HEART VALVE PROSTHESIS
20190358033 ยท 2019-11-28
Assignee
Inventors
Cpc classification
A61F2220/0075
HUMAN NECESSITIES
A61F2/2445
HUMAN NECESSITIES
A61F2210/0014
HUMAN NECESSITIES
A61F2/91
HUMAN NECESSITIES
International classification
A61F2/24
HUMAN NECESSITIES
Abstract
A heart valve prosthesis frame, the frame comprising a hollow tube shape for allowing blood to flow through; an upstream portion designed to expand to have at least one dimension wider than a native heart valve annulus; a downstream portion attached to the upstream portion, the downstream portion also designed to expand to have at least a portion with at least one dimension wider than the native heart valve annulus; wherein the downstream portion is shaped to have one side of the downstream portion of the hollow tube frame extend less from a center of the hollow tube than an opposite side of the hollow tube.
Claims
1-40. (canceled)
41. A heart valve prosthesis comprising a frame, the frame comprising: a plurality of struts designed to extend from an upstream side of a natural heart valve to a downstream side of the natural heart valve; and a plurality of connectors attached between the plurality of struts; wherein: an upstream portion of the frame is designed to expand wider than a natural heart valve annulus; a downstream portion of the frame is designed to expand wider than a natural heart valve annulus; and the downstream portion is designed to bend outward of a center lumen of the frame and back in, to present a round outer surface pushing against the natural heart sides.
42. The heart valve prosthesis of claim 41 wherein the downstream portion is configured to expand to push against the natural heart sides thereby providing a seal against blood flowing around the frame.
43. The heart valve prosthesis of claim 41, wherein the downstream portion is designed to expand to a torus shape.
44. The heart valve prosthesis of claim 41, and further comprising the upstream portion shaped to have one side of the upstream portion of the frame extend less from the center of the frame than an opposite side of the frame.
45. The heart valve prosthesis of claim 41, and further comprising fabric for sealing the heart valve prosthesis along an outer perimeter of the heart valve prosthesis.
46. The heart valve prosthesis of claim 45 wherein the fabric is selected to enable tissue growth when the heart valve prosthesis is implanted in place.
47. The heart valve prosthesis of claim 41, wherein the downstream portion is shaped to have one side of the downstream portion of the frame extend less from a center of the frame than an opposite side of the frame.
48. The heart valve prosthesis of claim 44 wherein the downstream portion and the upstream portion have a same side of the frame extend less from the center of the frame than the opposite side of the frame.
49. The heart valve prosthesis of claim 41, and further comprising a center portion attached between the upstream portion and the downstream portion, designed to expand no wider than a native heart valve annulus.
50. The heart valve prosthesis of claim 41, wherein the downstream portion is configured to have protrusions away from a center axis of the frame which point upstream.
51. The heart valve prosthesis of claim 41, wherein the downstream portion is designed to expand to a shape which points upstream.
52. The heart valve prosthesis of claim 51, wherein the frame, before expanding, is in a shape of tube having a single layered wall as measured from a center of the tube, and after expanding, at least a portion of a tube has a double layer as measured from a center of the tube.
53. The heart valve prosthesis of claim 51, wherein the downstream portion is designed to expand to a shape which points upstream.
54. The heart valve prosthesis of claim 41, wherein the frame, in a crimped state before expansion, has a diameter in a range between 8 and 9 millimeters.
55. The heart valve prosthesis of claim 41, wherein the frame, before expansion, fits into a catheter of inside diameter of 24 French gauge.
56. The heart valve prosthesis of claim 41, wherein the frame, before expansion, fits into a catheter of inside diameter in a range of 24-28 French gauge.
57. The heart valve prosthesis of claim 41 wherein said frame comprises a hollow tube shape made of a shape memory material.
58. A method for producing a heart valve prosthesis frame, the method comprising: producing a frame comprising: a plurality of struts designed to extend from an upstream side of a natural heart valve to a downstream side of the natural heart valve; and a plurality of connectors attached between the plurality of struts; wherein: an upstream portion of the frame is designed to expand wider than a natural heart valve annulus; a downstream portion of the frame is designed to expand wider than a natural heart valve annulus; and the downstream portion is designed to bend outward of a center lumen of the frame and back in, to present a round outer surface pushing against the natural heart sides.
