Detention device
The placement device simplifies the release and positioning of tubular indwelling devices by using a sheath and dual operating units, addressing the cumbersome and skill-dependent issues of existing methods, ensuring accurate placement in the body lumen.
Patent Information
- Application Number
- JP2025152221
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-03-31
- Filing Date
- 2025-09-12
- Publication Date
- 2025-11-14
AI Technical Summary
Existing tubular indwelling devices, such as stent grafts, require cumbersome operations to release from a string-like member restraint and risk improper placement in a biological lumen due to operator skill dependence.
A placement device with a sheath, string-like conversion means, and operating means that includes a first operating unit for releasing the stent graft from the sheath and a second operating unit for releasing the restraint, allowing controlled expansion and proper placement in a biological lumen.
Enables precise and efficient placement of tubular indwelling devices by simplifying the release process and ensuring accurate positioning in the body lumen.
Smart Images

Figure 2025170119000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to an indwelling device. [Background technology]
[0002] Tubular indwelling devices such as stent grafts used to treat aneurysms in blood vessel walls have been known. For example, abdominal stent grafts used to treat lesions in the abdominal aorta (e.g., aortic aneurysms and aortic dissections) generally have an inverted "Y" shape because they must be placed from the abdominal aorta to the left and right common iliac arteries.
[0003] In stent graft placement, the placement device is introduced into a biological lumen and transported to the lesion site, and then the contracted tubular device is released from the sheath, causing the tubular device to expand and be placed in the biological lumen. Usually, the tubular device expands from the distal part released from the sheath. Another proposed indwelling device is one in which the contracted state of the tubular indwelling device is maintained even when released from the sheath, and by performing a specific operation, the constraint is released and the tubular indwelling device is shifted to an expanded state, allowing the tubular indwelling device to be partially released and retained in the biological lumen (see, for example, Patent Document 1). [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Patent No. 5408866 Summary of the Invention [Problem to be solved by the invention]
[0005]
[0003] Incidentally, one example of a method for partially releasing a tubular indwelling device to leave it in a biological lumen is a method for restraining the contracted state of the tubular indwelling device using a string-like member. In this case, to release the restraint on the tubular indwelling device, it is necessary to pull the operating tool attached to the string-like member to pull out the string-like member, making the operation of releasing the tubular indwelling device from its restraint by the string-like member cumbersome. Furthermore, in order to leave the tubular indwelling device in a biological lumen, it is also necessary to perform the operation of releasing the tubular indwelling device from the sheath, so depending on the skill of the operator, there is a risk that the tubular indwelling device will not be properly placed in the biological lumen.
[0006] An object of the present invention is to properly place a tubular indwelling device in a living body lumen. [Means for solving the problem]
[0007] The placement device according to the present invention comprises: An indwelling device for placing a tubular indwelling device in a biological lumen, a sheath in which the tubular indwelling device is housed; a string-like conversion means that maintains at least a portion of the axial direction of the tubular indwelling device in a contracted state when the tubular indwelling device is released from the sheath, and that can convert the portion from the contracted state to an expanded state; an operating means that is operated to place the tubular indwelling device in the biological lumen, The operating means is a first operating unit for releasing the tubular indwelling device from the sheath; and a second operating portion for releasing the restraint of the portion of the tubular indwelling device by the conversion means. [Effects of the Invention]
[0008] According to the present invention, a tubular indwelling device can be appropriately placed in a body lumen. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1 is a perspective view showing the overall configuration of the placement device. [Figure 2] FIG. 2 is a diagram schematically illustrating a state in which the stent graft is placed in a blood vessel. [Figure 3] FIG. 3 is a schematic diagram showing an example of the conversion means. [Figure 4] FIG. 4 is a diagram showing the internal structure of the operating means. [Figure 5] FIG. 5 is an exploded perspective view of a distal portion of the first operating portion. [Figure 6] FIG. 6 is a cross-sectional view of a distal portion of the first operating portion. [Figure 7] FIG. 7 is an exploded perspective view of the gearbox, trigger, and gear train. [Figure 8] FIG. 8 is an exploded perspective view of the second operating unit. [Figure 9] FIG. 9 is a cross-sectional view of the second operating unit. [Figure 10] 10A to 10C are diagrams showing changes in the state of the stent graft during placement. [Figure 11] 11A and 11B are schematic diagrams showing the operation of the operating means during placement. [Figure 12] FIG. 12 is an exploded perspective view of a second operating unit according to a modified example. [Figure 13] FIG. 13 is a cross-sectional view of a second operating section according to a modified example. [Figure 14] FIG. 14 is a partially cutaway perspective view of a second operating portion according to a modified example. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, an embodiment of the present invention will be described in detail with reference to the drawings. In this embodiment, as an example of an indwelling device according to the present invention, an indwelling device 1 that places a tubular indwelling device, a stent graft 50, in a lesion site L where an aneurysm has occurred in the abdominal aorta C will be described.
[0011] Fig. 1 is a perspective view showing the overall configuration of a placement device 1 according to an embodiment. Fig. 2 is a diagram schematically showing a state in which a stent graft 50 is placed in the abdominal aorta C. Fig. 3 is a schematic diagram showing an example of a converting means 14.
[0012] First, the configuration of the stent graft 50 will be described with reference to FIG. The stent graft 50 is an example of a tubular indwelling device and is used to dilate a lesion in the abdominal aorta C. The stent graft 50 has a main body portion 51, a first branch portion 521 and a second branch portion 522 branching from the end of the main body portion 51 on the proximal side S2 (peripheral side), and a bare portion 53 disposed at the end of the main body portion 51 on the distal side S1 (central side). The first branch portion 521 and the second branch portion 522 have a smaller tubular diameter than the main body portion 51 and are connected to each other so as to branch into two branches from the end of the proximal side S2 of the main body portion 51. In other words, the stent graft 50 has an overall "Y" shape. The stent graft 50 is placed in the abdominal aorta C so that the bare portion 53 is located upstream (toward the heart) in the direction of blood flow and the first branch portion 521 and the second branch portion 522 are located downstream.
