SUPPORT RING FOR VASCULAR AORTIC REPAIR AND METHODS OF USE - Patent application
Patent Information
- Application Number
- JP2023576404
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-06-14
- Filing Date
- 2022-06-13
- Publication Date
- 2025-06-17
AI Technical Summary
Existing endovascular repair devices face challenges in maximizing blood flow to vital organs and minimizing endoleaks during fenestrated endovascular aortic repair procedures, particularly for aortic aneurysms with short-neck abdominal aortic aneurysms and pararenal segments.
A stent graft with a tubular graft component, a proximal stent, a ring extending around the fenestration, and a liner that seals the ring from exposure, providing additional protection against abrasion and enhancing the seal between the ring and cross-linked stent.
The solution reduces fabric abrasion and minimizes the risk of endoleaks by providing an additional layer of protection, ensuring a secure seal and maintaining the integrity of the vascular prosthesis.
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Abstract
Description
[Technical Field]
[0001] REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 63 / 210,258, filed June 14, 2021, the entire contents of which are incorporated herein by reference. [Background technology]
[0002] Background of the Invention Fenestrated endovascular aortic repair (FEVAR) is a minimally invasive procedure for treating aortic aneurysms spanning the blood vessels branching from the aorta, which supply blood to vital organs such as the kidneys, intestines, and liver. The endovascular grafts used in FEVAR define fenestrations for the insertion of branch prostheses, which serve as pathways for blood flow to vital organs through arterial branches. Maximizing blood flow to vital organs and minimizing endoleaks after repair of aneurysms, such as juxtarenal aortic aneurysms and short-neck abdominal aortic aneurysms, with fenestrated vascular prostheses presents medical challenges that must be overcome or minimized if further surgical intervention is to be avoided.
[0003] Therefore, a need exists for new and improved endovascular repair devices and methods for treating aortic pathologies, particularly in the perivisceral segments of the aorta, such as pararenal and short-neck abdominal aortic aneurysms. Summary of the Invention
[0004] Summary of the Invention The present invention relates to vascular prostheses for use in the treatment and repair of aortic vascular defects, such as aortic aneurysms and vascular injuries associated with regions of the aorta having arterial branches that supply blood to vital organs and tissues, e.g., pararenal aortic aneurysms and short-neck abdominal aortic aneurysms, and methods of use.
[0005] In one aspect, the invention is a stent graft including a tubular graft component defining an inner surface, an outer surface, an open proximal end, an open distal end, and at least one fenestration. A proximal stent is disposed on the tubular graft component proximal to the at least one fenestration. A ring is disposed on the tubular graft component and extends along the tubular graft component and around the at least one fenestration. A liner extends between the inner and outer surfaces of the tubular graft component and through the at least one fenestration, whereby the ring is sealed from exposure by the liner on one surface of the tubular graft component and by the tubular graft component and the liner on the other surface of the tubular graft component.
[0006] In another aspect, the present invention is a method for treating an aortic aneurysm, comprising delivering a stent graft through an artery to an aneurysm in a patient, wherein the aneurysm spans a region of the artery including at least one arterial branch, the stent graft being radially contracted by a stent graft delivery device, the stent graft comprising: a tubular graft component defining an inner surface, an outer surface, an open proximal end, an open distal end, and at least one fenestration; a proximal stent on the tubular graft component proximal to the at least one fenestration; a ring on the tubular graft component extending around the at least one fenestration along the tubular graft component; and a liner extending through the at least one fenestration between the inner and outer surfaces, whereby the ring is sealed from exposure by the liner on one surface of the tubular graft component and by the tubular graft component and the liner on the other surface of the tubular graft component. The at least one fenestration is aligned with at least one arterial branch at the aneurysm site in the patient. At least one branch prosthesis is delivered through the proximal open end of the distal open end of the tubular graft component of the stent graft and through at least one fenestration to the arterial branch, and the branch prosthesis is releasably contracted radially by the branch prosthesis delivery device. The branch prosthesis is released from the branch prosthesis delivery device, causing expansion of the branch prosthesis causing contact with the tubular graft component, thereby forming a seal between the stent graft and the branch prosthesis and treating the aortic aneurysm.
