DYNAMIC MANDREL FOR INDUCING STRESS INTO AN EMBOLIC COIL
20250009360 ยท 2025-01-09
Inventors
Cpc classification
B21F3/12
PERFORMING OPERATIONS; TRANSPORTING
A61B17/12145
HUMAN NECESSITIES
International classification
A61B17/12
HUMAN NECESSITIES
A61B17/16
HUMAN NECESSITIES
Abstract
Disclosed are example embodiments of an endovascular coil having a twisted
Claims
1. A twisted figure 8 embolic coil consisting essentially of: a wire wound into a coil having the shape of a stacked plurality of at least 3 twisted figure 8 configurations around a mandrel consisting essentially of a parallel set of rods; wherein, each figure 8 configuration in the stacked plurality has a respective first loop of wire; a respective second loop of wire; a respective common axis of both the respective first loop and the respective second loop; a respective inflection area having a respective focal point between the respective first loop and the respective second loop; and, a respective twist in the respective inflection area induced by a rotation between the first loop and the second loop at the respective focal point to create a desired offset angle of the twist at 5-45 degrees; and, the twisted figure 8 endovascular coil is formed by a process that includes winding a wire around a mandrel consisting essentially of (i) a first rod that is parallel to a second rod and (ii) an axis of rotation that is normal to, interconnects, and operable for rotating the first rod relative to the second rod, the winding creating the stacked plurality of at least 3 figure 8 configurations, each respective inflection area in the stacked plurality aligned as a single stack of inflection areas having a single stack of focal points; rotating the first rod relative to the second rod about the single stack of focal points at the axis of rotation to induce the twist in each respective inflection area in the single stack of inflection areas to create the desired offset angle of 5-45 degrees; and, heat setting the twisted wire to form the twisted figure 8 endovascular coil having the desired offset angle of the twist set at 5-45 degrees.
2. The coil of claim 1, wherein, the heat setting temperature is in the range of 650 F. to 750 F. at a time in the range of 20 minutes to 40 minutes.
3. The coil of claim 1, wherein the rotating includes selecting desired offset angle from the group consisting of 30, 35, 40, 45, and 50 degrees.
4. The coil of claim 1, wherein the rotating includes selecting the desired offset angle from the group consisting of 30, 35, 40, and 45 degrees.
5. The coil of claim 1, wherein the second loop comprises undulating tracing pattern that dips above and below a primary plane of the second loop.
6. The coil of claim 1, wherein the first loop comprises a first cross-section and the second loop comprises a second cross-section, wherein the first and second cross-section are different and are selected from the group consisting of loop shape, loop diameter, and loop thickness.
7. The coil of claim 1, wherein the wire has a change of a physical attribute along the length of the wire, the change in wire attribute selected from the group consisting of a wire stiffness, cross-sectional shape, diameter, and extensions/protrusions.
8. The coil of claim 1, wherein the mandrel has a shape that induces a stress point into the endovascular coil.
9. The coil of claim 12, wherein the stress point has a bending radius between 0.001 to 0.5.
10. A method for fabricating a twisted
11. The method of claim 14, wherein the rotating includes selecting the desired offset angle from the group consisting of 30, 35, 40, 45, and 50 degrees.
12. The method of claim 14, wherein the rotating includes selecting the desired offset angle from the group consisting of 30, 35, 40, and 45 degrees.
13. The method of claim 16, wherein the method includes add a different wire attribute along the length of the wire, the different wire attribute selected from the group consisting of a wire stiffness, cross-sectional shape, diameter, or external feature.
14. A mandrel for shaping a wire, the mandrel comprising: a first rod having a first central axis on a first plane parallel to a second plane; a second rod having a second central axis on the second plane; and, a point of rotation that rotatably connects the first rod to the second rod; wherein, the first rod rotates on the first plane relative to the second rod.
15. The mandrel of claim 18, wherein the first rod is round.
16. The mandrel of claim 18, wherein both the first rod and the second rod are round.
17. The mandrel of claim 18, wherein the first rod shapes a first loop, the second rod shapes a second loop, the first rod and second rod to shape the first loop to have a diameter that is smaller than the diameter of the second loop.
18. The mandrel of claim 18, wherein the first rod shapes a first loop, the second rod shapes a second loop, the first rod configured to shape the first loop to have a shape that is different than the shape of the second loop.
19. The mandrel of claim 18, wherein the first rod shapes a first loop, the second rod shapes a second loop, the first rod and second rod to shape the first loop to have a shape that is different than the shape of the second loop, and each shape can be independently selected from the group consisting of a circular shape, a polygonal shape, or an elliptical shape.
20. The mandrel of claim 18, wherein the first rod shapes a first loop, the second rod shapes a second loop, the first rod configured to induce a stress point in to the first loop.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The foregoing summary, as well as the following detailed description, is better understood when read in conjunction with the accompanying drawings. The accompanying drawings, which are incorporated herein and form part of the specification, illustrate a plurality of embodiments and, together with the description, further serve to explain the principles involved and to enable a person skilled in the relevant art(s) to make and use the disclosed technologies.
