Endoprosthesis with interlocking stents having varying stiffness

The interlocking stent elements with a discontinuous web of material address the challenges of compact delivery and expanded deployment, ensuring structural integrity and flexibility by limiting compression and twisting, and managing aperture size for uniform deployment.

JP2026026424APending Publication Date: 2026-02-16WL GORE & ASSOC INC
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Patent Information

Application Number
JP2025243686
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-01-21
Filing Date
2025-12-09
Publication Date
2026-02-16

AI Technical Summary

Technical Problem

Existing implantable stents face challenges in achieving a balance between compact delivery and expanded deployment while maintaining structural integrity and flexibility, particularly in areas where porosity and aperture size affect biological material passage and deployment uniformity.

Method used

The endoprosthesis features interlocking stent elements connected by a discontinuous web of material, such as a polymer film, which limits torsional and axial compression, twisting, and elongation, ensuring stability and flexibility through varying stiffness sections.

Benefits of technology

This design allows for controlled expansion and contraction while maintaining structural integrity, preventing foreshortening and accordioning, and providing uniform deployment with adjustable porosity and aperture size for biological material management.

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Abstract

To provide a good endoprosthesis or the like.SOLUTION: Endoprosthesis 100 is expandable from a compact delivery configuration to an enlarged deployed configuration. The endoprosthesis includes a plurality of rows, a first row and a second row, of stent elements 108 along its length 106. The first and second rows of stent elements each have a first plurality of alternating apices and a second plurality of alternating apices that are spaced apart to define an interlocking arrangement. Also included is a discontinuous web of material including a plurality of web elements spaced apart from one another and interconnecting the first plurality of alternating peaks and the second plurality of alternating peaks. The plurality of web elements are disposed along a first common circumference such that the plurality of web elements limit twisting and axial compression of the endoprosthesis between the first and second rows of stent elements when the endoprosthesis is in a deployed configuration.SELECTED DRAWING: Figure 1A
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of Provisional Application No. 62 / 963,917, filed January 21, 2020, which is incorporated herein by reference in its entirety for all purposes.

[0002] Field FIELD OF THE DISCLOSURE The present disclosure relates generally to implantable medical devices, and more particularly to implantable stents having flexibly connected adjacent stent elements. [Background technology]

[0003] background Implantable stents typically require a small, compact diameter for insertion into an intended body conduit, typically via a catheter, at a desired site for deployment, where the stent is expanded to a larger diameter. Balloon-expandable stents are expanded with an inflatable balloon. Self-expanding stents are constrained at a compact diameter by a restraining sleeve or other means and spring open when released. Self-expanding stents are generally formed from biocompatible, shape-memory, or superelastic materials. Nitinol stents are one common material used for self-expanding stents.

[0004] The evolution of implantable stents involved the use of tubular coverings attached to the stent. Covered stents have generally come to be referred to as stent-grafts. As an alternative to continuous or substantially continuous coverings (e.g., substantially fluid-impermeable coverings), flexible elements (e.g., film or membrane materials) can be used to interconnect the stent elements while leaving openings between the flexible elements. U.S. Patent No. 8,926,688 to Burkart et al., entitled "Stent Having Adjacent Elements Connected by a Flexible Web," describes such an alternative to covered stents. Burkart et al. describe a stent incorporating flexible, preferably polymeric, connecting elements that connect adjacent, spaced-apart stent elements.

[0005] In general, a fully covered stent graft has a surface area (A) equal to the circumference of the expanded stent multiplied by the length of the stent. max For a conventional open frame stent (as opposed to a stent graft), the surface area represented by all stent elements is the maximum surface area A max The actual surface area covered by the stent, i.e., the area covered by all components of the stent (including the connecting elements) in the deployed state, is A stent The porosity index, or PI, represents the open area (fraction of the maximum surface area not covered by all components of the stent assembly) as a percentage of the maximum surface area, where PI=(1-(A stent / A max ))×100%.

[0006] The actual surface area covered by the stent (A stentSeveral methods for measuring stent size include using a machine provided by Visicon Inspection Technologies, LLC (Napa, California). The Visicon Finescan™ Stent Inspection System (Visicon Finescan Machine Model 85) uses a 6000-pixel line-scan camera to generate a flattened, developed image of the stent. During operation, the stent is mounted on a sapphire mandrel with a fine diffusing surface. This mandrel is held under a linear array camera and rotated by the system electronics, which is used to trigger the linear array camera to collect image data row by row, precisely. After a complete rotation, a full image of the stent is obtained. Once the entire stent is imaged, software distinguishes between the covered stent and the background. The total number of image elements (pixels) is compared to the total number of pixels associated with the stent and the cover to determine the A. stent The basic settings of the machine used for this type of determination are (for example): Light, 100%, Exposure, 0.3 ms / line, Gain, 5, Threshold, 50, Noise Filter, 20, Smoothing, 4.

