Systems, methods, and devices for treating tricuspid regurgitation

A vena cava-implantable device with pivotable valves addresses the high-risk nature of tricuspid regurgitation treatments by reducing backflow, enhancing cardiac function and patient outcomes.

JP7791915B2Active Publication Date: 2025-12-24INNOVENTRIC LTD
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Patent Information

Application Number
JP2024017447
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-06-08
Filing Date
2024-02-07
Publication Date
2025-12-24
Estimated Expiration
2039-06-07

AI Technical Summary

Technical Problem

Current treatments for tricuspid regurgitation, such as open-heart surgery and medications, are associated with high mortality and morbidity rates, leaving a significant number of patients with untreated severe tricuspid regurgitation and worsening quality of life and cardiac function.

Method used

A tricuspid regurgitation treatment device featuring a tubular member with circumferentially arranged valves and blocking members that pivot to block and unblock openings during ventricular systole and diastole, configured for implantation in the vena cava to manage blood flow and reduce backflow.

Benefits of technology

The device effectively reduces tricuspid regurgitation by minimizing backflow from the right ventricle into the right atrium, improving cardiac function and quality of life without the risks associated with invasive surgeries.

✦ Generated by Eureka AI based on patent content.

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Abstract

To relate to devices and methods for treating tricuspid insufficiency.SOLUTION: A tricuspid insufficiency treatment device includes a tubular member configured for implantation within a vena cava of a patient, where the tubular member is formed with a sidewall. The device also includes at least two valves arranged circumferentially along the sidewall, where each valve comprises an opening formed in the sidewall, and a blocking member arranged to block and unblock the opening. The blocking member comprises a flap or cover pivotally attached at or proximate a portion of the opening and arranged to block and unblock the opening during ventricular systole and ventricular diastole, respectively, such that the opening is unblocked in a direction opposite to the attachment of the flap or cover. The at least two valves are arranged along a first circumference at a first location between the ends of the tubular member.SELECTED DRAWING: Figure 4B
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Description

[Technical Field]

[0001] The present invention relates generally to medical systems, apparatus, devices and methods for their implantation in the heart, and more particularly, but not exclusively, to stent-based devices for treating dysfunctional or regurgitant tricuspid (atrioventricular) valves.

[0002] [Related Applications] This application claims priority to and the benefit of U.S. Provisional Patent Application No. 62 / 682,948, filed June 8, 2018, the entire contents of which are incorporated herein by reference. Embodiments of the present disclosure are also related to PCT Application No. PCT / IB2017 / 050534, filed February 1, 2017, entitled "Treatment of Tricuspid Insufficiency," and U.S. Provisional Patent Application No. 62 / 292,422, filed February 8, 2016, the disclosures of each of which are incorporated herein by reference in their entireties. [Background technology]

[0003] The tricuspid valve prevents the backflow of blood from the right ventricle into the right atrium when it is closed during ventricular systole, and allows blood to flow from the right atrium into the right ventricle when it is open during ventricular diastole.

[0004] An insufficient tricuspid valve, causing tricuspid regurgitation (TR), can result from tricuspid annular dilation and right ventricular enlargement. TR is often secondary to left heart failure from myocardial or valvular causes, right ventricular volume or pressure overload, and ventricular dilation. TR causes right atrial overload, which is transmitted to the superior and inferior vena cava (SVC, IVC) and their tributaries. Ultimately, this leads to hepatic congestion, ascites, anasarca, peripheral edema, and other clinical symptoms of congestive heart failure. If untreated, significant tricuspid regurgitation often leads to heart failure and death.

[0005] The clinically available treatments for TR are open-heart surgery or medications. However, open-heart surgery for tricuspid valve replacement / repair is rarely performed, primarily due to its high mortality and morbidity rates. On the other hand, medications may not solve the problem and allow the disease to progress, leaving patients with a worsening quality of life and cardiac function.

[0006] Due to the high surgical risks of tricuspid valve replacement / repair, the vast majority of patients with TR are currently considered inoperable, resulting in a significant number of untreated patients with significant TR. Summary of the Invention [Means for solving the problem]

[0007] Thus, in some embodiments, a tricuspid regurgitation treatment device is provided, the tricuspid regurgitation treatment device including a tubular member configured for implantation into a patient's vena cava, the tubular member defined by a sidewall. The device also includes at least two valves circumferentially arranged along the sidewall, each valve including an opening formed in the sidewall and a blocking member arranged to block and unblock a respective opening of the plurality of openings. Each blocking member includes a flap or cover pivotally attached to or adjacent a portion of the respective opening and arranged to block the opening during ventricular systole and unblock the opening during ventricular diastole, such that the opening is unblocked in a direction opposite the attachment of the flap or cover. The at least two valves are arranged along a first circumferential portion at a first location between ends of the tubular member.

[0008] Such embodiments may further include at least one (and in some embodiments, more than one, and in some embodiments, substantially all) of the following additional structures, features, steps, functionality, and / or clarifications to yield still other embodiments (and further, each of the items in the below list, and combinations of the below-enumerated items, may be stand-alone embodiments): The third valve may be located in a second circumferential portion spaced closer to one of the ends of the tubular member than the two valves located in the first circumferential portion. ; - the at least two valves may be configured to be only three valves ; The tubular member and the valve blocking member may be configured to form a closed cylindrical outer shape when each blocking member blocks a respective opening. ; The covering may be configured to cover at least a portion of the tubular member. ; o The covering may be configured to not cover the opening ; The covering may be configured to additionally cover each blocking element. ; Each of the first and second valves may be hinged or otherwise attached to the tubular member on opposite sides such that the respective blocking member opens away from the other blocking member. ; a third valve of the plurality of valves may be hinged or otherwise attached such that the blocking member opens away from the first and second blocking members; ; The tubular member may include an expandable stent having a plurality of cells, and each of the plurality of valves corresponds to a particular cell of the stent. ; - each of the openings and at least one of the cells housing each opening comprises a diamond shape; ; - the stent may include a corona stent; The coronal stent includes at least one of a first inferior vena cava (IVC) section, a second superior vena cava (SVC) section, and a third central section disposed between the IVC and SVC sections. ; Each insulating member may include a shape memory reinforcing wire therein or thereon, the reinforcing wire may be disposed around at least a portion of the periphery of the insulating member or near at least a portion of the periphery of the insulating member, the reinforcing wire may be disposed around substantially the entire periphery of the insulating member or near substantially the entire periphery of the insulating member. ; A single side of the blocking member may be attached to the tubular member, for example, by sutures. ; a skirt that may be disposed over and / or otherwise attached to a portion of the tubular member and configured to at least one of prevent backflow from the right atrium (RA) into the inferior vena cava (IVC) and prevent occlusion of one or more hepatic veins to redundancy a graft covering of the IVC member; ; The skirt may include at least one of a fabric and a reinforcement material. ; The skirt may include fabric and reinforcement, which may include shape memory wire. ; The wire may be disposed along at least a portion of the periphery of the skirt. ; The wire can be placed along most of the skirt's perimeter ; a covering, the covering being attachable to the tubular member and / or the stent by a plurality of sutures; ; The tubular member can include a longitudinal axis, and at least one of the plurality of valves and / or the entire device can be configured to cause substantially all blood exiting therefrom to flow in a direction non-perpendicular to at least the longitudinal axis and the vena cava.