59. A method for shaping a heart valve prosthesis frame, the method comprising : receiving a heart valve prosthesis frame within a catheter, the heart valve prosthesis frame comprising: a hollow tube shape made of a shape memory material; an upstream portion designed to expand to have at least one dimension wider than a native heart valve annulus; a center portion attached to the upstream portion, designed to expand no wider than a native heart valve annulus; and a downstream portion attached to the center portion, the downstream portion also designed to expand to: have at least one dimension wider than the native heart valve annulus; and have protrusions away from a center axis of the frame which point upstream; and extruding the frame from the catheter.
60. The method of claim 59 wherein the extruding the frame comprises extruding the downstream portion of the frame from the catheter, thereby releasing the downstream portion of the frame to expand to a shape which points upstream.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING(S)
[0094] Some embodiments of the invention are herein described, by way of example only, with reference to the accompanying drawings and images. With specific reference now to the drawings in detail, it is stressed that the particulars shown are by way of example and for purposes of illustrative discussion of embodiments of the invention. In this regard, the description taken with the drawings makes apparent to those skilled in the art how embodiments of the invention may be practiced.
[0095] In the drawings:
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DESCRIPTION OF SPECIFIC EMBODIMENTS OF THE INVENTION
[0125] The present invention, in some embodiments thereof, relates to a cardiac valve prosthesis, and more particularly, but not exclusively, to a cardiac valve prosthesis for a mitral valve.
[0126] Introduction
[0127] The term frame is used throughout the present specification and claims to mean a support for a cardiac valve. In some embodiments, the cardiac valve is optionally a tissue or sheet of material or fabric designed to act as a cardiac valve, attached to the frame. In some embodiments the cardiac valve is optionally a plastic and/or synthetic and/or metal valve.
[0128] The term heart valve prosthesis is used throughout the present specification and claims to mean a for a cardiac valve prosthesis, which includes an artificial valve and one or more supporting and/or anchoring frame(s). Example embodiments of the present invention are described with reference to the mitral valve. However, examples provided with reference to the mitral valve are also applicable to the tricuspid valve, and their descriptions are meant to apply also to the tricuspid valve.
[0129] The tricuspid valve is exposed to different pressure loads, which are typically in a range of 15-50 mmHg. Mitral valve pressure loads are typically higher and can reach more than 210 mmHg.
[0130] In some embodiments a prosthetic heart valve and/or a prosthetic heart valve frame are optionally designed with a thinner frame and/or thinner frame wires and/or struts than a prosthetic heart valve and/or a prosthetic heart valve frame for use in a mitral valve.
[0131] An aspect of some embodiments of the invention involves a frame shaped so that the frame crimps, or pinches, natural cardiac valve leaflets, or the natural heart valve annulus.
[0132] In some embodiments, the crimping of the natural cardiac valve leaflets is used for sealing against blood flow around the frame.
[0133] In some embodiments, the crimping of the natural cardiac valve leaflets is used for anchoring the frame in place.
[0134] In some embodiments, the crimping of the natural cardiac valve leaflets is used for limiting motion of the natural cardiac valve leaflets. In some embodiments limiting the motion of the natural cardiac valve leaflets optionally serves to limit the natural cardiac valve leaflets from being pushed aside by the frame and possibly into a blood flow path. By way of a non-limiting example, the frame optionally crimps an anterior leaflet of the natural mitral valve of the left ventricle, preventing the anterior leaflet from being pushed into a blood flow path of the aortic valve leading blood out of the left ventricle.
[0135] An aspect of some embodiments of the invention involves a frame shaped so that the frame crimps, or pinches, a natural cardiac valve annulus, or leaflet, or heart wall.
[0136] In some embodiments, the crimping of the natural cardiac valve annulus is used for anchoring the frame in place.
[0137] In some embodiments, the crimping of the natural cardiac valve annulus is used for sealing against blood flow around the frame.