[0007] The open area can be a continuous single space, such as the space between the windings of a single helically wound stent element. Similarly, the open area can be represented by the space between multiple individual annular or ring-shaped stent elements. The open area can also be represented by the total area of ​​multiple apertures provided by either a single stent element (e.g., as shown in Figures 1B and 2B of Palmaz U.S. Pat. No. 4,776,337) or multiple stent elements providing multiple apertures. When multiple apertures are provided, they can be of equal or unequal size. In addition to metallic stent elements, the use of perforated graft covers or polymeric elements can also reduce the open area.

[0008] A stent with a porosity index greater than 50% is considered to be a substantially open stent.

[0009] In addition to the porosity index, if it is intended to cover only a portion of the stent area for a particular stent application, the size of the apertures providing the open area must be considered. For multiple apertures, the maximum size of an individual aperture must often be considered, especially if the apertures provide a "filtering" effect that controls or limits the passage of biological material from the lumen wall into the flow space of the body conduit.

[0010] Various stent devices are known that combine metallic stent elements with polymeric connecting elements (see, for example, U.S. Patent No. 5,507,767 to Maeda et al.) Another is a stent from InspireMD Ltd. (4 Derech Hashalom St., Tel Aviv 67892 Israel) that includes a flexible knitted sleeve with small opening apertures, similar to chain-link fencing. Summary of the Invention

[0011] Abstract According to one example ("Example 1"), an endoprosthesis has a length, a first end, a second end, and a longitudinal axis, wherein the endoprosthesis is expandable from a compact delivery configuration to an expanded deployed configuration. The endoprosthesis includes a plurality of rows of stent elements along the length of the endoprosthesis, the plurality of rows including a first row and a second row disposed adjacent to the first row. The first row of stent elements has a first plurality of alternating vertices, and the second row of stent elements has a second plurality of alternating vertices. The first plurality of alternating vertices and the second plurality of alternating vertices define a spaced-apart interlocking arrangement. The endoprosthesis also includes a discontinuous web of material including a plurality of web elements spaced apart from one another and interconnecting the first plurality of alternating vertices and the second plurality of alternating vertices. The plurality of web elements are arranged along a first common circumference such that when the endoprosthesis is in an expanded, deployed configuration, the plurality of web elements limit torsional and axial compression of the endoprosthesis between the first and second rows of stent elements.

[0012] According to another example ("Example 2"), further to Example 1, the discontinuous web of material further includes a second plurality of web elements spaced apart from one another and interconnecting the first plurality of alternating vertices and the second plurality of alternating vertices. The second plurality of web elements are disposed along a second common circumference that is longitudinally spaced apart from the first common circumference, such that the second plurality of web elements limit twisting and elongation of the endoprosthesis between the first and second rows of stent elements when the endoprosthesis is in the expanded, deployed configuration.

[0013] According to another example ("Example 3"), further to Examples 1 or 2, the discontinuous web of material is a polymer film that defines a plurality of apertures between the first and second rows of stent elements.

[0014] According to another example ("Example 4"), in addition to any one of Examples 1-3, the plurality of web elements and, optionally, the second plurality of web elements each extend angularly offset relative to the circumference of the endoprosthesis.

[0015] According to another example ("Example 5"), in addition to any one of Examples 1-4, circumferentially adjacent ones of the plurality of web elements extend at alternating opposite angles relative to one another.

[0016] According to another example ("Example 6"), in addition to any one of Examples 1-5, the plurality of web elements and, optionally, the second plurality of web elements each extend at an acute angle offset relative to the circumference of the endoprosthesis when the endoprosthesis is in the expanded, deployed configuration.

[0017] According to another example ("Example 7"), in addition to any one of Examples 1-6, the plurality of web elements each extend at an obtuse angle relative to a longitudinal axis of the endoprosthesis when the endoprosthesis is in the expanded, deployed configuration.

[0018] According to another example ("Example 8"), in addition to any one of Examples 1 to 3, the plurality of web elements and, optionally, the second plurality of web elements each extend circumferentially around the endoprosthesis.

[0019] According to another example ("Example 9"), in addition to any one of Examples 1-7, the first and second rows of stent elements and a plurality of web elements interconnecting the first and second plurality of alternating apexes of the first and second rows of stent elements are arranged in a first section along the length of the endoprosthesis. Further, the second section of the endoprosthesis along the length of the endoprosthesis includes a third row having alternating apexes of stent elements and a fourth row having alternating apexes of stent elements. The third and fourth rows define a spaced apart arrangement when the endoprosthesis is in the expanded, deployed configuration. The endoprosthesis includes a second discontinuous web of material interconnecting the third and fourth rows of stent elements such that the endoprosthesis is axially compressible between the third and fourth rows of stent elements when the endoprosthesis is in the expanded, deployed configuration.