[0009] Thus, in some embodiments, a tricuspid regurgitation treatment device or device (which may also be referred to as an apparatus or system) is provided, the tricuspid regurgitation treatment device including a tubular member configured for implantation into a patient's vena cava, the tubular member including a stent and formed by a sidewall, the stent including a plurality of open cells and being expandable (in some embodiments, self-expandable). The device further includes at least three valves circumferentially arranged along the sidewall, each valve including an opening (which may also be referred to as a fenestration or aperture) formed in the sidewall and a blocking member arranged to block and unblock a respective opening of the plurality of openings. Each blocking member includes a stiffening wire disposed therein and / or thereon and includes a flap or cover pivotally attached to or adjacent a portion of the respective opening and arranged to block the opening during ventricular systole and unblock the opening during ventricular diastole, such that the opening is unblocked in a direction opposite to the attachment of the flap or cover. The device also includes a first and a second of the at least three valves, the first and second valves of which are disposed along a first periphery at a first location between the ends of the tubular member, and a third of the three valves is disposed on a second periphery spaced closer to one of the ends of the tubular member than the ends of the two valves disposed on the first periphery. Each of the first and second valves is hingedly connected to the tubular member on an opposite side such that each blocking member opens away from the other blocking member. In some embodiments, the stent includes a plurality of cells, and each of the plurality of valves corresponds to a specific cell. The device further includes a covering and a skirt, the covering attached to the tubular member by a plurality of sutures and configured to cover at least a portion of the sidewall and at least one of the stents except for the opening, and the skirt including a reinforcing wire therein and / or thereon.The skirt is positioned over and attached to a portion of the tubular member and is configured to at least one of prevent backflow from the right atrium (RA) into the inferior vena cava (IVC) and prevent occlusion of one or more hepatic veins to provide redundant graft coverage of the IVC member.

[0010] Such embodiments may further include at least one (and in some embodiments, more than one, and in some embodiments, substantially all) of the following additional structures, features, steps, functionality, and / or clarifications to yield still other embodiments (and further, each of the items in the below list, and combinations of the below-enumerated items, may be stand-alone embodiments): The covering material may be configured to additionally cover each blocking element. ; The tubular member and the valve's blocking member may be configured to form a closed cylindrical outer shape when the blocking member is blocking the opening. ; Each of the openings and at least one of the cells housing each opening may include a diamond shape. ; The stent may include a coronary stent. ; The coronal stent can include a first inferior vena cava (IVC) section, a second superior vena cava (SVC) section, and a third central section disposed between the IVC and SVC sections. ; The reinforcing wire may include a shape memory reinforcing wire. ; The reinforcing wire may be positioned at or near at least a portion of the periphery of the blocking member. ; The reinforcing wire may be disposed around or near substantially the entire periphery of the blocking member. ; A single side of each blocking member may be attached to the tubular member ; The blocking member may be attached by stitching ; The skirt reinforcement wires may include shape memory wires. ; The wire may be disposed along at least a portion of the periphery of the skirt. ; The wire can be placed along most of the skirt's perimeter ; The covering may be attached to the tubular member and / or the stent by a plurality of sutures. ; The tubular member can include a longitudinal axis, and at least one of the plurality of valves, or the entire device, can be configured to cause substantially all blood exiting therefrom to flow in a direction non-perpendicular to at least the longitudinal axis and the vena cava.

[0011] In some embodiments, a tricuspid regurgitation treatment device is provided, the tricuspid regurgitation treatment device including a tubular member configured for implantation in a patient's vena cava and defined by a sidewall. The device also includes at least three valves circumferentially arranged along the sidewall, each valve including an opening formed in the sidewall and a blocking member including a flap or cover pivotally attached to or adjacent a portion of each opening and arranged to block the opening during ventricular systole and unblock the opening during ventricular diastole, such that the opening is unblocked in a direction opposite the attachment of the flap or cover. A first valve and a second valve of the at least three valves are arranged along a first periphery at a first location between ends of the tubular member, and a third valve of the three valves is arranged on a second periphery spaced closer to one of the ends of the tubular member than the two valves arranged on the first periphery.

[0012] Such embodiments may further include at least one (and in some embodiments, more than one, and in some embodiments, substantially all) of the following additional structures, features, steps, functionality, and / or clarifications to yield still other embodiments (and further, each of the items in the below list, and combinations of the below-enumerated items, may be stand-alone embodiments): The at least three valves may include only three valves. ; The tubular member and the valve blocking member are capable of forming a closed cylindrical outer shape when each blocking member blocks its respective opening. ; A covering may be included and configured to cover at least a portion of the tubular member. ; The covering material does not need to cover the opening. ; The covering may be configured to additionally cover each blocking element. ; Each of the first and second valves may be hinged or otherwise attached to the tubular member on opposite sides such that the respective blocking member opens away from the other blocking member. ; a third valve of the plurality of valves may be hinged or otherwise attached such that the blocking member can open away from the first and second blocking members; ; The tubular member may include an expandable stent having a plurality of cells, and each of the plurality of valves may correspond to a particular cell of the stent. ; Each of the openings and at least one of the cells housing each opening may be diamond-shaped. ; If a stent is included, the stent may include a coronal stent, which may include or otherwise include any one or more of a first inferior vena cava (IVC) section, a second superior vena cava (SVC) section, and a third central section disposed between the IVC and SVC sections. ; Each insulating member may include a shape memory reinforcing wire therein or thereon. ; The reinforcing wire may be positioned at or near at least a portion of the periphery of the blocking member. ; The reinforcing wire may be positioned around or near substantially the entire periphery of the blocking member. ; A single side of the blocking member may be attached to the tubular member ; Each blocking element can be attached by stitching ; A skirt may be included, which may be disposed over and attached to a portion of the tubular member and configured to at least one of prevent backflow from the right atrium (RA) into the inferior vena cava (IVC) to provide redundant graft covering for the IVC member and prevent occlusion of one or more hepatic veins. ; The skirt may include at least one of a fabric and a reinforcement material, and the reinforcement material may include a shape memory wire, and the wire may be disposed along at least a portion of the periphery of the skirt, or the wire may be disposed along a majority of the periphery of the skirt. ; If a covering is included, the covering may be attached to the tubular member and / or stent by a plurality of sutures. ; The tubular member can include a longitudinal axis, and in some embodiments, at least one of the valves, or the entire device, can be configured to cause substantially all blood exiting therefrom to flow in a direction non-perpendicular to at least the longitudinal axis and the vena cava.

