Apparatus and method for stent graft harvesting

The cylindrical extraction device with a tapered sidewall and blunt edges facilitates atraumatic removal of stent grafts by compressing and releasing prongs from the vessel wall, addressing the issue of vessel damage during explantation.

JP7814387B2Active Publication Date: 2026-02-16HJALTA CARE LLC
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Patent Information

Application Number
JP2023527974
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-11-03
Filing Date
2021-11-03
Publication Date
2026-02-16
Estimated Expiration
2041-11-03

AI Technical Summary

Technical Problem

The explantation of intravascular stent grafts often causes significant damage to the vessel wall due to the prongs engaging with the tissue, leading to a high mortality rate.

Method used

A cylindrical extraction device with a tapered sidewall and blunt edges is used to slide over the stent graft, compressing it and releasing the prongs from the vessel wall, allowing for atraumatic removal.

Benefits of technology

The device minimizes damage to the vessel wall by reducing friction and contact, enabling safe and effective extraction of the stent graft without causing harm.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

An apparatus for extracting an endovascular stent graft from a vessel includes a cylindrical body and an opening formed in the cylindrical body. The cylindrical body has a first open end, a second open end, and a sidewall surrounding a hollow bore of the cylindrical body. The opening is formed in the sidewall between the first open end and the second open end to form a first ring portion at the first open end and a second ring portion at the second open end. Furthermore, the thickness of the sidewall at the first open end tapers toward the opening, and the thickness of the sidewall at the second open end tapers toward the opening, such that the hollow bore is narrower at each end than at the opening.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Patent Application No. 17 / 088,102, filed November 3, 2020, the contents of which are incorporated herein by reference.

[0002] The present invention relates generally to the field of endovascular stent graft extraction, and more particularly to an apparatus and method for atraumatic stent graft extraction. [Background technology]

[0003] Intravascular stent grafts can be used for a variety of blood vessel-related conditions, but most commonly, they are used to reinforce weak spots in arteries, called aneurysms. Over time, blood pressure and other factors can cause these weak areas to bulge, eventually enlarging and rupturing. The stent graft is implanted to form a tight seal between the arteries above and below the aneurysm. The graft is stronger than the weakened artery, allowing blood to pass through the graft without pushing against the bulge.

[0004] In some cases, explantation of a stent graft is necessary due to infection or failure of the original implant to function as intended. Because stent grafts typically contain prongs that engage the vessel wall, explantation of the device can cause significant damage to the tissue with which the device engages. Stent graft explantation is known to be associated with a high mortality rate, which is caused by a combination of factors. Damage caused to the vessel wall during the explantation process is one factor contributing to the high mortality rate. Summary of the Invention

[0005] Therefore, there is a need for a device that facilitates the atraumatic removal of a stent graft from a vessel.

[0006] At least one embodiment relates to a device for extracting an endovascular stent graft from a vessel. The device includes a cylindrical body and an opening formed in the cylindrical body. The cylindrical body has a first open end, a second open end, and a sidewall surrounding a hollow bore of the cylindrical body. The opening is formed in the sidewall between the first open end and the second open end to form a first ring portion at the first open end and a second ring portion at the second open end. Furthermore, the thickness of the sidewall at the first open end tapers toward the opening, and the thickness of the sidewall at the second open end tapers toward the opening, such that the hollow bore is narrower at each end than at the opening.

[0007] Another embodiment relates to a method for extracting an endovascular stent graft from a vessel. The method includes inserting an extraction device into the vessel. The extraction device includes a cylindrical body and an opening formed in the cylindrical body. The cylindrical body has a first open end, a second open end, and a sidewall surrounding a hollow bore of the cylindrical body. The opening is formed in the sidewall between the first open end and the second open end to form a first ring portion at the first open end and a second ring portion at the second open end. Furthermore, the thickness of the sidewall at the first open end tapers toward the opening, and the thickness of the sidewall at the second open end tapers toward the opening, such that the hollow bore is narrower at each end than at the opening. The method further includes the steps of sliding the extraction device over the stent graft so that the first open end slides between the vessel wall and the stent graft to compress the stent graft within the first ring portion, continuing to slide the extraction device over the stent graft until the extraction device releases the prongs of the stent graft from the vessel wall, and removing at least one of the stent graft and the extraction device from the vessel while the sidewall is at least partially positioned between the stent graft and the vessel wall.

[0008] This summary is illustrative only and should not be construed as limiting.