[0013] For example, first and second extension stent grafts 501 and 502 are connected to the first branch portion 521 and the second branch portion 522, respectively, and the first and second extension stent grafts 501 and 502 are placed in the left common iliac artery C1 and the right common iliac artery C2. This makes it possible to suppress blood inflow into the lesion site L without obstructing the flow of blood from the upstream side to the downstream side in the branching blood vessels (abdominal aorta C).
[0014] The stent graft 50 is composed of a framework 54 and a membrane 55. The framework 54 is sewn to the membrane 55 with, for example, sutures (not shown).
[0015] The skeleton 54 is configured as, for example, a ring skeleton formed by bending a single metal wire rod in a zigzag (Z-shape) so that peaks (bent portions on the distal side S1) and valleys (bent portions on the proximal side S2) are alternately formed and extending in the circumferential direction. The skeleton 54 is configured to self-expand from a contracted state contracted radially inward to an expanded state expanded radially outward. The skeleton 54 may also be a laser-cut type formed by laser processing a metallic cylindrical member.
[0016] Examples of materials for forming the skeleton 54 include known metals or metal alloys such as stainless steel, nickel-titanium alloy (nitinol), and titanium alloy. The skeleton 54 may also be made of an alloy material that is radiopaque. When a nickel-titanium alloy is used as the material for the skeleton 54, the skeleton 54 can memorize the expanded shape by adjusting the skeleton 54 to its expanded shape and then performing a predetermined heat treatment. The skeleton 54 may also be made of materials other than metal materials (for example, ceramics, resin, etc.).
[0017] The coating 55 is a flexible film that forms a blood flow path. Examples of materials that can be used to form the coating 55 include fluororesins such as PTFE (polytetrafluoroethylene) and polyester resins such as polyethylene terephthalate.
[0018] The main body 51, the first branch 521, and the second branch 522 have a cylindrical shape that defines a blood flow path. In each of the main body 51, the first branch 521, and the second branch 522, a plurality of skeletons 54 are arranged at predetermined intervals along the axial direction (the extension direction of the stent graft 50) on the circumferential surface of a coating 55. The coatings 55 may be arranged on both the outer and inner circumferential surfaces of the skeleton 54 so as to sandwich the skeleton 54 therebetween, or may be arranged only on the outer circumferential surface or only on the inner circumferential surface of the skeleton 54.
[0019] The bare portion 53 generates friction with the blood vessel wall when the stent graft 50 is placed, thereby functioning to prevent displacement (migration) of the stent graft 50. A portion of the proximal side S2 of the skeleton 54 of the bare portion 53 is fixed to the coating 55, with most of it exposed from the coating 55. The skeleton 54 of the bare portion 53 is provided with fixing pins (number omitted) that protrude radially outward. The fixing pins bite into the blood vessel wall, thereby helping to fix the bare portion 53 to the blood vessel.
[0020] Next, the configuration of the placement device 1 according to the embodiment will be described with reference to FIG. As shown in FIG. 1 and other figures, the placement device 1 includes a catheter portion 10 that is introduced into a blood vessel, and an operating means 20 that is operated when placing a stent graft 50 in the blood vessel.
[0021] The catheter portion 10 includes a sheath 11, an inner rod 12, a distal tip 13, and a converting means 14. The stent graft 50 is attached to the distal end S1 of the inner rod 12 and is housed within the sheath 11.
[0022] The sheath 11 is a tubular member made of, for example, a flexible material. Examples of materials that can be used to form the sheath 11 include biocompatible synthetic resins (elastomers) selected from fluororesin, polyamide resins, polyethylene resins, and polyvinyl chloride resins, resin compounds in which these resins are mixed with other materials, multilayer structures made of these synthetic resins, and composites of these synthetic resins and metal wires.
[0023] The inner rod 12 is a shaft-shaped member that is longer than the sheath 11. The inner rod 12 can be made of various materials having appropriate hardness and flexibility, such as resin (plastic, elastomer) or metal. The inner rod 12 has an inner cavity therein through which a guide wire (not shown) is inserted.
[0024] The proximal side S2 of the sheath 11 and the inner rod 12 are connected to a first operating part 20A and a second operating part 20B, respectively. A distal tip 13 is disposed at the distal end of the inner rod 12.
[0025] The inner rod 12, with the stent graft 50 attached to the end of the distal side S1, is inserted inside the sheath 11 and arranged to extend to the distal side S1 of the sheath 11. The sheath 11 and the inner rod 12 are configured to be relatively movable in the axial direction of the sheath 11 by operating the operating means 20 (mainly the first operating section 20A).
[0026] A portion (e.g., bare portion 53) of stent graft 50 attached to inner rod 12 is constrained by conversion means 14 so as to make it difficult to expand. Specifically, conversion means 14 has a string-like member, and when stent graft 50 is released from sheath 11, maintains at least a portion of stent graft 50 in a contracted state, and converts it from the contracted state to an expanded state by operating second operating unit 20B.
[0027] 3, the conversion means 14 is composed of a string-like restraining string 141 and a holding wire 142. The restraining string 141 is wound around the outer peripheral surface of the stent graft 50, and the holding wire 142 engages with the restraining string 141 wound around the outer peripheral surface of the stent graft 50, thereby maintaining the wound state of the restraining string 141. The conversion means 14 is attached to the stent graft 50, which is attached to the inner rod 12, for example, so as to contract the stent graft 50 in the radial direction.
[0028] Restraining cord 141 and holding wire 142 are made of, for example, a material having a predetermined strength and rigidity, and may be made of, for example, suture thread such as nylon fiber or fluorine fiber, thin metal wire made of nickel-titanium alloy or stainless steel, or a string-like member made of resin. Note that restraining cord 141 and holding wire 142 are preferably made of different materials to improve the slidability when they are pulled out.
