Aortic pathologies, including aortic aneurysms, can be treated by open surgical reconstruction, or alternatively, endovascular repair, which is a minimally invasive alternative to open surgical repair. Optimizing a successful outcome of endovascular repair, however, requires assessment of the patient's anatomy and, in the case of an aortic aneurysm, an appropriate stent graft that spans the proximal and distal ends of the aneurysm to insure complete exclusion of the aneurysm sac, anchoring of the stent graft in the aorta, and minimal endoleaks. Endoleaks and post-surgical enlargement of the aneurysm site can require additional repair to seal any expansion of the aneurysm sac, and, generally, must be done without significantly compromising blood flow through the surgical site to surrounding viscera and associated structures.
Therefore, a need exists for new and improved endovascular repair devices and methods to treat aortic pathologies, in particular aortic aneurysms.
The present invention relates to prostheses for use in treating and repairing aortic vascular damage, such as vascular damage associated with an abdominal aortic aneurysm (AAA), dissections and penetrating ulcers, in particular when the vascular damage is associated with aortic damage at the level of the hypogastric artery.
In an embodiment, the invention is a graft prosthesis coupler that includes a plurality of luminal grafts, each of which defines a first end, a second end, an outside surface between the first end and the second end, and a longitudinal axis extending between the first end and the second end of each of the plurality of luminal grafts, the longitudinal axes being substantially parallel to each other. A circumferential graft extends about and secures the plurality of luminal grafts relative to each other, and includes a first end and a second end. A first end wall lies in a surface defined by the first ends of the plurality of luminal grafts and the first ends of the circumferential graft.
In another embodiment, the invention is a modular stent graft prosthesis system, such as a kit, that includes a stent graft, such as a bifurcated stent graft, a graft prosthesis coupler and a plurality of branch grafts. In the case of a bifurcated stent graft, the bifurcated stent graft includes a main stent graft component, a first leg extending from the main stent graft component, and a second leg extending from the main stent graft component that is substantially parallel to the first leg. The graft prosthesis coupler includes a plurality of luminal grafts, each of which defines a first end, a second end, and a longitudinal axis extending between the first end and the second end. The longitudinal axes of the luminal grafts are substantially parallel to each other. A circumferential graft extends about and, in one embodiment, secures the plurality of luminal grafts relative to each other. The circumferential graft has a first end and a second end. A first end wall lies in a surface defined by first ends of the plurality of luminal grafts and the first end of the circumferential graft. Each of the plurality of branch grafts is conformable to one of the plurality of luminal grafts of the graft prosthesis coupler.
In a further embodiment, the invention is a modular stent graft prosthesis system, such as a kit, that includes a graft prosthesis coupler and a plurality of branch grafts. The graft prosthesis coupler includes a plurality of luminal grafts, each of which defines a first end and a second end. Each of the luminal grafts defines a longitudinal axis between each of the first end and the second end of the plurality of luminal grafts, the longitudinal axes being substantially parallel to each other. A circumferential graft extends about the plurality of luminal grafts, and has a first end and a second end. A first end wall lies in a surface defined by the first ends of the plurality of luminal grafts and the first end of the circumferential graft. Each of the plurality of branch stent grafts is conformable to at least one of the plurality of luminal grafts.
In yet another embodiment, the invention is a graft prosthesis coupler that includes a plurality of luminal grafts, each of which defines a first end and a second end and a longitudinal axis, the longitudinal axes being substantially parallel to each other, and wherein the plurality of luminal grafts are attached to each other, the luminal grafts together defining a first end and a second end of the graft prosthesis coupler and defining a central longitudinal axis. The first end and the second end can each, independently, define a plane, a concave surface, or a convex surface.