[0009] The advantages and features constituting the present disclosure, as well as a clearer understanding of the structure and operation of exemplary mechanisms provided therewith, will be more readily apparent by reference to the illustrative, and therefore non-limiting, embodiments illustrated in the drawings accompanying and forming a part hereof, in which like reference numerals designate the same elements in the several views. [Brief explanation of the drawings]

[0010] [Figure 1A] 1 is a perspective view of an endovascular stent graft for use in the abdominal aorta, according to one exemplary embodiment. [Figure 1B] FIG. 2 is a partial view of the endovascular stent graft of FIG. 1 implanted in the abdominal aorta. [Figure 2] 1 is a perspective view of an endovascular stent graft extraction device according to an exemplary embodiment. [Figure 3] FIG. 3 is a rear view of the endovascular stent graft extraction device of FIG. 2. [Figure 4] 4 is a cross-sectional view of the endovascular stent graft extraction device of FIG. 3 taken along line 4-4. [Figure 5A] 5 is a cutaway view of a sidewall proximate a first end of the endovascular stent graft extraction device of FIG. 4. FIG. [Figure 5B] 5 is a cutaway view of the sidewall of the endovascular stent graft extraction device of FIG. 4 adjacent the second end. [Figure 6A] 3 is a perspective view of the endovascular stent graft extraction device of FIG. 2 being used in a method of extracting an endovascular stent graft according to an exemplary embodiment. [Figure 6B] 3 is a perspective view of the endovascular stent graft extraction device of FIG. 2 being used in a method of extracting an endovascular stent graft according to an exemplary embodiment. [Figure 6C] 3 is a perspective view of the endovascular stent graft extraction device of FIG. 2 being used in a method of extracting an endovascular stent graft according to an exemplary embodiment. [Figure 6D]3 is a perspective view of the endovascular stent graft extraction device of FIG. 2 being used in a method of extracting an endovascular stent graft according to an exemplary embodiment. [Figure 6E] 3 is a perspective view of the endovascular stent graft extraction device of FIG. 2 being used in a method of extracting an endovascular stent graft according to an exemplary embodiment. [Figure 7] 10 is a perspective view of a second endovascular stent graft extraction device according to another embodiment. FIG. [Figure 8] FIG. 10 is a perspective view of a third endovascular stent graft extraction device according to another embodiment. [Figure 9] FIG. 10 is a perspective view of a fourth endovascular stent graft extraction device according to another embodiment. [Figure 10] FIG. 10 is a perspective view of a fifth endovascular stent graft extraction device according to another embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0011] The foregoing and other features of the present disclosure will become apparent from the following description and appended claims, taken in conjunction with the accompanying drawings, in which:

[0014] The present disclosure will be described with more specificity and detail by means of the accompanying drawings, with the understanding that these drawings illustrate only some embodiments in accordance with the present disclosure and therefore should not be considered limiting of its scope.

[0012] In the following detailed description, reference is made to the accompanying drawings, which form a part hereof. In the drawings, like symbols generally identify like elements unless context dictates otherwise. The exemplary embodiments described in the detailed description, drawings, and claims are not intended to be limiting. Other embodiments may be utilized, and other changes may be made, without departing from the spirit or scope of the subject matter presented herein. It will be readily understood that the aspects of the present disclosure, as generally described and illustrated in the figures herein, can be arranged, substituted, combined, and designed in a wide variety of different configurations, all of which are expressly contemplated and made a part of this disclosure.

[0013]

[0003] Referring generally to the figures, described herein is an endovascular stent-graft extraction device. The endovascular stent-graft extraction device includes a cylindrical body extending from a first open end to a second open end and a sidewall surrounding a hollow bore of the cylindrical body. The first open end defines a first aperture, and the second open end defines a second aperture. The sidewall further includes an opening positioned between the first open end and the second open end and corresponding to a bend in the cylindrical body. The sidewall further includes a taper (e.g., an expansion of the inner diameter of the cylindrical body) from adjacent the first aperture in the first open end to the opening and from the second aperture in the second open end to the opening. Additionally, the sidewall further includes blunt or rounded edges at the first and second openings.

[0014] In use, the endovascular stent graft extraction device is inserted into a vessel (e.g., one or more portions of the aorta, one or more arteries, etc.) so that the first open end or the second open end is initially received within the vessel. Once inserted, the endovascular stent graft extraction device is slid over and around the stent graft so that the first open end slides between the vessel wall and the stent graft, compressing the stent graft within the first ring portion. The endovascular stent graft extraction device then continues to be slid over the stent graft until the device releases the prongs of the stent graft from the vessel wall. Finally, the endovascular stent graft extraction device and stent graft are removed from the vessel so that the sidewall of the endovascular stent graft extraction device is at least partially between the stent graft and the vessel during removal.