[0138] In some embodiments the frame is shaped so that the frame crimps, or pinches, a natural cardiac valve annulus, or leaflet, or heart wall, without presenting any sharp toward the natural cardiac valve annulus, or leaflet, or heart wall.
[0139] An aspect of some embodiments of the invention involves a frame designed to pass through a catheter as a lumen or tube as a frame having a lumen with a single layer, and when released from the catheter, to expand and have a portion of the frame expand so that at least some of the frame becomes a double layered lumen.
[0140] In some embodiments, the above-mentioned frame design is used so that a relatively thin catheter can serve to insert a double layered frame, which would not otherwise pass through the catheter.
[0141] In some embodiments, the above-mentioned frame design is used to insert a double layered frame, which would not otherwise pass through the catheter.
[0142] In some embodiments, the double layered frame provides more resistance to sideways compression forces produced in a course of a natural heartbeat, and potentially maintains its shape better against the sideways compression forces than a single walled frame.
[0143] An aspect of some embodiments of the invention involves a frame designed to pass through a catheter as a lumen or tube as a frame having a lumen with a single layer, and when released from the catheter, to expand and have a downstream portion of the frame expand, so that at least some of the downstream portion of the frame points away from a center lumen in the frame, toward internal sides of the heart walls or toward the heart valve annulus, and also toward an upstream direction.
[0144] In some embodiments, the downstream portion pointing toward internal sides of the heart walls and also upstream provides elastic resistance to upstream forces produced in a course of a natural heartbeat, and potentially maintains its location against the upstream forces without being forced upstream through the annulus.
[0145] An aspect of some embodiments of the invention involves a frame profile designed, when expanded, to curve both over the top of the natural mitral valve annulus and under the natural mitral valve annulus.
[0146] In some embodiments, the above-mentioned design is used for anchoring the frame, so that an expanded frame prevented from falling entirely below the mitral valve annulus, and prevented from passing entirely above the mitral valve annulus
[0147] In some embodiments, the curve under the natural mitral valve annulus is optionally less wide on an anterior leaflet side of a mitral valve, protruding less on a side of the blood flow path of the aortic valve leading blood out of the left ventricle.
[0148] An aspect of some embodiments of the invention involves a frame designed, when expanded, to produce a shape wider than the natural mitral valve annulus, at least in one direction, in the left atrium, and also wider than the natural mitral valve annulus, at least in one direction, in the left ventricle.
[0149] In some embodiments, the above-mentioned frame design is used so that an expanded frame is prevented from falling entirely below the mitral valve annulus, and prevented from passing entirely above the mitral valve annulus.
[0150] For purposes of better understanding some embodiments of the present invention, reference is first made to
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[0155] Before explaining at least one embodiment of the invention in detail, it is to be understood that the invention is not necessarily limited in its application to the details set forth in the following description or exemplified by the Examples. The invention is capable of other embodiments or of being practiced or carried out in various ways.
[0156] Reference is now made to
[0157]
[0158]
[0159]
[0160] The frame 205 is made of an expandable stent 209.
[0161] Attention is directed to a profile 210 of an outside shape of the frame 205.
[0162] In some embodiments the profile 210 is optionally constructed of a single piece of material, optionally metal, optionally Nitinol. In some embodiments the profile 210 is optionally constructed of a single piece of material, optionally metal, optionally cobalt chrome. In some embodiments the profile 210 is optionally constructed of a super elastic material.
[0163] In some embodiments the construction of the frame 205 of a single piece of material is enabled by a gradual bending of the profile 210 of the frame 205, without a sharp bend.
[0164] In some embodiments the construction of the frame 205 includes a bottom portion 211 of the frame 205 bending outward of a center lumen of the frame 205 and back in, presenting one or both of the following potential features: [0165] the bottom portion 211 reaching close to an upper portion 212 and potentially close enough to be able to exert a pinching action on the natural annulus. [0166] the bottom portion 211 bending back in toward the center lumen of the frame 205 so that a tip or end of the bottom portion 211 of the frame 205 is not directed toward the natural annulus and so will not present a potential for pricking or wounding the natural annulus and/or the natural valve leaflet.