[0029] The stent graft 50 is held in a contracted state by the restraining string 141 and the distal side S1 portion of the retaining wire 142. The end of the proximal side S2 of the restraining string 141 is pulled out from one insertion hole 351 of the Y connector 35 and connected to the operating tool 36 (see Figure 8). The restraining string 141 is pulled out by pulling the operating tool 36. The end of the proximal side S2 of the retaining wire 142 is connected to the fixed terminal 33 of the second operating unit 20B (see Figure 9). By operating the rear handle 31 of the second operating unit 20B, the retaining wire 142 moves to the proximal side S2 and is disengaged from the restraining string 141.
[0030] The restraining cord 141 is wound circumferentially around the outer peripheral surface of a portion of the stent graft 50 (for example, the bare portion 53), and is bent with each rotation to be wound in the opposite direction. Meanwhile, the retention wire 142 is arranged along the axial direction of the stent graft 50 and engages with a bent portion B formed on the restraining cord 141. That is, the restraining cord 141 is wound in such a manner that it cannot maintain its wound state by itself, and is held in place by engaging with the retention wire 142 so as not to come off. Therefore, when the rear handle 31 is rotated, the retention wire 142 moves to the proximal side S2, and the engagement between the restraining cord 141 and the retention wire 142 is released, the restraining cord 141 naturally comes off the stent graft 50. As a result, the portion of the stent graft 50 is released from the contracted state, becomes radially expandable, and transitions to an expanded state.
[0031] The operating means 20 is provided on the proximal side S2 of the catheter section 10. The operating means 20 includes a first operating section 20A and a second operating section 20B. Fig. 4 is a diagram showing the internal structure of the operating means 20. Fig. 4 shows the operating means 20 with the front cover 21, upper cover 221, and front handle 23 removed.
[0032] The first operating unit 20A is an operating unit for relatively moving the sheath 11 and the inner rod 12 in the axial direction to release the stent graft 50 from the sheath 11. The first operating unit 20A has a sheath fixing part that fixes the sheath 11, a moving mechanism that moves the sheath fixing part in the axial direction, and covers 21 and 22 that house the sheath fixing part. The sheath fixing part is configured to include a gear box 25 and the like, and the moving mechanism is configured to include a gear train 27, a rack 28, a front handle 23 and the like.
[0033] The second operating unit 20B is an operating unit for moving the string-like conversion means 14 to the proximal side S2 to release the constraint of the stent graft 50 by the conversion means 14. In addition, the end of the proximal side S2 of the inner rod 12 is connected to the second operating unit 20B, and the sheath 11 can be moved in the axial direction by operating the first operating unit 20A while keeping the axial position of the inner rod 12 fixed.
[0034] Fig. 5 is an exploded perspective view of the first operating unit 20A. Fig. 6 is a cross-sectional view of the first operating unit 20A. Fig. 7 is an exploded perspective view of the gear box 25, the trigger 26, and the gear train 27.
[0035] As shown in FIG. 5 and other figures, the first operating unit 20A includes a front cover 21, a cover body 22, a front handle 23, a gear box 25, a trigger 26, a gear train 27, a rack 28, and the like.
[0036] The front cover 21 has a hollow semi-spindle shape, and is attached to the distal side S1 of the cover body 22. The front cover 21 has an opening 21a at its tip for inserting the catheter portion 10 therethrough.
[0037] The cover body 22 has a cylindrical shape. The cover body 22 has a divided structure consisting of a semi-cylindrical upper cover 221 and a lower cover 222. The cover body 22 houses a gear box 25, a trigger 26, a gear train 27, a rack 28, etc. The second operating part 20B is attached to the end of the proximal side S2 of the cover body 22.
[0038] The upper cover 221 has an oval slit 221a along the axial direction. A second gear 272 of the gear train 27 protrudes from the slit 221a to mesh with the worm 23a of the front handle 23. A button 263 of the trigger 26 protrudes from the slit 221a to be operable by the operator. The axial length of the slit 221a is set longer than the movable length of the gear box 25 (sheath fixing portion).
[0039] Rack 28 is disposed on the inner peripheral surface of upper cover 221 along both peripheral edges along the axial direction of slit 221a. Rack 28 is also formed integrally with upper cover 221. The axial length of rack 28 corresponds to the movable length of gear box 25 (sheath fixing portion).
[0040] The front handle 23 has a cylindrical shape and is inserted into the outer peripheral surface of the cover main body 22. The front handle 23 has a worm 23a (screw gear) on its inner peripheral surface. The worm 23a meshes with the second gear 272 of the gear train 27. An engagement groove 23b that engages with a stopper 257 (described later) is provided along the circumferential direction on the inner peripheral surface of the front handle 23 at a position on the proximal side S2 of the worm 23a. The engagement groove 23b is a groove of a predetermined depth that is provided from the inner peripheral surface of the front handle 23 toward the outer surface. A portion of the engagement groove 23b opens to the outer surface of the front handle 23.
[0041] The gear box 25 has a sheath connecting portion 251, a rod insertion portion 252, a spring holding portion 253, a gear accommodating portion 254, a restricting portion 256, and a stopper 257. The gear box 25 also constitutes a part of a sheath fixing portion that fixes the sheath 11.
[0042] The sheath connection part 251 has a cylindrical shape and fixes the proximal end of the sheath 11. The sheath connection part 251 is provided at the end of the gear box 25 on the distal side S1.
[0043] The rod insertion portion 252 is provided on the proximal side S2 of the sheath connection portion 251. The inner rod 12 and the converting means 14 exposed from the proximal end of the sheath 11 are inserted into the rod insertion portion 252.
[0044] The spring holding portion 253 holds the first spring 24. The spring holding portion 253 has a protrusion 253a that protrudes upward. The gear accommodating portion 254 accommodates the gear train 27.