In still another embodiment, the invention is a method for implanting a modular stent graft prosthesis at an aneurysm site of a patient. In one embodiment, the method includes delivering a stent graft to an aneurysm site in a patient, the stent graft defining an open proximal end, an open distal end, and a main lumen, the main lumen extending between the open proximal end and the open distal end. A graft prosthesis coupler is inserted into the main lumen of the stent graft. The graft coupler includes a plurality of luminal grafts, each of which defines a first end, a second end, and a longitudinal axis, wherein the longitudinal axes are substantially parallel to each other. A circumferential graft of the graft prosthesis extends about the plurality of luminal grafts and, in one embodiment, secures the luminal grafts. The circumferential graft defines a first end and a second end. In this embodiment, a first end wall of the graft prosthesis coupler lies in a surface defined by the first ends of the luminal grafts and the first end of the circumferential graft. The surface can be, for example, in the shape of a concavity. Each of a plurality of branch graft prostheses is inserted into a corresponding one of the plurality of the luminal grafts of the graft prosthesis, each of the plurality of branch graft prostheses having a branch graft prosthesis open proximal end and a branch graft prosthesis open distal end, wherein the stent graft, the graft prosthesis coupler and the plurality of branch graft prostheses together make up the modular stent graft prosthesis as, for example, a kit. The distal end of each of the plurality of branch graft prostheses is inserted into a corresponding aortic branch of the patient at the aneurysm site, thereby implanting the modular stent graft prosthesis at the aneurysm site of the patient.
In another embodiment, the invention is a method of extending a stent graft prosthesis at an aneurysm site of a patient. In this embodiment, the method includes delivering a graft prosthesis coupler into a main lumen of an pre-existing luminal prosthesis in a blood vessel at an aneurysm site of a patient. The graft prosthesis coupler includes a plurality of luminal grafts, each of which defines a first end, a second end, and a longitudinal axis. The longitudinal axes of the plurality of luminal grafts are substantially parallel to each other. A circumferential graft of the graft prosthesis coupler extends about the plurality of luminal grafts and the circumferential graft has a first end and a second end. In one embodiment, the circumferential graft secures the luminal grafts. A first end wall of the graft prosthesis coupler lies in a surface, such as a concavity, defined by the first ends of the luminal grafts and the first end of the circumferential graft. Optionally, a second end wall of the graft prosthesis coupler lies in a surface, such as a plane, defined by the second ends of the luminal grafts and the second end of the circumferential graft. Each of a plurality of branch graft prostheses is inserted into a corresponding one of the plurality of luminal grafts of the graft prosthesis coupler. Each of the plurality of branch graft prostheses has a branch graft prosthesis open end and a branch graft prosthesis open distal end, wherein the graft prosthesis coupler and the plurality of branch graft prostheses collectively make up an extension, or enhancement, for a pre-existing prosthesis, such as in a kit. The distal end of each of the plurality of branch graft prostheses is inserted into a corresponding aortic branch of the patient at the aneurysm site, thereby extending, or enhancing, the stent graft prosthesis at the aneurysm site of the patient.
In still yet another embodiment of the invention, a method of implanting a modular stent graft prosthesis at an aneurysm site of a patient includes delivering a stent graft to an aneurysm site in a patient, the stent graft defining an open proximal end, an open distal end, and a main lumen, wherein the main lumen extends between the open proximal end and the open distal end. A graft prosthesis coupler is inserted into the main lumen of the stent graft, wherein the stent graft includes a plurality of luminal grafts, each of which defines a first end, a second end and a longitudinal axis. The longitudinal axes of the luminal grafts are substantially parallel to each other, and the plurality of luminal grafts are attached to each other. Each of a plurality of branch graft prostheses is inserted into a corresponding one of the plurality of luminal grafts of the graft prosthesis coupler, each of the plurality of branch graft prostheses defining a branch graft prosthesis open proximal end, a branch graft prosthesis open distal end, and lumen extending there between. The stent graft, the graft prosthesis coupler, and the plurality branch graft prostheses together make up the modular stent graft prosthesis, such as in a kit. The distal end of each of the plurality of branch graft prostheses is inserted into a corresponding aortic branch of the patient at the aneurysm site, thereby implanting the modular stent graft prosthesis at aneurysm site of the patient.
