Prosthetic valve device for the treatment of mitral regurgitation

The prosthetic valve device with a tubular stent frame and unique attachment mechanism addresses complications in transcatheter mitral valve repair by enhancing coaptation and reducing trauma, effectively treating mitral regurgitation.

JP7735392B2Active Publication Date: 2025-09-08MEDIRA GMBH
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Patent Information

Application Number
JP2023514052
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-27
Filing Date
2021-08-25
Publication Date
2025-09-08
Estimated Expiration
2041-08-25

AI Technical Summary

Technical Problem

Existing treatments for mitral regurgitation, such as transcatheter mitral valve repair, face complications like thrombogenicity and reduced valve orifice area, necessitating a prosthetic valve device that effectively treats heart valve regurgitation while minimizing traumatic effects on the heart.

Method used

A prosthetic valve device with a tubular flexible stent frame and prosthetic material covering certain areas, featuring a unique attachment to the stent frame that creates a balloon effect for improved coaptation of native mitral valve leaflets, allowing easy introduction and secure positioning without dislodging cardiac tissue.

Benefits of technology

The device enhances coaptation of native mitral valve leaflets, reduces complications, and provides a flexible frame with improved fatigue resistance, ensuring effective treatment of mitral regurgitation with minimal trauma.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a prosthetic valve device for the treatment of mitral regurgitation and a method for manufacturing the same, which includes a body having a flexible stent frame and a prosthetic material at least partially covering the stent frame, and a valve structure formed by a wire element having an elongated loop configuration to which the prosthetic material is attached.
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Description

[Technical Field]

[0001] The present invention relates to a prosthetic valve device for the treatment of valvular heart disease, particularly mitral regurgitation, the device comprising a body having an internal lumen, the body comprising a tubular flexible stent frame having an internal surface and an external surface, and a prosthetic material at least partially covering the stent frame, the internal lumen containing a valve structure, and methods of manufacturing such a device and methods of treatment. [Background technology]

[0002] Mitral valve disease is the second most common and clinically significant valvular disease in adults. Mitral regurgitation occurs both as a result of age-related degenerative changes (primary or degenerative mitral regurgitation) and, increasingly, as a result of ventricular anatomic changes due to myocardial enlargement (secondary or functional mitral regurgitation).

[0003] The mammalian heart is made up of four chambers: two atria that store blood and two ventricles that pump blood. The mammalian heart has four cardiac valves that allow blood to flow through the heart in only one direction, and each valve opens and closes in response to the difference in blood pressure on either side of the valve.

[0004] Of the four major valves in the heart, the bicuspid mitral and tricuspid valves are located between the upper atrium and the lower ventricle, and are therefore called atrioventricular (AV) valves. The aortic and pulmonary valves are located in the arteries exiting the heart. The mitral and aortic valves are located in the left heart, and the tricuspid and pulmonary valves are located in the right heart.

[0005] Each valve has leaflets, or cusps, and all valves except the mitral valve have three cusps, while the mitral valve has two cusps.

[0006] The mitral and tricuspid valves, located between the atria and ventricles, respectively, prevent backflow from the ventricles into the atria during systole. These valves are anchored to the ventricular wall by chordae tendineae, which prevent the valves from everting. The chordae tendineae are attached to the papillary muscles, which provide traction to hold the valves in place. The papillary muscles and chordae tendineae together are known as the subvalvular tissue. The subvalvular tissue prevents the valves from prolapsing into the atria as they close, but does not affect the opening and closing of the valves; opening and closing of the valves is driven solely by the pressure gradient across the valve.

[0007] During diastole, as the left atrium fills with blood and pressure from the left atrial side rises (preload), a normally functioning mitral valve opens. When intraatrial pressure becomes higher than intraventricular pressure, the mitral valve opens, allowing blood to passively flow into the left ventricle. Diastole ends with atrial contraction, which ejects the final 20% of the blood moving from the left atrium to the left ventricle. At the end of atrial contraction, the mitral valve closes to prevent blood from flowing backward.

[0008] There are several known types of valve disorders, including stenosis, in which hardened or fused valve leaflets prevent the heart valve from opening normally and prevent the heart valve from opening completely, and prolapse, in which the valve flaps do not close smoothly or evenly but instead fall back into the heart chamber they are meant to seal.

[0009] Valvular regurgitation (backflow) is a common disorder in which a heart valve does not close tightly, resulting in an inability to form a seal and blood leaking backward through the valve. This condition (also known as valvular insufficiency) reduces the heart's pumping efficiency. When the heart contracts, blood is pumped forward, but it also flows backward through the damaged valve. As this leakage worsens, the heart must pump harder to compensate for the leaking valve, and less blood may be pumped to other parts of the body. This condition is called tricuspid regurgitation, pulmonary regurgitation, mitral regurgitation, or aortic regurgitation, depending on the type of valve affected.

[0010] Mitral regurgitation (MR), an abnormal condition in which blood leaks from the left ventricle through the mitral valve into the left atrium during left ventricular contraction, is a common valve disorder, occurring in 24% of adults with valvular heart disease and 7% of those aged 75 years. Surgical treatment is recommended for severe symptomatic mitral regurgitation or severe asymptomatic mitral regurgitation associated with left ventricular dysfunction or enlargement. Surgical treatment of severe degenerative mitral regurgitation has shifted from mitral valve replacement to mitral valve repair, as outcomes have been shown to be superior to those of mitral valve replacement.

[0011] The annual incidence of (primary) degenerative mitral valve disease in developed countries is estimated to be approximately 2%-3%. In addition to degenerative changes, secondary mitral regurgitation, which can be caused by cardiac ischemia, infective endocarditis, or rheumatic diseases, is more common in developing countries.

[0012] Mitral valve replacement is considered the highest risk adult cardiac surgery in most facilities worldwide, with a surgical mortality rate of 20-30%. With the introduction of new technologies, improvements in repair methods, and Carpentier's integrated approach, which combines ring-based annuloplasty, leaflet reconstruction, and chordae shortening / transplantation, excellent results have been demonstrated, and mitral valve repair is becoming established as a treatment option for mitral regurgitation.