[0045] The spring holding portion 253 and the gear accommodating portion 254 are open at the top. The spring and gear accommodating portion 254 is formed by two side plates 255 arranged along the axial direction. Each of the side plates 255 has a through hole 255a, a bearing hole 255b, a trigger connecting portion 255c, and a locking portion 255e. One of the side plates 255 (the side plate 255 on the near side in FIG. 7) has a spring mounting portion 255d.
[0046] The through-hole 255a is an oval hole extending obliquely downward toward the proximal side S2. The first gear shaft 274 is inserted into the through-hole 255a. The bearing hole 255b supports the second gear shaft 275. The trigger connection portion 255c is engaged with the engagement hole 261b of the trigger 261. One end of the second spring 29 is connected to the spring attachment portion 255d. The second spring 29 is formed, for example, by a compression coil spring. The locking portion 255e locks the locking piece 261c of the trigger 26.
[0047] The restricting portion 256 is provided along the axial direction at the center in the width direction on the distal side S1 of the spring holding portion 253. The restricting portion 256 is located below the connecting portion 262 of the trigger 26, and restricts the button 263 from being pressed directly downward.
[0048] The stopper 257 is a screw-like member provided facing upward on the proximal side S2 of the gear housing portion 254. The stopper 257 is attached to a threaded hole (reference numeral omitted) of the gear box 25 via an opening connected to the engagement groove 23b of the front handle 23, and is configured so that the position of its upper surface can be adjusted using a jig. As shown in FIG. 6, by setting the position of the upper surface of the stopper 257 to be higher than the inner circumferential surface of the front handle 23, the front handle 23 and the gear box 25 can be moved integrally along the axial direction while preventing the front handle 23 from falling off the gear train 27.
[0049] The trigger 26 has two side plates 261, 261 arranged along the axial direction. The side plates 261, 261 are connected to each other on the distal side S1 by a connecting portion 262. A button 263 is disposed on the connecting portion 262.
[0050] Each of the side plates 261 has a bearing hole 261a, an engagement hole 261b, a locking piece 261c, and a spring attachment portion 261d. The bearing hole 261a and the engagement hole 261b have an oval shape along the axial direction. The first gear shaft 274 is inserted into the bearing hole 261a. The trigger connection portion 255c of the gear box 25 is engaged with the engagement hole 261b. The locking piece 261c is locked with the locking portion 255e of the gear box 25. The other end of the second spring 29 is connected to the spring attachment portion 261d.
[0051] Button 263 has a protrusion 263a that protrudes downward. First spring 24 is attached between protrusion 253a of spring holding portion 253 and protrusion 263a of button 263. First spring 24 is formed of, for example, a compression coil spring.
[0052] The trigger 26 is attached to the gear box 25 in a state in which it is biased obliquely upward by the first spring 24. At this time, the side plate 261 of the trigger 26 is located outside the side plate 255 of the gear box 25, and the locking piece 261c is located below the locking portion 255e. The trigger connecting portion 255c of the gear box 25 is inserted into the engagement hole 261b of the trigger 26, and the locking piece 261c of the trigger 26 is locked with the locking portion 255e of the gear box 25, whereby the gear box 25 and the trigger 26 are integrated and held in a biased state.
[0053] That is, the sheath fixing portion is configured to include a trigger 26 that supports the first gear 271, a gear box 25 that supports the second gear 272, and a first spring 24 that is interposed between the trigger 26 and the gear box 25 and biases the trigger 26 in a direction in which the first gear 271 meshes with the rack 28, thereby maintaining the meshed state. The gear box 25 supports the first gear 271 as well as the second gear 272.
[0054] The gear train 27 has a first gear 271, a second gear 272, and a third gear 273. The first gear 271 is a pinion gear that meshes with the rack 28. Two first gears 271 are provided with the third gear 273 sandwiched between them. The second gear 272 is a worm wheel that meshes with the worm 23a of the front handle 23. The third gear 273 is a relay gear that transmits the rotation of the second gear 272 to the first gear 271. The third gear 273 is fixed to the same first gear shaft 274 as the first gear 271.
[0055] A first gear shaft 274, to which the first gear 271 and the third gear 273 are fixed, is inserted into a bearing hole 261a of the trigger 26 via a through hole 255a of the gear box 25. A second gear shaft 275, to which the second gear 272 is fixed, is inserted into a bearing hole 255b of the gear box 25.
[0056] In the first operating unit 20A, when the front handle 23 is rotated in one direction around the axial direction, the second gear 272 rotates via the worm 23a. The rotation of the second gear 272 is transmitted to the first gear 271 via the third gear 273. The rotation of the first gear 271 is converted into linear motion along the axial direction by the rack 28. Because the rack 28 is fixed to the cover body 22, the gear box 25 having the gear train 27 moves in the axial direction.
[0057] The sheath 11 is fixed to the gear box 25, and the inner rod 12 is fixed to a fixed terminal 33 inside a rod guide shaft 34 fixed to the cover body 22, so that the sheath 11 moves in the axial direction relative to the inner rod 12. This allows the stent graft 50 placed on the inner rod 12 to be gradually exposed and released from the sheath 11, allowing fine adjustment of the placement position of the stent graft 50.
[0058] Furthermore, the rack 28 and the first gear 271 are configured to be switchable between an engaged state and a disengaged state. Specifically, when the button 263 of the trigger 26 is pressed, the trigger 26 rotates downward about the trigger connection portion 255c of the gear box 25, and the first gear 271 moves downward together with the trigger 26. As a result, the first gear 271 and the rack 28 are disengaged. At this time, the first gear shaft 274 to which the first gear 271 is fixed moves along the oval through-hole 255a provided in the gear box 25. Meanwhile, the engaged state between the front handle 23 and the second gear 272 and the engaged state between the second gear 272 and the third gear 273 are maintained. Therefore, the gear box 25, the trigger 26, the gear train 27, and the front handle 23 are freely movable in the axial direction relative to the cover main body 22 in which the rack 28 is disposed. As a result, after fine-tuning the placement position of the stent graft 50, the button 263 can be pressed and slid to the proximal side S2, thereby releasing the stent graft 50 in one go. When the button 263 is released, the restoring forces of the first spring 24 and the second spring 29 return the trigger 26 to its original state, and the rack 28 and the first gear 271 become meshed.