In another embodiment of the invention, a method of implanting a modular stent graft prosthesis at an aneurysm site of a patient includes delivering a stent graft through a blood vessel to an aneurysm site in a patient, the stent graft defining an open proximal end, an open distal end, and a main lumen, the main lumen extending between the open proximal end and the open distal end. A graft prosthesis coupler is inserted through the main lumen of the stent graft, the graft prosthesis coupler including a plurality of luminal grafts, each of which defining a longitudinal axis, that are substantially parallel to each other, and wherein the plurality of luminal grafts are attached to each other. Each of a plurality of branch graft prostheses are inserted into a corresponding one of the plurality of luminal grafts of the graft prosthesis coupler, each of the plurality of the branch graft prostheses having a branch graft prosthesis open proximal end and a branch graft prosthesis open distal end, the stent graft, the graft prosthesis coupler, and the plurality of branch graft prostheses together making up the modular stent graft prosthesis. The distal end of each of the plurality of branch graft prostheses is inserted into a corresponding arterial branch of the patient at the aneurysm site, thereby implanting the modular stent graft prosthesis at the aneurysm site of the patient.
The prostheses and methods of the invention have several advantages to accommodate the extent of aortic damage, and changes following implantation of a prosthesis, while preserving blood flow to associated viscera and surrounding tissues. In the case of an abdominal aortic aneurysm (AAA) repair, an understanding of the anatomy of the patient's iliac artery and its involvement in aortic damage is critical since the iliac artery is a channel for deployment of the prosthesis and the site of sealing of the distal end of the prosthesis. During AAA repair, care should be taken to avoid exclusion of both hypogastric arteries to minimize damage to surrounding tissues and viscera, such as colorectal ischemia and buttock claudication. The graft prostheses and methods of the invention can be implanted at the distal end of a main prosthesis in the common iliac to facilitate placement of at least one leg extension stent graft into the external iliac and hypogastric arteries to maximize blood flow into and minimize obstruction of the hypogastric artery.
The coupler of the invention can be employed as part of a kit of a modular stent graft prosthesis. Insertion of a coupler into the distal end of a main stent graft component of the kit enables the main stent graft component to have a lower profile during delivery of that component to an aneurysm site, relative to the profile of a main stent graft component having luminal grafts seated within the distal end of the stent graft prior to delivery to the aneurysm site.
In addition, the graft prostheses of the invention can be inserted into a previously-implanted prosthesis, in the event that aortic damage has spread, such as when the aneurysm sac has become enlarged, and in the case of AAA repair, to facilitate spanning the aneurysm sac while maximizing blood flow from the hypogastric arteries to surrounding viscera and associated structures. Alternatively the coupler of the invention can be implanted directly into an artery and secured there by suitable means, such as by outwardly protruding barbs.
The foregoing will be apparent from the following more particular description of example embodiments of the invention, as illustrated in the accompanying drawings in which like reference characters refer to the same parts throughout the different views. The same number in different drawings represents the same item. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating embodiments of the present invention.
The invention is generally directed to prostheses and to methods for their use in treating vascular disease, such as may be beneficial or required during AAA repair when the distal end of the aneurysm is inferior to the hypogastric artery or to encase an enlarged aneurysm sac where a prosthesis has previously been implanted.
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 particular embodiments of the invention are shown by way of illustration and not as limitations of the invention. The principle features of this invention can be employed in various embodiments without departing from the scope of the invention.
A description of example embodiments of the invention follows.
When reference is made herein to a prosthesis to be delivered, or implanted in a patient, the word “proximal” means that portion of the prosthesis or component of the prosthesis that is relatively close to the heart of the patient and “distal” means that portion of the prosthesis or component of the prosthesis that is relatively far from the heart of the patient. A “longitudinal axis,” as that term is defined herein, means an axis along a lengthwise direction of a body that also passes through a center of gravity of the body.