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[0028]
[0029] The figures and the following description describe certain embodiments by way of illustration only. One skilled in the art will readily recognize from the following description that alternative embodiments of the structures and methods illustrated herein may be employed without departing from the principles described herein. Reference will now be made in detail to several embodiments, examples of which are illustrated in the accompanying figures. It is noted that wherever practicable similar or like reference numbers may be used in the figures to indicate similar or like functionality.
DETAILED DESCRIPTION
Overview
[0030] Disclosed herein is an endovascular/embolic coil that exhibits a twisted figure 8 shape. The figure 8 shape have two round portions that form the upper and lower portions of the figure 8 shape. In the twisted figure 8 coil, one of the round portions is twisted or rotated with respect to the other non-rotated round portion. The rotated round portion can be rotated by any degree of rotation such as, but not limited to, a range between 1-179 degrees. In some embodiments, the rotated round portion is rotated by 45 degrees. In another example, the rotated round portion is rotated by 90 degrees. The round portions of the figure 8 coil can be circular, polygonal, or elliptical.
[0031] In some embodiments, the rotated round portion is rotated about an axis that is substantially parallel to the semi-major axis of the non-rotated round portion. If the non-rotated round portions are circular, then the semi-major axis is the diameter. In this case, the rotated round portion is rotated about a common or longitudinal axis of the two round portions. Stated differently, the rotated round portion is rotated about the longitudinal axis of the straight figure 8, which is the common major axis of both round portions. More detail on the relative position and rotation of the round portions of the figure 8-shaped coil is provided below.
[0032] The embolic coil is configured to have a twisted figure 8 shape in its minimum energy state or secondary configuration. When the embolic coil is uninhibited by a sleeve or catheter, the coil is configured to revert to its secondary configuration to obtain a minimum energy state, which is in a shape of a twisted figure 8. When the embolic coil is dispensed on a flat surface (outside of the body), the coil forms multiple layers of figure 8s stacking on top of each other while appearing to be generally flat-not rotated or twisted. This is due to the restriction of the flat surface and gravity pulling the rotated round portion of the embolic coil toward the flat surface. When deployed inside the body (e.g., inside an aneurysm), the same embolic coil will have a twisted figure 8 shape (see for example
[0033] In some embodiments, the twisted figure 8 coil can have multiple portions such as, but not limited to, a proximal portion and distal portion. The distal portion can be made with a different material or the same material but with different attributes such as, but not limited to, stiffness (e.g., diameter, thickness), softness, and other external features (e.g., fiber protrusions). In some embodiments, distal portion can be thinner and more pliable than the proximal portion. Conversely, the proximal portion can be thinner and more pliable than the distal portion.
Twisted Figure 8
[0034]
[0035]
[0036] In some embodiments, after second loop 110 is rotated about axis 150, second loop 110 can be further pivoted about inflection region 135 or focal point 137 by 1 to 90 degrees. For example, second loop 110 at the position shown in
[0037] Stated differently, the twisted figure 8 coil 100 can be formed starting with both loops 105, 110 in substantially the same plane. For the purpose of illustration, let us assume that coil 100 is standing vertically with first loop 105 at the top and second loop 110 at the bottom. To form the twisted figure 8 shape, first or upper loop 105 is held in place while second or bottom loop 110 is twisted about longitudinal axis 130. As mentioned, the angle of rotation can be any degrees. As shown, the angle of rotation is 90 degrees. During a manufacturing stage of twisted figure 8 coil 100, multiple figure 8 coils can be formed and twisted at the same time using a special mandrel. More description on the coil wrapping and heat setting procedures for fabricating twisted figure coil 100 is provided below (see
[0038]
[0039] Next, loop 210 is then rotated about axis 204 by a desired degree of rotation (e.g., 2, 10, 45, 90). This creates the twisted figure 8 coil 250 as second loop 210 is both twisted and offset. It should be noted that twisted figure 8 coil 250 can also be formed by first rotating second loop 210 about axis 212 (by any degree of rotation) and then offsetting the rotated coil as shown in
[0040] The first loop (e.g., 105, 205) can have approximately the same diameter as the second loop (e.g., 110, 210). The diameter of first loop (Moo) can be smaller than the diameter of the second loop (D.sub.loop2). In some embodiments, the first loop can have a larger diameter than the second loop (D.sub.loop1>D.sub.loop2). The first and second loops can be circular, polygonal, or elliptical. In some embodiments, the first and second loops can have a different loop shape such as an ellipse or a polygon (e.g., hexagon and decagon). For example, the first loop (e.g., 105, 205) can be circular and the second loop (e.g., 110, 210) can be polygonal. In another instance, the first loop (e.g., 105, 205) can have an elliptical shape and the second loop (e.g., 110, 210) can have a hexagonal shape.