[0059] The gear box 25 also has a restricting portion 256 that restricts the trigger 26 from being pushed in against the biasing force of the first spring 24. Meanwhile, the trigger 26 is configured to be movable in the axial direction relative to the gear box 25. Specifically, the trigger 26 is connected to the gear box 25 by the engagement between the oval bearing hole 261a and the first gear shaft 274 and the engagement between the oval engagement hole 261b and the trigger connecting portion 255c. Therefore, the restriction by the restricting portion 256 is released and the trigger 26 can be pushed in only when the button 263 of the trigger 26 is moved to the proximal side S2. This prevents the meshing state between the rack 28 and the first gear 271 from being released due to an erroneous operation.
[0060] Fig. 8 is an exploded perspective view of the second operating unit 20B. Fig. 9 is a cross-sectional view of the second operating unit 20B. As shown in Figs. 8 and 9, the second operating unit 20B includes a rear handle 31, a handle stopper 32, a fixed terminal 33, a rod guide shaft 34, a Y connector 35, and the like.
[0061] The rear handle 31 is an operating member that is rotated about its axial direction when pulling out the holding wire 142, which is the string-like conversion means 14. The rear handle 31 has a cylindrical shaft attachment portion 311, which is inserted onto the outer circumferential surface of the rod guide shaft 34. A female screw 312 is formed on the inner circumferential surface of the shaft attachment portion 311. The female screw 312 meshes with a male screw 332 of the fixed terminal 33, and together with the male screw 332, forms a feed screw mechanism.
[0062] The handle stopper 32 is a bowl-shaped member that is disposed on the proximal side S2 of the rear handle 31 and restricts axial movement of the rear handle 31. The handle stopper 32 has a recess 321 to which the end of the rod guide shaft 34 on the proximal side S2 is attached. An engagement piece 322 is formed on the inner circumferential surface of the recess 321 so as to protrude radially. The handle stopper 32 is detachably attached to the rod guide shaft 34. When the handle stopper 32 is detached from the rod guide shaft 34, the restriction on axial movement of the rear handle 31 is released, and the rear handle 31 and the fixed terminal 33 can move together to the proximal side S2.
[0063] The fixed terminal 33 is a cylindrical member, and an end of the proximal side S2 of the inner rod 12 is fixed to it. In addition, an end of the proximal side S2 of the holding wire 142 is also fixed to the fixed terminal 33. For example, with the holding wire 142 aligned along the inner rod 12, the inner rod 12 and the holding wire 142 are inserted into a rubber block 333, and the rubber block 333 is press-fitted into an insertion hole (reference numeral omitted) of the fixed terminal 33, thereby fixing the inner rod 12 and the holding wire 142 to the fixed terminal 33. In FIG. 9 , the end of the proximal side S2 of the inner rod 12 passes through the insertion hole of the fixed terminal 33 and extends to the Y connector 35. In addition, the end of the proximal side S2 of the holding wire 142 is, for example, pulled out from an opening (reference numeral omitted) of the fixed terminal 33 and fixed by adhesive.
[0064] The fixed terminal 33 has guide pieces 331 along the axial direction. The guide pieces 331 are provided, for example, at two locations facing each other in the radial direction. The guide pieces 331 engage with guide slits 341 of the rod guide shaft 34. A portion of the guide piece 331 is exposed from the guide slit 341 when the fixed terminal 33 is attached to the rod guide shaft 34. A male thread 332 that meshes with the female thread 312 of the rear handle 31 is formed in this portion. The number of guide pieces 331 and guide slits 341 is not limited to two and can be changed as appropriate.
[0065] The rod guide shaft 34 is a cylindrical member that guides the movement of the fixed terminal 33 in the axial direction. The rod guide shaft 34 is provided with guide slits 341 along the axial direction over its entire length. The guide slits 341 are provided at positions corresponding to the guide pieces 331 of the fixed terminal 33. The rod guide shaft 34 also has engagement grooves 343 formed at the end of the proximal side S2 along the circumferential direction, starting from the two guide slits 341. One end of the engagement groove 343 communicates with the guide slits 341, and the other end is closed. The engagement groove 343 has a protrusion 344 formed at approximately the center in the circumferential direction, which restricts the rotational movement of the handle stopper 32.
[0066] The Y connector 35 is attached to the proximal side S2 of the handle stopper 32. The Y connector 35 has insertion holes 351 and 352 that communicate with the inner cavity of the operating means 20. The insertion holes 351 and 352 meet on the distal side S1. The guide wire 15 and the restraining string 141 are inserted into the catheter portion 10 through the insertion holes 351 and 352.
[0067] The rod guide shaft 34 is fixed to the cover body 22 so as not to move in the axial direction by fitting a flange 342 provided at the end of the distal side S1 into a fixing groove (reference numeral omitted) of the cover body 22. The fixed terminal 33 is inserted into the rod guide shaft 34 from the proximal side S2 so that the guide piece 331 enters the guide slit 341. In this state, the rear handle 31 is inserted into the rod guide shaft 34 from the proximal side S2 and tightened, whereby the female thread 312 of the rear handle 31 and the male thread 332 of the fixed terminal 33 engage with each other, and the fixed terminal 33 is pushed all the way to the end of the rod guide shaft 34 on the distal side S1. The fixed terminal 33 is connected integrally to the rear handle 31 via a feed screw mechanism consisting of the female thread 312 and the male thread 332. Meanwhile, the fixed terminal 33 is movable in the axial direction relative to the rod guide shaft 34.
[0068] The end of the rod guide shaft 34 on the proximal side S2 (the portion where the engagement groove 343 is provided) protrudes from the proximal end of the rear handle 31. A handle stopper 32 is attached to this protruding portion. This restricts the movement of the rear handle 31 in the axial direction, preventing the rear handle 31 from moving to the proximal side S2 and falling off. In addition, by rotating the handle stopper 32 and detaching it from the rod guide shaft 34, the restriction on the movement of the rear handle 31 is released.