[0013] Some embodiments of the present disclosure relate to methods for treating tricuspid regurgitation. Specifically, in some embodiments, a method for treating tricuspid regurgitation is provided, the method comprising providing a device according to any of the devices disclosed herein and positioning the device in or adjacent to a patient's right atrium so that a portion is positioned adjacent to the superior vena cava and an opposite portion is positioned adjacent to the inferior vena cava. In some embodiments, the device is positioned via the patient's vascular system.

[0014] It should be recognized that all combinations of the foregoing concepts and additional concepts discussed in additional detail below (provided such concepts are not mutually inconsistent) are contemplated as being part of the inventive subject matter disclosed herein. In particular, any combination of subject matter appearing anywhere in this disclosure is contemplated as being part of the inventive subject matter disclosed herein. It should also be recognized that terminology explicitly used herein, which may also appear in any disclosure incorporated by reference, should be given a meaning that is most consistent with the specific concepts disclosed herein.

[0015] Those skilled in the art will understand that the drawings are primarily for illustrative purposes and are not intended to limit the scope of the inventive subject matter described herein. The drawings are not necessarily to scale. In some cases, various aspects of the inventive subject matter disclosed herein may be shown exaggerated or enlarged in the drawings to facilitate an understanding of different features. In the drawings, like reference characters generally refer to like features (e.g., functionally similar and / or structurally similar elements). [Brief explanation of the drawings]

[0016] [Figure 1A] FIG. 1 is a simplified illustration of a heart in diastole. [Figure 1B] FIG. 1 is a simplified illustration of a heart during ventricular systole, during which the tricuspid valve does not close properly and tricuspid regurgitation is present. [Figure 2A] FIG. 1 is a simplified schematic illustration of a tricuspid regurgitation treatment device with one or more valves, according to some embodiments, including illustrating a slightly open position of a diamond / lozenge shaped valve, according to some embodiments. [Figure 2B]FIG. 1 is a simplified schematic illustration of a tricuspid regurgitation treatment device with one or more valves, according to some embodiments, including illustrating a slightly open position of a round / oval valve, according to some embodiments. [Figure 2C] FIG. 1 is a simplified schematic illustration of a tricuspid regurgitation treatment device with one or more valves, according to some embodiments, including illustrating a slightly open position of a round / oval valve, according to some embodiments. [Figure 2D] FIG. 1 is a simplified schematic illustration of a tricuspid regurgitation treatment device with one or more valves according to some embodiments, including illustrating a slightly open position of (at least) a pair of oblong shaped valves according to some embodiments. [Figure 2E] FIG. 1 is a simplified schematic illustration of a tricuspid regurgitation treatment device with one or more valves, according to some embodiments, including illustrating a slightly open position of a large, circular valve device, according to some embodiments. [Figure 2F] FIG. 1 is a simplified schematic illustration of a tricuspid regurgitation treatment device with one or more valves, according to some embodiments, including illustrating a slightly open position of a diamond / lozenge shaped valve, according to some embodiments. [Figure 3A] FIG. 1 is a simplified perspective illustration of a tricuspid regurgitation treatment device implanted in the vasculature during cardiac diastole, according to some embodiments. [Figure 3B] FIG. 1 is a simplified perspective illustration of a tricuspid regurgitation treatment device implanted in the vasculature during cardiac systole, according to some embodiments. [Figure 4A] FIG. 1 is a simplified illustration of a tricuspid regurgitation treatment device according to some embodiments, illustrating a side view during diastole. [Figure 4B] FIG. 1 is a simplified illustration of a tricuspid regurgitation treatment device according to some embodiments, illustrating a perspective view during diastole. [Figure 4C] FIG. 1 is a simplified illustration of a tricuspid regurgitation treatment device according to some embodiments, illustrating cross section AA. [Figure 5] FIG. 1 is a simplified illustration of a percutaneous venous route for implantation of device embodiments of the present disclosure, illustrating implantation via the lower or upper extremity, according to some embodiments. [Figure 6A] 1 is a chart illustrating physiological improvement on post-implant studies. [Figure 6B] 1 is a chart illustrating physiological improvement on post-implant studies. DETAILED DESCRIPTION OF THE INVENTION

[0017] 1A-1B provide simplified illustrations of the heart during diastole and ventricular systole, respectively. During ventricular systole, the tricuspid valve 4, according to some embodiments, does not close properly, resulting in tricuspid regurgitation. The superior vena cava 1 returns blood from the upper body and opens into the upper and posterior parts of the right atrium 2 through a valveless orifice that faces downward and forward. The inferior vena cava 3, which is typically larger than the superior vena cava, returns blood from the lower body and opens into the lowest part of the atrium 2 near the atrial septum. Its orifice faces upward and backward and is protected by the inferior vena cava valve (called the Eustachian valve). The tricuspid valve 4 is located between the right atrium 2 and the right ventricle 5.

[0018] The coronary sinus 6 opens into the right atrium 2 between the orifice of the inferior vena cava and the atrioventricular opening. It returns blood from the interior of the heart and is protected by a semicircular valve, the coronary sinus valve (also called the Thebesian valve). The mitral valve 7 lies between the left ventricle 8 and the left atrium 9.

[0019] Ventricular systole involves an increase in pressure in the right ventricle 5 and left ventricle 8. The pressure in the ventricles rises to a level above that of the atria 2 and 9, thus closing the tricuspid valve 4 and mitral valve 7. Figure 1B shows that the tricuspid valve 4 is not closing properly, and tricuspid regurgitation is present.