[0007] The present invention has several advantages. For example, protection against abrasion between the ring at the fenestration and the bridging stent extending through the fenestration to the aortic branch vessel is significantly reduced by sealing the ring from exposure on one surface of the tubular graft component by the liner and on the other surface of the tubular graft component by the tubular graft component and the liner. Specifically, rather than the single layer of protection between the ring and the bridging stent provided by the liner extending through the fenestration, the tubular graft provides an additional layer of protection against abrasion between the ring and the bridging stent. In various embodiments, the ring can be used as a support for the fenestration or alternatively can be formed with a radiopaque marker that is both connected to and secured to the tubular graft component on the stent graft. In one aspect, the ring radiopaque markers are different from one another and are separately secured to the tubular graft component, such as by use of fabric that independently wraps the ring radiopaque markers, thereby providing additional protection against abrasion between the ring or ring component and a bridging stent extending through the fenestration defined by the tubular graft component. In such an aspect in which the ring is comprised of a separate radiopaque marker, an additional ring formed of a suitable material, such as nitinol, may be secured to the tubular graft component and extend around the periphery of the fenestration, thereby providing support for the fenestration while allowing the ring radiopaque marker to clearly mark the fenestration when the stent-graft and bridging stent-graft of the present invention are implanted at the surgical site in the patient. [Brief explanation of the drawings]
[0008] BRIEF DESCRIPTION OF THE DRAWINGS The foregoing will be apparent from the following more particular description of illustrative embodiments, as illustrated in the accompanying drawings, in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating the embodiments. [Figure 1] FIG. 1 is a side view of one embodiment of the stent graft of the present invention. [Figure 2] Figure 2 is a partial cross-sectional view of the embodiment of the invention shown in Figure 1, where a bridging stent extends through a fenestration defined by a tubular graft component of a stent-graft of the invention, and illustrates where an additional layer of protection against abrasion between the marker and the bridging stent is provided by the presence of both the liner and the wall of the tubular graft component. [Figure 3] Figure 3 is a perspective view of one embodiment of a liner used in the stent graft of the present invention, in which two discs, each having a fenestration, are aligned and sewn together with the fenestrations aligned. Figure 3A is an exploded view of the liner shown in Figure 3. [Figure 4] Figure 4 is a detail of one embodiment of a stent graft of the present invention including a ring of radiopaque markers around the fenestration of the stent graft of Figure 1, with the liner extending between the inner and outer surfaces of the tubular graft component of the stent graft shown in dotted outline. Figure 4A is a cross-sectional view of the detail shown in Figure 4 taken along line 4A-4A in Figure 4. [Figure 5] Figure 5 is a detail of one embodiment of a ring of radiopaque markers around the fenestrations of the stent graft shown in Figure 1, where the radiopaque markers are each encased in fabric shown in dotted outline away from the liner, the liner of the stent graft extending between the interior surface within the exterior surface of the tubular graft component also shown in dotted outline. Figure 5A is a cross-sectional view of the detail shown in Figure 5 taken along line 5A-5A in Figure 5. [Figure 6] Figure 6 is a detail of one embodiment of the invention shown in Figure 1, in which a continuous support ring extends around the circumference of a liner extending between the inner and outer surfaces of the tubular graft component of the stent graft. Figure 6A is a cross-sectional view of the detail shown in Figure 6 taken along line 6A-6A in Figure 6. [Figure 7]Figure 7 is a detail of one embodiment of the invention shown in Figure 1, where the ring is a continuous support ring that extends around the fenestration defined by the tubular graft component, the support ring being secured between one face of the tubular graft component and the liner of the stent graft. Figure 7A is a cross-sectional view of the detail shown in Figure 7 taken along line 7A-7A in Figure 7. [Figure 8] Figure 8 is a detail of one embodiment of the invention shown in Figure 1, where a radiopaque marker on one surface of the tubular graft component is between the support ring and the fenestrations of the tubular graft component. Figure 8A is a cross-sectional view of the detail shown in Figure 8 taken along line 8A-8A in Figure 8. [Figure 9] Figure 9 is a detail of one embodiment of the invention shown in Figure 1. The ring is a continuous support ring and the radiopaque marker is a continuous ring between the support ring and the fenestration of the tubular graft component. Figure 9A is a cross-sectional view of the detail shown in Figure 9 taken along line 9A-9A in Figure 9. [Figure 10] Figure 10 is a detail of one embodiment of the invention shown in Figure 1, where the ring is a support ring between the surface of the tubular graft component and the liner and further includes a plurality of radiopaque markers. Figure 10A is a cross-sectional view of the detail shown in Figure 10 taken along line 10A-10A in Figure 10. [Figure 11] Figure 11 is a side view of another embodiment of the stent graft of the present invention, including a stent proximal to the fenestrations of the tubular graft component, which is a bare stent. Figure 11A is a detail of the embodiment of the present invention shown in Figure 11, showing the proximal apices and proximal barbs of the bare stent of Figure 11. [Figure 12] FIG. 12 is a side view of an embodiment of the stent graft of the present invention, in which the stent distal to the fenestration of the tubular graft component is at the proximal end of an extender stent graft positioned within the legs of the bifurcated tubular graft component. [Figure 13] FIG. 13 is a side view of yet another embodiment of the stent graft of the present invention, in which the stent is just proximal and distal to a fenestration defined by a tubular component. [Figure 14]Figure 14 is a side view of yet another embodiment of a stent graft of the present invention, which includes stents just proximal and distal to the fenestration, as well as a bare stent at the proximal end of the tubular graft component and a stent at the proximal end of an elongated stent graft positioned within a leg of the bifurcated tubular component. [Figure 15] FIG. 15 is a side view of a stent graft of the present invention with a branched prosthesis implanted through each fenestration and associated fenestration ring of the stent graft of the present invention. [Figure 16] FIG. 16 is a side view of an embodiment of a support ring suitable for use as a component of one embodiment of the present invention, showing a first end of a wire and a second end of the wire secured together by a crimped connector, with at least one length L of wire between the first end of the wire and the second end of the wire crossing the space defined by the first end of the helical coil and the second end of the helical coil, which are opposite each other on opposite sides of the crimped connector. FIG. 16A is a detail of the support ring of FIG. 16 taken along line 16A-16A. FIG. 16B is a detail of the support ring of FIG. 16 showing the crimped connector at two points, thereby securing the first end of the wire and the second end of the wire together. FIG. 16C is a side view of a support wire that has been straightened to show the length L between the first and second ends of the wire crossing the space between the first and second ends of the helical coil of FIGS. 16 and 16A. [Figure 17] FIG. 17 is a side view of another embodiment of a branch sleeve having a support ring secured to the outer surface of the branch sleeve, which is secured to a branch stent graft by an interference fit with the branch sleeve, the branch sleeve being secured with a liner covering the sealing ring at the fenestration of the tubular graft and the branch sleeve. DETAILED DESCRIPTION OF THE INVENTION
[0009] Detailed Description of the Invention The features and other details of the invention, either as steps of the invention or as combinations of parts of the invention, will now be more particularly described and pointed out in the claims. It will be understood that the specific embodiments of the invention are shown by way of illustration and not as limitations of the invention. The principal features of the invention can be employed in various embodiments without departing from the scope of the invention. It will also be understood that the same numerals appearing in different drawings refer to the same items.