[0167] In some embodiments the bottom portion 211 of the frame 205 acts as a spring, cushioning hydraulic pressure from the left ventricle toward the annulus, by elastic bending, absorbing the pressure and/or spreading the pressure on the bottom of the annulus.
[0168] In some embodiments the bottom portion 211 of the frame 205 includes wires bending out from the center lumen of the frame 205 and back in toward the center lumen only at locations corresponding to commissures of the natural heart valve leaflets. Such a bottom portion 211 potentially does not push on or catch the natural heart valve leaflets, and does provide anchoring against walls of the heart without presenting a potential for pricking or wounding the natural annulus and/or the natural valve leaflet.
[0169] In some embodiments the frame 205 includes outward facing teeth (not shown), to prevent the frame 205 from slipping along heart walls, the annulus, or the leaflets.
[0170] It is noted that the various embodiments described herein and/or shown in the drawings may all optionally include outward facing teeth to prevent the various frame embodiments from slipping along heart walls, the annulus, or the leaflets.
[0171] Reference is now made to
[0172]
[0173] A first drawing 300a shows a first symmetric profile of a first shape of the frame, including a stent mesh.
[0174] A second drawing 300b and a third drawing 300c show a second symmetric profile of the frame, in two drawings, the second drawing 300b including a stent mesh and the third drawing 300c without the stent mesh. The second drawing 300b and the third drawing 300c show a different shape of the frame than other drawings of
[0175] A fourth drawing 300d and a fifth drawing 300e show a third symmetric profile of the frame, in two drawings, the fourth drawing 300d including a stent mesh and the fifth drawing 300e without the stent mesh. The fourth drawing 300d and the fifth drawing 300e show a different shape of the frame than other drawings of
[0176] A sixth drawing 300f and a seventh drawing 300g show a fourth symmetric profile of the frame, in two drawings, the sixth drawing 300d including a stent mesh and the seventh drawing 300e without the stent mesh. The sixth drawing 300d and the seventh drawing 300e show a different shape of the frame than other drawings of
[0177] An eighth drawing 300h shows a fifth asymmetric profile of a fifth shape of the frame, including a stent mesh. The fifth asymmetric shape show a thinner profile of on one side 311 of the frame than on another side 312 of the frame. In some embodiments the thinner side 311 is intended for use on a left ventricular outflow tract (LVOT), so as to potentially push a natural mitral valve leaf less toward the LVOT.
[0178] The various shaped depicted in
[0179] Reference is now made to
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[0184] The direction of view of the cross-section shown in
[0185] The direction of view of the cross-section shown in
[0186] Reference is now made to
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[0190] In some embodiments the outside shape of the frame 505 is similar to the outside shape shown in
[0191] In some embodiments an inside lumen of the frame 505 is round, as shown in
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[0193] In some embodiments the number of protruding arcs 504 is a multiple of three.
[0194] In some embodiments the number of protruding arcs 504 may be three, six, nine, or twelve.
[0195] Reference is now made to
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[0201] In some embodiments, the bottom portion 604 of the frame 605 has a shape of a torus. The torus shape potentially provides one or more benefits such as:
[0202] a top 603 of the arc is presented toward the frame 605 and not toward walls of the heart, and so does not provide a potential for wounding the walls of the heart;
[0203] a cross section of the torus shape potentially spreads pressure back upstream against a valve placed in the frame across a number of arcs, each arc taking a part of the pressure, and each arc presenting a round, not sharp, shape against walls of the heart;
[0204] a cross section of the torus shape potentially expands sideways under pressure back upstream, potentially improving a seal between the frame and the heart walls and/or between the frame and a valve placed in the frame; and
[0205] the torus shape provides elastic pressure against side walls, potentially assisting a seal of the frame against walls of the heart, especially when at least some of the frame is covered by a flexible sheet which assists sealing.
[0206]
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[0208] In some embodiments, the center lumen 606 of the frame 605 is shaped as a circle.