[0020] 2A-2F show exemplary schematic illustrations of tricuspid regurgitation treatment devices, according to some embodiments. Each includes a tubular member / structure 10 (which may also be referred to as a vena cava member 12 or a tubular member 12; it will be appreciated that in some embodiments, the main body of device 10 need not be tubular) configured for implantation within a vena cava. The tubular member / structure 10 can include one or more valves, each including, for example, a blocking member 16 and an opening / opening / opening 14 (such terms are used interchangeably). The blocking members can be flaps (which may also be referred to as covers), configured to open and close openings (e.g., at least to fluid passing therethrough) within the sidewall of device 10 / tubular member 12, respectively. The blocking member / opening valve combination is configured to allow blood to exit the openings during ventricular diastole (blood is received by the end of the device from the vena cava) when the device is implanted within the vena cava.

[0021] As noted, treatment device 10 includes a tubular member 12 implantable within the superior vena cava (SVC) and / or inferior vena cava (IVC). A sidewall of tubular member 12 may be formed with an opening 14 (e.g., a right atrial opening) and includes a blocking member 16 positioned to block and unblock opening 14. As also noted, for example, blocking member 16 may be a flap valve, where blocking member 16 is a flap or cover that pivots over a portion of tubular member 12 to block / unblock the opening. In some embodiments, the blocking member is preferably (in some embodiments) positioned or otherwise secured at or near the opening on a portion of the periphery of the blocking member. Such securing may be achieved by sutures (e.g., reference numeral 19, see FIGS. 2D and 2F). The blocking member may be able to open outward, away from the sidewall of the tubular member, or in other embodiments, may be able to open laterally or in other directions.

[0022] Blocking members 16 can be normally open (e.g., FIG. 2A ) or normally closed with respect to each opening 14. The normally open or normally closed blocking member mechanism can further help control the degree of reflux or stenosis, respectively. For example, a normally open blocking member requires a specific, measurable, and controlled closing force. Thus, a normally open blocking member can produce a measurable, controlled level of reflux. Conversely, a normally closed blocking member can produce a measurable, controlled level of stenosis.

[0023] According to some embodiments, the device can be implanted such that the opening 14 is aligned with (facing toward) the orifice of the SVC or aligned with the orifice of the IVC, or it can be implanted so that it can face in other directions (e.g., laterally (anteriorly / posteriorly) etc.). Thus, the blocking member 16 can have its open portion (opening 14) oriented toward the superior, inferior, anterior, or posterior part of the right atrium.

[0024] 2A, multiple (in some embodiments, two, in some embodiments, two or more, in some embodiments, three, and in some embodiments, three or more) openings 14 and corresponding blocking members 16 are provided. For example, the blocking members 16 can be configured (e.g., sized and shaped) such that the blocking members 16 can fit within their respective openings 14 and can block the openings when the tricuspid regurgitation treatment device 10 is in the closed position.

[0025] In some embodiments (see, e.g., FIGS. 2B-2C), a single opening may be associated with one or (in some embodiments) multiple blocking members, each configured to cover a portion of the single opening. In such embodiments, the tricuspid regurgitation treatment device 10 in the closed position accommodates multiple blocking members, which are configured to fit together so that the combined blocking members block or cover at least a substantial portion of the single opening (e.g., including the entire single opening). In other words, one or more of the blocking members may be integral with one another and configured to collectively block one (or more) openings. For example, the blocking members shown in FIGS. 2A-2F and 3A-3B may be configured to block a single opening 14 (e.g., three blocking members 16), or such blocking members may be configured to block multiple openings. In the illustrations, each opening may be shaped, for example, as a parallelogram / diamond / rhombus, and in some embodiments, three blocking members swing open to create one large opening (in some embodiments) or open three individual openings (in some embodiments). In single-opening or one-opening embodiments, the blocking members come together and fit together to block the entire opening as a unit (e.g., FIGS. 2C, 2E). Thus, it is noted that in some embodiments, an opening may be associated with any number of blocking members, and in some embodiments, the blocking members may include any type of shape, particularly a shape suitable for blocking the opening during cardiac systole when the tricuspid regurgitation treatment device 10 is implanted in the vasculature.

[0026] For example, treatment devices according to some embodiments comprising multiple flap / blocking element valves significantly improve the likelihood of efficient and safe blood flow with respect to tissue ingrowth, thrombus, or other causes of device degradation.

[0027] In some embodiments, the tubular member 10 can be or include a stent 15, which can be self-expanding (e.g., shape memory alloys and polymers, etc.) or balloon-expandable (e.g., steel alloys and polymers, etc.). The blocking member 16 can be made from the same material as the tubular member (e.g., covering the stent) or from other graft materials (e.g., pericardium, porcine valve material, PE material). For example, the opening 14 can be an opening formed when the sidewall of the tricuspid regurgitation treatment device 10 is incised in a semicircular fashion without removing any part of the cut sidewall. In such an embodiment, a flap valve formed due to the incision (and remaining attached or connected to the tricuspid regurgitation treatment device 10 via a portion of the sidewall itself) can serve as the blocking member 16 for the opening 14.

[0028] In some embodiments, the stent includes a plurality of open cells, the plurality of open cells being covered by a material (forming the tubular member and / or its sidewalls). At least one of the cells may be configured to function as an opening, with a covering (or other suitable material) hinged or otherwise attached along at least a portion of its periphery to act as a blocking member to cover at least one cell (e.g., see the incision embodiment above) and allow blood to exit at least one cell during respective points in the cardiac cycle.

[0029] In some embodiments, the stent may be covered by fabric or other material (e.g., pericardium) 18; in such embodiments, the blocking element 16 may be a fabric valve (and / or may also be pericardium). For example, as shown in FIG. 2C , the blocking element 16 may be a flat valve 22 configured to open during cardiac systole when the tricuspid regurgitation treatment device 20 is implanted in the vasculature. In some embodiments, the blocking element 22 may be a single element that covers the entire opening 14, or it may be comprised of multiple elements that fit together during cardiac systole to completely or at least substantially completely cover the opening. Again, according to some embodiments (e.g., FIG. 2C ), the blocking element may cover one or more openings / openings (e.g., one or more cells in the stent) and may be centrally attached, for example, at 17 (e.g., within the center of the opening). Thus, a portion, and in some embodiments, a substantial portion (or all) of the periphery of the blocking member is openable from multiple angles, allowing blood to flow therethrough.