[0015] 1A-1B, an endovascular stent graft 10 is shown. The endovascular stent graft 10 is configured to be implanted in one or more various arteries of a human, such as a patient with an aneurysm, to reinforce the arterial wall. In some embodiments, the endovascular stent graft 10 is specifically configured for use in the abdominal aorta and the iliac arteries branching from the abdominal aorta (FIG. 1B). To do so, the endovascular stent graft 10 includes a plurality of prongs 12 and a frame 14 having an aortic portion 16A and one or more arterial portions (e.g., bifurcations) 16B and 16C. Each portion may further include a respective central axis (not shown) along which the frame extends. The frame 14 may be made of a variety of materials configured to be implanted in the artery and provide support to reinforce the arterial wall to prevent rupture. Additionally, the frames 14 may be configured to collapse and expand along their respective central axes (e.g., the length of the frames 14 may vary) to secure the endovascular stent graft 10, but may be configured to be biased to be rigid or stiff radially relative to the central axis (e.g., the diameter of portions of the frame 14 does not vary). In this manner, the frame 14 supports the arterial walls (e.g., the abdominal aorta and the iliac arteries branching from the abdominal aorta) while being able to expand and contract for implantation. Similarly, the frame 14 includes an aortic portion 16A (a relatively wide portion) and one or more arterial portions 16B and 16C (relatively narrow portions). In other embodiments, the frame 14 may include other portions (e.g., more branches, fewer branches, no aortic portion, etc.) depending on where the endovascular stent graft 10 will be used.

[0016] The prongs 12 are coupled to the aortic section 16A and are configured to selectively move between a deployed position, in which the prongs 12 press against the arterial wall and prevent movement of the endovascular stent graft 10, and a non-deployed position, in which the prongs 12 do not press against the arterial wall and do not prevent movement of the endovascular stent graft 10. In some embodiments, the prongs are coupled to other portions of the frame 14. In the deployed position (FIGS. 1A and 1B), the prongs 12 extend at least partially radially outward from the central axis of the aortic section 16A and press against the aortic (or arterial) wall, preventing movement of the endovascular stent graft 10. In this manner, the prongs 12 can pierce or provide a frictional force to hold the endovascular stent graft 10 in place. Special equipment may be required for this purpose and to move the prongs 12 to the deployed position during implantation. In the non-deployed position (not shown), the prongs 12 do not extend radially outward or contact the aortic wall. This allows the endovascular stent graft 10 to move around within the artery until it is properly positioned to cover the aneurysm. Once in place, the prongs 12 can be selectively moved to a deployed position and "implanted" within the aorta. At this point, the endovascular stent graft 10 can be left in the aorta without movement for an extended period of time (e.g., permanently, such as several years) to prevent the aortic (or arterial) wall from rupturing.

[0017] 2-4, an endovascular stent graft extraction device 25 is shown according to one exemplary embodiment. While the endovascular stent graft 10 is configured to be left in the aorta (or artery) for an extended period of time, various complications may arise that require the endovascular stent graft 10 to be removed (e.g., infection, improper deployment of the endovascular stent graft 10, arterial swelling, plaque buildup, fractures, etc.). Therefore, the endovascular stent graft extraction device 25 is configured to be inserted into the artery and used to extract the endovascular stent graft 10 atraumatically (e.g., with little or no damage to the artery itself). To this end, endovascular stent graft extraction device 25 includes a cylindrical body 30 having a first open end 34 with a first aperture 35, a second open end 38 with a second aperture 39, and a sidewall 42 extending between first open end 34 and second open end 38 to define a hollow bore 43 of cylindrical body 30. Cylindrical body 30 may be of various rigid materials suitable for sterilization, such as surgical / medical grade steel, stainless steel, and surgical / medical grade plastic. In some embodiments, cylindrical body 30 may be manufactured using a 3D printing process (e.g., stereolithography (SLA), selective laser sintering (SLS), fused deposition modeling (FDM), direct metal laser sintering (DMLS), or other conventional 3D printing processes). Advantageously, and in this way, one or more dimensions of the endovascular stent graft harvesting device 25 (e.g., diameter of the sidewall 42, length of the sidewall 42, etc.) can be easily changed or updated based on the particular aorta or artery in which the device is operating or based on the particular endovascular stent graft 10 being harvested. Aortas and arteries typically have common diameters and lengths for patients of a particular age and size, but these can vary depending on genetics, previous surgeries, and other environmental factors. As a result, the endovascular stent graft harvesting device 25 may be manufactured using 3D printing methods so that various dimensions can be easily and quickly updated on-site, such as at a surgical center or hospital.