[0010] The present invention relates generally to vascular prostheses for use in the treatment and repair of vascular injuries, such as those associated with aortic aneurysms in the region of the aorta having arterial branches that supply blood to vital organs and tissues.
[0011] A description of exemplary embodiments follows.
[0012] When referring to a prosthesis, also referred to herein as a "stent graft," "stent graft prosthesis," or "vascular prosthesis," that is delivered or implanted into a patient, the word "proximal" means that a portion of the prosthesis or a component of the prosthesis is relatively close to the source of blood flow from the patient's heart. "Distal" means that a portion of the prosthesis or a component of the prosthesis is relatively far away from the source of blood flow from the patient's heart. "Cranial," as that term is used herein, means relatively closer in absolute distance to the patient's heart. "Audible," as that term is used herein, means relatively farther in absolute distance to the patient's heart. Thus, it is understood that the proximal end of a prosthesis can be cranial or caudal to the patient's heart relative to the distal body of the same prosthesis.
[0013] However, when referring to a delivery system or a component of a delivery system used to deliver or implant a prosthesis, the word "proximal" as used herein means closer to the clinician using the delivery system. When referring to a delivery system or a component of a delivery system, "distal" as the term is used herein means further away from the clinician using the delivery system.
[0014] For clarity, the word "nearest" means "near," as distinct from the meanings ascribed to "proximal" or "distal" above with respect to either the prosthesis or the delivery system.
[0015] One embodiment of the stent graft of the present invention is shown in Figure 1. As shown therein, stent graft 10 includes a tubular graft component 12 defining an interior surface 14, an exterior surface 16, an open proximal end 18, and an open distal end. The open distal end may be bifurcated, as shown in Figure 1, thereby defining a first open distal end 20 and a second open distal end 22. Tubular graft component 12 further defines at least one fenestration 24. A proximal stent 26 extends around the circumference of tubular graft component 12 proximal to the fenestrations 24. A distal stent 28 extends around the circumference of tubular graft component 12 distal to the at least one fenestration 24. In embodiments, the stent graft includes 1, 2, 3, 4, or 5 fenestrations and 1, 2, 3, 4, or 5 rings around each of the 1, 2, 3, 4, or 5 fenestrations.
[0016] The proximal stent 26 and the distal stent 28 include struts 30 connecting opposite ends and defining proximal and distal apices 32 and 34, as shown in FIG. 1 . The proximal stent 26 and the distal stent 28, in at least one embodiment, are radially self-expanding. Typically, the proximal stent 26 and the distal stent 28 are formed of a shape memory alloy, such as Nitinol. In other embodiments, the stent graft 10 includes additional stents distributed along the longitudinal length of the tubular graft component 12. Also, in certain embodiments, the fenestrations 24 may be nested between the struts 30 of the proximal stent 26 or the distal stent 28, or both.
[0017] The tubular graft component 12 is made of a suitable material, such as those known in the art. Examples of suitable materials for the tubular graft include polytetrafluoroethylene (PTFE), e.g., ePTFE, and polyethylene terephthalate (PET), e.g., braided polyester.
[0018] The rings 36 are on the tubular graft component 12 and extend along the tubular graft component 12 around the fenestrations 24. In the embodiment shown in Figure 1, the rings 36 extend along the tubular graft component 12 outside the circumference 38 defining the fenestrations 24, with some portion of the tubular graft component 12 extending from the rings 36 to the circumference 38 of the fenestrations 24 defined by the tubular graft component 12. As can be seen in Figure 2, which is a partial cross-sectional view of the tubular graft component 12 of the stent graft 10 shown in Figure 1, the diameter d of the fenestrations 24 defined by the tubular graft component 12 is smaller than the inner diameter d' of the rings 36.
[0019] Liner 40 extends between interior surface 14 and exterior surface 16 of tubular graft component 12 and through fenestrations 24, thereby sealing rings 36 from exposure on one surface of tubular graft component 12 by liner 40 and on the other surface 14 of tubular graft component 12 by tubular graft component 12 and liner 40. Rings 36 shown in Figure 2 cannot be seen in Figure 1 because they are sealed from exposure by liner 40.