[0209] In some embodiments, the frame 605 includes a valve constructed of one or more flexible sheets attached or sewn directly to the frame 605. In some embodiments, the bottom portion 604, which includes two layers of frame between a center of the lumen of the frame 605 and an outside circumference of the frame 605. The two layers provide more resistance against sideways pressure than a single layer would.
[0210] In some embodiments, the bottom portion 604, also named the apple portion, has a cross section profile shaped as a major portion of a circle. Such a circular profile potentially provides elastic resistance to back pressure against a closed valve, such as will occur every time the left ventricle contracts and an artificial mitral valve is closed.
[0211] Reference is now made to
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[0217] The LVOT side juts out less from a center of the lumen 706 of the frame 705. By jutting less, the LVOT side potentially pushes less on a natural mitral valve anterior leaflet, refraining from pushing the natural mitral valve anterior leaflet into the LVOT, potentially reducing or refraining from interfering with LVOT blood flow, a condition called LVOT obstruction.
[0218]
[0219] In some embodiments, the area of the center lumen 706 is in a range corresponding to a diameter D1 in a range of 25 millimeters to 35 millimeters, which area is (D1/2).sup.2, in a range of approximately 490 square millimeters to 960 square millimeters.
[0220] In some embodiments, the area of the center lumen 706 is smaller than a natural annulus of a healthy human patient.
[0221] In some embodiments, the area of the center lumen 706 is larger than an annulus of a human patient suffering from a shrinking of the annulus.
[0222] In some embodiments, the area of the frame 705, including the center lumen 706, is in a range corresponding to a diameter D2 in a range of 45 millimeters to 55 millimeters, which area is (D2/2).sup.2, in a range of approximately 1590 square millimeters to 2375 square millimeters.
[0223] The area of the lumen 706 represents an area which is mostly dedicated to passage of blood. The area of the lumen 706 also represents an area upon which blood will exert pressure when the valve prosthesis is closed. The area of the frame 705 represents an area which will press against the natural heart and anchor the valve prosthesis from shifting away from its location in the natural valve annulus. A favorable ratio of the area of the frame 705 to the area of the lumen 706, such as in a range of 0.3 to 0.4 potentially spreads out the pressure of the frame against the natural heart, and potentially causes less localized pressure, which might wound the natural heart.
[0224] Reference is now made to
[0225]
[0226] A first drawing 800a shows the symmetric profile of the frame without showing a stent mesh. A second drawing 800b shows the symmetric profile of a shape of the frame, including a side view 803 of the frame.
[0227] A top portion 802 of the frame juts out from a center of a lumen of the frame so as to prevent the frame from falling through an annulus of the natural heart valve.
[0228] A bottom portion 804 of the frame juts out from a center of a lumen of the frame so as to prevent the frame from backing upstream through an annulus of the natural heart valve.
[0229] Reference is now made to
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[0234] Reference is now made to
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[0241] Reference is now made to
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[0243] Reference is now made to
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[0245] In some embodiments the wire frame(s) 1204 includes wire frames arcs 1203, each one of the wire frame arcs 1203 having a top 1205 of the arc 1203.
[0246] Reference is now made to
[0247]
[0248] In some embodiments the external frame 1210 includes an upper portion 1212, also termed an onion portion, and a lower portion 1214, also termed an apple portion.
[0249] Reference is now made to
[0250] In some embodiments the internal frame 1201 is attached to the external frame 1210 at internal frame supports 1202 also shown in
[0251] Reference is now made to
[0252]
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[0255] In some embodiments, attaching the internal frame and the external frame may be done by any one of suturing, crimping, soldering and/or welding.
[0256] In some embodiments, the internal frame supports 1308 include holes, as shown in
[0257] In some embodiments, the internal frame is attached to the external frame by crimping the internal frame support 1308 to the external frame using a crimp 1312, as shown in
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[0260] Reference is now made to
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[0265] Reference is now made to
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[0269] In some embodiments the leaflets shown in
[0270] In some embodiments the frame of the heart valve prosthesis includes wire arcs, in the top portion 1502 of the frame and/or in the bottom portion 1504 of the frame. In some embodiments a number of wire arcs in the top portion 1502 and/or in the bottom portion 1504 of the frame is a multiple of three.