[0030] In some embodiments, the blocking member may not include or may include reinforcing 16a structures, such as wires, rods, tubes, sutures, or mesh. The coating (including the material used for the blocking member) may be impregnated, sprayed, or covered with anticoagulants, antiplatelet agents, tissue growth promoters or inhibitors, antibiotics, statins, anti-inflammatory agents, and other materials or drugs. Stent structures may include, without limitation, stent rings (independent or interconnected), braided or laser-cut meshes, braided or laser-cut tubular structures, and / or struts (and / or the like). Insufficiency devices / devices according to some embodiments may be fixed in place by, for example, the radial force of an expandable member, barbs, diverging tubular member ends, a stent or other member placed within a tributary, or other suitable means. Any subsequent tissue growth over the device may also aid in fixation.

[0031] The blocking member may be attached by any suitable means (e.g., becoming integral therewith), such as, but not limited to, sutures, adhesives, polymer embedding, welding, ultrasonic welding, a unified graft and blocking member material, and the like.

[0032] vena cava / tubular member by a vena cava / tubular member (see ). In some embodiments, the isolation member may be coupled or attached to the tricuspid regurgitation treatment device / device (or a side wall thereof) in a manner that allows for seamless opening and closing of the tricuspid regurgitation treatment device during diastole and systole, respectively, when the device 10 is implanted in the vasculature. For example, the isolation member may be connected to the side wall of the device 10 via any one or more of a connection or joint type. For example, the connection, joint, or attachment between the isolation member 16 and the side wall can be in the form of a hinge (via a ring or similar element), a pivot, or the like. In some embodiments, the joint can be a weakened joint between the isolation member and the side wall, which serves as an axis about which the isolation member can swing open during diastole.

[0032] The tubular member can be generally cylindrical in shape and can be referred to as tubular as described (both terms are used interchangeably throughout), but can alternatively be non-cylindrical. The term "cylindrical," as used throughout the specification and claims, includes not only circular cross-sections but also elliptical and other curved cross-sections. According to some embodiments, the diameter of the tubular member can be uniform along its axial length. Alternatively, according to some embodiments, the diameter of the tubular member can vary along its axial length. According to some embodiments, the blocking member can have a triangular shape with rounded corners as shown. Alternatively, it can have an oval, rectangular, circular, or other shape, such as a diamond shape (according to some embodiments).

[0033] 3A-3B are simplified illustrations of a tricuspid regurgitation treatment device 10 implanted in the vascular system (e.g., the vena cava) during diastole and systole, respectively, according to some embodiments. FIG. 3A shows diastole, during which pressure in the right ventricle drops (e.g., to about 0 mmHg, in some embodiments) and blood pressure in the vena cava causes the blocking member 16 to open, allowing flow through the opening 14. Systole is shown in FIG. 3B, during which pressure in the right ventricle increases. The use of the device 10, in some embodiments, is due to an insufficient tricuspid valve (i.e., because it cannot close completely) that does not completely prevent backflow of blood from the right ventricle into the right atrium. Thus, with the device according to some embodiments, systolic pressure causes the blocking member to close, preventing flow through the right atrial opening (see FIG. 3B). This substantially reduces backflow of blood from the right ventricle and right atrium into the venous system. In some embodiments, and as shown in FIG. 3B, when the blocking member 16 is blocking the opening 14, the tubular member and the blocking member together comprise a closed cylindrical outer shape, which is advantageous for inserting and removing the device into a delivery catheter.

[0034] 4A-4C illustrate several embodiments of the tricuspid regurgitation device of the present disclosure. As shown, device 10 includes a tubular member 12, a covering 18, and multiple valves, where tubular member 12 can include a stent 15, which can include multiple cells 15a, and the multiple valves include blocking members 16 for blocking and unblocking openings 14. In some embodiments, the openings for one or more of the valves can correspond to only a portion of the area of ​​the stent's cells 15a (e.g., as shown). As shown, the ends of the stent can be slightly curved to avoid interaction with the interior surface of the vena cava.

[0035] Additionally: The covering 18 can cover substantially all or a portion of the stent. Thus, for example, in some embodiments, portions of the stent at one or more ends (as shown, both ends) may be left without a covering. ; and / or Radiopaque markers 28 (see Figures 4A-4B) may be provided on the device for axial and rotational positioning within the body cavity. Typically, the radiopaque markers are in the shape of the letters "L," "E," or "C" and can mark the rotational position of the device; these or other markers may be placed at various axial positions on the device to allow the implanting operator to understand and control the axial position of the device.

[0036] 4A-4C may also include a skirt 24 that may include stiffening wires 26 therein and / or thereon (which may, for example, in some embodiments be arranged in an undulating / sinusoidal configuration). The skirt may be disposed over and attached to a portion of the tubular member and may be configured to at least one of prevent backflow from the right atrium (RA) into the inferior vena cava (IVC) and prevent occlusion of one or more hepatic veins.

[0037] The device can be delivered percutaneously or by surgical means. For example, as shown in the exemplary embodiment of Figure 5, the device can be delivered percutaneously through the IVC in a transcatheter femoral / iliac approach, or percutaneously through the SVC in a transcatheter jugular / radial / subclavian approach.

[0038] 6A-6B are charts illustrating the physiological improvements associated with post-implant studies.

[0039] It is particularly noteworthy that in some embodiments of the present disclosure, the direction of blood flow (either or both of ingress and egress) need not be in a particular (e.g., single) direction. For example, in some embodiments, blood need not flow into the device from one direction and then exit in another direction (e.g., flow out of the device perpendicular to the blood flow into the device). In some embodiments, a relatively small angle between the ingress and egress directions of blood provides greater efficacy to the patient.

[0040] Specifically, abrupt changes in flow direction (primarily due to the geometry of the blood vessel (or device through which blood flows)) can lead to turbulence and flow separation. Turbulent flow is an inefficient form of fluid flow characterized by rapidly changing pressures and velocities. In a physiological setting, turbulence prevents blood from moving in its natural path, resulting in a decrease in blood flow across a given cross-sectional area. A reduction in blood supply rate can be overcome by increasing blood pressure / velocity, but because turbulence is directly affected by fluid velocity, an increase in blood velocity results in more turbulence, and so on.