[0069] Specifically, the handle stopper 32 is positioned relative to the rod guide shaft 34 so that the engagement piece 322 is located at the open end of the engagement groove 343. When the handle stopper 32 is rotated in this state in the direction to engage with the engagement groove 343 (the opposite direction to arrow A in FIG. 8), the engagement piece 322 moves along the engagement groove 343 and overcomes the protrusion 344. The handle stopper 32 is held in this state by the engagement piece 322 fitting between the closed end of the engagement groove 343 and the protrusion 344. Because the engagement piece 322 cannot move beyond the closed end of the engagement groove 343, the handle stopper 32 can only rotate about the axial direction in the direction of detachment. Note that, to detach the handle stopper 32 from the rear handle 31, the handle stopper 32 needs to be rotated so that the engagement piece 322 overcomes the protrusion 344, which requires a certain amount of force.
[0070] In the second operating unit 20B, the rear handle 31 is clamped between the cover body 22 and the handle stopper 32 and is unable to move in the axial direction. Therefore, when the rear handle 31 is rotated about the axial direction, the fixed terminal 33 moves in the axial direction along the guide slit 341 of the rod guide shaft 34 due to a feed screw mechanism consisting of the female screw 312 and the male screw 332. This causes the conversion means 14 fixed to the fixed terminal 33 to advance and retreat in the axial direction.
[0071] The steps of placing the stent graft 50 in the abdominal aorta C using the placement device 1 will be described below. Figures 10A to 10C are diagrams showing the state changes of the stent graft 50 during placement. Figures 10A to 10C schematically show the stent graft 50. In addition, in Figures 10A to 10C, the distal side S1 is the "upstream side" in the blood flow direction, and the proximal side S2 is the "downstream side." Figures 11A and 11B are diagrams showing the operation of the operating means 20 during placement. Figure 11A shows the operation when releasing the stent graft 50 from the sheath 11, and Figure 11B shows the operation when withdrawing the holding wire 142.
[0072] When placing the stent graft 50 at the lesion site L (target placement site) of the abdominal aorta C, the sheath 11 and inner rod 12 (catheter portion 10) are inserted from the downstream side in the blood flow direction along the guide wire 15 that has been previously introduced into the abdominal aorta C, and the stent graft 50 is positioned at the lesion site L (see Figure 10A).
[0073] Next, with the sheath 11 positioned, the first operating unit 20A is operated to move the sheath 11 to the proximal side S2 (downstream in the blood flow direction) and release the stent graft 50 from the sheath 11 (see FIG. 10B). The operation of the first operating unit 20A to release the sheath 11 is as described above. That is, as shown in FIG. 11A, the operator rotates the front handle 23 of the first operating unit 20A to gradually expose the stent graft 50 attached to the inner rod 12 from the sheath 11 and releases it while fine-tuning the placement position. Thereafter, the operator presses the button 263 of the trigger 26 and slides it to the proximal side S2 to release the stent graft 50 all at once. The rear handle 23 and the like are now positioned near the second operating unit 20B.
[0074] At this time, as shown in Fig. 10B, the main body portion 51, the first branch portion 521, and the second branch portion 522 of the stent graft 50 transition to an expanded state. On the other hand, the bare portion 53 is restrained by the converting means 14 and is maintained in a contracted state.
[0075] Next, the retaining wire 142 is pulled out based on the operation of the rear handle 31 of the second operating unit 20B, and the constraint on the bare portion 53 of the stent graft 50 by the converting means 14 is released and the bare portion 53 also transitions to an expanded state (see FIG. 10C). As shown in FIG. 11B, when the operator rotates the rear handle 31 of the second operating unit 20B, the retaining wire 142 moves to the proximal side S2 and is disengaged from the restraining cord 141. Because the second operating unit 20B is located near the first operating unit 20A after the sheath 11 has been moved to the proximal side S2, the operator can intuitively and easily transition to operating the second operating unit 20B.
[0076] In the example described above, after the stent graft 50 is completely released from the sheath 11, the retaining wire 142 is withdrawn to expand the bare portion 53 of the stent graft 50. However, because the second operating unit 20B is provided independently of the first operating unit 20A, it is possible to individually adjust the timing of releasing the stent graft 50 from the sheath 11 and the timing of releasing the constraint on the bare portion 53 of the stent graft 50. For example, it is also possible to release only the bare portion 53 of the stent graft 50 from the sheath 11, expand the bare portion 53, and then release the remaining portion of the stent graft 50 from the sheath 11. Furthermore, for example, the operation of releasing the bare portion 53 of the stent graft 50 from the sheath 11 and the operation of withdrawing the retaining wire 142 can be performed simultaneously.
[0077] As described above, the placement device 1 according to this embodiment is a placement device 1 for placing a stent graft 50 (tubular placement device) in the abdominal aorta C (biological lumen), and includes a sheath 11 containing the stent graft 50, a string-like retention wire 142 (conversion means) that maintains at least a portion of the axial direction (e.g., bare portion 53) in a contracted state when the stent graft 50 is released from the sheath 11 and is convertible from the contracted state to an expanded state, and an operation means 20 that is operated to place the stent graft 50 in the abdominal aorta C. The operation means 20 has a first operation unit 20A for releasing the stent graft 50 from the sheath 11, and a second operation unit 20B for releasing the portion of the stent graft 50 that is restrained by the retention wire 142.
[0078] According to the placement device 1, the operation of the first operating unit 20A for releasing the stent graft 50 from the sheath 11 and the operation of the second operating unit 20B for releasing the constraint on at least a portion of the stent graft 50 can be easily performed using a single operating means 20. Furthermore, the first operating unit 20A and the second operating unit 20B can be operated independently. Therefore, the stent graft 50 can be placed properly in the abdominal aorta C. Furthermore, the timing of releasing the stent graft 50 from the sheath 11 and the timing of releasing the constraint on at least a portion of the stent graft 50 can be adjusted individually, allowing for flexible response as appropriate depending on, for example, the placement site, the type of tubular indwelling device, the case, etc.