[0271] In some embodiments a number of wire arcs in the top portion 1502 and/or in the bottom portion 1504 of the frame is nine, as shown in
[0272] In some embodiments the heart valve prosthesis optionally includes three leaflets, as shown in
[0273] In some embodiments the heart valve prosthesis optionally includes a number of leaflets which is a multiple of three.
[0274] Reference is now made to
[0275]
[0276] The frame 1600 is optionally shaped as a single walled tube shape. A single walled tube may be compressed and inserted into a narrower gauge catheter than, for example, a double walled tube.
[0277] In some embodiments, the frame 1600 is optionally designed to fit into a channel in a catheter of an outside diameter of 8 millimeters, also termed French gauge 24. Enabling a frame 1600 to fit within a catheter potentially enables implanting heart valve prostheses via catheter instead of via open-heart surgery.
[0278] In some embodiments, the frame 1600 is optionally designed to fit into a channel in a catheter of an outside diameter of French gauge 26, 28 or 30, or above.
[0279] The frame 1600 is optionally constructed from shape-memory material, which is optionally inserted into a patient's body in one shape, and the frame 1600 optionally reshapes into a second shape when released within the body. In some embodiments the frame 1600 is optionally constructed of Nitinol.
[0280] The frame 1600 is optionally constructed from a biocompatible material.
[0281] The frame 1600 is optionally constructed from Nitinol or cobalt chrome.
[0282]
[0283] The frame 1600 optionally expands, reshaping to a shape as shown in
[0284]
[0285]
[0286] In some embodiments the shape of the frame 1600 is a shape used for anchoring the frame 1600 in a location of the natural heart valve, optionally the lower portion 1604 anchored to a sub-annulus region of the natural heart valve.
[0287] In some embodiments the eversion of the lower portion 1604 produces a shape as depicted in
[0288] In some embodiments the upstream pointing lower portion 1604 potentially provides spring-like resistance to upstream pressure.
[0289] In some embodiments the upstream pointing lower portion 1604 potentially traps natural heart valve leaflets, potentially preventing sideways movement of the natural heart valve leaflets, which might interfere with blood flow, for example in the LVOT.
[0290] In various embodiments, the frame shapes and/or profiles shown in
[0291] Reference is now made to
[0292] The example embodiment frame 1700 of
[0293]
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[0296] Reference is now made to
[0297] The example embodiment frame 1800 of
[0298] The example embodiment frame 1800 of
[0299]
[0300]
[0301] The example embodiment frame 1800 of
[0302] The example embodiment frame 1800 of
[0306] The top view of
[0307] The views of
[0308] In some embodiments a distance between the rows of the wire arcs 1805 is designed so as to leave enough distance between the rows of the wire arcs 1805 to allow a natural leaflet to pass between the rows of the wire arcs 1805.
[0309] In some embodiments a distance between the rows of the wire arcs 1805 is in a range of 2 mm to 8 mm.
[0310] In some embodiments the rows of the wire arcs 1805 are arranged as rows of zigzag shaped wire arcs, rather than, by way of a non-limiting example, a typical stent with rhomboid shaped openings.
[0311] In some embodiments, the wire arcs 1805 are connected to the supports 1806 and not directly to each other, leaving a space through which a leaflet may pass and be clamped or pinched.
[0312] In some embodiments a tip of the wire arc 1805 has a bend 1807, to continue the zigzag shape of the wire arc 1805. In some embodiments the bend 1807 is round, not sharp, thereby potentially preventing damage to heart walls.
[0313] In some embodiments a tip of the wire arc 1805 includes outward facing teeth (not shown), to prevent the frame 1800 from slipping along heart walls, the annulus, or the leaflets.