[0013] At least 50% of patients with severe MR are ineligible for surgery due to age or comorbidities.

[0014] Recently, transcatheter mitral valve repair has become an alternative method for replacing or assisting diseased or dysfunctional mitral valves. Percutaneous mitral valve repair is currently available for high-risk patients with degenerative mitral regurgitation who are not surgical candidates. Other catheter-based mitral regurgitation repair and replacement techniques are being tested in various stages of preclinical and clinical trials, but the devices currently being tested have proven more challenging than those used in transcatheter aortic valve replacement. This is due to the more complex mitral valve anatomy and the variety of mitral valve diseases that require treatment.

[0015] Percutaneous mitral valve repair is based on the same principles as mitral valve surgery: placement of new chordae tendineae, leaflet plication, annular remodeling, papillary muscle modification, and left ventricular reconstruction. A few years ago, a non-surgical approach was proposed. This approach is based on the idea of ​​creating an artificial space between the natural valve leaflets to enhance leaflet coaptation. An intravascular balloon catheter, termed a "spacer," was developed for this procedure and is placed transapically between the mitral valve leaflets. A subcutaneously implanted ventilator port allows for balloon volume control.

[0016] Although this treatment has proven effective in reducing mitral regurgitation, there are unresolved complications, including the thrombogenicity of the balloon material, which requires anticoagulation therapy to reduce the risk of stroke, and the reduced valve orifice area caused by the balloon's void, which reduces blood flow between the atria and ventricles and can lead to iatrogenic mitral valve stenosis.

[0017] In view of the above, there remains a need for prosthetic heart valves that can effectively treat heart valve regurgitation while minimizing traumatic effects on the heart. Summary of the Invention [Means for solving the problem]

[0018] The above and other objects of the present invention are achieved by the following prosthetic valve device for treating mitral regurgitation, which includes a body having an inner lumen, the body including a tubular flexible stent frame having an inner surface and an outer surface, and a prosthetic material at least partially covering the stent frame, the inner lumen including a valve structure, the flexible stent frame including a plurality of wire elements formed from a single wire having a first wire end and a second wire end, each wire element having a proximal wire element portion and a distal wire element portion with an elongated loop structure, the elongated loop structure including a proximal curved portion, a distal curved portion, and an intermediate portion between the proximal and distal curved portions, the prosthetic material covering the proximal wire element portion and being fixed to the proximal curved portion on the inner surface of the stent frame and being fixed to the distal curved portion on the outer surface of the stent frame.

[0019] The prosthetic valve device of the present invention allows for the creation of a spacer to strengthen the coaptation of the native mitral valve leaflets while avoiding the associated complications of prior art spacer devices.

[0020] The prosthetic valve device of the present invention can be easily introduced, released, and positioned in the native mitral valve region of a patient's heart, and secured to the left ventricular apex without risk of dislodging and damaging cardiac tissue. The prosthetic valve device of the present invention has the advantage of providing a flexible frame in which the tubular elements are positioned in the ventricular cavity, thereby improving fatigue resistance. It also has a modular structure with appropriate fixation devices for the valve leaflets. The prosthetic valve device of the present invention allows the valve of the device to be positioned at the transition from the left atrium to the left ventricle of a patient's heart, and the pressure within the coaptation cylinder can be balanced with the native leaflet closure pressure, preventing excessive compression. Furthermore, the unique attachment of the prosthetic material to the stent frame creates a balloon effect of the coaptation cylinder during systole, further improving coaptation.

[0021] The "body" of the prosthetic valve device of the present invention includes or consists of a stent frame, which is at least partially covered with prosthetic material. The term "at least partially" in reference to the prosthesis means that a substantial portion of the stent frame's overall length is circumferentially covered with prosthetic material, particularly in the areas of the stent frame having elongated loop structures / elements. Preferably, only the portions of the stent frame having elongated loop structures / elements are covered with the prosthetic material. The wire ends extend further distally / in the outflow direction, leaving a certain length free from prosthetic material or encased within any element, thereby providing a blood passageway within the wire-supported cylinder.

[0022] Furthermore, as used herein, the term "valve structure" refers to any element for controlling blood flow in only one direction, and specifically includes artificial valves, mixed artificial and natural valves, or valve tissues that resemble the natural heart valves of mammals, particularly humans. That is, in the present invention, the term "valve structure" refers to a valve element that functions in the same way as a healthy natural heart valve, i.e., that allows blood to flow in only one direction.

[0023] As used herein, a "wire element" is an element formed of / with a single wire. "Wire," as used and defined herein and as known in the art, includes any metal / alloy drawn into a thin, flexible, long, thread-like form with two ends.

[0024] In this context, the wire element ends refer to the sections or regions of the ends of the wire elements that are located proximally or distally, with the inflow end being proximal and the outflow end being distal.

[0025] As used herein, the term "elongated loop structure" refers to and includes any curved shape that can be formed by bending a portion of a wire until it intersects with another portion of the wire to form a ring, where the ring shape is elongated, i.e., elliptical or substantially elliptical, rather than circular. In a preferred embodiment, the proximal-distal diameter of the elongated loop structure is greater than the circumferential diameter. Preferably, the proximal-distal diameter of each of the plurality of elongated loop elements is the same length.

[0026] "Curved portion" refers to the curved region / portion of the elongate loop element, either proximal or distal depending on the definition, with the proximal curved portion referring to a curve that is curved in the proximal / inflow direction and the distal curved portion pointing in the distal / outflow direction.

[0027] In the present invention, the "wire element" has a loop at the proximal portion of the wire element, and preferably the first and second ends are not bent or curved but are linearly extending distally over a certain length, and these ends are preferably of the same length.