[0079] In addition, in the indwelling device 1, the second operating section 20B has a fixed terminal 33 (fixed member) to which the holding wire 142 is connected, and a rear handle 31 (operating member) that moves the fixed terminal 33 in the axial direction in response to operation by the operator. This allows at least a portion of the stent graft 50, which is maintained in a contracted state, to be expanded by moving the string-like retaining wire 142 in the axial direction via the fixed terminal 33, thereby enabling the stent graft 50 to be properly placed in the target placement site. Furthermore, since the contracted state of the stent graft 50 is maintained using the string-like retaining wire 142, the device structure can be simplified.
[0080] In the placement device 1, the rear handle 31 (operation member) is a rotating member, and the second operation unit 20B further has a feed screw mechanism (power transmission unit) that transmits the rotation of the rear handle 31 to the fixed terminal 33. This allows the rear handle 31 to be made more space-saving, and the string-like holding wire 142 can be moved axially with a stable force via a feed screw mechanism consisting of the female screw 312 of the rear handle 31 and the male screw 332 of the fixed terminal 33.
[0081] In addition, in the retention device 1, the second operating unit 20B further has a handle stopper 32 (stopper portion) that restricts the axial movement of the rear handle 31 (operating member), and the handle stopper 32 is detachably provided on the second operating unit 20B and can be detached from the second operating unit 20B to release the restriction on the movement of the rear handle 31.
[0082] That is, the placement device 1 is a placement device for placing a stent graft 50 (tubular placement device) in the abdominal aorta C (lung of the living body), and includes a sheath 11 in which the stent graft 50 is housed, a string-like holding wire 142 (conversion means) that maintains at least a portion of the stent graft 50 in an axial direction (for example, a bare portion 53) in a contracted state when the stent graft 50 is released from the sheath 11 and can convert that portion from the contracted state to an expanded state, and a string-like holding wire 142 (conversion means) that connects the holding wire 142 to the stent graft 50. and a second operating unit 20B for releasing the restraint on a portion of the stent graft 50 by the retaining wire 142. The second operating unit 20B has a rear handle 31 (operating member) that moves the retaining wire 142 in the axial direction in response to operation by an operator, and a handle stopper 32 (stopper portion) that restricts the axial movement of the rear handle 31. The handle stopper 32 is detachably provided on the second operating unit 20B and can be detached from the second operating unit 20B to release the restriction on the movement of the rear handle 31.
[0083] This prevents the rear handle 31 from moving axially and falling off, and also allows the restriction on the movement of the rear handle 31 to be released by detaching the handle stopper 32 as needed, allowing the holding wire 142 (converting means) to be properly withdrawn (pulled out). That is, when the handle stopper 32 is detached from the second operating unit 20B, the restriction on the movement of the rear handle 31 and the fixed terminal 33 toward the proximal side S2 is released, and the rear handle 31 and the fixed terminal 33 become freely movable in the axial direction relative to the rod guide shaft 34. By sliding the rear handle 31 toward the proximal side S2, the holding wire 142 can be easily withdrawn.
[0084] In addition, in the placement device 1, the handle stopper 32 (stopper portion) can be rotated in only one direction around the axial direction, and is configured to be detachable from the second operating portion 20B by being rotated in one direction. This allows the restriction on movement of the rear handle 31 to be easily released as needed by simply operating the handle stopper 32.
[0085] [Variations] Fig. 12 is an exploded perspective view of a second operating unit 20B-1 according to a modified example. Fig. 13 is a cross-sectional view of the second operating unit 20B-1. Fig. 14 is a partially cutaway cross-sectional perspective view of the second operating unit 20B-1. As shown in Figs. 12 to 14, the second operating unit 20B-1 includes a rear handle 31, a handle stopper 32, a bobbin 37, a rod guide shaft 34, and a Y connector 35.
[0086] In the second operating section 20B-1, instead of the fixed terminal 33 in the embodiment, a bobbin 37 around which a holding wire 142 can be wound is provided. The other components are almost the same as those in the embodiment, and will be described briefly.
[0087] The rear handle 31 is an operating member that is rotated about its axial direction when pulling out the holding wire 142, which is the string-like conversion means 14. The rear handle 31 is inserted into the outer circumferential surface of the rod guide shaft 34 and rotates around the rod guide shaft 34 as its axis.
[0088] The ends of the inner rod 12, the restraining string 141, and the proximal side S2 of the holding wire 142 are inserted, for example, into a rubber block 333. The inner rod 12 is fixed to the rod guide shaft 34 by press-fitting the rubber block 333 into an insertion hole (reference numeral omitted) of the rod guide shaft 34.
[0089] The holding wire 142 is held by the rubber block 333 by friction and cannot move in the axial direction unless the rear handle 31 is rotated. In other words, the friction between the holding wire 142 and the rubber block 333 restricts the rotation of the rear handle 31. A rotation stop mechanism (for example, a cam clutch) that mechanically restricts the rotation of the rear handle 31 relative to the rod guide shaft 34 may be provided.
[0090] The end of the proximal side S2 of the retention wire 142 is pulled out from the guide slot 341 of the rod guide shaft 34. The pulled out retention wire 142 is wound around cylindrical folded-back portions 38 provided on the upper cover 221 and the lower cover 222, and is guided to the bobbin 37. By being wound around the folded-back portions 38, an appropriate tension is applied to the retention wire 142, which makes it possible to prevent poor winding.
[0091] The bobbin 37 is a winding portion that winds up the retention wire 142. The bobbin 37 has a cylindrical body portion 371 and flange portions 372, 373 that are arranged on both axial ends of the body portion 371. An end portion of the proximal side S2 of the retention wire 142 that is pulled out from the rod guide shaft 34 is fixed to the body portion 371 of the bobbin 37 by, for example, gluing.