[0020] As can be seen from FIG. 2 , where the bridge stent graft 42 extends through the fenestrations 24 of the stent graft component 12, contact between the bridge stent graft 42 (also referred to herein as a “branch stent graft” or “branch prosthesis”) and the rings 36 is prevented on one side 16 of the tubular graft component 12 by the liner 40 and on the other side 14 of the tubular graft component 12 by the material of the tubular graft component 12 and the liner 40. The additional layer of protection provided by the additional layer of tubular graft component 12 between the rings 36 and the bridge stent graft 42 reduces the likelihood of abrasion of the fabric between the rings 36 and the bridge stent graft 42 and resulting contact between the rings 36 and the bridge stent graft 42. The bridge stent graft 42 may be made of at least one of stainless steel and cobalt chromium. The rings 36 may be made of a metal or metal alloy, such as nitinol. Reduced abrasion of the fabric between the rings 36 and the bridge stent graft 42 reduces the loss of integrity of the fabric of the liner 40 over time, thereby reducing the likelihood of blood leaking through the seal formed between the rings 36 and the bridge stent graft 42.
[0021] FIG. 3 is a perspective view of one embodiment of the liner 40 shown in FIGS. 1 and 2, but without the presence of the tubular graft component 12, to clarify the construction of at least one embodiment of the liner 40. As shown in FIG. 3, the liner 40 includes a first layer 44 defining a first opening 46 and a second layer 48 defining a second opening 50. The first opening 46 and the second opening 50 are aligned and secured to one another at their respective peripheries 52, 54, such as by the use of sutures 56. FIG. 3A is an exploded view of the liner 40 of FIG. 3, showing the first layer 44 and the second layer 48 separately and the first opening 46 and the second opening 50 separately. Alternatively, the first layer 44 and the second layer 48 may be secured to one another at the openings 46, 50 by other suitable means known in the art, such as by the use of an adhesive. In alternative embodiments not shown, the liner 40 may be made of a single component that is knitted or molded to conform to the perimeter 38 of the fenestration 24, such as that shown in Figures 1 and 2, and secured at the interior surface 14 and exterior surface 16. The liner 40 need not be made of a knitted fabric, but instead, and in certain embodiments, may be a continuous material formed by molding a suitable polymer into the appropriate shape. Examples of suitable materials include, for example, polytetrafluoroethylene (PTFE), such as ePTFE, and polyethylene terephthalate (PET).
[0022] Figure 4 is a detail of one embodiment of the stent graft 10 of Figure 1, where the ring 36 is an annular arrangement of markers 58 distributed around the circumference 38 of the fenestration 24 of the tubular graft component 12. As illustrated in Figure 4, the edges 39, 41 of the liner 40 are shown with dotted lines to indicate the spatial relationship between the radiopaque markers 58 of the ring 36 and the fenestration 24.
[0023] Figure 4A is a side view of the detail shown in Figure 4 taken along line 4A-4A of Figure 4. As can be seen in Figure 4A, liner 40 extends through fenestration 24, thereby sealing radiopaque marker 58 from exposure on one surface 16 of tubular graft component 12 by liner 40 and on the other surface 14 of tubular graft component 12 by tubular graft component 12 and liner 40. Radiopaque marker 58 of ring 36 is secured to tubular graft component 12 by suitable means, such as those known in the art, including, for example, sutures, adhesives, etc. Liner 40 is secured around periphery 54 to inner surface 14 and outer surface 16 by suitable means.
[0024] FIG. 5 is a detail of another embodiment of the stent graft 10 shown in FIG. 1, in which the radiopaque markers 58 are each encased in fabric 60, and the fabric 60 encasing each radiopaque marker 58 is secured to the tubular graft component 12 by sutures or adhesive.
[0025] FIG. 5A is a cross-sectional view of the detail shown in FIG. 5 taken along line 5A-5A of FIG. 5, which also illustrates the encasement of radiopaque markers 58 by fabric 60, where fabric 60 encasing each radiopaque marker 58 is itself sealed from exposure by liner 40.
[0026] It is understood that the radiopaque marker may have alternative shapes, such as an elongated shape as shown in Figures 5 and 5A. Alternatively, the radiopaque marker may be circular, asymmetrical D-shaped, a sphere, or a continuous ring.
[0027] Figure 6 is a detail of another embodiment of the stent graft of the present invention in which a support ring 62 extends around the outside of the circumference 64 of the liner 40. The rings 36 of the present invention are a plurality of discrete radiopaque markers 58 such as those shown in Figures 4 and 4A.
[0028] FIG. 6A is a cross-sectional view of the embodiment shown in FIG. 6 taken along line 6A-6A and shows support ring 62 secured to tubular graft component 12 by sutures 66. FIG.
[0029] 7 is a detail of one embodiment of the invention shown in FIG. 1, where ring 36 is a continuous support ring that extends around fenestration 24 defined by tubular graft component 12, and support ring 36 is secured between one surface 16 of tubular graft component 12 of stent graft 10 and liner 40. Liner 40 has a perimeter 39.
[0030] 7A is a cross-sectional view of the detail shown in FIG. 7 taken along line 7A-7A of FIG. 7, showing ring 36 sealed within liner 40. FIG.
