and the proximal end side standing portion are configured to grasp the biological tissue by displacement of the displacement shaft from the initial position to the compression position, the energy transmission portion is disposed along one of the distal upright portion and the proximal upright portion so as to face the receiving space, the operation knob has a knob body that protrudes from the housing and is used to move the operation knob relative to the housing, and an acting portion that is movably disposed within the housing and that acts on a base end of the displacement shaft that is housed within the housing in response to movement of the operation knob, thereby displacing the displacement shaft from the initial position to the compressed position, The detection unit includes a detection switch whose state changes in response to the displacement of the displacement shaft from the initial position to the compressed position by the operating knob, and an output unit that outputs the state change of the detection switch to the power supply device, and the detection switch and the output unit are electrically independent from the electric wire.

2. The power supply device further includes a connection terminal connectable to the power supply device and a circuit board housed in the housing, the connection terminal has a first terminal and a second terminal that are electrically independent from each other; the electric wire is connectable to the power supply device via the first terminal and includes a supply circuit disposed on the circuit board, an electric wire main body extending from the supply circuit to the energy transfer portion along the shaft portion, and a connecting electric wire portion extending from the supply circuit to the first terminal; the output unit is capable of outputting a state change of the detection switch to the power supply device via the second terminal, and includes an output circuit electrically independent of the supply circuit on the circuit board; The detection switch has a switch body that changes the state of the detection switch when pressed, and a pressing portion that presses the switch body, The medical device according to claim 1, wherein the pressing portion is capable of shifting between a pressed state in which the switch body is pressed and a non-pressed state in which the switch body is not pressed in accordance with the operation of the operating knob that moves the displacement shaft from the initial position to the compressed position.

3. the action portion of the operation knob has a contact portion disposed inside the housing, the contact portion is displaced between a non-contact position where it does not contact the pressing portion and a contact position where it contacts the pressing portion by operation of the operation knob that moves the displacement shaft from the initial position to the compressed position, The medical device according to claim 2 , wherein the pressing portion is brought into the pressing state by contact with the contact portion.

4. The medical device according to any one of claims 1 to 3, wherein the operating portion of the operating knob is connected to the base end of the displacement shaft, is movable along the axial direction of the displacement shaft from a first position to a second position, and moves the displacement shaft from the initial position to the compressed position as it moves from the first position to the second position.

5. the first connecting portion of the expansion body is located closer to the proximal end than the second connecting portion, the displacement shaft is configured to compress the expansion body in the axial direction by pulling the second connecting portion in a proximal direction as the displacement shaft moves from the initial position to the compressed position located on the proximal side of the initial position, The medical device according to claim 4 , wherein the operating portion of the operating knob moves the displacement shaft from the initial position to the compressed position as the operating knob moves from the first position to the second position, which is located proximal to the first position.

6. A medical system comprising the medical device according to any one of claims 1 to 5 and a power supply device.

7. the power supply device includes an input unit that receives the state change of the detection switch output from the output unit, a power output unit that outputs power to the energy transmission unit via the electric wire, and a control unit that controls the output of power from the power output unit, the power output unit has an output mode in which it can output power and a sleep mode in which it cannot output power, The medical system of claim 6, wherein the control unit changes the power output unit from the sleep mode to the output mode when the input unit receives a state change of the detection switch corresponding to compression of the expandable body.

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