[0041] Moreover, because flow separation (when fluid is pulled away from a wall, resulting in an area with an associated reduced flow rate) is common at vessel bifurcations, aneurysms, stenoses, and other blood flow interferences, blood in an area of ​​slow flow typically forms a recirculation pattern in which the blood becomes trapped in that area (i.e., it is trapped in a recirculation zone because it cannot overcome the flowing fluid pressure and re-enter the mainstream flow). Generally, this occurs when the angle between the main fluid flow direction and the wall is relatively large.

[0042] Thus, in some embodiments of the present disclosure, one or more valves, including one or more flaps / covers / blocking members and one or more openings, are configured to open in a manner that allows blood to exit the tubular member (i.e., the device) in a flow direction that is relatively close to the natural flow direction in the vena cava, resulting in a reduction or (in many cases) elimination of turbulence and flow separation compared to devices that force abrupt changes in blood flow direction.

[0043] It is also worth noting that the tricuspid valve opens during diastole for a duration typically of a fraction of a second. To this end, the amount of blood that must enter the right ventricle through the tricuspid valve per diastole typically exceeds 50 milliliters. Additionally, the pressure gradient across the tricuspid valve during diastole (which is the driving force for blood flow) is only a few millimeters of mercury, typically less than 10 mmHg. Thus, the tricuspid valve naturally allows for a relatively large inflow rate under small durations and driving forces. Thus, the tricuspid valve (along with the mitral valve, which experiences similar conditions) is typically characterized by a large inflow cross-sectional area. Accordingly, some embodiments follow this principle to provide a high-flow valve that maintains a relatively large opening area.

[0044] Also to this end, it is particularly noteworthy that in some embodiments, the tricuspid regurgitation device / devices and included valve structures allow for varying pressure gradients (which can change significantly within a fraction of a second). Thus, such embodiments allow significant volumes of blood (e.g., 50 ml or more) to flow across them, whereas prior art devices cannot. This is because the valve must close rapidly to stop backflow through it during the remaining fraction of a second it is open, which occurs in some of the disclosed embodiments (because the inflow of blood through such embodiments is driven by a pressure gradient of only a few mmHg). Such flow in such a small duration is not possible through a "slit valve" (for example).

[0045] Thus, in some embodiments, the disclosed devices provide a high-flow valve (that cannot be provided by, for example, a slit valve) that allows a relatively large volume of blood to flow across it in a short amount of time, driven by a small pressure gradient (e.g., less than about 10 mmHg). According to some embodiments, such is achieved by configuring the device to include a valve or valves that define a large open area (e.g., greater than 2 square cm).

[0046] While various embodiments of the present invention have been described and illustrated herein, those skilled in the art will readily envision numerous other means and / or structures for performing the functions and / or obtaining the results and / or one or more of the advantages described herein, and each such variation and / or modification is deemed to be within the scope of the embodiments of the present invention described herein. More generally, those skilled in the art will readily recognize that all structures, parameters, dimensions, materials, functionality, and configurations described herein are meant to be examples, and that the actual structures, parameters, dimensions, materials, functionality, and configurations will depend on the specific application or applications for which the teachings of the present invention are used. Those skilled in the art will recognize, or be able to ascertain using no more than routine experimentation, many equivalents to the specific embodiments of the present invention described herein. It should therefore be understood that the foregoing embodiments are presented by way of example only, and that within the scope of the claims supported by this disclosure and their equivalents, embodiments of the present invention may be practiced otherwise than as specifically described and claimed. Additionally, inventive embodiments of the present disclosure relate to each individual feature, system, article, structure, material, kit, functionality, step, and method described herein. In addition, any combination of two or more such features, systems, articles, structures, materials, kits, functionality, steps, and methods is included within the inventive scope of the present disclosure, provided such are not mutually inconsistent. Some embodiments may be distinguishable from the prior art by the specific absence of one or more features / elements / functionality (i.e., claims relating to such embodiments may include negative limitations).

[0047] Also, as discussed, various inventive concepts may be embodied as one or more methods, examples of which have been provided. The acts performed as part of a method may be ordered in any suitable manner. Thus, embodiments may be constructed in which acts are performed in an order different from that shown, which may include performing some acts simultaneously even though shown as sequential acts in the illustrative embodiments.

[0048] Any and all references to publications or other documents (including, but not limited to, patents, patent applications, articles, web pages, books, etc.) presented anywhere in this application are incorporated herein by reference in their entirety. Moreover, all definitions as defined and used herein should be understood to control over dictionary definitions, definitions in documents incorporated by reference, and / or ordinary meanings of the defined terms.

[0049] The indefinite articles "a" and "an," as used herein in the specification and claims, should be understood to mean "at least one," unless clearly indicated to the contrary. The term "and / or," as used herein in the specification and claims, should be understood to mean "either or both" of the elements so coordinated (i.e., elements that are conjunctively present in some cases and disjunctively present in other cases). Multiple elements listed with "and / or" should be construed in the same manner (i.e., "one or more" of the elements so coordinated). Other elements may optionally be present other than those specifically identified by the "and / or" clause, whether or not related to those elements specifically identified. Thus, as a non-limiting example, a reference to "A and / or B," when used in conjunction with open language such as "comprising," may in one embodiment refer to only A (optionally including elements other than B), in another embodiment refer to only B (optionally including elements other than A), in yet another embodiment refer to both A and B (optionally including other elements), and so on.

[0050] As used herein in the specification and claims, "or" should be understood to have the same meaning as "and / or" as defined above. For example, when separating items in a list, "or" or "and / or" shall be interpreted as inclusive (i.e., including at least one (but including more than one) of the elements of the plurality or list, and, optionally, including additional unlisted items). Only terms clearly indicated to the contrary, such as "only one of" or "exactly one of," or, when used in the claims, "consisting of," shall refer to the inclusion of exactly one element of the elements of the plurality or list. In general, the term "or" as used herein shall only be interpreted as indicating exclusive alternatives (i.e., "one or the other, but not both") when preceded by terms of exclusivity, such as "either," "one of," "only one of," or "exactly one of." "Consisting essentially of," when used in the claims, shall have its ordinary meaning as used in the field of patent law.