[0018] In use (e.g., to harvest the endovascular stent graft 10), the endovascular stent graft harvesting device 25 is inserted into the aorta or artery so that the first open end 34 or the second open end 38 (or both) are positioned within the aortic or arterial wall. The first aperture 35 and the second aperture 39 can include outer diameters sized relative to the aorta or artery so that they are at least partially smaller than the diameter of the aortic or arterial wall. For example, the diameters of the apertures 35, 39 can be between about 15 and 30 millimeters (mm). In some embodiments, the first aperture 35 and the second aperture 39 have different outer diameters. For example, the first aperture 35 can have an outer diameter between about 24 and 26 mm, and the second aperture 39 can have an outer diameter between about 18 and 20 mm. Once inserted into the aorta or artery, the endovascular stent graft extraction device 25 may be slid (e.g., pushed, moved, etc.) along the wall of the aorta until the endovascular stent graft extraction device 25 reaches the frame 14 of the endovascular stent graft 10. At this point, as discussed further herein, the side wall 42 may be between the wall of the aorta and the frame 14, such that the frame 14 is positioned within the hollow bore 43. When the side wall 42 adjacent the first aperture 35 or the second aperture 39 reaches the prongs 12, the endovascular stent graft extraction device 25 may be configured to move the prongs 12 from the deployed position to the undeployed position. At this point, the user of the endovascular stent graft extraction device 25 may extract the endovascular stent graft 10.

[0019] In terms of other dimensions, the cylindrical body 30 can include a height (along the vertical axis in FIG. 4 ) from the first aperture 35 to the second aperture 39 that is approximately 90-120 mm or approximately 107 mm. In other embodiments, the cylindrical body 30 can include a length (e.g., along the center of the arc / center of the sidewall 42) from the aperture 34 to the second aperture 39 that is approximately 100-150 mm or approximately 120 mm. As described herein, the first aperture 35 can have an outer diameter of approximately 24-26 millimeters (mm) or approximately 25 mm and an inner diameter of approximately 14-20 mm or approximately 17 mm. Similarly, the second aperture 39 can have an outer diameter of approximately 18-20 mm or approximately 19 mm and an inner diameter of approximately 10-14 mm or approximately 12 mm. By having the first aperture 35 with inner and outer diameters that are larger than the inner and outer diameters of the second aperture 39, the endovascular stent graft extraction device 25 is better suited for use with a variety of aorta or artery sizes. In this way, if one aperture is too large or too small, the user of the endovascular stent graft extraction device 25 can use the opposite end.

[0020] 2-4, the cylindrical body 30 is shown to have a circular cross-section, thus including a diameter and a length, and is curved along its length such that the cylindrical body 30 forms an arc. Furthermore, the sidewall 42 between the first open end 34 and the second open end 38 defines an opening 50 along the curved section of the cylindrical body 30. In some embodiments, the opening 50 and the cylindrical body 30 are curved such that they include a radius of curvature of approximately 50-90 mm or 70 mm. In other embodiments, the opening 50 is formed in the sidewall 42 at the curved portion of the cylindrical body 30, thus forming the opening 50 in a concave or convex portion of the body. The opening 50 is in a portion of the cylindrical body 30 where the sidewall 42 defines an approximate semi-cylinder (e.g., the sidewall extends only about halfway around the bore 43). This, and as a result, allows a user of the endovascular stent graft extraction device 25 to access the hollow bore 43 of the cylindrical body 30 through the opening 50. Having access to the hollow bore 43 is beneficial because it allows a user of the endovascular stent graft extraction device 25 to pull / extract the endovascular stent graft 10 (when moved to its undeployed position) from the hollow bore 43 and through the opening 50. For example, a user can access the hollow bore 43 of the cylindrical body 30 (e.g., using a clamp, medical device, machine, etc.) to grasp the frame 14 of the endovascular stent graft 10 (when the frame 14 is positioned within the hollow bore 43) and then remove the endovascular stent graft 10. In this way, the endovascular stent graft 10 does not contact the aortic or arterial wall during removal, but only the sidewall 42. Thus, the opening 50 provides a location where the user of the endovascular stent graft extraction device 25 can easily view and extract the endovascular stent graft 10 .

[0021] By including the opening 50 along the curved portion of the cylindrical body 30, the sidewall 42 defines two ring portions (e.g., first ring portion 54 and second ring portion 58) within the cylindrical body 30. The first ring portion 54 and the second ring portion 58 are on opposite sides of the opening 50 and each include their own length, central axis, inner diameter, and outer diameter. Compared to the opening 50, the ring portions 54, 58 are where the sidewall 42 forms a complete cylinder rather than a portion of a cylinder (e.g., a half-cylinder as in the opening 50). The first ring portion 54 extends from the first open end 34 to the opening 50, and the second ring portion extends from the second open end 38 to the opening 50. Furthermore, because the cylindrical body 30 is curved, in some embodiments, the centerline of the first ring portion 54 may be offset from the centerline of the second ring portion 58 by approximately 30 to 60 degrees or approximately 45 degrees.