When, however, reference is made to a delivery system or a component of a delivery system employed to deliver, or implant, a prosthesis, the word, “proximal,” as employed herein, means closer to the clinician using the delivery system. When reference is made to a delivery system or a component of a delivery system, “distal,” as that term is employed herein, means, further away from the clinician using the delivery system.
For clarity, the word “proximate” means “close to,” as opposed to the meanings ascribed to “proximal” or “distal” described above with respect to either the prosthesis or a delivery system.
One embodiment of a graft prosthesis coupler 10 of the invention is shown in
In another embodiment, first end 16,18 of at least one of the plurality of luminal grafts 12,14 is secured to circumferential graft 32 by proximal sutures 42,44. Optionally, second end of at least one of the plurality of luminal grafts is secured to circumferential graft by distal sutures 46,48. Alternatively, at least one of the plurality of luminal grafts can be secured to circumferential graft by more than a single suture, such as along an intermittent or continuous length (not shown), over a portion or the entire length of at least one of the plurality of luminal grafts. Luminal grafts 12,14, can also be fixed to each other by sutures 50,52.
Luminal grafts 12,14 and circumferential graft 32 are made from suitable materials, such as are known to those skilled in the art, including, for example, expanded polytetrafluoroethylene (PTFE), such as expanded PTFE (ePTFE), and polyethylene terephthalate (PET), such as woven polyester. Suitable radiographic markers, not shown, such as are known to those skilled in the art, are sutured to at least one of first end or second end of the plurality of luminal grafts, or first end or second end of the circumferential graft.
In a further embodiment, not shown, prosthesis includes three luminal grafts having diameters that are about equal to each other and have a cross-section of a substantially circular cross-sectional shape. In another embodiment, not shown, the three luminal grafts have diameters, at least one of which differs from the others and, optionally each of which independently may have a cross-section that is non-circular, such as an elliptical cross-sectional shape. The three luminal grafts are distributed radially about major longitudinal axis of circumferential graft (not shown), and are, in an embodiment, fixed to each other at respective ends or along a portion or the entire length of the luminal grafts by suitable means, such as sutures or by adhesive.
In still another embodiment, shown in
As shown in
At least one of the plurality of luminal grafts and circumferential graft can include at least one stent. In an embodiment, circumferential graft includes at least one barb extending radially from at least one stent, in particular a stent located on the outside of circumferential graft (not shown). In another embodiment, graft prosthesis coupler of the invention includes at least one barb extending radially and inwardly from at least one stent of the plurality of luminal grafts (not shown). Stents and barbs are formed of a suitable material, such as is known to those skilled in the art, including stainless steel and shape-memory alloys, such as nitinol. Stents are affixed to luminal grafts and circumferential grafts by suitable means known to those skilled in the art, such as by sewing with biocompatible sutures.
In another embodiment, the invention includes a graft prosthesis coupler and a plurality of branch grafts, such as in a kit. For example, as shown in
First ends 178,180 of luminal grafts 174,176 and first end 198 of circumferential graft 190 define a concavity, as described above, and in which lies first end wall 200. Second ends 182,184 of luminal grafts 174,176 and second end 202 of coupler 172 together define a plane. In a specific embodiment, modular stent graft prosthesis includes second end wall 204 that lies in the plane between second end 202 of circumferential graft 190 and second ends 182,184 of luminal grafts 174,176. In an embodiment, luminal grafts 174,176 are fixed at first ends 178,180 and second ends 182,184 to first end wall 200 and second end wall 204, respectively, and are part of, or secured or fixed, by suitable means, such as biocompatible sutures or adhesive. First end wall 200 and second end wall 204 are secured to circumferential graft 190 at first end 198 and second end 202, respectively, by suitable means, such as biocompatible sutures or adhesive.