[0028] As used herein, the term "proximal" generally refers to the direction in which blood inflow occurs in a prosthetic valve device, i.e., the direction in which there is an opening for blood to flow from the atrium into the lumen of the prosthetic valve device in relation to its position. Accordingly, the term "distal" refers to the direction in which blood outflow occurs in a prosthetic valve device, i.e., the end where blood flows out of the lumen into the ventricle. Accordingly, the term "proximal" can be used synonymously with "inflow," and "distal" can be used synonymously with "outflow."

[0029] In the present invention, the prosthesis is fixed to the stent frame so as to cover the proximal portion of the wire element having an elongated loop structure. The fixation is performed / achieved by any suitable fixing or attachment means, in particular by suturing, preferably by suturing with a surgical thread made of polytetrafluoroethylene (PTFE) or other biocompatible material. Preferably, the prosthesis does not cover the distal portion of the wire element.

[0030] In one embodiment of the prosthetic valve device of the present invention, the proximal wire element portion is provided with an elongated loop structure, and the first and second wire ends extend to the distal wire element portion.

[0031] In a preferred embodiment of the invention, the loop structure can be formed by providing a bend in the length of the wire approximately midway along its length to form a proximal bend / curve, and providing semi-bends at each of the first and second wire ends that combine to form a distal wire curve. Alternatively, in another preferred embodiment, the proximal and distal curves are formed by wrapping the wire element in a circular fashion.

[0032] In a preferred embodiment of the prosthetic valve device of the present invention, the loop structure may be provided as an open loop structure or a closed loop structure.

[0033] For an "open" loop configuration, the loop is preferably formed by providing a bend in the length of the wire approximately midway along its length to form a proximal bend / curve, and bringing together the first and second wire ends to form a distal wire bend or curve, preferably with each wire end forming half of the distal curve. Thus, the elongate loop configuration is formed at the proximal wire element, with the first and second wire ends extending as separate ends towards / towards the distal wire element, i.e., in the opposite direction from the proximal bend / curve.

[0034] In a "closed" loop configuration, the first and second wire ends located on opposite sides of the bent / proximal curved portion of the wire are preferably terminated at least a certain distance distally adjacent the distal curved portion, preferably by crimping, sleeving or twisting.

[0035] In yet another preferred embodiment, when a closed loop configuration is provided, the first and second wire ends may be connected by a sleeve from a position adjacent to the distal curved portion over substantially their entire length, whereby the connected first and second wire ends form a wire element connected distal portion, i.e., the first and second wire ends are connected / extend together in pairs to / towards the wire element distal portion.

[0036] In yet another embodiment, the proximal curved section is formed by doubling a single wire, and the distal curved section is formed by a single wire. This embodiment results from guiding a single wire into an elliptical shape. In this case, the first and second wire ends may extend as separate ends at the distal end of the wire element, or the two ends may be joined and extend as a single unit. In the latter case, the first and second wire ends on opposite sides of the curved section / proximal curved section of the wire are terminated at least a certain distance distally adjacent the distal curved section, preferably by crimping, sleeving, or twisting.

[0037] In one embodiment of the prosthetic valve device of the present invention, the elongated loop structure is designed to have a proximal curved portion, a distal curved portion, and an intermediate portion extending between the proximal curved portion and the distal curved portion, and preferably the wire extends substantially linearly in the intermediate portion. More preferably, the wire is divided into left and right linear wire portions extending from the proximal curved portion to the intermediate portion, and further extends to the distal curved portion, where the left and right wire portions are curved toward each other to form a distal curve.

[0038] In one preferred embodiment, the proximal curved section is curved outward relative to the proximal-distal long axis and / or lumen.

[0039] In another embodiment of the prosthetic valve device of the invention, the wire elements are connected together, preferably by a crimping element that crimps the wire elements together. In a refinement, the first and second wire ends of a wire element are also paired within the sleeve.

[0040] In a refinement of this embodiment, at least one, two, three, four, five or six crimping elements are preferably provided adjacent the proximal curved portion, and more preferably one crimping element connects one left wire portion to the other right wire portion of two separate wire elements.

[0041] This embodiment allows the connection / creation of the wire elements to be more stable, so if three wire elements are used, three crimping elements are required to connect the wire elements together.

[0042] In a refinement of the invention, the prosthetic valve device of the invention further comprises a tubular element comprising at least one lumen extending therethrough, the lumen being designed to accommodate the distal wire element portion, and preferably the first and / or second wire ends, either individually or in pairs.

[0043] The tubular element allows the free end of the wire element to be guided / wired / introduced into its lumen, thereby preventing the free end from contacting or damaging cardiac tissue. The tubular element also allows the end of the wire element to be stably and securely fixed by fixing the tubular element "bundled" with the wires to the apex or septum. The "tubular" element thus serves as a shaft for receiving the wire end and fixing the device of the present invention to the apex or septum.

[0044] In the present invention, the tubular elements are spaced apart from the covering of the stent frame, i.e., away from the distal curve, to provide a bare stent frame portion that is not covered and not housed within the tubular elements, thereby providing a blood passageway within the wire-supported tubular structure, as previously described.

[0045] In a preferred embodiment, the plurality of wire elements consists of at least three, four, five or six wire elements, or three, four, five or six wire elements. When three wires are used, six wire ends, i.e., two per wire, extend distally, and a loop portion is located at the proximal end of each wire.

[0046] In another refinement, the tubular element has a plurality of lumens extending therethrough, the lumens being selected to be radial when viewed in cross section of the tubular element, and the first and second wire ends of each wire being individually guided through each of the plurality of lumens. In a preferred embodiment, the tubular element includes at least three or six lumens, or three or six lumens. When three wire elements are provided, the first and second ends of the three wire elements being guided pairwise into a single lumen, the tubular element preferably has three lumens. When three wire elements are provided, the first and second ends of the three wire elements being guided pairwise into a single lumen of the tubular element, the tubular element preferably has six lumens.

[0047] In this embodiment, both wire ends of the wire elements are fixed and guided in the tubular element, either separately or in pairs, thereby avoiding friction between the wires.

[0048] In a preferred embodiment, the length of the tubular element is shorter than the length of the free / uncoated end of the wire, and for fixation purposes, the wire end / wire tip can be guided through and out of the lumen of the tubular element and used to fixate the prosthetic valve device in the heart of the patient to be treated.