[0022] 5A-5B, there is shown a first ring portion 54 (e.g., proximate first aperture 35 and opening 50) and a portion of sidewall 42 of second ring portion 58 cut from endovascular stent graft extraction device 25. Sidewall 42 is shown to include a taper such that the width of sidewall 42 decreases from proximate first aperture 35 to proximate opening 50 (i.e., hollow bore 43 is narrower proximate first aperture 35 than proximate opening 50). In some embodiments, sidewall 42 of first ring portion 54 includes a taper such that the width of the sidewall proximate first aperture 35 is about 3-5 mm or about 4 mm, and the width of the sidewall proximate opening 50 is about 2-3 mm or about 2.8 mm. In some embodiments, the sidewalls 42 of the second ring portion 58 also include a taper such that the width of the sidewalls 42 decreases from adjacent the second aperture 39 to adjacent the opening 50. In some embodiments, the sidewalls 42 of the second ring portion 58 include a taper such that the width of the sidewalls adjacent the second aperture 39 is about 3-5 mm or about 4 mm and the width of the sidewalls adjacent the opening 50 is about 2-3 mm or about 2.8 mm. By expanding the diameter of the hollow bore 43 from the first aperture 35 and the second aperture 39 to the opening 50, the first ring portion 54 and the second ring portion 58 better receive the frame 14 and the prongs 12 of the endovascular stent graft 10. For example, as the diameter of the hollow bore 43 expands as the frame 14 is received by the first ring portion 54 or the second ring portion 58, there is less contact between the frame 14 and the side wall 42, resulting in less drag or friction between the frame 14 and the side wall 42. This allows the endovascular stent graft 10 to slide more easily into the first ring portion 54 or the second ring portion 58 (due to the less friction or reduced drag) and better prevents unintended movement of the endovascular stent graft 10.In some embodiments, the width of sidewall 42 decreases from first aperture 35 and second aperture 39 to opening 50, while the outer diameter of sidewall 42 remains the same and the inner diameter of sidewall 42 decreases or tapers (i.e., hollow bore 43 is narrower adjacent second aperture 39 and first aperture 35 than adjacent opening 50). As a result, the diameter of the portion of sidewall 42 that contacts the aortic wall does not change, but the diameter of the portion of sidewall 42 that contacts stent-graft 10 decreases.

[0023] Additionally, the first open end 34 and the end of the sidewall 42 immediately adjacent the opening 50 include a blunt (e.g., smooth, rounded, etc.) edge 70. In use, the blunt edge 70 will be the first to come into contact with the endovascular stent graft 10 implanted in the vessel. As a result, it is important that the blunt edge 70 be blunt or rounded to prevent sharp contrast that could snag or entangle with the frame 14, the vessel wall, and / or the prongs 12. In some embodiments, the blunt edge 70 includes a radius of curvature that is about 1-3 mm or about 2 mm. This allows the blunt edge 70 to naturally contact the prongs 12 and move them from the deployed position to the undeployed position without snagging or entangling with the prongs 12. Similarly, the sidewall 42 immediately adjacent the opening 50 can further include a second blunt edge 70 (for reasons similar to those of the first blunt edge 70). In this way, the prongs 12 do not catch on the sidewall 42 as they move away from the opening 50, which could pull on the entire endovascular stent graft extraction device 25. Like the sidewall 42 of the first open end 34, the sidewall 42 of the second open end 38 also includes a blunt or rounded edge 70 (which may be similar to the blunt edge 70 of the first open end 34).

[0024] 6A-6E , a method 200 for extracting an endovascular stent graft (e.g., stent graft 10) from a vessel 254 (e.g., one or more portions of the aorta, one or more arteries, etc.) is shown, according to one illustrative embodiment. Method 200 begins at step 204, in which a clamp (e.g., forceps) is used to grasp a portion of the endovascular stent graft 10. The clamp is used to grasp a portion of the endovascular stent graft 10 (e.g., one or more portions of the frame 14) to hold the endovascular stent graft 10 in place while moving the extraction device 25 over the endovascular stent graft 10, and later to extract the endovascular stent graft 10 (after the prongs 12 have been moved to the undeployed state). In some embodiments, prior to step 604, the vessel 254 itself is secured or clamped to prevent movement during method 200. In other embodiments, multiple clamps may be used to grasp a portion of the endovascular stent graft 10. In another embodiment, a clamp may be used to grasp the endovascular stent graft extraction device 25 (eg, by the sidewall 42).

[0025] Once the endovascular stent graft 10 is grasped by the clamp 258, the method 200 proceeds to step 208, where an extraction device (e.g., the endovascular stent graft extraction device 25) is inserted into the vessel 254. The endovascular stent graft extraction device 25 can be inserted into the vessel 254 through one or more incisions in the vessel 254 and can be configured to fit inside the vessel 254 (e.g., the dimensions can be modified before 3D printing the endovascular stent graft extraction device 25). In other embodiments, and prior to use, a user of the endovascular stent graft extraction device 25 can determine the diameter of the vessel 254 and then determine which end of the endovascular stent graft extraction device 25 to insert into the vessel 254. As discussed herein, the first open end 34 and the second open end 38 include different outer diameters (and inner diameters), and the user can determine which is appropriate for use with the vessel 254. In one embodiment, the diameter of the vessel 254 may be approximately 26 mm, and therefore the user may choose to insert the first open end 34 (compared to the second open end 38) into the vessel 254.