[0031] FIG. 8 is a detail of one embodiment of the invention shown in FIG. 1, in which a radiopaque marker 68 on one surface of the tubular graft component 12 is located between the support ring 36 and the fenestrations 24 of the tubular graft component 12.
[0032] FIG. 8A is a cross-sectional view of the detail shown in FIG. 8 taken along line 8A-8A of FIG. 8, showing that both the support ring 36 and the radiopaque marker 68 are sealed within the liner 40.
[0033] FIG. 9 is a detail of one embodiment of the invention shown in FIG. 1, in which ring 36 is a continuous support ring and radiopaque marker 70 is also a continuous ring and is located between support ring 36 and fenestrations 24 of tubular graft component 12.
[0034] 9A is a cross-sectional view of the detail shown in FIG. 9 taken along line 9A-9A of FIG. 9, showing both the support ring 36 and the radiopaque ring 70 sealed within the liner 40. FIG.
[0035] FIG. 10 is a detail of one embodiment of the invention shown in FIG. 1, where ring 36 is a support ring between fenestration 24 and radiopaque marker 72 extending around the periphery of ring 36.
[0036] FIG. 10A is a cross-sectional view of the detail shown in FIG. 10 showing both the support ring 36 and the radiopaque marker 72 located between one face 16 of the tubular graft component 12 and the liner 40.
[0037] FIG. 11 is a side view of another embodiment of a stent graft 73 of the present invention, including a bare stent 74 proximal to the fenestration 24 of the tubular graft component 12 .
[0038] FIG. 11A is a detail of the embodiment of the stent graft 73 of the present invention shown in FIG. 11 showing the proximal apex 76, with bridges 78 extending between struts 80 and proximal barbs 82 extending distally from bridges 78 of the bare stent 74.
[0039] 12 is a side view of an embodiment of a stent graft 84 of the present invention, in which a stent 86 distal to the fenestration 24 of a tubular graft component 90 is at the proximal end of an extension stent graft disposed in a leg 92 of the bifurcated tubular graft component. As can be seen, a prosthetic extension 94 (also referred to herein as an "extension stent graft") extends distally from the distal end 86 of each leg 92, and each prosthetic extension 94 includes a stent 96 at its proximal end 98.
[0040] 13 is a side view of yet another embodiment in which a stent graft 100 of the present invention includes struts 26, 28 just proximal and distal to a fenestration 24 defined by a tubular graft component 12. A stent 96 is at the proximal end 98 of an elongated stent graft 94 that is disposed within a leg 92 of the tubular graft component 12.
[0041] FIG. 14 is a side view of yet another embodiment of the present invention, in which a stent graft 110 includes stents 26, 28 immediately proximal and distal to the fenestration 24, as well as a bare stent 74 at the proximal end 18 of the tubular graft component 12, and a stent 96 at the proximal end 98 of an elongated stent graft 94 disposed within a leg 92 of the bifurcated tubular graft component 12.
[0042] The stent graft can be implanted at the surgical site spanning the aneurysm, particularly the perivisceral segment of the aorta, by any suitable method, such as those known in the art. After implantation, the bridging stent can be delivered through the fenestration, fenestration ring, and to a branch of the aorta, such as the renal, superior mesenteric, or celiac artery. Suitable delivery devices for implanting the stent graft are described, for example, in U.S. Patent Application Nos. 63 / 111,357, 63,153,701, and 63,210,381, the teachings of which are incorporated herein by reference in their entirety.
[0043] 15 , a stent graft 150 including fenestration rings 152, 154, 156, 158 is implanted at an aneurysm site 160. Branch prostheses 162, 164, 166, 168 are delivered through and extend from their respective fenestrations. Each of the distal ends 162′, 164′, 166′, 168′ is directed to a respective branch of the aorta 170 at the aneurysm 160 by a respective branch prosthesis delivery device (not shown) and is secured within the respective fenestration at the proximal end and the branch artery at the distal end by the fenestration rings 152, 154, 156, 158. The proximal end of each branch prosthesis 162, 164, 166, 168 is secured at the respective fenestration by the fenestration rings 152, 154, 156, 158. Each branch prosthesis 162, 164, 166, 168 is then released from its respective branch prosthesis delivery device. The vascular prosthesis delivery device and the branch prosthesis delivery device are then removed, either simultaneously or sequentially, thereby completing the implantation and treatment of the aneurysm. In embodiments, additional branch prostheses 172, 174 may be implanted at the distal end 176 of the stent graft 150. The bare stent 151 of the stent graft 150 may include barbs 153.
[0044] Although not shown, the distal end of the vascular repair device of the present invention may be bifurcated and an additional prosthesis may be implanted at the distal end of the bifurcated vascular prosthesis.