[0020] According to another example ("Example 10"), further to Example 9, the second discontinuous web of material includes a plurality of web elements, each of which extends at an acute angle relative to the longitudinal axis of the endoprosthesis.

[0021] According to another example ("Example 11"), further to examples 9 or 10, the first section is adjacent to a first end of the endoprosthesis, and the second section is located closer to a midpoint between the first and second ends of the endoprosthesis than the first section.

[0022] According to another example ("Example 12"), in addition to any one of Examples 9-11, when the endoprosthesis is in the expanded, deployed configuration, the endoprosthesis is more axially stiff in the first section than in the second section.

[0023] According to another example ("Example 13"), in addition to any one of Examples 9-12, the endoprosthesis also includes a third section toward the second end of the endoprosthesis that is as axially stiff as the first section.

[0024] According to another example ("Example 14"), further to any one of Examples 9-13, the third row and the fourth row define a spaced apart interlocking arrangement when the endoprosthesis is in the expanded, deployed configuration.

[0025] According to another example ("Example 15"), further to any one of Examples 9-13, the third row and the fourth row define a spaced, non-interlocking arrangement when the endoprosthesis is in the expanded, deployed configuration.

[0026] According to another example ("Example 16"), in addition to any one of Examples 1-15, the plurality of rows of stent elements are formed from an elastically deformable material, optionally formed from a nickel-titanium alloy.

[0027] According to another example ("Example 17"), in addition to any one of Examples 1-16, the plurality of rows of stent elements are formed from a plastically deformable material, and optionally from a stainless steel alloy.

[0028] According to another example ("Example 18"), in addition to any one of Examples 1-17, the discontinuous web of material comprises a thin film.

[0029] According to another example ("Example 19"), in addition to any one of Examples 1-18, the discontinuous web of material comprises an ePTFE membrane.

[0030] According to another example ("Example 20"), in addition to any one of Examples 1-19, the first plurality of alternating vertices are axially aligned with the second plurality of alternating vertices to define a plurality of interlocked peaks and a plurality of interlocked valleys.

[0031] The foregoing examples are exemplary only and should not be read to limit or otherwise narrow the scope of any of the inventive concepts otherwise provided by this disclosure. While multiple examples are disclosed, still other embodiments will become apparent to those skilled in the art from the following detailed description, which shows and describes illustrative examples. Accordingly, the drawings and detailed description are to be regarded as illustrative in nature and not as restrictive. [Brief explanation of the drawings]

[0032] BRIEF DESCRIPTION OF THE DRAWINGS The accompanying drawings, which are included to provide a further understanding of the present disclosure, and which are incorporated in and constitute a part of this specification, illustrate embodiments and, together with the description, serve to explain the principles of the present disclosure.

[0033] [Figure 1A] FIG. 1A is a perspective view of an endoprosthesis according to some embodiments.

[0034] [Figure 1B] FIG. 1B is another view of an endoprosthesis, according to some embodiments.

[0035] [Figure 2A] FIG. 2A shows two adjacent stent elements of an endoprosthesis in an expanded, deployed configuration with no flexible bridges shown, according to some embodiments.

[0036] [Figure 2B] FIG. 2B shows two adjacent stent elements of an endoprosthesis in a compact delivery configuration with no flexible bridges shown, according to some embodiments.

[0037] [Figure 3A] FIG. 3A shows two adjacent stent elements of an endoprosthesis in an expanded, deployed configuration, according to some embodiments, with a flexible bridge connecting the adjacent stent elements along a common circumference.

[0038] [Figure 3B] FIG. 3B shows two adjacent stent elements of the endoprosthesis of FIG. 3A in a compact delivery configuration, according to some embodiments.

[0039] [Figure 3C] FIG. 3C shows two adjacent stent elements of another endoprosthesis in an expanded, deployed configuration, according to some embodiments, with a flexible bridge connecting the adjacent stent elements along two common circumferences.

[0040] [Figure 4A] FIG. 4A shows two adjacent stent elements of an endoprosthesis in an expanded, deployed configuration, according to some embodiments, with bridges extending at an acute angle relative to the longitudinal axis of the endoprosthesis.

[0041] [Figure 4B] FIG. 4B shows the adjacent stent elements of FIG. 4A along with an endoprosthesis in a compact delivery profile, according to some embodiments.