[0051] As used herein in the specification and claims, the phrase "at least one" in connection with a list of one or more elements should be understood to mean at least one element selected from any one or more of the elements in the list of elements, but not necessarily including at least one of each and every element specifically listed in the list of elements, and does not exclude any combinations of elements in the list of elements. This definition also allows for the optional presence of elements other than those specifically identified in the list of elements to which the phrase "at least one" refers, whether or not related to those elements specifically identified. Thus, as a non-limiting example, "at least one of A and B" (or, equivalently, "at least one of A or B," or, equivalently, "at least one of A and / or B") can refer in one embodiment to at least one A (optionally including two or more As) in the absence of any Bs (and optionally including elements other than B); in another embodiment to at least one B (optionally including two or more Bs) in the absence of any As (and optionally including elements other than A); in yet another embodiment to at least one A (optionally including two or more As) and at least one B (optionally including two or more Bs) (and optionally including other elements); etc.

[0052] In the claims and in the above specification, all transitional phrases such as "comprising," "including," "carrying," "having," "containing," "involving," "holding," and "composed of" are to be understood as open-ended, i.e., to mean "including, but not limited to." Only the transitional phrases "consisting of" and "consisting essentially of" shall be closed or semi-closed transitional phrases, respectively, as set forth in Section 2111.03 of the U.S. Patent Office Manual of Patent Examining Procedure. [Explanation of symbols]

[0053] 1. Superior vena cava 2 Right atrium 3. Inferior vena cava 4 Tricuspid valve 5 Right ventricle 6. Coronary sinus 7 Mitral valve 8 left ventricle 9 Left atrium 10. Tricuspid regurgitation treatment device 12 Vena cava, tubular member 14 Openings 15 Stents 15a cell 16. Shut-off member 16a Reinforcement structure 18 Covering material 20 Tricuspid regurgitation treatment device 22 Flat valve, shutoff element 24 Skirt 26 Reinforcing wire 28 Radiopaque markers

Claims

1. A device for treating tricuspid regurgitation, a tubular member configured for implantation within a patient's vena cava, the tubular member being defined by a sidewall; at least two valves circumferentially disposed along the sidewall, each valve comprising: an opening formed in the sidewall; and a blocking member positioned to block and unblock each opening of the plurality of openings; At least two valves, Equipped with each blocking member includes a flap or cover pivotally attached to or adjacent a portion of a respective opening and arranged to block the opening during ventricular systole and unblock the opening during ventricular diastole such that the opening is unblocked in a direction opposite to attachment of the flap or cover; the at least two valves are disposed along a first periphery at a first location between ends of the tubular member; the tubular member comprises an expandable stent; each of the openings and each of the cells accommodating each opening are diamond-shaped; A device for treating tricuspid regurgitation.

2. 10. The device of claim 1, further comprising a third valve disposed on a second periphery spaced closer to one of the ends of the tubular member than the ends of the two valves disposed on the first periphery.

3. 3. The device of claim 1 or 2, wherein the at least two valves include only three valves.

4. 4. The device of claim 1, wherein the tubular member and the blocking member of the valve form a closed cylindrical outer shape when each blocking member blocks a respective opening.

5. The device of claim 1 , further comprising a covering configured to cover at least a portion of the tubular member.

6. The device of claim 5 , wherein the covering does not cover the opening.

7. 10. The device of claim 1 or 5, wherein the covering material is configured to form a respective blocking member.

8. 8. The device of claim 1, wherein each of the first and second valves is hingedly connected to the tubular member on an opposite side such that each blocking member opens away from the other blocking member.

9. 9. The device of claim 2, wherein a third valve of the plurality of valves is hinged such that the blocking member opens away from the first and second blocking members.

10. A device according to any one of claims 1 to 9.

11. 11. The device of claim 10, wherein the stent includes a first inferior vena cava (IVC) portion, a second superior vena cava (SVC) portion, and a third central portion disposed between the IVC portion and the SVC portion.

12. 12. The device of any one of claims 1 to 11, wherein each blocking member includes a shape memory reinforcing wire therein or on a surface thereof.

13. 13. The device of claim 12, wherein the stiffening wire is disposed at or near at least a portion of the periphery of the blocking member.

14. 14. The device of claim 13, wherein the stiffening wire is disposed around substantially the entire periphery of the blocking member or near substantially the entire periphery of the blocking member.

15. 15. The device of claim 1, wherein a single side of the blocking member is attached to the tubular member.

16. 16. The device of claim 15, wherein each blocking member is attached by sutures.

17. A device described in any one of claims 1 to 16, further comprising a skirt extending radially around the tubular member at a second axial location of the tubular member.

18. 18. The device of claim 17, wherein the skirt is positioned over and attached to a portion of the tubular member and configured to at least one of prevent backflow from the right atrium (RA) into the inferior vena cava (IVC) to provide redundant graft coverage of the IVC member and prevent occlusion of one or more hepatic veins.

19. 19. The device of claim 17 or 18, wherein the skirt comprises at least one of a fabric and a reinforcement material.

20. 19. The device of claim 17 or 18, wherein the skirt comprises fabric and reinforcement.

21. 21. The device of claim 20, wherein the reinforcement comprises a shape memory wire.

22. 22. The device of claim 21, wherein the wire is disposed along at least a portion of the periphery of the skirt.

23. 22. The device of claim 21, wherein the wire is disposed along a majority of the periphery of the skirt.

24. 24. The device of any one of claims 5 to 23, wherein the covering is attached to the tubular member and / or stent by a plurality of sutures.

25. 25. The device of any one of claims 1 to 24, wherein the tubular member includes a longitudinal axis, and at least one of the valves, or the entire device, is configured to cause substantially all blood exiting therefrom to flow in a direction non-perpendicular to at least the longitudinal axis and the vena cava.

26. A device for treating tricuspid regurgitation, A tubular member configured for implantation within a patient's vena cava, the tubular member including a stent and defined by a sidewall; the stent comprises a plurality of open cells and is expandable and / or self-expanding; a tubular member, each blocking member including a flap or cover pivotally attached to or adjacent a portion of a respective opening and positioned to block the opening during ventricular systole and unblock the opening during ventricular diastole, such that the opening is unblocked in a direction opposite to the attachment of the flap or cover; at least three valves circumferentially disposed along the sidewall, each valve comprising: an opening formed in the sidewall; and a blocking member positioned to block and unblock each opening of the plurality of openings; Including, Each blocking member includes a reinforcing wire disposed therein; a first valve and a second valve of the at least three valves are disposed along a first periphery at a first location between the ends of the tubular member, and a third valve of the three valves is disposed on a second periphery spaced closer to one of the ends of the tubular member than the ends of the two valves disposed on the first periphery; each of the first and second valves is hingedly connected to the tubular member on an opposite side thereof such that each blocking member opens away from the other blocking member; The stent includes a plurality of cells, and each of the plurality of valves corresponds to a specific cell. At least three valves; a covering attached to the tubular member by a plurality of sutures and configured to cover at least a portion of at least one of the sidewall and the stent; a skirt extending radially around the tubular member at a second axial location of the tubular member and including a reinforcing wire therein, the skirt being disposed over and attached to a portion of the tubular member and configured to at least one of prevent backflow from the right atrium (RA) into the inferior vena cava (IVC) and prevent occlusion of one or more hepatic veins to provide redundant graft coverage of the IVC member; and Equipped with each of the openings and each of the cells accommodating each opening are diamond-shaped; A device for treating tricuspid regurgitation.

