Delivery system for interventional heart valve stents

The delivery system addresses the challenges of precise stent placement and navigation in complex vascular structures by using a detachable connection mechanism and curvature adjustment, ensuring safe and efficient deployment of heart valve stents.

JP7842422B2Active Publication Date: 2026-04-08WUHAN VICKOR MEDICAL TECH CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-04-28
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Existing delivery systems for transcatheter aortic valve implantation face challenges in precise placement and release of artificial valve stents due to issues with stent fixation and navigation through complex vascular structures, particularly in Chinese patients with high bicuspid aortic valves and calcified valves, and narrow femoral arteries.

Method used

A delivery system comprising a delivery catheter assembly with a movable inner core, support tube, inner and outer sheaths, and a stent fixation assembly that includes a detachable connection mechanism, position limiting members, and a guide member to facilitate precise stent release and navigation through curved blood vessels, utilizing control handles for precise curvature adjustment.

Benefits of technology

Enables precise and safe deployment of heart valve stents with reduced risk of vessel damage, improving surgical efficiency and safety by allowing for bidirectional detachable connections and adaptive curvature control.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The delivery system of the interventional heart valve stent (200) is removably connected to both ends of the heart valve stent (200) by a stent fixing assembly, and the support tube (12) moves along the axial direction of the inner core (11), thereby realizing the insertion and removal of the heart valve stent (200) into and from the capsule cavity (23) or the receiving cavity, and further realizing a bidirectional detachable connection method, which makes the release position of the heart valve stent (200) more accurate than the one-sided fixation method, and avoids unnecessary adjustment work.
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Description

Technical Field

[0001] The present invention relates to the technical field of devices related to interventional cardiac valve surgery, and particularly to a delivery system for an interventional cardiac valve stent.

Background Art

[0002] With the aging of the human population, the incidence of valvular heart disease has clearly increased. Currently, conventional surgical treatment is still the top-priority treatment option for many patients with severe valvular lesions. However, it has risks such as a large wound, a high postoperative mortality rate, and a high incidence of complications. In recent years, transcatheter valve implantation / repair surgery has gradually matured and been widely applied. In particular, transcatheter aortic valve replacement (TAVR / TAVI) has sufficient evidence-based medical evidence, significantly reduced trauma, and has been recommended in the cardiac valve disease treatment guidelines in Europe and the United States, representing a major advancement in the field of interventional treatment of cardiac valve diseases.

[0003] Transcatheter aortic valve implantation (TAVI) is a novel technique that uses interventional methods to implant an artificial aortic valve. First reported in 2002 by Dr. Criber in France, it brought hope to the treatment of severe aortic stenosis (AS) patients who had lost the opportunity for surgical intervention (e.g., those over 80 years old), adding a new chapter to the history of interventional cardiovascular disease treatment. Over the following decade, with improvements in equipment and accumulated experience, TAVI technology became perfected, and it is now performed continuously at 230 cardiac centers in approximately 40 countries, with a total of over 150,000 surgeries performed. In particular, after a series of registry studies and randomized controlled studies that successively confirmed its effectiveness, feasibility, and safety, TAVI technology has become the top priority treatment method for severe AS patients who cannot undergo surgical valve replacement. Clinically, the artificial bioprosthetic valves used in TAVI are mainly of two types: Edwards Sapien (Edwards Corporation, USA), which is implanted by balloon dilation, and CoreValve (Medtronic Corporation, USA), which is implanted by self-expansion. TAVI technology has already made internationally recognized advancements and is already being applied in a preliminary stage in China, demonstrating similar broad future potential. Currently, the Chinese market for heart valve devices is highly dominated by foreign brands, with foreign companies such as Edwards Lifesciences, Medtronic, LivaNova (already acquired by Solin), St. Jude Medical (already acquired by Abbott), and On-X holding approximately 85% of the market share. Edwards Lifesciences and Medtronic have the entire product line, from mechanical valves and bioprosthetic valves to transcatheter interventional valves. However, domestic manufacturers of devices are emerging in China, and currently, three domestically produced transcatheter aortic valves have received approval from the Chinese CFDA and are on the market: Venus-A from Qiming Medical, J-valve from Suzhou Jiecheng, and VitaFlow from Microinventory. Nevertheless, no Chinese company yet holds an absolute advantage.

[0004] Statistical analysis of hospital patient ultrasound electrocardiogram databases shows that in patients aged 65-74 years (49,995 cases) and ≥75 years (34,671 cases), the detection rates for moderate or severe aortic regurgitation (AR) were 2.12% and 2.85%, respectively, and the detection rates for moderate or severe aortic stenosis (AS) were 0.75% and 0.89%, respectively. The detection rates for severe aortic regurgitation (SAR) and severe aortic stenosis (SAS) in the two groups of patients were 0.52% vs. 0.95% and 0.54% vs. 0.57%, respectively. This indicates that elderly people in China tend to develop aortic regurgitation in cases of aortic valve degenerative disease. There are some differences between patients with aortic valve disease in China and patients in Western countries. (1) The proportion of bicuspid aortic valves in Chinese patients is high, ranging from 40% to 23%, which is significantly higher than the 1.6% to 9.3% in patients in Western countries, and many large-scale TAVR clinical studies in Western countries use bicuspid aortic valves as an exclusion criterion. (2) The aortic valves in Chinese patients have a high degree of calcification. (3) Aortic regurgitation is more common than aortic stenosis in Chinese patients. (4) The femoral artery diameter is narrow, with an average femoral artery diameter of 6.5 mm in Chinese TAVR candidate cases.