[0092] The bobbin 37 is fixed to the outer circumferential surface of the shaft attachment part 311 of the rear handle 31, for example, by adhesive. The bobbin 37, together with the rear handle 31, is inserted onto the outer circumferential surface of the rod guide shaft 34. The bobbin 37 rotates together with the rear handle 31 as the rear handle 31 turns. As the bobbin 37 rotates, the holding wire 142 is wound directly onto the body part 371 and pulled out.
[0093] As such, the second operating unit 20B-1 of the modified example has a bobbin 37 (winding unit) that winds up the holding wire 142 (conversion means), and a rear handle 31 (operating member) that rotates the bobbin 37 in response to a rotational operation by the operator.
[0094] When the retention wire 142 is pulled out using the feed screw mechanism provided on the rear handle 31 and the fixed terminal 33 as in the embodiment, the movement distance of the retention wire 31 per rotation of the rear handle 31 is short. In contrast, in the modified example in which the retention wire 142 is wound directly around the bobbin 37, the retention wire 142 is wound only by the amount of rotation of the rear handle 31, so that the retention wire 142 can be easily pulled out, and the stent graft 50, which has been constrained in a contracted state, can be instantly released and expanded.
[0095] Furthermore, unlike a feed screw mechanism, there is no restriction on the travel distance, so it is possible to shorten the length of the shaft attachment portion 311 of the rear handle 31 to which the bobbin 37 is attached, thereby enabling the miniaturization of the placement device 1. Furthermore, it is also possible to increase the length of the retention wire 142, which allows the restraining length of the stent graft 50 to be increased, making it possible to easily accommodate cases where a large stent graft 50 is restrained.
[0096] In the above description, the bobbin 37 is directly fixed to the rear handle 31, but a power transmission member such as a gear may be interposed between the rear handle 31 and the bobbin 37 to adjust the amount of rotation of the bobbin 37 relative to the amount of rotation of the rear handle 31. Also, the winding portion that winds the holding wire 142 may be formed integrally with the rear handle 31 as a single molded part.
[0097] The invention made by the inventor has been specifically described above based on an embodiment, but the present invention is not limited to the above embodiment and can be modified within the scope of the gist thereof.
[0098] For example, the converting means 14 consisting of the holding wire 142 and the restraining string 141 shown in the embodiment is an example of a string-shaped converting means, and other configurations may also be applied. For example, a string-shaped member may be wound around the outer peripheral surface of the stent graft 50 to restrain the contracted state of the stent graft 50, and the string-shaped member may be pulled out by operating the second operating unit 20B to release the restrained state.
[0099] In addition, in the embodiment, the bare portion 53 located at the end of the distal side S1 of the stent graft 50 is described as being restrained in a contracted state by the conversion means 14, but the portion restrained by the conversion means 14 may also be the central portion in the axial direction of the stent graft 50 or the end of the proximal side S2.
[0100] Furthermore, the present invention is not limited to the stent graft 50 described in the embodiment, but can also be applied to a placement device that places a tubular indwelling device indwelling in a biological lumen such as a digestive system lumen. In addition to stent grafts, tubular indwelling devices placed by a placement device also include adhesion preventive materials and devices whose distal end is temporarily placed in a biological lumen, such as a thrombus removal device (see JP 2015-107301 A).
[0101] The embodiments disclosed herein should be considered to be illustrative in all respects and not restrictive. The scope of the present invention is defined by the claims, not by the above description, and is intended to include all modifications within the meaning and scope of the claims.
[0102] The disclosures of the specification, drawings and abstract contained in Japanese Patent Application No. 2021-057476 filed on March 30, 2021, and Japanese Patent Application No. 2021-059197 filed on March 31, 2021, are incorporated herein by reference in their entirety. [Explanation of symbols]
[0103] 1. Indwelling device 10. Catheter section 11 Sheath 12 Inner rod 14 Conversion Methods 141 Restraint cord 142 Retaining Wire 20 Operating means 20A 1st operation section 20B 2nd operation section 31 Rear handle (operating member, rotating member) 312 Female thread (power transmission part) 32 Handle stopper (stopper part) 33 Fixed terminal 332 Male thread (power transmission part) 50 Stent graft (tubular device) C. Abdominal aorta (lung)
Claims
1. An indwelling device for placing a tubular indwelling device in a biological lumen, a sheath in which the tubular indwelling device is housed; a string-like conversion means that maintains at least a portion of the axial direction of the tubular indwelling device in a contracted state when the tubular indwelling device is released from the sheath, and that can convert the portion from the contracted state to an expanded state; an operating means that is operated to place the tubular indwelling device in the biological lumen, The operating means is a first operating portion for releasing the tubular indwelling device from the sheath; a second operating portion for releasing the restraint of the portion of the tubular indwelling device by the conversion means; A placement device having:
2. The second operation unit is a fixed member to which the conversion means is connected; The placement device according to claim 1 , further comprising an operating member that is operated by an operator to move the fixing member in the axial direction.
3. the operating member is a rotating member, The placement device according to claim 2 , wherein the second operation unit further includes a power transmission unit that transmits the rotation of the rotating member to the fixing member.
4. The second operation unit is a winding section that winds up the converting means; The indwelling device according to claim 1 , further comprising an operating member that is rotated by an operator to rotate the winding portion.
5. the second operating portion further includes a stopper portion that restricts movement of the operating member in the axial direction, The placement device according to claim 2 , wherein the stopper portion is detachably provided on the second operation portion and releases the restriction on movement of the operation member when detached from the second operation portion.
6. The placement device according to claim 5, wherein the stopper portion is rotatable in only one direction about the axial direction and is configured to be detachable from the second operation portion by being rotated in the one direction.
Citation Information
Patent Citations
Process for adjusting characteristic of thin film circuit
JP1979008866A