[0042] Those skilled in the art will readily appreciate that the various aspects of the present disclosure may be implemented by any number of methods and apparatus configured to perform the intended functions. It should also be noted that the accompanying drawings referred to herein are not necessarily drawn to scale and may be exaggerated to illustrate various aspects of the present disclosure, and in that regard the drawings should not be construed as limiting. DETAILED DESCRIPTION OF THE INVENTION

[0043] Detailed Description 1A and 1B show an implantable medical device, or more specifically, an endoprosthesis 100 having a first end 102, a second end 104, and an intermediate portion 103 extending therebetween, which may include a midpoint located between the first end 102 and the second end 104. The endoprosthesis 100 has a longitudinal length 106 measured from the first end 102 to the second end 104. The endoprosthesis 100 has multiple rows of stent elements 108 along its length 106, and webs or webs 110 of material (e.g., flexible polymeric material) connecting adjacent rows of the stent elements 108. The stent elements 108 are interlocked with one another, as described further below. The endoprosthesis 100 also defines a longitudinal axis 107 extending along the length of the endoprosthesis 100.

[0044] In some instances, the rows of stent elements 108 are formed by serpentine or undulating lengths of elongate elements (e.g., filament or wire material) that extend in a helical path around the endoprosthesis 100 along the length of the endoprosthesis 100. Each successive turn, pass, or winding of the elongate elements 109 results in rows of spaced-apart, adjacent stent elements 108, as shown. In some instances, the elongate elements 109 extend continuously between the opposing ends (first end 102 and second end 104) of the endoprosthesis 100. While a continuous helical winding is contemplated, other configurations are also contemplated. For example, distinct (e.g., circumferential) rings can be used to define adjacent rows of stent elements 108. In some instances, the stent elements 108 can be formed from an elastically deformable material, such as a nickel-titanium alloy. In some instances, the stent elements 108 may be formed from a plastically deformable material, such as a stainless steel alloy, and / or may otherwise be configured to be plastically deformed during deployment.

[0045] Webs 110 are discontinuous along their length due to a plurality of apertures or openings 116 formed therein. The discontinuity of webs 110 allows webs 110 to provide sufficient flexibility to allow stent elements 108 to move relative to one another. The movement of stent elements 108 relative to one another increases or decreases the overall length 106 of endoprosthesis 100, allowing endoprosthesis 100 to assume a compact delivery profile with a shorter length 106 or an expanded deployment profile with a longer length 106.

[0046] Stent elements 108 also include a first section 112 adjacent first end 102 and / or second end 104. In first section 112, webs 110 are configured to limit movement of stent elements 108 relative to one another. That is, first section 112 is configured to be relatively stiffer than some other sections of endoprosthesis 100, such as the middle portion of endoprosthesis 100.

[0047] FIG. 1A shows a first section 112 adjacent to the first end 102, a second section 113, and a third section 115 adjacent to the second end 104, where the second section 113 is located between the first section 112 and the third section 115, such that the webs 110 in the first section 112 and the third section 115 are configured such that relative movement of the stent elements 108 in the third section is restricted relative to one another.

[0048] First section 112 and / or third section 115 can be stiffer or more axially stiffer than second section 113, which is located closer to the midpoint of endoprosthesis 100 than the other sections. First section 112 and third section 115 can be similar to one another in terms of stiffness and axial stiffness, or can differ as desired.

[0049] Web 110 has a plurality of apertures or openings 116A and 116B along length 106 of endoprosthesis 100. As shown, web 110 in first section 112 and / or third section 115 has a greater surface area coverage or includes a lower open area than other portions of endoprosthesis 100 (e.g., second section 113). In some instances, the set of openings 116A is evenly spaced throughout length 106 of prosthesis 100, but first section 112 and / or third section 115 can include fewer or smaller openings (e.g., no additional openings 116B) than second section 113 of endoprosthesis 100.

[0050] As shown in FIG. 1B, having less open area in the web 110 allows for wider interconnecting members or web elements, also referred to as bridges 118A. As shown, the first section 112 has a first set of web elements or bridges 118A that differ from the second set of web elements or bridges 118B found in the second section 113. The web elements or bridges 118A and 118B can be polymer films that define sets of openings 116A and / or 116B. In some examples, the web elements or bridges 118A and 118B can be made from thin films ranging from about 0.001 mm to 0.1 mm, 0.1 mm to 0.2 mm, 0.2 mm to 0.5 mm, or other suitable thicknesses. In FIG. 1B, the first set of bridges 118A is wider than the second set of bridges 118B because the first section 112 does not have a second set of openings 116B between the first set of openings 116A. The first section 112 in this case is defined by four sets of stent elements 108A, 108B, 108C, and 108D, although in other examples there may be fewer or more stent elements in the first section 112. The second stent element 108B may be adjacent to the first stent element 108A, the third stent element 108C may be adjacent to the second stent element 108B, and so on.