[0005] While delivery systems can deliver and deploy artificial valve stents to the aortic valve, completing valve placement and restoring valve function, many issues still exist regarding the placement of delivery systems and artificial valve stents that affect the precise release of the stent. [Overview of the project] [Problems that the invention aims to solve]

[0006] Based on the above circumstances, the present invention provides an interventional cardiac valve stent delivery system that satisfies the requirements for the insertion and removal of cardiac valve stents. [Means for solving the problem]

[0007] The delivery system for interventional heart valve stents is: Includes a delivery catheter assembly and a stent fixation assembly, The delivery catheter assembly includes a movable inner core, support tube, inner sheath, and outer sheath fitted in order from inside to outside, the ends of the inner core each extending from the ends of the support tube, and the distal end of the inner sheath having a housing cavity. The stent fixation assembly is removably connected to both ends of the heart valve stent, and the stent fixation assembly includes a capsule cavity, the distal end of the inner core is inserted through an opening at the proximal end of the capsule cavity and fixedly connected to the capsule cavity, and the support tube can move the heart valve stent axially in and out of the capsule cavity or housing cavity.

[0008] The technical means by which the present invention solves the above technical problems are as follows.

[0009] The interventional heart valve stent delivery system according to the embodiment of the present invention is detachably connected to both ends of the heart valve stent by a stent fixing assembly, and the support tube moves along the axial direction of the inner core to enable insertion and removal of the heart valve stent into the capsule cavity or housing cavity. Furthermore, it provides a bidirectional detachable connection method, which allows for a more precise release position of the heart valve stent compared to a one-sided fixing method and avoids extra adjustment work.

[0010] Based on the above technical means, the present invention can be improved as follows.

[0011] Furthermore, the stent fixing assembly further includes a fixing member, a fixing block, and a position limiting member. The fixing member has a support arm connected to the support tube and extending to the distal end, the fixing block is connected to the distal end of the support tube, and the support arm and the fixing block are configured to be detachably connected to the proximal and distal ends of the heart valve stent, respectively. The position limiting member has a slender, elongated structure that penetrates the support tube axially and extends from both ends of the support tube. The distal end of the position limiting member is used to connect and limit the position of the proximal end of the heart valve stent to the support arm, so as to prevent the proximal end of the heart valve stent from detaching from the support arm.

[0012] Furthermore, the opening diameter of the capsule cavity is expandable in the radial direction, and a guide member is located near the distal end of the support tube, which guides the capsule cavity and moves it into the outer sheath.

[0013] Furthermore, the guide member includes a connecting portion and a plurality of guide arms, the connecting portion being fixedly connected to the outer wall of the support tube, and the guide arms extending toward the distal end and elastically expanding outward.

[0014] Furthermore, the distal end of the guide arm has a transition section, which is curved relative to the guide arm toward the axis of the support tube.

[0015] Furthermore, the capsule cavity includes a cavity body and a fence opening, the cavity body having a straight cylindrical structure, the fence opening being straight cylindrical when no external force is acting and expandable into a trumpet shape when an external force is acting, and the inside of the guide arm being elastically able to press against the fence opening.

[0016] Furthermore, the fence opening has a plurality of axial notches, which are uniformly distributed in the circumferential direction of the capsule cavity, and the portions between adjacent axial notches constitute fence rails.

[0017] Furthermore, the sides of the cavity body have a plurality of arc-shaped notches of equal length, the arc-shaped notches are distributed along the axial direction of the cavity body, adjacent arc-shaped notches are offset from each other, and the gaps between the ends of all the arc-shaped notches are connected to form a connecting rib that is spiral in shape along the axial direction.

[0018] Furthermore, the delivery system further includes a control handle and two curvature adjustment handles, the control handle being connected to the proximal end of the support tube and capable of moving the support tube axially, the control handle having a first stroke assembly for controlling the axial travel distance of the support tube, the two curvature adjustment handles being provided at the proximal end of the inner sheath and the proximal end of the outer sheath, respectively, and a traction wire causing the corresponding distal end of the inner sheath and the distal end of the outer sheath to curve in the same plane or different planes, the curvature adjustment handles having a second stroke assembly for controlling the degree of curvature of the corresponding inner sheath or the outer sheath.

[0019] Furthermore, the control handle is provided along the axial direction of the support tube, the two bending adjustment handles are provided sequentially on the side of the control handle closest to the distal end of the support tube, the bending adjustment handle for adjusting the inner sheath is provided closer to the control handle, the bending adjustment handle includes an axial portion and a branched portion, the axial portion is provided along the axial direction of the support tube, the proximal ends of the inner sheath and outer sheath are fixed to the corresponding axial portions of the bending adjustment handles, the branched portion forms an acute angle with the axial portion, and the second stroke assembly is provided in the branched portion.

[0020] Furthermore, the control handle includes a handle body sleeve, a control sleeve, and a control slider; the first stroke assembly includes a first stroke sleeve and a first stroke indicator member, the handle body sleeve has an axial control slide rail inside, the inside of the control sleeve allows the control slider to slide along the axial control slide rail by screwing; the support tube is fixed to the distal end of the handle body sleeve, the support tube is inserted from the distal end of the handle body sleeve and fixed to the control slider; the first stroke sleeve is fixedly fitted to the outside of the control sleeve, the first stroke sleeve has a first stroke slide rail provided axially; the outside of the control sleeve allows the first stroke indicator member to slide along the first stroke slide rail by screwing.

[0021] Furthermore, the control handle further includes a detachable member, which is detachably attached to the proximal end of the handle body sleeve and connected to the proximal end of the position limiting member, and when the heart valve stent is located inside the capsule cavity, the detachable member pulls the position limiting member, thereby releasing the distal end of the position limiting member from the connection and position limit of the proximal end of the heart valve stent to the support arm.

[0022] Furthermore, the axial portion includes an axial sleeve, a hemostatic valve, and a proximal end fixing cover, the axial sleeve having an axial through-hole inside, the proximal ends of the inner and outer sheaths being inserted and fixed from the corresponding distal ends of the axial sleeve, the axial sleeve having a lateral wire hole corresponding to the branching portion, the hemostatic valve being positioned close to the proximal end of the axial sleeve and having an elastically retractable hemostatic channel, and the proximal end fixing cover being fixed to the proximal end of the axial sleeve and having a conduit through-hole.