[0049] In a preferred embodiment, the tubular element consists of or comprises a material selected from any biocompatible polymer or plastic, such as polyetheretherketone (PEEK), polyoxymethylene (POM), polyether (PE), polyamide (PA), polytetrafluoroethylene (PTFE), etc.; ceramics; materials of animal or human origin; and common synthetic materials.

[0050] In one preferred embodiment, the prosthetic material is a biocompatible and flexible material, more preferably a material selected from mammalian tissue and PFTE, most preferably mammalian pericardium.

[0051] In another preferred embodiment, the wire consists of a shape memory alloy, preferably Nitinol.

[0052] The use of nitinol wire allows the wire element to be pre-formed into an elongated loop structure to suit specific or general needs / requirements, i.e., the proximal-distal diameter of the elongated loop structure can be increased or decreased, thereby lengthening or shortening the tubular element or covering portion to suit the dimensions of the heart / valve to be treated / supported.

[0053] In a preferred embodiment, in the prosthetic valve device of the present invention, the prosthetic material is fixed only to the proximal curved portion and the distal curved portion.

[0054] In this embodiment, the middle portion of the prosthesis is not attached to the stent frame and is therefore able to expand like a balloon and abut against the native mitral valve during systole.

[0055] In one preferred embodiment of the device of the present invention, the elongated loop structure is substantially elliptical.

[0056] The present invention also relates to a method for manufacturing a prosthetic valve device, the method comprising:

[0057] a) providing a plurality of, preferably three, wire elements formed from a single wire having a first wire end and a second wire end, each wire element having a wire element proximal portion with an elongated loop structure and a wire element distal portion from which the first and second wire ends extend, each elongated loop structure including a proximal curved portion, a distal curved portion, and an intermediate portion between the proximal curved portion and the distal curved portion;

[0058] b) attaching, preferably suturing, a tubular prosthesis, preferably a mammalian pericardium, to the proximal curved portion, the tubular prosthesis comprising an inner surface, an outer surface, a first prosthesis end, a second prosthesis end, and a prosthesis intermediate portion between the first prosthesis end and the second prosthesis end, and the attaching step b) attaches the wire element only to the outer surface of the first prosthesis end, leaving the second prosthesis end and the prosthesis intermediate portion unsecured;

[0059] c) then folding the tubular prosthesis outward so that the inner surface of the tubular prosthesis overlaps the elongated loop structure of the proximal wire element, thereby causing the second prosthesis end and the intermediate prosthesis portion to overlap the elongated loop structure in the direction of the distal wire element; and

[0060] d) then attaching the second prosthesis end to the distal curved portion of the elongated loop structure to create a prosthetic valve device. Includes.

[0061] This method allows for cost-effective and efficient manufacture of prosthetic valve devices, particularly the prosthetic valve devices of the present invention detailed above. The wire element is attached to the outer surface of the tubular prosthesis via its elongated loop structure, and the tubular prosthesis is everted or folded outwardly so that the inner surface of the tubular prosthesis overlies the elongated loop structure, thereby forming a valve element within the lumen of the prosthetic valve device.

[0062] In the method and prosthetic valve device of the present invention, in a first step, the wire elements are placed on the outer surface of the tubular prosthesis so that the elongated loop structures are aligned at the same height in the circumferential direction.

[0063] In a preferred embodiment, in step a), the wire elements are connected together by crimping elements, thereby forming a stent framework.

[0064] In an improved embodiment of the method and prosthetic valve device of the present invention, the tubular prosthesis has a first prosthesis end and a second prosthesis end, and in step b), the wire element is attached to the first prosthesis end on the outer surface of the tubular prosthesis, and the first prosthesis end of the tubular prosthesis is covered by the proximal curved portion of the wire element, the proportion of which is selected from the range of about half, one-third, one-quarter, and one-fifth of the outer surface of the prosthesis in step b).When the tubular prosthesis is attached to the proximal curved portion of the elongated loop structure, the first prosthesis end is fixed at a desired distance X from the absolute proximal end of the elongated loop structure.

[0065] In a preferred embodiment, when three wire elements are provided, the elongated loop structures of each wire element are dimensioned and designed to abut one another when arranged circumferentially around the prosthesis, in which case the wire elements, more precisely the elongated loop structures, are arranged in a generally triangular shape to circumferentially surround the prosthesis in step b).

[0066] In a refinement of the invention, i.e. a refinement of the method and / or device of the invention, the wire elements can be further secured together, for example by suturing the areas where they meet.

[0067] In another refinement, the method further comprises the step of e) threading the first and second wire ends of each wire element through a lumen of a tubular element, the tubular element including at least one lumen extending therethrough, the lumen being designed to accommodate the first and second wire ends.

[0068] In this refinement, it is particularly preferred that the wire ends / ends are introduced into the tubular element so that the covered body of the stent frame and the tubular element are spaced at a certain distance, thereby forming a bare stent frame portion and creating a passageway for blood.

[0069] As already detailed for the prosthetic valve device of the present invention, in a preferred embodiment, the tubular element is a multi-lumen tubular element comprising at least three or six lumens or three or six lumens designed to accommodate the first and second wire ends.

[0070] Also, in the method of the invention, the wire preferably consists of or contains a shape memory alloy, preferably Nitinol.

[0071] Step a) of the method of the present invention may be preceded by step a'), which includes forming an elongated loop structure in a wire, for example, by winding one end of the wire around a pin or two spaced pins, and then heating the wire to form an elongated loop structure in the wire element.

[0072] In another aspect of the present invention, there is provided a prosthetic valve device comprising a cylindrically shaped body, the body including a lumen extending from a proximal end to a distal end of the body, the device including a valve at the distal end of the body, the device being manufactured by the method detailed above.