[0026] Once the endovascular stent graft extraction device 25 has been inserted into the vessel 254, the method 200 proceeds to step 212, where the endovascular stent graft extraction device 25 is slid over the stent graft 10 such that the first open end 34 is slid over the stent graft 10 and the side wall 42 is positioned between the stent graft 10 and the wall of the vessel 254, compressing the stent graft 10 within the first ring portion 54. When the first open end 34 contacts the frame 14 of the stent graft 10, the blunt edges 70 and taper of the side wall 42 allow the frame 14 to slide easily (e.g., with little or no resistance) into the hollow cavity 43. It is therefore helpful for the first aperture 35 to have an inner diameter large enough to receive the stent graft 10. In some embodiments (where the second open end 38 is inserted into the vessel 254 first), the endovascular stent graft extraction device 25 is slid over the stent graft 10 so that the second open end 38 slides over the stent graft 10 and the side wall 42 is positioned between the stent graft 10 and the wall of the vessel 254, compressing the stent graft 10 within the second ring portion 58.

[0027] After the endovascular stent graft extraction device 25 has been slid so that the sidewall 42 is positioned between the stent graft 10 and the wall of the vessel 254, the method 200 proceeds to step 216, where the endovascular stent graft extraction device 25 is further slid over the stent graft 10 until the endovascular stent graft extraction device 25 (e.g., the blunt edges 70 of the sidewall 42) cause the prongs (e.g., the prongs 12) to release from the wall of the vessel 254 (e.g., move from the deployed position to the undeployed position). To do this, the blunt edges 70 of the sidewall 42 can push the prongs 12 radially inward and into the hollow bore 43, so that the sidewall 42 is between the prongs 12 and the wall of the vessel 254. To remove the prongs 12 atraumatically, it is important that the prongs 12 are not caught on the sidewall 42, and therefore the sidewall 42 includes blunt edges 70 and tapers from the first aperture 35 and second aperture 39 to the opening 50. In other embodiments, other components of the endovascular stent graft extraction device 25 may be configured to remove the prongs 212 from the wall of the vessel 254.

[0028] Once the prongs 12 are released from the wall of the vessel 254, the method 200 proceeds to step 220, where the stent graft 10 and the endovascular stent graft extraction device 25 are simultaneously or sequentially completely removed from the vessel 254, with the sidewall 42 of the endovascular stent graft extraction device 25 positioned at least partially between the stent graft 10 and the vessel 254. At step 220, a clamp may be used to grasp at least one of the stent graft 10 and / or the endovascular stent graft extraction device 25 for removal (e.g., a clamp may be used to extract or unscrew either one). In some embodiments, also at step 220, the stent graft 10 and the stent graft extraction device 25 are removed together, with the stent graft extraction device 25 continuing to push the prongs 212 radially inward to prevent the prongs 25 from engaging the vessel 254. In this position, both the stent graft 10 and the endovascular stent graft extraction device 25 are removed from the vessel 254. In such an embodiment, the stent graft 10 may be extracted from the interior of the hollow bore 43 through the opening 50 after removal. In other embodiments, the stent graft 10 may be removed first, such that the stent graft 10 is extracted from the hollow bore 43 (e.g., positioned at least partially within the hollow bore 43) and through the opening 50. The stent graft 10 and the endovascular stent graft extraction device 25 are removed atraumatically from the vessel 254, such that they cause little or no damage to the vessel 254 itself. Because the sidewall 42 is positioned between the stent graft 10 and the vessel 254 when both are removed from the vessel 254, the vessel 254 does not contact (or only minimally contacts) the stent graft 10 and is better protected from damage. In comparison to the stent graft 10 including the prongs 12 , the sidewalls 42 of the endovascular stent graft extraction device 25 are relatively smooth and therefore do not pull on or adhere to the walls of the vessel 254 .

[0029] Referring now to FIG. 7 , an alternative embodiment of an endovascular stent graft extraction device 300 is shown. The endovascular stent graft extraction device 300 may be similar to the endovascular stent graft extraction device 25, and therefore, like reference numerals may be used for like components. For example, the endovascular stent graft extraction device 300 includes a cylindrical body 330 extending from a first open end 334 to a second open end 338. In comparison to the endovascular stent graft extraction device 25, the device 300 is shown to not include an opening 50, and thus, a user can access the hollow bore 343 defined by the sidewall 342 only from the first open end 334 or the second open end 338. While this may prevent a user of the endovascular stent graft extraction device 300 from easily accessing the hollow bore 343, the lack of an opening 50 may provide improved strength and rigidity for the sidewall 342.