[0023] Furthermore, the hemostatic valve includes at least one valve group, the valve group including a valve sleeve and a first valve, a second valve and a third valve arranged coaxially in order from the proximal end to the distal end, the first valve having a first hole in its central part, non-penetrating notches on both sides of the first valve and the notches on both sides being alternately arranged, the second valve having a central part that protrudes toward the distal end and a second hole in its center, and the second valve having an annular step on the side adjacent to the third valve A difference is formed, and the third valve includes an elastic cylinder and two elastic valves, the elastic valves being connected to the inner wall of the elastic cylinder, the distal ends of the two elastic valves forming one openable valve opening, the distal ends of the elastic valves and the inner wall of the elastic cylinder having elastic support ribs for elastically closing the valve opening, the annular step being housed in the proximal end opening of the elastic cylinder, the valve sleeve being a cylindrical member, the elastic cylinder being partially or completely housed in the valve sleeve, and the first hole, the second hole and the valve opening constituting the hemostatic channel.

[0024] Furthermore, the branching portion includes a branching body, a curvature adjustment slider, and a curvature adjustment sleeve; the second stroke assembly includes a second stroke sleeve and a second stroke indicator member; the branching body includes an axial fixing tube and a guide tube provided in communication with each other; the axial fixing tube is fixed coaxially to the outside of the axial sleeve; the guide tube is provided corresponding to the lateral wire hole; the guide tube extends toward the proximal end and is provided at a predetermined acute angle with the axial fixing tube; the guide tube has a curvature adjustment guide slide rail along its axial direction; the proximal end of the traction wire is fixed to the curvature adjustment slider; the inside of the curvature adjustment sleeve is screwed to allow the curvature adjustment slider to slide along the curvature adjustment guide slide rail; the second stroke sleeve is fixedly fitted to the outside of the curvature adjustment sleeve; the second stroke sleeve has a second stroke slide rail; and the outside of the curvature adjustment sleeve is screwed to allow the second stroke indicator member to slide along the second stroke slide rail.

Brief Description of the Drawings

[0025] [Figure 1] It is a schematic structural diagram of a delivery system for an intervention heart valve stent according to an embodiment of the present invention. [Figure 2] It is a schematic connection diagram of a heart valve stent in an embodiment of the present application. [Figure 3] It is a schematic structural diagram of a fixing member in an embodiment of the present application. [Figure 4] It is a schematic structural diagram of a fixing block in an embodiment of the present application. [Figure 5] It is a schematic diagram of the positional relationship among a guide member, a fixing block, and a capsule cavity in an embodiment of the present application. [Figure 6] It is a schematic structural diagram of a guide member in an embodiment of the present application. [Figure 7] It is a schematic structural diagram of a capsule cavity in an embodiment of the present application. [Figure 8] It is a schematic diagram of the external structure of a control handle in an embodiment of the present application. [Figure 9] It is a cross-sectional view of a control handle in an embodiment of the present application. [Figure 10] It is a schematic diagram of the external structure of a bending adjustment handle in an embodiment of the present application. [Figure 11] It is a schematic diagram of the internal structure of a bending adjustment handle in an embodiment of the present application. [Figure 12] It is a schematic structural diagram of a hemostatic valve in an embodiment of the present application. [Figure 13] It is a schematic structural diagram of a third valve in an embodiment of the present application.

Modes for Carrying Out the Invention

[0026] To facilitate understanding of this application, the application will be described more comprehensively below with reference to the relevant drawings. The drawings illustrate embodiments of the application. However, the application can be realized in many different forms and is not limited to the embodiments described herein. On the contrary, the purpose of providing these embodiments is to provide a more complete and comprehensive understanding of the disclosure of the application.

[0027] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those generally understood by those skilled in the art to which this application pertains. The terms used herein in this description are for the sole purpose of illustrating specific examples and are not intended to limit this application.

[0028] Embodiments of the present application provide an interventional cardiac valve stent delivery system, which is primarily used to deliver a cardiac valve stent from outside the body to a patient's cardiac site, and includes a delivery catheter assembly and a stent fixation assembly.

[0029] The delivery catheter assembly, as a basic component of the delivery system, includes a movable inner core 11, a support tube 12, an inner sheath 13, and an outer sheath 14 fitted in order from the inside to the outside, as shown in Figure 1, with both ends of the inner core 11 extending from both ends of the support tube 12, and the distal end of the inner sheath 13 having a receiving cavity.

[0030] In this application and its embodiments, the proximal end is the end closer to the user when the delivery system is in use, and the distal end is the end closer to the patient.

[0031] The stent fixation assembly is removably connected to both ends of the heart valve stent 200 (see Figure 2), thereby allowing the heart valve stent to be positioned in a fixed portion, generally the distal end portion, of the stent fixation assembly. The stent fixation assembly includes a capsule cavity 23, the distal end of which is inserted through the proximal opening of the capsule cavity 23 and fixedly connected to the capsule cavity 23, and the support tube 12 moves the heart valve stent 200 axially, allowing the heart valve stent 200 to move in and out of the capsule cavity 23 or housing cavity.

[0032] Between the support tube 12 and the inner sheath 13 is another inner tube (not shown), whose main function is support, allowing the support tube 12 to move within the inner tube. A tip head is provided at the distal end of the capsule cavity 23, and the tip head is naturally formed in the shape of a pig's tail.

[0033] As one connection method for the cardiac valve stent 200 according to the present invention, the stent fixation assembly further includes a position limiting member 21, a fixing member 22, and a fixing block 24.

[0034] The fixing member 22 has a support arm 221 which is connected to the support tube 12 and extends to its distal end and is used to removably connect to the proximal end of the heart valve stent 200, and the fixing block 24 is connected to the distal end of the support tube 12 and is used to removably connect to the distal end of the heart valve stent 200.