[0073] In yet another aspect of the present invention, a method of treating mitral valve disease in a subject, preferably a human, in need thereof is disclosed. The method comprises providing a prosthetic valve device as detailed above and implanting the prosthetic valve device in the region of the mitral valve to be treated. Accordingly, the present invention also relates to the use of the prosthetic valve device described herein to treat mitral valve disease in a subject, preferably a human, in need thereof.

[0074] The prosthetic valve device of the present invention can be implanted surgically or delivered transcatheterically. In the latter case, i.e., transcatheter, the device of the present invention is loaded into a suitable deployment catheter in a compressed state by a removable sheath, tube, or the like. The deployment catheter is then inserted into the heart of a patient requiring mitral valve replacement or assistance. In this method, the tubular element is then secured to the apex by joining it to an apical anchor, which can grip or hold the tubular element in a desired position. After moving the tubular element to an optimal joining position within the apical anchor, it can be secured to the apical tissue, for example, via a hook or plug.

[0075] Transapical mitral valve repair involves a minor surgical procedure to access the apex of the left ventricle. A deployment catheter loaded with a compressed version of the device is advanced into the left ventricle through the apex and positioned beyond the mitral valve with the valve holder facing the atrium.

[0076] Alternatively, the compressed device can be introduced into the body via the femoral or jugular vein, enter the right atrium, and then enter the left atrium via the septum. Once the catheter tip reaches the apex of the left ventricle, passing the mitral valve, the valve holder can be expanded on the atrial side. A specific mechanism pushes the wire out of the tip of the tubular element / catheter and locks it into the myocardium. Alternatively, the compressed device can be introduced into a pulmonary vein (lower right, lower left, upper right, or upper left pulmonary vein) via a mini-thoracotomy, enter the left atrium, and then expand the valve holder on the atrial side.

[0077] Once properly positioned, the prosthetic valve device of the present invention is gradually released by removing the sheath or other compression means, allowing the stent frame of the device to expand.

[0078] Further advantages and features of the present invention are set forth in the following description and accompanying drawings.

[0079] It will be appreciated that the features mentioned above and those to be described below can be used not only in the combinations specifically mentioned, but also in other combinations or alone, without departing from the scope of the invention. [Brief explanation of the drawings]

[0080] The above-mentioned features of the present invention and those further described below are illustrated in the following figures.

[0081] [Figure 1] 1 is a schematic diagram of the human heart.

[0082] [Figure 2] FIG. 1 is a schematic diagram of one embodiment of an implanted prosthetic valve device of the present invention placed in the mitral valve region of a mammalian heart.

[0083] [Figure 3] Schematic diagrams A through D show the manufacturing process of one embodiment of the prosthetic valve device of the present invention. Note that the diagrams are not drawn to scale. (A) shows a single wire element without a prosthesis attached. (B) shows a prosthesis attached to the proximal curve of an elongated loop structure composed of three wires. (C) shows the step of folding the attached tubular prosthesis outward to cover the elongated loop structure. (D) shows the state in which the wire ends are threaded through the tubular element, leaving a bare stent frame portion and arranging the tubular element and the stent frame portion covered with the prosthesis at a distance. (E), (F), (G), and (H) show four different types of wire elements.

[0084] [Figure 4] 1A and 1B show two further embodiments of the prosthetic valve device of the present invention, a) showing an embodiment with a first fixation means and b) showing an embodiment with a second fixation means.

[0085] [Figure 5]3A-3D are schematic diagrams of another embodiment of a prosthetic valve device of the present invention, similar to the device shown in Fig. 3F, showing two different views of the stent frame with attached prosthesis (A) and (B), the stent frame without attached prosthesis (C), and a view of the lumen of the device from the proximal end (D). DETAILED DESCRIPTION OF THE INVENTION

[0086] Figure 1 shows a human heart 50 having a right atrium 54, a right ventricle 55, a left atrium 56, and a left ventricle 57. Also shown in Figure 1 is a portion of the superior vena cava 52 and a portion of the inferior vena cava 53, which enter the heart 50 via the right atrium 54.

[0087] More specifically, the superior vena cava 52 is a blood vessel that returns blood from the upper body, and opens into the upper posterior part of the right atrium 54, with its opening 52a facing downward and forward. The opening 52a does not have a valve.

[0088] The inferior vena cava 53, which has a larger diameter than the superior vena cava 52, is a blood vessel that returns blood from the lower half of the body and opens at the lowest part of the right atrium 54. Its opening 53a faces upward and backward and is guarded by the inferior vena cava valve (Eustachian valve, not shown), a remnant of the fetal period.

[0089] The right ventricle 55 has a triangular shape and extends from the right atrium 54 to near the apex 59 of the heart 50 .

[0090] The right atrioventricular orifice (not shown in FIG. 1) is a large, oval opening that connects the right atrium 54 and the right ventricle 55, and is guarded by a tricuspid valve 60 that includes three triangular cusps (cusps / segments / leaflets) 64.

[0091] The opening 61 of the pulmonary artery 62 is circular and located at the upper left of the atrioventricular opening. The opening 61 is guarded by the pulmonary valve 63.

[0092] As mentioned above, the tricuspid valve 60 serves to prevent the backflow of blood into the right atrium 54. Arrows 70 and 71 indicate the normal flow of blood into the right atrium 54.

[0093] The left atrium 56 is smaller than the right atrium 54. The left ventricle 57 is longer and more conical than the right ventricle 55. The left atrioventricular orifice (mitral orifice, not shown in FIG. 1) is located to the left of the aortic orifice 65 and is guarded by the bicuspid mitral valve 66.

[0094] The aortic orifice 65 is a circular opening located to the right of the atrioventricular orifice and is guarded by three aortic valves 67. Reference numeral 68 denotes the aorta.

[0095] The mitral valve 66, which separates the left atrium 56, an atrial cavity located on the left side, from the left ventricle 57, is an atrioventricular valve as described above, and has a mitral annulus 70 that forms the anatomical junction between the left ventricle 57 and the left atrium 56. The annulus 70 also functions as an attachment site for valve leaflet tissue (not shown).