[0030] 8 , an alternative embodiment of an endovascular stent graft extraction device 400 is shown. The endovascular stent graft extraction device 400 may be similar to the endovascular stent graft extraction device 25, and therefore, like reference numerals may be used for like components. For example, the endovascular stent graft extraction device 400 includes a cylindrical body 430 extending from a first open end 434 to a second open end 438. Compared to the endovascular stent graft extraction device 25, the device 400 is shown to not include an opening 50, to further include one or more grips 460, and to not include a blunt edge 70. The grips 460 extend radially from the sidewall 442 (e.g., as part of the sidewall 442) and along a portion of the length of the cylindrical body 430 (e.g., from adjacent the first aperture 435 to adjacent the central portion). In some embodiments, the grip 460 is configured to contact the wall of the vessel 254 (e.g., the aorta, artery, etc.) to better engage and be received by the vessel 254. In some embodiments, the grip 460 allows the endovascular stent graft extraction device 400 to better slide along the wall of the vessel 254. In other embodiments, the grip 460 allows the endovascular stent graft extraction device 400 to be better grasped by the user during the procedure (with or without a clamp).

[0031] 9 , an alternative embodiment of an endovascular stent graft extraction device 500 is shown. The endovascular stent graft extraction device 500 may be similar to the endovascular stent graft extraction device 25, and therefore, like reference numerals may be used for like components. For example, the endovascular stent graft extraction device 500 includes a cylindrical body 530 extending from a first open end 534 to a second open end 538. Compared to the endovascular stent graft extraction device 25, the device 500 includes a relatively straight (non-curved) cylindrical body 530, does not include an opening 50, and further includes one or more grips 560, but does not include a blunt edge 70. The grips 560 (which may be similar to the grips 460) extend radially from (e.g., as part of) the sidewall 542 and along the entire length of the cylindrical body 530. Additionally, device 500 has a bellowed portion 570 (e.g., an expanded outer diameter) from proximate the center of device 500 to second open end 538. In one embodiment, bellowed portion 570 extends approximately 30 mm from second open end 538 toward first open end 534 (i.e., the length of bellowed portion 570 is 30 mm). Bellowed portion 570 may be configured to contact and expand the wall of vessel 254. In this manner, bellowed portion 570 separates frame 14 of stent graft 10 from the wall of vessel 254, which in turn may better receive frame 14 of stent graft 10 within hollow bore 543. In some embodiments, bellowed portion 570 may have an outer diameter of approximately 36-40 mm or approximately 38 mm at open end 538 and an outer diameter of approximately 28-32 mm or approximately 33 mm at the smaller end of bellowed portion 570.

[0032] 10 , an alternative embodiment of an endovascular stent graft extraction device 600 is shown. The endovascular stent graft extraction device 600 may be similar to the endovascular stent graft extraction device 25, and therefore, like reference numerals may be used for like components. For example, the endovascular stent graft extraction device 600 includes a cylindrical body 630 extending from a first open end 634 to a second open end 638. Compared to the endovascular stent graft extraction device 25, the device 600 includes a relatively straight (non-curved) cylindrical body 630, does not include an opening 50, and further includes one or more grips 660, but does not include a blunt edge 70. The grips 660 (which may be similar to the grips 460) extend radially from (e.g., as part of) the sidewall 642 and along the entire length (or most of) of the cylindrical body 630. Additionally, device 600 has a corrugated portion 670 (e.g., an expanded outer diameter) from adjacent the center of device 600 to second open end 638. Corrugated portion 670 is less prominent than corrugated portion 570, but may still be configured to contact and expand the wall of vessel 254. As a result, corrugated portion 670 may have an outer diameter of approximately 21 mm at open end 538 and an outer diameter of approximately 20 mm at the smaller end of corrugated portion 570. In this manner, corrugated portion 670 separates frame 14 of stent graft 10 from the wall of vessel 254, which in turn may better receive frame 14 of stent graft 10 within hollow bore 643.

[0033] Notwithstanding the embodiments described above in connection with the figures, various modifications and inclusions to these embodiments are contemplated and considered within the scope of the present disclosure.

[0034] It should also be understood that the configuration and arrangement of elements of the systems and methods shown in the representative embodiments is merely illustrative. While only a few embodiments of the present disclosure have been described in detail, those skilled in the art upon reviewing this disclosure will readily appreciate that numerous modifications are possible (e.g., variations in the size, dimensions, structure, shape, and proportions of the various elements, parameter values, mounting mechanisms, use of materials, color, orientation, etc.) without materially departing from the novel teachings and advantages of the disclosed subject matter.