[0035] The position limiting member 21 has a slender, elongated structure and is able to extend from both ends of the support tube 12 by penetrating it axially. The distal end of the position limiting member 21 is used to connect and limit the position of the proximal end of the heart valve stent 200 to the support arm 221, preventing the proximal end of the heart valve stent 200 from detaching from the support arm 221.

[0036] Figure 2 is a schematic diagram of a cardiac valve stent 200 including the stent body 201, the stent body 201 being generally an elastically compressible mesh structure, having a first release member 202 at its proximal end and a second release member 203 at its distal end.

[0037] As a preferred embodiment, as shown in Figures 3 and 4, the end of the support arm 221 has a position limiting ring 2211, the first release member has a coil 2021 that can pass through the position limiting ring 2211 from the outside to the inside, and the distal end of the position limiting member 21 passes inside the coil 2021, thereby locking the connection point between the coil 2021 and the position limiting ring 2211 and preventing the coil 2021 from separating from the position limiting ring 2211.

[0038] In a preferred embodiment, the fixing member 22 has a plurality of support arms 221, the number of first release members 202 is equal to the number of support arms 221, and the distal end of the position limiting member 21 may pass through a plurality of coils 2021 in sequence. For example, in one specific use case, the number of support arms 221 and second release members is three, and the distal end of the position limiting member 21 passes through three coils 2021 in sequence. When it is necessary to release the proximal end of the stent body 201, the coils 2021 are pulled out from the three coils 2021, and the coils 2021 are released from the position limiting ring 2211 by tension, completing the release of the proximal end of the stent.

[0039] In another preferred embodiment, the number of support arms 221 and first release members 202 is three, and the number of position limiting members 21 is also three, with the distal ends of the three position limiting members 21 passing through three coils 2021 in a one-to-one correspondence, and when it is necessary to release the proximal end of the stent body 201, the three position limiting members 21 are pulled out from the three coils, each releasing the three first release members 202 simultaneously, ensuring a rapid and stable release of the stent body 201.

[0040] As a removable connection method for the distal end, the fixed block 24 has a position limiting groove 24a, and the first release member 203 has a T-shaped portion 2031 that engages with the position limiting groove 24a.

[0041] In some embodiments, the position limiting groove 24a may be an opening groove provided along the radial direction of the stent body 201. In this case, the T-shaped portion 2031 engages directly with the recess of the opening groove from the outer portion of the fixing block 24, and the pressure of the inner wall of the housing cavity or capsule cavity ensures a stable connection between the position limiting groove 24a and the T-shaped portion 2031. When released, the inner wall of the housing cavity or capsule cavity 23 no longer covers the opening of the position limiting groove 24a, and due to the tension of self-expansion, the T-shaped portion 2031 opens outward with the stent body 201 and detaches from the position limiting groove 24a. In other embodiments, it may be an insertion groove provided along the axial direction, with the opening of the insertion groove facing the proximal end. In this case, the T-shaped portion is inserted into the insertion groove from the end face of the proximal end of the fixed block, and the pressure of the inner wall of the housing cavity or capsule cavity ensures that the T-shaped portion tends to extend toward the distal end, and is stably inserted into the insertion groove. In the event of release, the proximal end of the stent body 201 tends to expand due to the tension of self-expansion, moving the T-shaped portion out of the insertion groove and detaching from the position limiting groove. In this application, the former is preferred.

[0042] Similarly, the removable connecting means may also have a position-restricting projection on the fixed block 24, and the first release member having an annular portion that is removablely connected to the position-restricting projection, thereby achieving a removable connection between the fixed block 24 and the first release member 203 by fitting the annular portion and the position-restricting projection, but this will not be explained here.

[0043] In the embodiment of the present invention, as shown in Figures 5 and 6, the opening diameter of the capsule cavity 23 is expandable in the radial direction, and a guide member 121 is located near the distal end of the support tube 12, and the guide member 121 can guide the capsule cavity 23 and move it into the outer sheath. An arm structure is located near the distal end of the outer sheath, and the capsule cavity 23 moves into the outer sheath via this arm structure.

[0044] After the artificial valve is released, if the capsule cavity 23 is not housed within the outer sheath 14 during the retraction process, the capsule cavity 23 is generally made of stainless steel, which is hard. Only capsule cavities 23 made of hard materials can withstand the tension of the artificial valve. However, during the retraction of the capsule cavity 23, it is prone to damaging the vessel wall in curved blood vessels. After releasing an artificial valve in a human heart valve using the delivery device of the present invention, if there is a certain distance and a certain arc between the capsule cavity 23 and the outer sheath 14, and after relative movement, the opening of the capsule cavity 23 and the opening of the outer sheath 14 tend to shift. As a result, if the capsule cavity 23 does not enter and is not housed within the outer sheath 14, the capsule cavity 23 is harder than the outer sheath 14. Therefore, during the retraction process, if it encounters a curved blood vessel, it is prone to damaging the vessel wall, and if the opening of the capsule cavity 23 is trumpet-shaped, the risk of damaging the vessel wall is even greater. Therefore, it is necessary to house the capsule cavity 23 within the outer sheath 14. To house it more stably, a guide member 121 is designed on the support tube 22 to guide the capsule cavity 23 into the outer sheath 14, ensuring smooth house-to-house of the capsule cavity 23, and further ensuring that the surgery proceeds smoothly during and after opening, thereby guaranteeing the efficiency and safety of the surgery.

[0045] Specifically, the guide member 121 includes a connecting portion 1211 and a plurality of guide arms 1212. The connecting portion 1211 is fixedly connected to the outer wall of the support tube 22, and the guide arms 1212 extend toward the distal end and elastically expand toward the outward side. Specifically, in this embodiment, the connecting portion 1211 is an annular structure fixed to the outer wall of the support tube 22, and six guide arms 1212, uniformly arranged in the circumferential direction, are connected thereto. The six guide arms 1212 form a tapered structure on the outside of the support tube 22, with a larger opening at the distal end and a smaller opening at the proximal end.