[0096] A normal mitral valve 66 opens when the left ventricle 57 relaxes (diastole), allowing blood to flow from the left atrium 56 into the low-pressure left ventricle 57, filling it with blood. During systole, when the left ventricle 57 contracts, the pressure within the ventricle 57 rises, causing the mitral valve 66 to close. This prevents blood from leaking into the left atrium 56, and ensures that all blood leaving the left ventricle is pumped through the aortic valve 67 into the aorta 68 and then to the rest of the body. Normal function of the mitral valve requires complex interactions between the annulus 70, valve cusps, and subvalvular tissue (none of which are shown in FIG. 1 ).

[0097] If the mitral valve 66 does not close completely, regurgitation through the mitral valve 66 occurs, causing blood to leak backward into the left atrium 56 .

[0098] FIG. 2 illustrates one embodiment of a prosthetic valve device 100 of the present invention. The prosthetic valve device 100 is placed in a patient's heart. The prosthetic valve device 100 has a substantially cylindrical body 120 including a lumen 121 extending from a proximal body end 122 to a distal body end 123. The prosthetic valve device 100 further includes a stent frame 112 (see, e.g., FIG. 3B), a prosthesis 113 attached to the stent frame 112, and a valve structure 116 (see FIG. 3C). The stent frame 112 has an inner surface 112a and an outer surface 112b.

[0099] FIG. 3 illustrates in more detail the elements of one embodiment of the prosthetic valve device 100 of the present invention, as well as a method for manufacturing the prosthetic valve device 100 of the present invention. FIG. 3A shows a wire element 101. The wire element is formed from a length of wire 102, with first and second wire ends 103 and 104, and first and second wire ends 103a and 104b. The wire element 101 has a proximal wire element portion 105 and a distal wire element portion 106. As can be seen in FIG. 3A, the wire element 101 has an elongated loop structure 107 formed in the proximal wire element portion 105. In this embodiment, the elongated loop structure 107 is formed by a single wrap of wire, resulting in an elliptical loop structure 107. The loop structure has a proximal-to-distal diameter d1 that is greater than its circumferential diameter d2, giving it an elliptical shape.

[0100] The elongated loop structure 107 has a proximal curved portion 108 and a distal curved portion 109 , and an intermediate portion 110 between the proximal curved portion 108 and the distal curved portion 109 .

[0101] As can be seen in FIG. 3A, both wire ends 103 and 104 extend in the same direction, ie, in the distal / outflow direction opposite to the direction in which the elongated loop structure is provided.

[0102] Here, and throughout this invention, the term "wire ends" 103a, 104a means the very ends of the wire 102, and "wire ends" 103, 104 means the portions of the wire 102 immediately adjacent to the wire ends 103, 104, although in some places these may be used interchangeably and it will be clear which of the two options, i.e., very ends or "ends" / end areas, is meant.

[0103] In manufacturing the prosthetic valve device 100 of the present invention, at least two, and preferably three, wire elements 101 are provided. The wire elements are preferably made of Nitinol. Each wire element 101 is wound around two pins spaced a specific desired distance apart to form an elongated loop structure 107. The spacing between the two pins determines the diameter d1 of the elongated loop structure 107. The wire elements are heated to maintain the elongated loop structure 107.

[0104] Next, as shown in Figure 3B, the three wire elements 101a, 101b, and 101c are attached to the prosthesis 113. As shown in Figure 3B, the prosthesis 113 is tubular, i.e., tube-shaped, and has an outer surface 114 and an inner surface 115, and has a first prosthesis end 113a and a second prosthesis end 113b. The three wire elements 101a, 101b, and 101c are secured, preferably sewn, to the first prosthesis end 113a on the outer surface 114 of the prosthesis 113, such that approximately one-third of the prosthesis 113 is covered by the proximal curved portions 108 of the elongated loop structures 107 of the wire elements 101a, 101b, and 101c. As can be seen in the embodiment shown in Figure 3, three wire elements 101a, 101b and 101c are arranged in a triangular shape circumferentially surrounding the first prosthesis end 113a of the tubular prosthesis 113 and are attached to the outer surface 114 of the tubular prosthesis by stitching.

[0105] To form the valvular structure 116, the tubular prosthesis 113 is turned inside out or folded over as shown by arrow 117 in Figure 3B so that the tubular prosthesis 113 covers the proximal curved portion 108 of the elongated loop structure 107, and then pulled down so that the wire elements are covered up to the distal curved portion 109 of the elongated loop structure 107. In this manner, the elongated loop structure 107 is covered by the tubular prosthesis 113, with the inner surface 115 of the tubular prosthesis 113 facing outward.

[0106] In the next step, as seen in Figure 3C, the second prosthesis end 113b is secured or attached, preferably by stitching, to the distal curved portion 109 of the elongated loop structure 107. In the embodiment shown in Figure 3, only the second prosthesis end 113b of the tubular prosthesis 113 is secured to the elongated loop structure, while the middle portion 113c of the tubular prosthesis 113 remains unsecured. This allows the tubular prosthesis 113 to balloon-like expand during systole, allowing the prosthetic valve device 100 to abut against the native mitral valve.

[0107] This process, i.e., inverting or folding the tubular prosthesis 113 over the proximal curved portion 108 of the elongated loop structure 107, forms a valvular structure 116 at the attachment site of the first prosthesis end 113a of the prosthesis 113. This first prosthesis end 113a is generally located at the proximal curved portion 108, but is a distance X from the proximal-most end 111 of the elongated loop structure 107 (see FIG. 3B). It is at this distance X that the valvular structure 116 is formed within the body 120.

[0108] The first and second ends 103, 104 of each wire element extend toward a distal portion 106 of the wire element.

[0109] Figure 3D illustrates the final step in fabricating a prosthetic valve device 100 according to one embodiment of the present invention, where first and second ends 103, 104 of wire elements 101a, 101b, and 101c are introduced / guided / threaded into tubular element 130. The tubular element 130 shown in the embodiment of Figure 3B has multiple lumens 131. In this embodiment, the number of lumens 131 is equal to the number of first and second ends 103, 104 of the number of wire elements 101 used. As can be seen in Figure 3D, tubular element 130 is positioned a distance from the distal curve of elongated loop structure 107, thereby forming a bare stent frame portion 132.