[0314] Reference is now made to
[0315] The images of
[0316]
[0317] The example embodiment frame 1900 of
[0318] a top portion 1903;
[0319] wire arcs 1904 which can optionally trap or grip folds of a natural heart valve leaflet;
[0320] a sheet of material 1905, optionally fabric, for sealing an outside of the heart valve prosthesis 1900 against the natural heart;
[0321] supports 1906 attached to the wire arcs 1904; and
[0322] artificial leaflets 1907 forming an artificial valve.
[0323] Reference is now made to
[0324]
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[0328] In some embodiments a fold of the natural heart valve leaflets 2005 and/or the natural heart valve annulus 2006 may optionally be caught between the top portion 2001 of the frame 2000 and the wire arcs 2002, as shown in
[0329] In some embodiments a fold of the natural heart valve leaflets 2005 or the natural heart valve annulus 2006 may optionally be caught between different rows of the wire arcs 2002.
[0330] In some embodiments the fold of the natural heart valve leaflets 2005 potentially assists in sealing space around the frame 2000, potentially preventing back flow of blood around the frame 2000.
[0331]
[0332] In some embodiments the wire arcs 2002 optionally grab natural heart valve leaflets at least on a side of the LVOT, potentially providing a benefit of keeping the natural heart valve leaflet away from a path of the LVOT.
[0333] In some embodiments the wire arcs 2002 optionally grab chordae (not shown in
[0334] In some embodiments the rows of the wire arcs 2002 are arranged as rows of zigzag shaped wire arcs, rather than, by way of a non-limiting example, a typical stent with rhomboid shaped openings.
[0335] In some embodiments, the wire arcs 2002 are connected to the supports 2003 and not directly to each other, leaving a space through which a leaflet may pass and be clamped or pinched.
[0336] In some embodiments a tip of the wire arc 2002 has a bend, to continue the zigzag shape of the wire arc 2002. In some embodiments the bend is round, not sharp, thereby potentially preventing damage to heart walls or to leaflets pinched by the wire arcs 2002.
[0337] In some embodiments the wire arc 2002 pushes against a leaflet and produces a step shape against which the frame 2000 optionally anchors.
[0338] In some embodiments the wire arc 2002 does not pinch the leaflet 2005 and still pushes against the leaflet 2005 and produces a step shape against which the frame 2000 optionally anchors.
[0339] Reference is now made to
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[0343] Reference is now made to
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[0346] Reference is now made to
[0347] The method of
[0348] supports designed to extend from an upstream side of a natural heart valve to a downstream side of the natural heart valve (2204); and
[0349] wires attached to the plurality of supports (2206),
[0350] wherein
[0351] at least two of the wires are arranged as arcs connecting the supports, the arcs having two ends, each end attached to one of the supports, and a peak pointing from a center of the frame circumferentially outward and toward an upstream side of the heart valve prosthesis frame.
[0352] Reference is now made to
[0353] The method of
[0363] In some embodiments, further comprising clamping the natural heart valve leaflet between at least one of the wires and an upper portion of the frame.
[0364] In some embodiments, further comprising clamping the natural heart valve leaflet between at least two of the wires.
[0365] In some embodiments, further comprising trapping the annulus of the natural heart valve between at least one of the wires and an upper portion of the frame.
[0366] Reference is now made to
[0367] The method of
[0368] producing a frame (2302) including: [0369] a hollow tube shape for allowing blood to flow through (2304); [0370] an upstream portion of the hollow tube designed to expand to have at least one dimension wider than a native heart valve annulus (2306); [0371] a downstream portion of the hollow tube attached to the upstream portion, the downstream portion also designed to expand to have at least a portion with at least one dimension wider than the native heart valve annulus (2308);
[0372] wherein
[0373] the downstream portion is shaped to have one side of the downstream portion of the hollow tube extend less from a center of the hollow tube than an opposite side of the hollow tube.
[0374] Reference is now made to
[0375] The method of
[0376] producing a frame (2402) including: [0377] a hollow tube shape made of a shape memory material (2404); [0378] an upstream portion designed to expand to have at least one dimension wider than a native heart valve annulus (2406); [0379] a center portion attached to the upstream portion, designed to expand no wider than a native heart valve annulus (2408); and [0380] a downstream portion attached to the center portion (2410), the downstream portion also designed to expand to: [0381] have at least one dimension wider than the native heart valve annulus; and [0382] have protrusions away from a center axis of the frame which point upstream.