[0046] The inside of the guide arm 1212 can elastically press against the opening of the capsule cavity 23, enclosing the trumpet-shaped capsule cavity 23. At the same time, the tapered structure formed on the guide arm 1212 can guide the capsule cavity 23 into the outer sheath 14, facilitating the placement of the capsule cavity 23 after the artificial valve has been implanted.

[0047] The distal end of the guide arm 1212 has a transition section 1213, which is curved relative to the guide arm 1212 on the side closer to the axis of the support tube 30, on the one hand to more easily enclose the fence opening 52 and house it within the outer sheath 14, and on the other hand to reduce the amount that the guide member 121 opens outward, thereby reducing the risk of damaging cardiac tissue.

[0048] To achieve an expandable opening diameter of the capsule cavity 23, in the embodiment of the present application, as shown in Figure 7, the capsule cavity 23 includes a cavity body 231 and a fence opening 232, the cavity body 231 having a straight cylindrical structure, and the fence opening 232 being straight cylindrical when no external force is acting on it, and when the artificial valve is released from the capsule cavity 23, the artificial valve gradually opens, widening the fence opening 232 to form a trumpet shape, and when it retracts, the inside of the guide arm 322 elastically presses against the fence opening 232 so that it can be housed in the outer sheath 14.

[0049] The outer diameter of the fence opening 232 varies between 5 mm and 9 mm, ensuring smooth insertion of the artificial valve without affecting internal manipulation during release.

[0050] Specifically, the fence opening 232 has a plurality of axial notches 232a, which are uniformly distributed in the circumferential direction of the capsule cavity 23, and the portions between adjacent axial notches 232a form fence bars 2321, and the fence bars 2321 make the opening end of the capsule cavity 23 more likely to become trumpet-shaped during the process of releasing the stent.

[0051] To ensure that the fence opening 232 has better deformation performance, a first elongated hole 232b and a second elongated hole 232c are further formed in the fence opening 232, the first elongated hole 232b is provided corresponding to the fence rail 2321, the length of the first elongated hole 232b is greater than the depth of the axial notch 232a, the second elongated hole 232c is located between two adjacent first elongated holes 232b, and the second elongated hole 232b and the axial notch 232a are distributed with an axial gap between them.

[0052] Preferably, in this embodiment, the cavity body 231 has a plurality of arc-shaped notches 231a on its side surface, the arc-shaped notches 231a are distributed along the axial direction of the cavity body 231, and the gaps between the ends of all the arc-shaped notches 231a are connected to form a connecting rib 2311, and by providing the arc-shaped notches 231a, the cavity body 231 has a certain degree of curvature and can further adapt to the complex vascular structure inside the human body.

[0053] In a more preferred embodiment, all arc-shaped notches 231a are of equal length, adjacent arc-shaped notches 231a are offset from each other, and the connecting ribs 2311 are formed spirally along the axial direction. Compared to a linear arrangement, the spiral formation of the connecting ribs 2311 allows for the flexible curvature of the cavity body 231.

[0054] An arc-shaped notch 231a is provided in the cavity body 231, and the artificial valve needs to expand radially during the release process, and since it is perpendicular to the direction of the arc-shaped notch 231a, the presence of the arc-shaped notch 231a increases the resistance force that the artificial valve experiences during the release movement process. Accordingly, in some more preferred embodiments of the present invention, a first thin film protective layer is provided on the inner wall of the cavity body 231, thereby reducing the resistance force of the inner wall of the cavity body 231 to the artificial valve, and a second thin film protective layer is wrapped around the outside of the cavity body 231 and the fence opening 232, and the first and second thin film protective layers are elastic thin films, and the elastic restoring force of the first and second thin film protective layers can cause the fence opening 232 to contract from a trumpet shape to a straight cylindrical shape.

[0055] In other embodiments of the present invention, the fence opening 232 can be formed from a memory alloy, such as a nickel-titanium alloy, and the fence opening 232 can be flared outwards and then contracted into a straight cylindrical shape.

[0056] In the two retractable embodiments described above, further limiting the fence opening 232 and automatically retracting it after expansion is for more convenient and safer housing within the outer sheath 14. In actual operation, after the artificial valve is released, the size of the fence opening 232 varies; that is, to make the system more stable, the open size of the guide member 121 needs to accommodate the maximum size of the fence opening 232. In a heart valve, the larger the open size of the guide member 121, the more likely it is to damage cardiac tissue. Therefore, if the fence opening 232 can retract by its own restorative force after expansion, it reduces the pressure of the hardware size and also allows for more convenient and safer housing within the outer sheath 14.

[0057] To enable control of the delivery system at the proximal end, the delivery system further includes a control handle 30 and two curvature adjustment handles 40, as shown in Figure 1.

[0058] As shown in Figures 8 to 13, the control handle 30 is connected to the proximal end of the support tube 12 and can move the support tube 12 along the axial direction, and further, can move the capsule cavity 23. The control handle 30 has a first stroke assembly 34 that controls the axial travel distance of the support tube 11.

[0059] The control handle 30 is provided along the axial direction of the inner core 11, and in the embodiment of the present application, the control handle 30 includes a handle body sleeve 31, a control sleeve 32, and a control slider 33, and the first stroke assembly 34 includes a first stroke sleeve 341 and a first stroke indicator member 342.

[0060] The handle body sleeve 31 has an axial control slide rail inside, and the inside of the control sleeve 32 is screwed in to allow the control slider 33 to slide along the axial control slide rail. In a preferred connection method, the handle body sleeve 31 has a cylindrical structure, the control sleeve 32 is fitted onto the outer surface of the handle body sleeve 31 and is rotatable coaxially outside the handle body sleeve 31, the control sleeve 32 has an internal thread on the inside, and the axial control slide rail has guide grooves on both sides, the control slider 33 is mounted axially on the axial control slide rail and its outer side extends from the guide groove and screws into the internal thread of the control sleeve 32, so that when the control sleeve 32 rotates, it slides the control slider 33 in the axial direction.