[0110] Providing a tubular element 130 to house the wire element 101 is advantageous as it prevents the ends / terminals 103, 104, 103a, 104a from damaging the cardiac tissue and also prevents friction of the wire ends 103, 104 which could cause wear on the wire element 101.

[0111] 3E, 3F, 3G and 3H show alternative embodiments of the wire element of the prosthetic valve device of the present invention.

[0112] As seen in embodiments 3E and 3F, the proximal curved section 108 is bent outward relative to the longitudinal axis A (see FIG. 3F). Furthermore, as can be seen in FIGS. 3E and 3F, the stent frame 112 is formed by connecting three wire elements 101 together with a crimping element 140. The crimping element 140 is located adjacent to the proximal curved section 108 and connects a left wire portion 136 of one wire element 101 to a right wire portion 137 of the other wire element 101.

[0113] 3E , loop structure 107 of wire element 101 formed by wire 102 includes a curved proximal curved portion 108 and a substantially straight intermediate wire portion 110, represented by left wire portion 136 and right wire portion 137, extending toward distal curved portion 109. The left and right wire portions 136, 137 are guided or bent toward distal curved portion 109 toward each other to form distal curved portion 109. In the embodiment shown in FIG. 3E , the left and right wire portions 136, 137 are not connected at distal curved portion 109. Thus, the loop structure 107 formed has an “open” loop, with first and second wire ends 103, 104 extending separately from wire element distal portion 106.

[0114] The alternative embodiment shown in FIG. 3F has the same overall structure as the embodiment shown in FIG. 3E, except that the first and second wire ends 103, 104 are guided / positioned in pairs within a sleeve 141 located distally adjacent to the distal curved portion 109. That is, in the completed prosthetic valve device, the first and second wire ends 103, 104 are guided in pairs within the tubular element 130 (not shown in FIGS. 3E-3H), i.e., within the three lumens 131 of the tubular element 130. In contrast, in the embodiment shown in FIG. 3E, the tubular element 130 has six lumens 131 (not shown in FIG. 3E), and each of the six lumens 131 is individually threaded through one of the first and second wire ends 103, 104.

[0115] 3G and 3H, there is shown yet another embodiment of a wire element 101 for use in the device 100 of the present invention. The wire element 101 shown in Figures 3G and 3H, respectively, also includes an elongated loop structure 107 having a proximal curved portion 108, a distal curved portion 109, and an intermediate wire portion 110.

[0116] In the embodiment shown in FIG. 3G, the first and second wire ends 103, 104 are terminated distal to the distal curved section 109 by crimping using a crimp structure 142.

[0117] Alternatively, as shown in FIG. 3H, the first and second wire ends 103, 104 are twisted together distal to the distal curved portion 109.

[0118] In these two embodiments, the first and second wire ends 103, 104 may be guided separately into the tubular element 103 or may be guided in pairs.

[0119] In one preferred embodiment, the proximal curved section is curved outward relative to the proximal-distal long axis and / or lumen.

[0120] In another embodiment of the prosthetic valve device of the present invention, the wire elements are connected together, preferably by a crimping element that crimps the wire elements together.

[0121] In a refinement of this embodiment, at least one, two, three, four, five or six crimping elements are preferably provided adjacent the proximal curved portion, and more preferably one crimping element connects one left wire portion to the other right wire portion of two separate wire elements.

[0122] This embodiment allows the connection / creation of the wire elements to be more stable, so if three wire elements are used, three crimping elements are required to connect the wire elements together.

[0123] In a refinement of the invention, the prosthetic valve device of the invention further comprises a tubular element comprising at least one lumen extending therethrough, the lumen being designed to accommodate the distal wire element portion, and preferably the first and / or second wire ends, either individually or in pairs.

[0124] Figure 4 illustrates two different possibilities for anchoring the prosthetic valve device 100 to a patient's heart: Figure 4A illustrates an exemplary embodiment for use in transapical implantation of the prosthetic valve device 100 of the present invention, and Figure 4B illustrates an exemplary embodiment for use in transseptal implantation of the prosthetic valve device 100 of the present invention.

[0125] Transapical implantation is performed through a minor surgical procedure to access the apex of the left ventricle, and the prosthetic valve device 100 is placed using a transapical catheter (not shown). The tubular element 130 is secured to the apex by mating with an apical anchor 133, which can hold the tubular element 130 in a desired position. After moving the tubular element 130 to the optimal mating position within the anchor 133, it can be secured, for example, by a plugging method.

[0126] Transseptal implantation requires a catheter (not shown) to deliver the prosthetic valve device 100. The catheter tip is inserted into the body through the femoral vein, right atrium, septum, left atrium, and mitral valve to reach the apex of the left ventricle. The wire element can be anchored to the myocardium via the hook 135 using a mechanism that slides and locks the wire out of the tubular element.

[0127] Figure 5 shows another embodiment of a prosthetic valve device of the present invention. It is similar to the device shown in Figure 3F, and therefore like features are given the same reference numerals. Figures 5A and 5B are each a side view of this embodiment with a prosthesis 113 attached to a stent frame 112. Figure 5C shows this embodiment of the stent frame 112 without a prosthesis 113 attached thereto, and Figure 5D shows the interior of the lumen 121 of this embodiment of the device 100, displaying the valvular structure 116.

[0128] As can be seen in the drawing, the proximal curved section 108 is bent slightly outward relative to the longitudinal axis A. Furthermore, the stent frame 112 is formed by connecting three wire elements 101 together with crimping elements 140a, 140b at two different locations: a proximal location 140a and a distal location 140b. The proximal crimping element 140a is located adjacent to the proximal curved section 108 and connects one left wire portion 136 to the other right wire portion 137 of two separate wire elements 101. The distal crimping element 140b is located proximal to the distal curved section 109 and spaced a fixed distance from the proximal crimping element 104a.