27. 27. The device of claim 26, wherein the coating is configured to form a respective blocking member.

28. 28. The device of claim 26 or 27, wherein the tubular member and the blocking member of the valve form a closed cylindrical outer shape when the blocking member is blocking the opening.

29. 27. The device of claim 26, wherein the stent includes a first inferior vena cava (IVC) portion, a second superior vena cava (SVC) portion, and a third central portion disposed between the IVC portion and the SVC portion.

30. 30. The device of any one of claims 26 to 29, wherein the reinforcing wire comprises a shape memory reinforcing wire.

31. 31. The device of claim 30, wherein the stiffening wire is disposed at or near at least a portion of a periphery of the blocking member.

32. 32. The device of claim 31, wherein the stiffening wire is disposed around substantially the entire periphery of the blocking member or near substantially the entire periphery of the blocking member.

33. 33. The device of any one of claims 26 to 32, wherein a single side of each blocking member is attached to the tubular member.

34. 34. The device of claim 33, wherein the blocking member is attached by sutures.

35. 35. The device of claim 34, wherein the reinforcement comprises a shape memory wire.

36. 36. The device of claim 35, wherein the wire is disposed along at least a portion of the periphery of the blocking member.

37. 36. The device of claim 35, wherein the wire is disposed along a majority of the periphery of the blocking member.

38. 38. The device of any one of claims 26 to 37, wherein the covering is attached to the tubular member and / or the stent by a plurality of sutures.

39. 39. The device of any one of claims 26 to 38, wherein the tubular member includes a longitudinal axis, and at least one of the valves, or the entire device, is configured to cause substantially all blood exiting therefrom to flow in a direction non-perpendicular to at least the longitudinal axis and the vena cava.

40. A device for treating tricuspid regurgitation, a tubular member configured for implantation within a patient's vena cava, the tubular member being defined by a sidewall; at least three valves circumferentially disposed along the sidewall, each valve comprising: a plurality of openings formed in the sidewall; and a plurality of blocking members including flaps or covers pivotally attached to or adjacent a portion of a respective opening and arranged to block the opening during ventricular systole and unblock the opening during ventricular diastole, such that the opening is unblocked in a direction opposite to the attachment of the flap or cover; Including, at least three valves, wherein a first valve and a second valve of the at least three valves are disposed along a first periphery at a first location between the ends of the tubular member, and a third valve of the three valves is disposed along a second periphery spaced closer to one of the ends of the tubular member than the ends of the two valves disposed along the first periphery; Equipped with each of the openings and each of the cells accommodating each opening are diamond-shaped; A device for treating tricuspid regurgitation.

41. The device of claim 40, wherein the at least three valves include only three valves.

42. 42. The device of claim 41, wherein the tubular member and the blocking member of the valve form a closed cylindrical outer shape when each blocking member blocks a respective opening.

43. 43. The device of any one of claims 40 to 42, further comprising a covering configured to cover at least a portion of the tubular member.

44. 44. The device of claim 43, wherein the covering does not cover the opening.

45. 45. The device of claim 43 or 44, wherein the coating is configured to form a respective blocking member.

46. 46. ​​The device of any one of claims 40 to 45, wherein each of the first and second valves is hingedly connected to the tubular member on an opposite side such that each blocking member opens away from the other blocking member.

47. 47. The device of claim 46, wherein the third valve of the plurality of valves is hinged such that the blocking member opens away from the first and second blocking members.

48. 48. The device of any one of claims 40 to 47, wherein the tubular member comprises an expandable stent having a plurality of cells, and each of the plurality of valves corresponds to a particular cell of the stent.

49. 49. The device of claim 48, wherein the stent includes a first inferior vena cava (IVC) portion, a second superior vena cava (SVC) portion, and a third central portion disposed between the IVC portion and the SVC portion.

50. 50. The device of any one of claims 40 to 49, wherein each blocking member includes a shape memory reinforcing wire therein or on a surface thereof.

51. 51. The device of claim 50, wherein the stiffening wire is positioned at or near at least a portion of the periphery of the blocking member.

52. 51. The device of claim 50, wherein the stiffening wire is disposed around substantially the entire periphery of the blocking member or near substantially the entire periphery of the blocking member.

53. 53. The device of any one of claims 40 to 52, wherein a single side of the blocking member is attached to the tubular member.

54. 54. The device of claim 53, wherein each blocking member is attached by sutures.

55. A device as described in any one of claims 40 to 54, further comprising a skirt extending radially around the tubular member at a second axial location of the tubular member.

56. 56. The device of claim 55, wherein the skirt is positioned over and attached to a portion of the tubular member and configured to at least one of prevent backflow from the right atrium (RA) into the inferior vena cava (IVC) to provide redundant graft coverage of the IVC member and prevent occlusion of one or more hepatic veins.

57. 57. The device of claim 55 or 56, wherein the skirt comprises at least one of a fabric and a reinforcement material.

58. 58. The device of any one of claims 55 to 57, wherein the skirt comprises fabric and reinforcement material.

59. 59. The device of claim 58, wherein the reinforcement comprises a shape memory wire.

60. 60. The device of claim 59, wherein the wire is disposed along at least a portion of the periphery of the skirt.

61. 60. The device of claim 59, wherein the wire is disposed along a majority of the periphery of the skirt.

62. 62. The device of any one of claims 43 to 61, wherein the covering is attached to the tubular member and / or stent by a plurality of sutures.

63. 63. The device of any one of claims 40 to 62, wherein the tubular member includes a longitudinal axis, and at least one of the valves, or the entire device, is configured to cause substantially all blood exiting therefrom to flow in a direction non-perpendicular to at least the longitudinal axis and the vena cava.

Citation Information

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