[0061] The proximal end of the support tube 12 is fixed to the distal end of the handle body sleeve 21 by a pressing bolt, and the support tube 11 is inserted from the distal end of the handle body sleeve 21 and fixed to the control slider 23, so that the support tube 12 can be moved axially by the axial sliding of the control slider 23.

[0062] The first stroke sleeve 341 is coaxially fixedly fitted to the outside of the control sleeve 32. The first stroke sleeve 341 has a first stroke slide rail and an external thread is provided on the outside of the control sleeve 32. The first stroke indicator member 342 is screwed into the external thread of the control sleeve 32. When the control sleeve 32 rotates, the first stroke indicator member 342 slides on the first stroke slide rail. By setting the screw specifications on both sides of the control sleeve 32 to be the same or as planned, and setting a stroke scale on the first stroke slide rail to indicate the distance of movement, the sliding distance of the control slider 23 can be determined by the sliding distance of the first stroke indicator member 342 on the first stroke slide rail. Furthermore, the axial movement distance of the support tube 12 can be precisely controlled. In addition, the screw drive method provides high adjustment accuracy, enables stopping and locking at any time during the full stroke, accurately monitors the valve stent release process, and reduces the difficulty of releasing the stent.

[0063] To facilitate control of the proximal end of the position limiting member 21, the control handle 30 further includes a detachable member 35, which is detachably attached to the proximal end of the handle body sleeve 31 and connected to the proximal end of the position limiting member 21. When the cardiac valve stent 200 is located inside the capsule cavity 23, the distal end of the position limiting member 21 is released from connection and position limiting of the proximal end of the cardiac valve stent 200 to the support arm 221 by pulling the position limiting member 21 with the detachable member 35, as described above.

[0064] The two curved adjustment handles 40 each have an inner sheath 13 far Position end and outer sheath 14 far A traction wire 50 is provided at the end of the curve adjustment handle 40, which curves the distal end of the corresponding inner sheath 13 and the distal end of the outer sheath 14 in the same plane or different planes, and the curve adjustment handle 40 has a second stroke assembly 47 that controls the degree of curvature of the corresponding inner sheath 13 or outer sheath 14.

[0065] Furthermore, most blood vessels in the human body are curved in three dimensions, and in some surgical procedures, the sheath generally needs to enter through the femoral artery and pass through the aortic arch. Because the curvature of the blood vessel at that point is large and curves in three dimensions, there are high demands for the delivery of heart valve stents. If only one curve-adjustable sheath that can bend in a plane is used, when entering the aortic arch, it must first bend in one plane, and then bend into another plane due to friction and guidance with the vessel wall. Although it is possible to enter the heart in this way, bending due to large friction and guidance with the blood vessel is likely to damage the vessel wall, and at the same time the procedure time increases significantly, potentially creating many risks. Furthermore, during interventional surgery, when the surgeon manipulates the sheath within the body using a control handle, the device can only display the sheath's projection; in other words, the device cannot see the blood vessel wall, only the sheath. Therefore, the next curvature of the sheath can only be estimated from the degree of the sheath's curvature. Consequently, if stroke control is present, the degree of sheath curvature is directly fed back to the stroke control, allowing for precise curvature by the stroke control. In summary, when the sheath enters a blood vessel with a large curvature angle and a three-dimensional curvature, such as the aortic arch, a combination of dual curvature adjustment and stroke control is essential, allowing for rapid passage through the aortic arch to the heart and saving time.

[0066] In the embodiment of the present invention, the two curvature adjustment handles 40 are provided sequentially on the side of the control handle 30 that is close to the distal end of the inner tube 10, and the curvature adjustment handle 40 for adjusting the inner sheath 13 is provided closer to the control handle 20, thereby enabling curvature adjustment of the inner sheath 13 and the outer sheath 14, respectively.

[0067] Specifically, the curvature adjustment handle 40 includes an axial portion a and a branched portion b, the axial portion a is provided along the axial direction of the inner tube 10 and the inner sheath 13 and outer sheath 14 farThe position end is fixed to the axial portion of the corresponding curvature adjustment handle 40, the branch portion b forms an acute angle with the axial portion a, and the axial portion a and branch portion b form a constant angle, effectively shortening the overall length of the delivery system, the second stroke assembly is provided at branch portion b, and since the curvature of the branch portion b and the curvature of the corresponding sheath are within the same curved arc, it can have a guiding effect during curvature adjustment, and when the straight stroke changes to a curved adjustment arc in the second stroke assembly, it is more stable, large curvature adjustment movements do not occur in some strokes, and the stability of the device is improved.

[0068] The axial portion a includes an axial sleeve 41, a hemostatic valve 42, and a proximal end fixing cover 43, the axial sleeve 41 having an axial through-hole inside, the proximal ends of the inner sheath 13 and outer sheath 14 being inserted from the distal end of the corresponding axial sleeve 41 and locked in place, the axial sleeve 41 having a lateral wire hole 411 corresponding to the branching portion b, the hemostatic valve 42 being positioned close to the proximal end of the axial sleeve 41 and having an elastically retractable hemostatic channel, and the proximal end fixing cover 43 being fixed to the proximal end of the axial sleeve 41 and having a conduit through-hole.

[0069] The hemostatic valve 42 is primarily used to prevent blood from leaking out of the sheath due to blood pressure when the sheath enters a blood vessel. In embodiments of the present invention, the hemostatic valve 42 includes at least one valve group 420. In preferred embodiments of the present invention, the hemostatic valve 42 includes two valve groups 420 arranged axially.