[0051] Each of the stent elements 108 (e.g., stent elements 108A, 108B, 108C, 108D, etc.) can extend angularly offset relative to the circumference (e.g., centerline AA) of endoprosthesis 100. In some examples, third stent element 108C and fourth stent element 108D can define a spaced-apart arrangement when endoprosthesis 100 is in the expanded, deployed configuration. There can also be a second discontinuous web of material interconnecting third and fourth stent elements 108C and 108D such that endoprosthesis 100 is axially compressible between third and fourth stent elements 108C and 108D when endoprosthesis 100 is in the expanded, deployed configuration. Also, in some examples, when endoprosthesis 100 is in the expanded, deployed configuration, the rows of stent elements 108A and 108B can be in an interlocking arrangement spaced apart from one another, and the rows of stent elements 108C and 108D can be in a non-interlocking arrangement spaced apart from one another.

[0052] 2A and 2B show details of elongate element 109 shown in FIGS. 1A and 1B when endoprosthesis 100 is in either an expanded deployed profile or configuration or a compact delivery profile or configuration. Opposite vertices 200A and 200B are interconnected by straight or relatively straight elongate element segments 202. The vertices typically "point" in a direction that is substantially parallel to longitudinal axis 107 of endoprosthesis 100 (e.g., within 10 degrees of parallel), with alternating vertices 200A and 200B pointing in opposite directions. That is, alternating vertices 200A and 200B point to opposite ends of endoprosthesis 100. In some instances, vertices pointing in one direction (e.g., vertex 200A) are aligned along a first common line, while vertices pointing in the opposite direction (e.g., vertex 200B) are aligned along a second common line that is parallel to the first common line. For example, alternating vertices 200A can be axially aligned with one another to define a plurality of interlocked valleys, and alternating vertices 200B can also be axially aligned with one another to define a plurality of interlocked peaks, or vice versa.

[0053] As mentioned above, some or all of the rows of stent elements 108 along at least a portion of length 106 of endoprosthesis 100 are interlocked with one another. In the context of this disclosure, the terms "interlocked" or "interlocking" are defined as when, when endoprosthesis 100 is in its expanded, deployed profile, portions of two adjacent or neighboring stent elements (e.g., 108A and 108B as shown) intersect across a centerline or circumference (AA) that is located intermediate the two stent elements and extends or is oriented perpendicular to longitudinal axis 107. That is, as shown in FIG. 2A , centerline AA passes through stent elements 108A and 108B, such that left-facing apex 200A (sometimes called a valley) from stent element 108B and right-facing apex 200B (sometimes called a peak) from stent element 108A intersect across centerline AA. Additionally, in some instances, adjacent rows of stent elements 108 can interlock with one another along the entire length 106 of the endoprosthesis 100. Alternatively, there can be one or more rows of stent elements 108 that do not interlock with other adjacent rows along one or more portions along the length 106 of the endoprosthesis 100.

[0054] 2A shows two adjacent stent elements (108A and 108B) when endoprosthesis 100 is in an expanded deployed profile, e.g., when the rows of stent elements 108 are spaced further apart than in the compact delivery profile. Dimension 204 can be considered the height (amplitude) of adjacent opposing vertices, and dimension 206 can be considered the width of adjacent opposing vertices. Dimension 208 describes one complete cycle of the serpentine configuration. The elongate element diameter 210 and bend angle 212 of vertices 200A, 200B can be selected as appropriate. Additionally, vertices 200A, 200B can have any suitable radius of curvature. Dimension 214A describes the distance between adjacent rows of stent elements 108 when endoprosthesis 100 is in the expanded, deployed profile, which may be measured, for example, from apex 200A of a first stent element 108A to the nearest apex 200A of a second stent element 108B (not the apex 200B facing in the opposite direction from apex 200A). Figure 2B shows endoprosthesis 100 when it is in the compact delivery profile, and dimension 214B is the distance between adjacent rows of stent elements 108A and 108B when endoprosthesis 100 is in the compact, deployed profile.

[0055] 3A and 3B show examples of how openings 116A and bridges 118A can be configured in first section 112 and / or third section 115, according to some embodiments. FIG. 3A shows openings 116A and bridges 118A when endoprosthesis 100 is in an expanded, deployed profile where stent elements 108A and 108B are further apart from each other than in the compact delivery profile shown in FIG. 3B. Bridges 118A are formed such that each bridge 118A formed between stent elements 108A and 108B encompasses a circumferential reference line or circumference 300 that is oriented substantially perpendicular to longitudinal axis 107 of endoprosthesis 100. The circumferential reference line that defines the circumference of endoprosthesis 100 extends circumferentially about longitudinal axis 107. Thus, in some instances, circumference 300 intersects all bridges 118A, thereby forming a common circumference 300 between bridges 118A, such that bridges 118A limit torsional and axial compression of endoprosthesis 100 between the first and second rows of stent elements (e.g., 108A and 108B) when endoprosthesis 100 is in the expanded, deployed configuration. In some instances, the angle formed between circumference 300 and longitudinal axis 107 can range from about 75 degrees to 90 degrees, about 80 degrees to 90 degrees, about 85 degrees to 90 degrees, or any other suitable obtuse angle therebetween. Additionally, in some instances, circumference 300 can overlap centerline AA, previously shown in FIG. 2A .