[0129] In the embodiment shown in Figure 5, two wire elements 101, or more specifically, their left and right wire portions 136, 137, are crimped by proximal and distal crimping elements 140a, 140b, forming a generally oval single-cell structure 146 between the proximal and distal crimping elements 140a, 104b. Distal to the distal curved section 109, the first and second wire ends 103, 104 of each of the three wire elements 101 are crimped by a third crimping element 140c. As also shown in Figure 5, a prosthesis 113 is secured to the stent frame 112, forming a valve 116 within the lumen 121 (see Figure 5C).

Claims

1. A prosthetic valve device (100) for the treatment of mitral regurgitation, comprising: The prosthetic valve device (100) comprises a body (120) having an internal lumen (121), the body (120) comprising a tubular flexible stent frame (112) having an internal surface (112a) and an external surface (112b), and a prosthetic material (113) at least partially covering the stent frame (112), the internal lumen (121) comprising a valve structure (116); the flexible stent frame (112) is comprised of a plurality of wire elements (101) formed from a single wire (102) having a first wire end (103) and a second wire end (104), each wire element (101) having a proximal wire element portion (105) with an elongated loop structure (107) and a distal wire element portion (106), the elongated loop structure (107) including a proximal curved portion (108), a distal curved portion (109), and an intermediate portion (110) between the proximal curved portion (108) and the distal curved portion (109); the prosthesis (113) covers the proximal wire element portion and is fixed to the proximal curved portion (108) on an inner surface (112a) of the stent frame (112) and to the distal curved portion on an outer surface (112b) of the stent frame; Prosthetic valve device (100).

2. 2. The prosthetic valve device (100) of claim 1, further comprising a tubular element (130) having at least one lumen (131) extending therethrough, the lumen (131) being designed to accommodate the first and second wire ends (103, 104).

3. The prosthetic valve device (100) according to claim 1 or 2, wherein the plurality of wire elements (101) consists of three or more wire elements (101).

4. The prosthetic valve device (100) according to any one of claims 1 to 3, wherein the loop structure (107) is an open loop structure or a closed loop structure (107).

5. 5. The artificial valve device (100) of claim 1, wherein the first and second wire ends (103, 104) of the wire (102) are connected over at least a certain distance distally adjacent the distal curved portion (109).

6. 6. The prosthetic valve device (100) of claim 1, wherein the first and second wire ends (103, 104) are connected by a sleeve (141) from a position adjacent to the distal curved portion (109) along substantially their entire length.

7. The artificial valve device (100) of any one of claims 1 to 6, wherein the wire (102) is doubled at the proximal curved portion (108) and singled at the distal curved portion (109).

8. The prosthetic valve device (100) according to any one of claims 1 to 7, further comprising crimping elements (140; 140a, 140b, 140c) connecting the wire elements (101) together.

9. 3. The artificial valve device (100) of claim 2, wherein the tubular element (130) has a plurality of lumens (131) extending therethrough, and the first and second wire ends (103, 104) of each wire (102) are guided individually or in pairs into each of the plurality of lumens (131) of the tubular element (130).

10. 10. The prosthetic valve device (100) of claim 2 or 9, wherein the tubular element (130) comprises at least three or six lumens (131), or three or six lumens (131).

11. The prosthetic valve device (100) according to any one of claims 1 to 10, wherein the wire element (101) is made of a shape memory alloy.

12. The prosthetic valve device (100) of any one of claims 1 to 11, wherein the prosthetic material is secured only to the proximal curved portion and the distal curved portion.

13. The prosthetic valve device (100) of any one of claims 1 to 12, wherein the elongated loop structure (107) is substantially elliptical.

14. A method for manufacturing a prosthetic valve device (100), comprising: a) providing a plurality of, preferably three, wire elements (101) formed from a single wire (102) having a first wire end (103) and a second wire end (104), each wire element (101) having a wire element proximal portion (105) with an elongated loop structure (107) and a wire element distal portion (106), each elongated loop structure (107) including a proximal curved portion (108), a distal curved portion (109), and an intermediate portion (110) between the proximal curved portion (108) and the distal curved portion (109); b) attaching, preferably suturing, a tubular prosthesis (113), preferably a mammalian pericardium, to the proximal curved portion (108), the tubular prosthesis (113) comprising an inner surface (115), an outer surface (114), a first prosthesis end portion (113a), a second prosthesis end portion (113b) and a prosthesis intermediate portion (113c) between the first prosthesis end portion (113a) and the second prosthesis end portion (113b), and the attaching step b) attaches the wire element (101) only to the outer surface (115) of the first prosthesis end portion (113a) while leaving the second prosthesis end portion (113b) and the prosthesis intermediate portion (113c) unfixed; c) then folding the tubular prosthesis (113) outward so that the inner surface (115) of the tubular prosthesis (113) overlaps the elongated loop structure (107) of the proximal wire element portion (105), and causing the second prosthesis end (113b) and the intermediate prosthesis portion (113c) to overlap the elongated loop structure in the direction of the distal curved portion (109); and d) then attaching said second prosthesis end (113b) to the distal curved portion (109) of said elongated loop structure (107) to create a prosthetic valve device (100). A manufacturing method comprising:

15. 15. The method of claim 14, further comprising the step of: e) threading the first wire end (103) and the second wire end (104) of each wire element through a lumen (131) of a tubular element (130), the tubular element (130) including at least one lumen (131) extending therethrough, the lumen (131) being designed to accommodate the first and second wire ends (103, 104) individually or in combination.

16. 16. The method according to claim 15, wherein the tubular element (130) is a multi-lumen tubular element comprising at least three or six lumens (131) designed to accommodate the first and second wire ends (103, 104), or three or six lumens (131).

17. 17. A prosthetic valve device (100) comprising a body (120) having an internal lumen (121), the body comprising a tubular flexible stent frame and a prosthetic material (113) at least partially covering the stent frame (112), the internal lumen (121) comprising a valve structure, the prosthetic valve device (100) being manufactured by a method according to any one of claims 14 to 16.

Citation Information

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