[0070] The valve group 420 includes a valve sleeve 421 and a first valve 422, a second valve 423, and a third valve 424 arranged coaxially from the proximal end to the distal end. A first hole is formed in the center of the first valve 422, and non-penetrating notches are formed on both sides of the first valve 422, with the notches on both sides being alternately arranged. In this application, cross grooves are formed on both sides, and the two cross grooves are offset by 45 degrees, which effectively improves the axial projection of the central part of the first valve 422 to both sides. The central portion of the second valve 423 protrudes distally, and a second hole is formed at its center. An annular step 4231 is formed on the side of the second valve 423 adjacent to the third valve 424. The third valve 424 includes an elastic cylinder 4241 and two elastic valves 4242, the elastic valves 4242 connected to the inner wall of the elastic cylinder 4241, the distal ends of the two elastic valves 4242 forming one openable valve opening, the distal ends of the elastic valves 4242 and the inner wall of the elastic cylinder 4241 have elastic support ribs 4243 that elastically close the valve opening, the annular step 4231 is built into the proximal end opening of the elastic cylinder 4241, the valve sleeve 421 is a cylindrical member, the elastic cylinder 4241 is partially or completely built into the valve sleeve 421, and the first hole, the second hole and the valve opening constitute a hemostatic channel. With the above structure, when the valve group 420 and the inner tube 10 or inner sheath 13 inside it move relative to each other, the central parts of the second valve 423 and the third valve 424 protrude axially due to frictional force, thereby effectively preventing blood leakage.

[0071] In the embodiment of the present application, branch portion b includes a branch body 44, a curvature adjustment slider 45, and a curvature adjustment sleeve 46; the second stroke assembly 47 includes a second stroke sleeve 471 and a second stroke indicator member 472; the branch body 44 includes an axially fixed tube 441 and a guide tube 442 that are in communication with each other; the axially fixed tube 441 is coaxially fixed to the outside of the axial sleeve 41; the guide tube 442 is provided corresponding to a lateral wire hole; the guide tube 442 extends toward the proximal end and is provided at a predetermined acute angle with the axially fixed tube 441; the guide tube 442 has a curvature adjustment guide slide rail along its axial direction; and the proximal end of the traction wire 50 is fixed to the curvature adjustment slider 45. The principle of curvature adjustment is to move the curvature adjustment slider 45 linearly using the curvature adjustment sleeve 46, and further move the proximal end of the traction wire to pull and curve the distal end of the corresponding inner sheath 13 or outer sheath 14. The connection between the curvature adjustment slider 45 and the curvature adjustment sleeve 46 is similar to that of the control sleeve 32 and control slider 33, that is, the inside of the curvature adjustment sleeve 46 is screwed in to allow the curvature adjustment slider 45 to slide along the curvature adjustment guide slide rail.

[0072] The second stroke sleeve 471 is fixedly fitted to the outside of the curvature adjustment sleeve 46, and the second stroke sleeve 471 has a second stroke slide rail, and the outside of the curvature adjustment sleeve 46 slides the second stroke indicator member 472 along the second stroke slide rail by screwing.

[0073] The second stroke indicator member 472 can be determined by observing the distance traveled or the distance the screw has moved, or by setting a specific stroke scale on the surface of the second stroke sleeve 471, thereby adjusting the distance traveled by the proximal end of the traction wire and achieving precise control over the curvature of the inner sheath 13 or outer sheath 14.

[0074] The aortic valve delivery system according to the present invention allows for better control of bending adjustment and release of the artificial valve by using a control handle 30 to move the support tube 12 along the axial direction, using two curvature adjustment handles 40 to curve the distal ends of the inner sheath 13 and outer sheath 14 with corresponding traction wires 50, providing a first stroke assembly 24 on the control handle 20 to precisely control the axial movement distance of the support tube 11, and providing a second stroke assembly 47 on the curvature adjustment handle 40 to control the degree of curvature of the sheath.

[0075] The foregoing are merely preferred embodiments of the present invention and are not intended to limit the invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the invention should be included within the scope of protection of the present invention.

Claims

1. Includes a delivery catheter assembly and a stent fixation assembly, The delivery catheter assembly includes a movable inner core, support tube, inner sheath, and outer sheath fitted in order from inside to outside, the ends of the inner core each extending from the ends of the support tube, and the distal end of the inner sheath having a housing cavity. The stent fixation assembly is removably connectable to both ends of the heart valve stent, and the stent fixation assembly includes a capsule cavity, the distal end of the inner core is inserted through an opening at the proximal end of the capsule cavity and fixedly connected to the capsule cavity, and the support tube can move the heart valve stent axially in and out of the capsule cavity or housing cavity. The stent fixing assembly further includes a fixing member, a fixing block, and a position limiting member. The fixing member has a support arm connected to the support tube and extending to the distal end, the fixing block is connected to the distal end of the support tube, and the support arm and the fixing block are configured to be detachably connected to the proximal and distal ends of the heart valve stent, respectively. An interventional heart valve stent delivery system characterized in that the position limiting member has a slender, elongated structure, penetrates the support tube axially and extends from both ends of the support tube, and the distal end of the position limiting member is used to connect and limit the position of the proximal end of the heart valve stent to the support arm so as to prevent the proximal end of the heart valve stent from detaching from the support arm.

2. The delivery system for an interventional heart valve stent according to claim 1, characterized in that the opening diameter of the capsule cavity is expandable in the radial direction, a guide member is located near the distal end of the support tube, and the guide member can guide the capsule cavity into the outer sheath.

3. The delivery system for an interventional heart valve stent according to claim 2, characterized in that the guide member includes a connecting portion and a plurality of guide arms, the connecting portion is fixedly connected to the outer wall of the support tube, and the guide arms extend toward the distal end and elastically expand toward the outward side.

4. The delivery system for an interventional heart valve stent according to claim 3, characterized in that the distal end of the guide arm has a transition portion, and the transition portion is curved toward the axis of the support tube relative to the guide arm.