[0056] In Figure 3B, two adjacent stent elements 108A and 108B are forced toward one another, stretching or pulling bridge 118A. When web 110 is made from a flexible, relatively inextensible polymeric material, bridge 118A resists such axial compression. However, in instances where web 110 is made from an elastically extensible material, bridge 118A stores potential energy during such axial compression, resisting such compression and biasing the row of stent elements 108A and 108B back to the initial position shown in Figure 3A. Thus, in some instances, bridge 118A can limit the movement of stent elements 108A and 108B relative to one another. In particular, when the rows of stent elements 108A and 108B are radially collapsed (e.g., when the endoprosthesis is in a compact delivery profile), bridges 118A are free to bend or angle and do not prevent or resist axial compression between the rows of stent elements 108A and 108B.

[0057] 3C shows an example of how bridges 302A and 302B can be configured in first section 112 and / or third section 115, according to some embodiments. Unlike bridge 118A in FIGS. 3A and 3B, bridges 302A and 302B encompass multiple circumferences that are substantially parallel to one another. Specifically, bridges 302A share a first circumference 300A that is common among bridges 302A, and bridges 302B include a second circumference 300B that is common among bridges 302B, with first circumference 300A and second circumference 300B being parallel to one another. Thus, first plurality of bridges 302A and second plurality of bridges 302B limit twisting and elongation of endoprosthesis 100 between the first and second rows of stent elements 108 when endoprosthesis 100 is in the expanded, deployed configuration. The positions of bridges 302A and 302B can be described as being in a "staggered" configuration relative to one another, in that there is no single straight line that passes through all of bridges 302A and 302B. In some examples, each of bridges 118A (or 302A and 302B) can extend offset at an acute angle relative to circumference 300 of endoprosthesis 100 when endoprosthesis 100 is in the expanded, deployed configuration. In some examples, each of bridges 118A (or 302A and 302B) can extend at an obtuse angle relative to longitudinal axis 107 of endoprosthesis 100 when endoprosthesis 100 is in the expanded, deployed configuration.

[0058] 4A and 4B show examples of how openings 116B and bridges 118B can be configured in second section 113, according to some embodiments. In some instances, circumferentially adjacent bridges 118B extend at alternating opposite angles relative to one another. FIG. 4A shows openings 116A and 116B and bridges 118B when endoprosthesis 100 is in an expanded, deployed profile. Each of bridges 118B is formed to include a line 400 that is disposed at a different angle than bridge 118A. For example, each of bridges 118B is disposed at an acute angle 402 relative to longitudinal axis 107 of endoprosthesis 100. In some instances, acute angle 402 can be in a range of about 5° to 10°, about 5° to 20°, about 5° to 30°, about 5° to 45°, or any other suitable angle range therebetween.

[0059] 4B, the length of each of the bridges 118B decreases. Thus, in this state, there is no tension on the bridges 118B, and therefore no substantial buildup of elongation, tension, or potential energy within the bridges 118B to restrict movement of the stent elements 108A and 108B relative to one another.

[0060] Although various polymeric films are suitable for use as the stent cover (or coating) material for this device, as well as the web of material used to define the bridge of the endoprosthesis, a combination of FEP (fluorinated ethylene propylene) film used in combination with an ePTFE film or membrane is contemplated. An ePTFE film for use with a stent element is one with multiaxial fibril orientation, as shown by the scanning electron micrograph in Figure 3. It can be seen how the fibrils are oriented in all directions within the plane of the ePTFE film. This type of ePTFE film can be manufactured as taught by U.S. Pat. No. 7,306,729 to Bacino et al. and U.S. Published Patent Application No. 2007 / 0012624. This same type of film can optionally be provided with a partial coating of a thin layer of FEP (i.e., a discontinuous coating with openings through the FEP film coating). FEP-coated ePTFE films having either a discontinuous (porous) FEP coating or a continuous (non-porous) FEP coating can generally be made as taught by Myers et al., U.S. Pat. No. 5,735,892.

[0061] In some examples, the stiffness of bridges 118A in first section 112 and / or third section 115 can be increased by applying one or more additional materials to bridges 118A. For example, in addition to web 110, a secondary material, such as another layer of polymer as described above, or a fibrous material, as well as any other suitable material, can be attached to bridges 118A to limit movement of the rows of stent elements 108 relative to one another in first section 112 and / or third section 115. In some examples, the additional material applied to bridges 118A can be the same material from which web 110 is made.