[0045] In one particular embodiment, the sealing ring 36 shown in FIG. 1 is the support ring 200 shown in FIG. 16, which includes a helical coil 202 having a helical coil first end 204 and a helical coil second end 206. As can be seen in FIG. 16A, which is a view of the support ring 200 of FIG. 16 taken along line 16A-16A, the helical coil 202 defines a lumen 208. Referring back to FIG. 16, the helical coil 202 extends in an arcuate shape, where the helical coil first end 204 and the helical coil second end 206 are in an opposed relationship relative to one another and define a length L between the helical coil first end 204 and the helical coil second end 206 that is outside the lumen 208. Wire 210 extends through lumen 208 and includes a wire first end 212 and a wire second end 214, as shown in Figure 16B. As also shown in Figure 16B, wire 210 traverses length L of the spacing between helical coil first end 204 and helical coil second end 206 along at least one length 216 of wire 210 between wire first end 212 and wire second end 214. Length 216 of wire 210 between wire first end 212 and wire second end 214 is length L of the spacing between helical coil first end 204 and helical coil second end 206, as shown in Figure 16C. There is a length 216 of wire 210 between wire first end 212 and wire second end 214, as much as there is wrapping of wire 210 between wire first end 212 and wire second end 214, not including the portion of wire 210 secured to one another at wire first end 212 and wire second end 214. Wire first end 212 and wire second end 214 are secured to one another by suitable means, such as by a connector 218 that mates the ends together, as shown in FIG. 16B, which is a detail of support ring 200 of FIG. 16. Connector 218 has two crimps 220 as shown in FIG. 16B, although other numbers of crimps 220, such as 1, 3, 4, or 5 crimps 220, may be used.Further description of the support ring 200 of FIG. 16 may be found in USSN 63 / 210,265, the relevant teachings of which are incorporated herein by reference in their entirety.
[0046] In one embodiment, the helical coil 202 of the support ring 200 is radiopaque. As shown in Figures 16, 16A, 16B, and 16C, the wire 210 includes two loops, with a portion of the wire 210 including a portion 216 that traverses the length L between the first end 204 of the helical coil and the second end 206 of the helical coil. Figure 16C shows the portion 216 of the wire 210 spanning the length L between the first end 204 of the helical coil and the second end 206 of the helical coil. The portion 216 of the wire 210 is between the first end 212 of the wire 210 and the second end 214 of the wire 210. In various embodiments, the wire 210 may cross an interval having a length L between the first end 204 of the helical coil and the second end 206 of the helical coil in 2, 3, 4, 5, 6, 7, 8, 9, or 10 portions 216 of the length L along the wire 210 between the first end 212 of the wire 210 and the second end 214 of the wire 210.
[0047] In one embodiment, the support ring 200 includes directing a wire 210 through a lumen 208 defined by the helical coil 202 that extends in an arc from a first end 204 of the helical coil through a second end 206 of the helical coil opposite the first end 204 of the helical coil, across a length L of the gap defined by the first end 204 of the helical coil and the second end 206 of the helical coil outside of the lumen 208 defined by the helical coil 202, wherein the wire Ear 210 is formed by a method including the steps of traversing a spacing length L along at least one length 216 of wire 210 between wire first end 212 and wire second end 214 between helical coil first end 204 and helical coil second end 206, and securing wire first end 212 to wire second end 214, thereby forming support ring 200, for example, as shown above and as described above with respect to Figures 16, 16A, 16B, and 16C. In one embodiment, the method further includes securing support ring 200 to tubular graft component 12 at the fenestrations 24, where the fenestrations 24 are within the arcs of helical coil 202, thereby forming another embodiment of an aortic prosthesis of the present invention.
[0048] In another embodiment, the present invention includes a graft sleeve 250, such as that shown in FIG. 17, with the sealing ring 36 and liner 40, respectively, extending around and through the fenestration 24 of the tubular graft component 12. As shown in FIG. 17, the graft sleeve 250 includes a graft sleeve proximal end 252, a graft sleeve distal end 254, and a graft sleeve wall 256 extending between the graft sleeve proximal end 252 and the graft sleeve distal end 254. The graft sleeve proximal end 252 has a base diameter, and the graft sleeve distal end 254 has a diameter smaller than the base diameter of the graft sleeve proximal end 252, where the graft sleeve proximal end 252 defines a plane A that intersects with a plane B defined by the graft sleeve distal end 254. In one embodiment, the graft sleeve 256 defines a longitudinal axis 257 that intersects with the longitudinal axis 13 of the tubular graft component 12 at an angle α. The angle of intersection α can range from 0° to 180°, for example, 30°, 60°, 90°, 120°, or 150°. The support ring 200 is secured to the graft sleeve wall 256 closer to the graft sleeve proximal end 252 than to the graft sleeve distal end 254, thereby forming a graft sleeve assembly 260. The resulting graft sleeve assembly 260 is secured to the tubular graft wall 12 around the fenestration 24, thereby forming an aortic prosthesis 262. A branch stent graft 264 is directed through the fenestration 24 and implanted with the graft sleeve 250, the proximal end 266 of the graft sleeve 266 secured by interfacing with the graft sleeve 250, as indicated by edge 268. In one embodiment, the graft sleeve is conically shaped, and an orthogonally oriented first section 251 at a relative proximal end of the graft sleeve 250 is wider than an orthogonally oriented second section 253 distal to the orthogonally oriented first section 251. In an embodiment, the proximal end of the branch stent graft is flared. In yet another embodiment, the graft sleeve is conically shaped, and the proximal end of the branch stent is flared. Further description can be found in U.S. Ser. No. 63 / 210,271, the relevant teachings of which are incorporated by reference in their entirety.