[0035] Accordingly, all such modifications are intended to be included within the scope of this disclosure. Any means-plus-function clause is intended to include the structures described herein as performing the recited function, and to encompass not only structural equivalents but also equivalent structures. Other substitutions, modifications, changes, and omissions may be made in the design, operating conditions, and configuration of the preferred and other exemplary embodiments without departing from the scope of this disclosure or as set forth in the appended claims.

[0036] With respect to the use herein of virtually any plural and / or singular term, those skilled in the art can convert from plural to singular and / or from singular to plural as appropriate to the context and / or application. For clarity, various singular / plural permutations may be expressly set forth herein.

[0037] Those skilled in the art will understand that the terminology used in this specification, in general, and in the appended claims in particular (e.g., the body of the appended claims), is generally intended as "open" language (e.g., the term "including" should be interpreted as "including, but not limited to," the term "having" should be interpreted as "having at least," the term "include" should be interpreted as "including, but not limited to," etc.). Those skilled in the art will further understand that where a specific number of introduced claim matter is intended, such intention will be clearly set forth in the claim; in the absence of such a setting, no such intention exists. For example, as an aid to understanding, the following appended claims may include the use of the introductory phrases "at least one" and "one or more" to introduce claim matter. However, even when the same claim includes the introductory phrase "one or more" or "at least one" and an indefinite article such as "a" or "an," the use of such phrases should not be construed as suggesting that the introduction of claim material by the indefinite article "a" or "an" limits any particular claim including the claim material so introduced to inventions containing only one such material (e.g., "a" and / or "an" should normally be construed to mean "at least one" or "one or more"). The same applies when a definite article is used to introduce claim material. In addition, those skilled in the art will recognize that even when a specific number of introduced claim material is explicitly recited, such a recitation should normally be construed to mean at least the recited number (e.g., the recitation "two material items," without any other modifier, normally means at least two material items, or more than two material items). Similarly, unless specified otherwise, the phrase "based on" should not be construed in a limiting manner and should therefore be understood as "based at least in part on."Furthermore, when notation similar to "at least one of A, B, and C, etc." is used, generally, such a structure is intended in the sense that one of ordinary skill in the art would understand this notation (e.g., "a system having at least one of A, B, and C" would include, but is not limited to, a system having only A, a system having only B, a system having only C, a system having both A and B, a system having both A and C, a system having both B and C, and / or a system having both A, B, and C, etc.). When notation similar to "at least one of A, B, or C, etc." is used, generally, such a structure is intended in the sense that one of ordinary skill in the art would understand this notation (e.g., "a system having at least one of A, B, or C" would include, but is not limited to, a system having only A, a system having only B, a system having only C, a system having both A and B, a system having both A and C, a system having both B and C, and / or a system having both A, B, and C, etc.). Furthermore, those skilled in the art will understand that virtually any disjunctive word and / or disjunctive phrase presenting two or more alternative terms, whether present in the specification, claims, or drawings, should be understood to contemplate the possibility of including one of those terms, either of those terms, or both terms. For example, the phrase "A or B" will be understood to include the possibilities of "A" or "B," or "A and B." Furthermore, unless otherwise stated, the use of words such as "about," "approximately," "per," "substantially," etc., means plus or minus 10 percent.

[0038] Additionally, while the figures show a particular order of method steps, the order of steps may differ from that shown, and two or more steps may be performed concurrently or with partial concurrence. All such variations are within the scope of the present disclosure.

Claims

1. 1. A device for removing an endovascular stent graft from a vessel, comprising: a cylindrical body having a first open end, a second open end, and a sidewall surrounding a hollow bore of the cylindrical body; an opening formed in the sidewall between the first open end and the second open end to form a first ring portion of the first open end and a second ring portion of the second open end; Equipped with a thickness of the sidewall at the first open end tapers toward the opening and a thickness of the sidewall at the second open end tapers toward the opening, such that the hollow bore is narrower at each open end than at the opening.

2. The device of claim 1 , wherein the first open end has a larger outer diameter than the second open end.

3. 3. The device of claim 2, wherein the first open end has an outer diameter of 24 to 26 millimeters and the second open end has an outer diameter of 18 to 20 millimeters.

4. 10. The device of claim 1, wherein the cylindrical body has a length of 10 to 15 centimeters.

5. The device of claim 1 , wherein the cylindrical body is curved along its length.

6. The device of claim 5 , wherein the opening is formed in the side wall at a concave portion of the curved cylindrical body.

7. The device of claim 1 , wherein edges of the cylindrical body at the first open end and the second open end are rounded to provide smooth edges.

8. The device of claim 1 , wherein the cylindrical body is rigid.

9. 10. The device of claim 1, wherein the cylindrical body is formed from a material suitable for sterilization selected from the group consisting of surgical / medical grade steel and stainless steel, and surgical / medical grade plastic.

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