[0062] Benefits of increasing stiffness to limit movement of stent elements relative to one another at or near the end sections include preventing foreshortening of the stent elements during expansion as the stent elements are deformed. In some instances, an endoprosthesis is mounted on a balloon for subsequent deployment and expansion, and if the balloon expands unevenly, the stent elements of the endoprosthesis can experience foreshortening or accordioning in regions near the ends of the endoprosthesis. Making regions of the endoprosthesis proximal to the ends stiffer or more rigid during expansion reduces the likelihood of such undesirable changes in the shape of the endoprosthesis.

[0063] The embodiments have been described above both generically and with reference to specific embodiments. It will be apparent to those skilled in the art that various modifications and variations can be made in the embodiments without departing from the scope of the present disclosure. Thus, the embodiments are intended to cover the modifications and variations of the embodiments provided they come within the scope of the appended claims and their equivalents. (Aspect) (Aspect 1) An endoprosthesis having a length, a first end, a second end, and a longitudinal axis, the endoprosthesis being expandable from a compact delivery configuration to an expanded deployed configuration, the endoprosthesis comprising: a plurality of rows of stent elements along a length of the endoprosthesis, the plurality of rows including a first row and a second row disposed adjacent to the first row, the first row of stent elements having a first plurality of alternating vertices and the second row of stent elements having a second plurality of alternating vertices, the first plurality of alternating vertices and the second plurality of alternating vertices defining a spaced apart interlocking arrangement; and a discontinuous web of material including a plurality of web elements spaced apart from one another and interconnecting the first plurality of alternating apexes and the second plurality of alternating apexes, the plurality of web elements being arranged along a first common circumference such that the plurality of web elements limit torsional and axial compression of the endoprosthesis between the first and second rows of stent elements when the endoprosthesis is in an expanded, deployed configuration; an endoprosthesis, including (Aspect 2) 2. The endoprosthesis of embodiment 1, wherein the discontinuous web of material further includes a second plurality of web elements spaced apart from one another and interconnecting the first plurality of alternating vertices and the second plurality of alternating vertices, the second plurality of web elements being arranged along a second common circumference that is longitudinally spaced apart from the first common circumference, such that when the endoprosthesis is in an expanded, deployed configuration, the second plurality of web elements limit twisting and elongation of the endoprosthesis between the first and second rows of stent elements. (Aspect 3) 3. The endoprosthesis of embodiment 1 or 2, wherein the discontinuous web of material is a polymeric film that defines a plurality of apertures between the first and second rows of stent elements. (Aspect 4) 4. The endoprosthesis of any one of embodiments 1-3, wherein the plurality of web elements and, optionally, the second plurality of web elements each extend angularly offset relative to the circumference of the endoprosthesis. (Aspect 5) The endoprosthesis of any one of embodiments 1-4, wherein circumferentially adjacent ones of the plurality of web elements extend at alternating opposite angles relative to one another. (Aspect 6) 6. The endoprosthesis of any one of embodiments 1-5, wherein the plurality of web elements and, optionally, the second plurality of web elements, each extend at an acute angle offset relative to the circumference of the endoprosthesis when the endoprosthesis is in the expanded, deployed configuration. (Aspect 7) 7. The endoprosthesis of any one of embodiments 1-6, wherein the plurality of web elements each extend at an obtuse angle relative to a longitudinal axis of the endoprosthesis when the endoprosthesis is in the expanded, deployed configuration. (Aspect 8)