[0049] The vascular prosthesis of the present invention can be implanted, for example, by transfemoral access. Additional branch prostheses directed to the vascular prosthesis of the present invention can be implanted, for example, by supra-aortic vascular access (e.g., through the brachial artery), or by transfemoral access, or by access from some other branch or branch of a major vessel, such as a peripheral vessel.
[0050]
[0079] In another aspect, the invention is a stent graft comprising: (a) a tubular graft component defining an inner surface, an outer surface, an open proximal end, an open distal end, and at least one fenestration; (b) a proximal stent on the tubular graft component proximal to the at least one fenestration; (c) a ring on the tubular graft component extending along the tubular graft component and around the at least one fenestration; and (d) a liner extending between the inner and outer surfaces and through the fenestration, whereby the ring is sealed from exposure by the liner on one surface of the tubular graft component and by the tubular graft component and the liner on the other surface of the tubular graft component.
[0051]
[0080] A stent graft as described in paragraph
[0079] , wherein the liner includes a first layer defining a first opening and a second layer defining a second opening, the first opening and the second opening are aligned, the first layer and the second layer are secured to one another at the first opening and the second opening, and each of the first layer and the second layer defines a circumference that is secured to one of the interior or exterior surfaces of the tubular graft component.
[0052]
[0081] A stent graft as described in paragraph
[0080] , wherein the ring includes a plurality of radiopaque marker bands.
[0053]
[0082] A stent graft as described in paragraph
[0081] , wherein at least a portion of the radiopaque marker band is wrapped by fabric separate from the liner.
[0054]
[0083] A stent graft as described in paragraph
[0082] , wherein a fabric separate from the liner, encasing a radiopaque marker, is secured to the tubular graft component.
[0055]
[0084] A stent graft as described in paragraph
[0081] , wherein a radiopaque marker band is sewn to the tubular graft component.
[0056]
[0085] A stent graft as described in paragraph
[0081] , wherein at least a portion of the radiopaque marker is shaped as at least one of an elongated cylinder and a tube.
[0057]
[0086] A stent graft as described in paragraph
[0081] , further comprising a support ring extending around the fenestration.
[0058]
[0087] A stent graft as described in paragraph
[0086] , wherein the support ring is self-expanding.
[0059]
[0088] A stent graft as described in paragraph
[0087] , wherein the support ring comprises a shape memory alloy.
[0060]
[0089] A stent graft as described in paragraph
[0088] , wherein the support ring comprises nitinol.
[0061]
[0090] A stent graft as described in paragraph
[0086] , wherein the support ring is sealed by a liner.
[0062]
[0091] A stent graft as described in paragraph
[0086] , wherein the support ring extends around the circumference of the first layer or the second layer.
[0063]
[0092] A stent graft as described in paragraph
[0086] , wherein the support ring is sewn to the tubular graft component.
[0064]
[0093] A stent graft as described in paragraph
[0079] , wherein the ring is a support ring.
[0065]
[0094] A stent graft as described in paragraph
[0093] , wherein the support ring is a continuous ring.
[0066]
[0095] A stent graft as described in paragraph
[0094] , wherein the support ring is self-expanding.
[0067]
[0096] A stent graft as described in paragraph
[0095] , wherein the support ring comprises a shape memory alloy.
[0068]
[0097] A stent graft as described in paragraph
[0096] , wherein the support ring comprises nitinol.
[0069]
[0098] A stent graft as described in paragraph
[0097] , further comprising at least one radiopaque marker between the tubular graft component and the liner.
[0070]
[0099] A stent graft as described in paragraph
[0098] , wherein at least one radiopaque marker extends around the fenestration of the tubular graft component.
[0071]
[0100] A stent graft as described in paragraph
[0099] , wherein at least one radiopaque marker extends between the support ring and the fenestration of the tubular graft component.
[0072]
[0101] A stent graft as described in paragraph
[0099] , wherein at least one radiopaque marker extends around the support ring, and the support ring is between the radiopaque marker and the fenestration of the tubular graft component.
[0073]
[0102] A stent graft as described in paragraph
[0098] , wherein at least one radiopaque marker is a plurality of radiopaque markers.
[0074]
[0103] A stent graft as described in paragraph
[0079] , wherein the proximal stent is a bare stent.
[0075]
[0104] A stent graft as described in paragraph
[0079] , further comprising a distal stent in a tubular graft component distal to the fenestration.
[0076]
[0105] A stent graft as described in paragraph
[0079] , wherein the tubular graft component is bifurcated distal to the fenestration.
[0077]
[0106] In yet another aspect, the present invention provides a method for treating an aortic aneurysm, the method comprising: (a) delivering a stent graft through an artery to an aneurysm in a patient, wherein the aneurysm spans a region of the artery including at least one arterial branch, the stent graft being radially contracted by a stent graft delivery device, the stent graft comprising: (i) a tubular graft component defining an inner surface, an outer surface, an open proximal end, an open distal end, and at least one fenestration; (ii) a proximal stent on the tubular graft component proximal to the at least one fenestration; (iii) a ring on the tubular graft component extending along the tubular graft component and around the at least one fenestration; and (iv) a liner extending between the inner and outer surfaces and through the at least one fenestration, whereby the ring is secured to the tubular graft component by the liner. (b) aligning at least one arterial branch with at least one fenestration at the aneurysm site in the patient; (c) delivering at least one branch prosthesis through a proximal or distal open end of the tubular graft component of the stent graft and through the at least one fenestration to the arterial branch, wherein the branch prosthesis is radially and releasably contracted by a branch prosthesis delivery device; and (d) releasing the branch prosthesis from the branch prosthesis delivery device, wherein expansion of the branch prosthesis causes contact at the tubular graft component, thereby forming a seal between the stent graft and the branch prosthesis and treating the aortic aneurysm.