Modular stent graft prosthesis system 170 also includes plurality of branch grafts 206, 208. Each branch graft 206,208 is configured to fit within one of the plurality of luminal grafts 174,176 of graft prosthesis coupler 172. Branch grafts 206,208 each independently include one or more stents 210,212, such as stents formed of nitinol, to provide support for the graft material of the respective graft prosthesis coupler or branch grafts. Use of stents is understood to be optional. Stents 210,212 can include inwardly or outwardly extending barbs, not shown, for securing branch grafts 206,208, either within at least one of luminal grafts 174,176, and within arterial tissue.
Branch grafts 206,208 can have a cross-sectional diameter that varies along the respective lengths. Branch grafts 206,208 include proximal ends 214,216 and distal ends 218,220. In embodiments, not shown, at least one branch graft includes a proximal end having a larger diameter or a smaller diameter than a distal end. It is to be understood that the cross-sectional diameter along each branch graft can vary independently of the cross-sectional diameters along the length of the other branch grafts.
In yet another embodiment, shown in
In another embodiment, the invention is a method of implanting a modular stent graft prosthesis of the invention. As shown in
In both embodiments, whether stent graft 232 had previously been implanted at an earlier aneurysm that has since enlarged in size, or is implanted as part of a modular repair of a new aneurysm, graft prosthesis coupler 172 is delivered within distal end 236 of stent graft 232, as shown in
In another embodiment of the invention, modular stent graft prosthesis system 250, shown in
In one embodiment of a method of the invention, modular stent graft prosthesis system 250, is implanted at the thoraco-abdominal aneurysm site 270, as shown in
In yet another embodiment of the invention, shown in
Leg extension graft 344, shown in
In another embodiment, the graft prosthesis coupler of the invention can be implanted directly into an artery and secured there by suitable means, such as by outwardly protruding barbs (not shown). Once the graft prosthesis coupler is implanted into an artery, such as at a site proximal or distal to an aneurysm site, branch graft prostheses can be inserted at one end into a corresponding one of the plurality of luminal grafts of the graft prosthesis coupler and at the other end into a corresponding arterial branch of a patient to implant a modular graft prosthesis at an aneurysm site of a patient (not shown).
Means for securing each of the components within the patient can be, for example, by barbs, or such other means as are appropriate, as are known in the art. Securement of distal ends of branch grafts and extension completes the method of extending a stent graft prosthesis at an aneurysm site of a patient by one method of the invention.
Prostheses of the invention can be implanted, for example, by transfemoral access. Additional vascular repair devices that are directed into the prostheses of the invention can be implanted, for example, by supraaortic vessel access (e.g., through the subclavian artery), or by transfemoral access or other arterial access.
The teachings of all patents, published applications and references cited herein are incorporated by reference in their entirety. The relevant teachings of all patents, published applications and references cited herein are incorporated by reference in their entirety. The relevant teachings of U.S. Pat. Nos. 8,292,943; 7,763,063; 8,308,790; 8,070,790; 8,740,963; 8,007,605; 9,320,631; 8,062,349; 9,198,786; 8,062,345; 9,561,124; 9,173,755; 8,449,595; 8,636,788; 9,333,104; 9,408,734; 9,408,735; 8,500,792; 9,220,617; 9,364,314; 9,101,506; 8,998,970; 9,554,929; 9,439,751; 9,592,112 and 9,655,712; U.S. patent application Ser. Nos. 14/226,005; 14/575,673; 15/166,818; 15/167,055; 14/272,818; 14/861,479; 15/478,424; 15/478,737; 15/604,032 and PCT/US2017/025849 are also incorporated by reference in their entirety.
While example embodiments have been particularly shown and described, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the embodiments encompassed by the appended claims.
This application claims the benefit of U.S. Provisional Application No. 62/372,882, filed on Aug. 10, 2016. The entire teachings of the above application are incorporated herein by reference.
Number | Date | Country | |
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62372882 | Aug 2016 | US |