[0023] The endoprosthesis of any one of embodiments 1-3, wherein the plurality of web elements and, optionally, the second plurality of web elements each extend circumferentially around the endoprosthesis. (Aspect 9) 8. The endoprosthesis of any one of embodiments 1-7, wherein the first and second rows of stent elements and a plurality of web elements interconnecting the first and second rows of stent elements and the first and second plurality of alternating apexes of the first and second rows of stent elements are arranged in a first section along a length of the endoprosthesis, and wherein a second section of the endoprosthesis along the length of the endoprosthesis includes a third row with alternating apexes of stent elements and a fourth row with alternating apexes of stent elements, the third and fourth rows defining a spaced apart arrangement when the endoprosthesis is in an expanded, deployed configuration, and the endoprosthesis includes a second discontinuous web of material interconnecting the third and fourth rows of stent elements such that the endoprosthesis is axially compressible between the third and fourth rows of stent elements when the endoprosthesis is in the expanded, deployed configuration. (Aspect 10) 10. The endoprosthesis of embodiment 9, wherein the second discontinuous web of material includes a plurality of web elements, each of which extends at an acute angle relative to the longitudinal axis of the endoprosthesis. (Aspect 11) 11. The endoprosthesis of claim 9 or 10, wherein the first section is adjacent to a first end of the endoprosthesis and the second section is located closer to a midpoint between the first and second ends of the endoprosthesis than the first section. (Aspect 12) 12. The endoprosthesis of any one of embodiments 9-11, wherein the endoprosthesis is more axially stiff in the first section than in the second section when the endoprosthesis is in the expanded, deployed configuration. (Aspect 13) 13. The endoprosthesis of any one of embodiments 9-12, further comprising a third section toward the second end of the endoprosthesis that is as axially stiff as the first section. (Aspect 14) 14. The endoprosthesis of any one of embodiments 9-13, wherein the third row and the fourth row define a spaced-apart interlocking arrangement when the endoprosthesis is in an expanded, deployed configuration. (Aspect 15) 14. The endoprosthesis of any one of embodiments 9-13, wherein the third row and the fourth row define a spaced, non-interlocking arrangement when the endoprosthesis is in an expanded, deployed configuration. (Aspect 16) 16. The endoprosthesis of any one of embodiments 1-15, wherein the plurality of rows of stent elements are formed from an elastically deformable material, optionally from a nickel-titanium alloy. (Aspect 17) 17. The endoprosthesis of any one of embodiments 1-16, wherein the plurality of rows of stent elements are formed from a plastically deformable material, optionally from a stainless steel alloy. (Aspect 18) 18. The endoprosthesis of any one of embodiments 1-17, wherein the discontinuous web of material comprises a thin film. (Aspect 19) 19. The endoprosthesis of any one of embodiments 1-18, wherein the discontinuous web of material comprises an ePTFE membrane. (Aspect 20) 20. The endoprosthesis of any one of embodiments 1-19, wherein the first plurality of alternating apexes are axially aligned with the second plurality of alternating apexes to define a plurality of interlocked peaks and a plurality of interlocked valleys.

Claims

1. an endoprosthesis having a first end, a second end, and a longitudinal axis, the endoprosthesis being expandable from a compact delivery configuration to an expanded deployed configuration, the endoprosthesis comprising: A first section, a first plurality of rows of stent elements; a first plurality of web elements configured to limit movement of the first plurality of rows of stent elements relative to one another within the first section; a first section including: A second section, a second plurality of rows of stent elements including apices defining a spaced apart interlocking arrangement in the compact delivery configuration and in the expanded deployed configuration; a second section including a second plurality of web elements spaced apart from one another and interconnecting said vertices; and Including, the second plurality of rows of stent elements are arranged circumferentially about the endoprosthesis perpendicular to the longitudinal axis such that the first section is axially stiffer than the second section.

2. 10. The endoprosthesis of claim 1, wherein the first section is positioned adjacent to the first end or the second end, and the second section is positioned closer to a midpoint between the first end and the second end than the first section.

3. The endoprosthesis of any one of claims 1-2, wherein the first plurality of web elements and the second plurality of web elements are polymeric films that define a plurality of apertures.

4. The endoprosthesis of any one of claims 1 to 3, wherein the first plurality of web elements and the second plurality of web elements extend at an angle relative to a circumference of the endoprosthesis.

5. The endoprosthesis of any one of claims 1 to 4, wherein circumferentially adjacent ones of the second plurality of web elements extend at alternating opposite angles relative to one another.

6. The endoprosthesis of any one of claims 1 to 5, wherein the first plurality of web elements has a greater surface area coverage than the second plurality of web elements.

7. The endoprosthesis of any one of claims 1 to 6, wherein the first plurality of web elements includes fewer or smaller openings than the second plurality of web elements.

8. The endoprosthesis of any one of claims 1 to 7, wherein the first plurality of web elements is wider than the second plurality of web elements.

9. The endoprosthesis of any one of claims 1 to 8, wherein each of the first plurality of web elements is disposed at an angle of between 5° and 45° relative to the longitudinal axis of the endoprosthesis.

10. A third section, a third plurality of rows of stent elements; and a third plurality of web elements configured to limit movement of the third plurality of rows of stent elements relative to one another in the third section such that the third section is axially stiffer than the first section; The endoprosthesis of claim 1 , further comprising a third section comprising:

11. The endoprosthesis of claim 10 , wherein the third plurality of web elements has a greater surface area coverage than the second plurality of web elements.

12. 12. The endoprosthesis of claim 10 or 11, wherein the third section includes fewer or smaller openings than the second section.

13. The endoprosthesis of any one of claims 10 to 12, wherein the third plurality of web elements has a wider width than the second plurality of web elements.

14. 14. The endoprosthesis of claim 10, wherein the first plurality of rows of stent elements, the second plurality of rows of stent elements, or the third plurality of rows of stent elements are made of an elastically or plastically deformable material.

15. 15. The endoprosthesis of claim 14, wherein the elastically deformable material comprises a nickel-titanium alloy and the plastically deformable material comprises a stainless steel alloy.

16. The endoprosthesis of any one of claims 10 to 15, wherein the first plurality of web elements, the second plurality of web elements, or the third plurality of web elements are made of ePTFE membrane.