5. The delivery system for an interventional heart valve stent according to claim 3, wherein the capsule cavity includes a cavity body and a fence opening, the cavity body has a straight cylindrical structure, the fence opening is straight cylindrical when no external force is applied and can expand into a trumpet shape when an external force is applied, and the inside of the guide arm can elastically press against the fence opening.

6. The delivery system for an interventional heart valve stent according to claim 5, characterized in that the fence opening has a plurality of axial notches, the axial notches are uniformly distributed in the circumferential direction of the capsule cavity, and the portions between adjacent axial notches constitute a fence rib.

7. The delivery system for an interventional heart valve stent according to claim 5, characterized in that the side surface of the cavity body has a plurality of arc-shaped notches of equal length, the arc-shaped notches are distributed along the axial direction of the cavity body, adjacent arc-shaped notches are offset from each other, and the gaps between the ends of all the arc-shaped notches are connected to form a spiral connecting rib along the axial direction.

8. Delivery system for an interventional heart valve stent according to claim 1, further comprising a control handle and two curvature adjustment handles, wherein the control handle is connected to the proximal end of the support tube and can move the support tube axially, the control handle has a first stroke assembly for controlling the axial distance of the support tube, the two curvature adjustment handles are provided at the distal end of the inner sheath and the distal end of the outer sheath, respectively, and a traction wire causes the corresponding distal end of the inner sheath and the distal end of the outer sheath to bend in the same plane or different planes, and the curvature adjustment handles have a second stroke assembly for controlling the degree of curvature of the corresponding inner sheath or the outer sheath.

9. The interventional heart valve stent delivery system according to claim 8, characterized in that the control handle is provided along the axial direction of the support tube, the two curvature adjustment handles are provided sequentially on the side of the control handle closer to the distal end of the support tube, the curvature adjustment handle for adjusting the inner sheath is provided closer to the control handle, the curvature adjustment handle includes an axial portion and a branched portion, the axial portion is provided along the axial direction of the support tube, the distal ends of the inner sheath and outer sheath are fixed to the corresponding axial portions of the curvature adjustment handles, the branched portion forms an acute angle with the axial portion, and the second stroke assembly is provided in the branched portion.

10. The delivery system for an interventional heart valve stent according to claim 9, wherein the control handle includes a handle body sleeve, a control sleeve, and a control slider; the first stroke assembly includes a first stroke sleeve and a first stroke indicator member, the handle body sleeve has an axial control slide rail inside, the inside of the control sleeve is screwed to slide the control slider along the axial control slide rail; the support tube is fixed to the distal end of the handle body sleeve, the support tube is inserted from the distal end of the handle body sleeve and fixed to the control slider; the first stroke sleeve is fixedly fitted to the outside of the control sleeve, the first stroke sleeve has a first stroke slide rail provided axially; and the outside of the control sleeve is screwed to slide the first stroke indicator member along the first stroke slide rail.

11. The control handle further includes a detachable member, the detachable member being detachably attached to the proximal end of the handle body sleeve and connected to the proximal end of the position limiting member, wherein when the heart valve stent is located inside the capsule cavity, the detachable member pulls the position limiting member, thereby releasing the distal end of the position limiting member from the connection and position limit of the proximal end of the heart valve stent to the support arm, characterized in that the interventional heart valve stent delivery system according to claim 10.

12. The delivery system for an interventional heart valve stent according to claim 10, characterized in that the axial portion includes an axial sleeve, a hemostatic valve, and a proximal end fixing cover, the axial sleeve having an axial through-hole inside, the proximal ends of the inner sheath and outer sheath being inserted and fixed from the corresponding distal end of the axial sleeve, the axial sleeve having a lateral wire hole corresponding to the branching portion, the hemostatic valve being provided in close proximity to the proximal end of the axial sleeve and having an elastically retractable hemostatic channel, and the proximal end fixing cover being fixed to the proximal end of the axial sleeve and having a conduit through-hole.

13. The hemostatic valve includes at least one valve group, the valve group including a valve sleeve and a first valve, a second valve and a third valve arranged coaxially in order from the proximal end to the distal end, the first valve having a first hole in its central part, non-penetrating notches on both sides of the first valve and the notches on both sides being alternately arranged, the second valve having a central part that protrudes toward the distal end and a second hole in its center, an annular step formed on the side of the second valve adjacent to the third valve, and the third valve having an elastic cylinder and two A delivery system for an interventional cardiac valve stent according to claim 12, comprising an elastic valve, wherein the elastic valve is connected to the inner wall of the elastic cylinder, the distal ends of two elastic valves form a single openable valve opening, the distal ends of the elastic valve and the inner wall of the elastic cylinder have elastic support ribs for elastically closing the valve opening, the annular step is housed in the proximal end opening of the elastic cylinder, the valve sleeve is a cylindrical member, the elastic cylinder is partially or completely housed in the valve sleeve, and the first hole, the second hole and the valve opening constitute the hemostatic channel.

14. The branching portion includes a branching body, a curvature adjustment slider, and a curvature adjustment sleeve; the second stroke assembly includes a second stroke sleeve and a second stroke indicator member; the branching body includes an axial fixing tube and a guide tube provided in communication with each other; the axial fixing tube is coaxially fixed to the outside of the axial sleeve; the guide tube is provided corresponding to the lateral wire hole; the guide tube extends toward the proximal end and is provided at a predetermined acute angle with the axial fixing tube; and inside the guide tube is a curvature adjustment guide slide along its axial direction. The interventional heart valve stent delivery system according to claim 12, characterized in that it has a rail, the proximal end of the traction wire is fixed to the curvature adjustment slider, the inside of the curvature adjustment sleeve is screwed to slide the curvature adjustment slider along the curvature adjustment guide slide rail, the second stroke sleeve is fixedly fitted to the outside of the curvature adjustment sleeve, the second stroke sleeve has a second stroke slide rail, and the outside of the curvature adjustment sleeve is screwed to slide the second stroke indicator member along the second stroke slide rail.

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