[0078] The relevant teachings of all patents, published applications and references cited herein are incorporated by reference in their entirety. U.S. Patent Numbers: US 10,987,235, US 11,000,359, US 11,291,572, US 11,278,390, US 11,219,540, and US 11,154,392; U.S. Published Patent Application Numbers: US 2019 / 0269498 A1, US 2019 / 0231514 A1, US 2019 / 0231571 A1, US 2019 / 0247178 A1, US 2019 / 0269497 A1, US 2019 / 0282355 A1, US 2019 / 0321207 A1, US 2020 / 352700A1, and US 2021 / 0401602 A1; and the relevant teachings of U.S. Application No. 17 / 522,251 are also incorporated by reference in their entirety. The relevant teachings of U.S. patent application entitled "Support Ring, Aortic Prosthesis and Method of Forming," filed June 13, 2022 by Eitan Magen and Eduardo Alejandro Garcia (Attorney Docket No. BMN-07825), are also incorporated by reference in their entirety.
[0079] While exemplary embodiments have been particularly shown and described, it will be understood by those skilled in the art that various changes in form and detail can be made in the present invention without departing from the scope of the embodiments encompassed by the appended claims.
Claims
1. a) A tubular graft component defining an inner surface, an outer surface, an open proximal end, an open distal end, and at least one fenestration; b) A proximal stent in the proximal tubular graft component of the at least one fenestration; c) A ring in the tubular graft component extending around the at least one fenestration along the tubular graft component; and d) A liner extending through the fenestration between the inner surface and the outer surface, whereby the ring is sealed from exposure by the liner on one surface of the tubular graft component and by the tubular graft component and the liner on the other surface of the tubular graft component, A stent graft comprising.
2. The stent graft according to claim 1, wherein the liner comprises a first layer defining a first opening and a second layer defining a second opening, the first opening and the second opening are aligned, the first layer and the second layer are fixed to each other at the first opening and the second opening, and each of the first layer and the second layer defines a perimeter by which they are fixed to one of the inner surface or the outer surface of the tubular graft component.
3. The stent graft according to claim 1 or 2, wherein the ring comprises a plurality of radiopaque marker bands.
4. The stent graft according to claim 1 or 2, wherein at least a portion of the radiopaque marker band is wrapped by a fabric away from the liner.
5. The stent graft according to claim 1 or 2, wherein the fabric away from the liner wrapping the radiopaque marker is fixed to the tubular graft component.
6. The stent graft according to claim 1 or 2, wherein the radiopaque marker band is sewn to the tubular graft component.
7. The stent graft according to claim 1 or 2, wherein at least a part of the radiopaque marker is formed as at least one of an elongated cylinder and a tube.
8. The stent graft according to claim 1 or 2, further comprising a support ring extending around the fenestration.
9. The stent graft according to claim 1 or 2, wherein the support ring is self-expanding.
10. The stent graft according to claim 1 or 2, wherein the support ring comprises a shape memory alloy.
11. The stent graft according to claim 1 or 2, wherein the support ring comprises nitinol.
12. The stent graft according to claim 1 or 2, wherein the support ring is sealed by a liner.
13. The stent graft according to claim 1 or 2, wherein the support ring extends around the circumference of the first layer or the second layer.
14. The stent graft according to claim 1 or 2, wherein the support ring is sewn to a tubular graft component.
15. The stent graft according to claim 1 or 2, wherein the ring is a support ring.
16. The stent graft according to claim 1 or 2, wherein the support ring is a continuous ring.
17. The stent graft according to claim 1 or 2, wherein the support ring is self-expanding.
18. The stent graft according to claim 1 or 2, wherein the support ring comprises a shape memory alloy.
19. The stent graft according to claim 1 or 2, wherein the support ring comprises nitinol.
20. The stent graft according to claim 1 or 2, further comprising at least one radiopaque marker between the tubular graft component and the liner.
21. The stent graft according to claim 1 or 2, wherein at least one radiopaque marker extends around the fenestration of the tubular graft component.
22. The stent graft according to claim 1 or 2, wherein at least one radiopaque marker extends between the support ring and the fenestration of the tubular graft component.
23. The stent graft according to claim 1 or 2, wherein at least one radiopaque marker extends around the support ring, and the support ring is between the radiopaque marker and the fenestration of the tubular graft component.
24. The stent graft according to claim 1 or 2, wherein at least one radiopaque marker is a plurality of radiopaque markers.
25. The stent graft according to claim 1 or 2, wherein the proximal stent is a bare stent.
26. The stent graft according to claim 1 or 2, further comprising a distal stent in a tubular graft component distal to the fenestration.
27. The stent graft according to claim 1 or 2, wherein the tubular graft component bifurcates distally relative to the fenestration.