[0383] Reference is now made to
[0384] The method of
[0385] receiving a heart valve prosthesis frame within a catheter, the heart valve prosthesis frame including (2502): [0386] a hollow tube shape made of a shape memory material (2504); [0387] an upstream portion designed to expand to have at least one dimension wider than a native heart valve annulus (2506); [0388] a center portion attached to the upstream portion, designed to expand no wider than a native heart valve annulus (2508); and [0389] a downstream portion attached to the center portion (2510), the downstream portion also designed to expand to:
[0390] have at least one dimension wider than the native heart valve annulus; and
[0391] have protrusions away from a center axis of the frame which point upstream; and
[0392] extruding the frame from the catheter (2512).
[0393] It is expected that during the life of a patent maturing from this application many relevant shape memory materials will be developed and the scope of the term shape memory material is intended to include all such new technologies a priori.
[0394] The terms comprising, including, having and their conjugates mean including but not limited to.
[0395] The term consisting of is intended to mean including and limited to.
[0396] The term consisting essentially of means that the composition, method or structure may include additional ingredients, steps and/or parts, but only if the additional ingredients, steps and/or parts do not materially alter the basic and novel characteristics of the claimed composition, method or structure.
[0397] As used herein, the singular form a, an and the include plural references unless the context clearly dictates otherwise. For example, the term a unit or at least one unit may include a plurality of units, including combinations thereof.
[0398] The words example and exemplary are used herein to mean serving as an example, instance or illustration. Any embodiment described as an example or exemplary is not necessarily to be construed as preferred or advantageous over other embodiments and/or to exclude the incorporation of features from other embodiments.
[0399] The word optionally is used herein to mean is provided in some embodiments and not provided in other embodiments. Any particular embodiment of the invention may include a plurality of optional features unless such features conflict.
[0400] Throughout this application, various embodiments of this invention may be presented in a range format. It should be understood that the description in range format is merely for convenience and brevity and should not be construed as an inflexible limitation on the scope of the invention. Accordingly, the description of a range should be considered to have specifically disclosed all the possible sub-ranges as well as individual numerical values within that range. For example, description of a range such as from 1 to 6 should be considered to have specifically disclosed sub-ranges such as from 1 to 3, from 1 to 4, from 1 to 5, from 2 to 4, from 2 to 6, from 3 to 6 etc., as well as individual numbers within that range, for example, 1, 2, 3, 4, 5, and 6. This applies regardless of the breadth of the range.
[0401] Whenever a numerical range is indicated herein, it is meant to include any cited numeral (fractional or integral) within the indicated range. The phrases ranging/ranges between a first indicate number and a second indicate number and ranging/ranges from a first indicate number to a second indicate number are used herein interchangeably and are meant to include the first and second indicated numbers and all the fractional and integral numerals therebetween.
[0402] It is appreciated that certain features of the invention, which are, for clarity, described in the context of separate embodiments, may also be provided in combination in a single embodiment. Conversely, various features of the invention, which are, for brevity, described in the context of a single embodiment, may also be provided separately or in any suitable sub-combination or as suitable in any other described embodiment of the invention. Certain features described in the context of various embodiments are not to be considered essential features of those embodiments, unless the embodiment is inoperative without those elements.
[0403] Although the invention has been described in conjunction with specific embodiments thereof, it is evident that many alternatives, modifications and variations will be apparent to those skilled in the art. Accordingly, it is intended to embrace all such alternatives, modifications and variations that fall within the spirit and broad scope of the appended claims.
[0404] All publications, patents and patent applications mentioned in this specification are herein incorporated in their entirety by reference into the specification, to the same extent as if each individual publication, patent or patent application was specifically and individually indicated to be incorporated herein by reference. In addition, citation or identification of any reference in this application shall not be construed as an admission that such reference is available as prior art to the present invention. To the extent that section headings are used, they should not be construed as necessarily limiting.