[0041] The cross-sectional shape of the first and second loops 105 and 110 can be the same. Alternatively, the cross-sectional shape of the first and second loops 105 and 110 can be different. For example, first loop 105 can have a circular cross-sectional shape and second loop 110 can have a hexagonal cross-sectional shape. The coil thickness (diameter of the cross-section) of the first and second loops 105 and 110 can be the same. In some embodiments, the coil thickness of the first and second loops 105 and 110 can be different. For example, the first loop can have a larger outer diameter than the second loop. For example, the first loop can have an outer diameter of 0.00257 and the second loop can have an outer diameter of 0.002.
[0042] Additionally, twisted figure 8 coil 100 and 250 can have two different portions, a proximal and a distal portion. The proximal portion can have a total length of 20-40 cm, and the distal portion can have a total length of 3-10 cm. Each portion can have multiple twisted figure 8 coils. Although coils 100 and 250 are shown individually (for illustrative purposes), coils 100 and 250 can have multiple coils connected to each other as shown in
[0043] Referring again to
[0044] In some embodiments, axis 130 can also be curved or angled. The curve can be gradual from end-to-end of coil 100. Alternatively, the curve can be abrupt starting at transitional portion 131. Axis 130 can be curve or angle such that tangents of loop 105 and loop 110 can be parallel or perpendicular (0-90 degrees) to each other. In some embodiments, the tangents of loop 105 and loop 110 are 45 degrees with respect to each other.
[0045] Each loop 105 or 110 can have multiple loops stacked together (see
[0046] In some embodiments, the transition or inflection portion 131 includes a waist area, which is the area where loop portions 145 and 147 is the closest to each other. A waist gap 150 is the distance between the loop portions 145 and 147. In some embodiments, the size of gap 150 can range from 0 (touching or overlapping) to half of the diameter of loop 105 or loop 110. The size of gap 150 can be substantially the same as the diameter of the wire coil of loop 105. In some embodiments, gap 150 can range between 0.1(D.sub.loop1) and 0.8(D.sub.loop1). For example, gap 150 can be 0.3 times D.sub.loop1 or D.sub.loop2. Gap 150 can also range between 0.1(D.sub.loop2) and 0.8(D.sub.loop2). As noted, D.sub.loop1 can be different than D.sub.loop2.
[0047] In some embodiments, loop 105 can be form on a mandrel with loops 105 and loop 110 are initially parallel (being on the same plane). Then prior to heat shaping, the mandrel can be rotated to adjust the angle relative to loops 105 and 110. The mandrel is configured to be rotatable such that the angle relative to loops 105 and 110 can be adjusted between 5-175 degrees. For example, the mandrel can be rotated between 30-90 degrees prior to heat shaping. Endovascular coil 100 can be made of a shape retentive metal alloy such as Nitinol. Other suitable bio-compatible metals and/or metal alloys can also be used (e.g., stainless steel, platinum) to fabricate coil 100.
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[0049] As shown, coil 300 includes upper loop 305 and bottom loop 310. Loop 305 can be disposed substantially on plane 315, and loop 310 can be disposed substantially on plane 315. Loop 310 can have an undulating tracing pattern that dips above and below plane 315. For example, when tracing the entire circumference of loop 310 at any starting point, the traced path (as it follows the circumference of loop 310) would break plane 315 at several locations when the entire loop is traced. In some embodiments, loop 310 breaks plane 235 at least 2 times on the left and at least 2 times on the right. For example, loop 310 can break plane 235 at three different locations 320, 322, and 324. In some embodiments, loop 305 and/or 210 can have an overall circular or polygonal shape such as a hexagon or decagon. Although not obvious from
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[0054] Each of the framing coils described above can have repeating loops on one or more planes (e.g., plane 115 or plane 120). In some embodiments, applying the disclosed relationships onto subsequent loop pairings using different plane-pairing (e.g., plane 2/plane 3, plane 3/plane 4) to create the intended length of the coil, which can be between 1 cm to 80 cm. The coil shape may leverage a combination of closed/open, intersect/non-intersect and CW/CCW strategies throughout the entire length of the coil. It should be noted that coils 250 and 300 can also one or more features and attributes of coil 100 as described in
[0055]
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[0057]
[0058] Process 1000 starts in
[0059] In
[0060]
[0061] For the heat setting procedure, the oven can be set at 650-750 degrees Celsius, and the bake time can be 20-40 minutes. In some embodiments, the bake time is 30 minutes, and the temperature of the oven is set at 700 degrees Celsius. Alternatively, coil 100 can be heat treated at 735 degrees Celsius. Although
[0062]
[0063] In some embodiments, the twisted figure 8 coil (e.g., 100, 250, 300, 800, 900) disclosed above can have a distal portion made with a different coil wire material. The distal portion can be welded onto the end of proximal portion, which can be longer in length than the distal portion. The distal portion can have a length that is 5 to 7 times shorter than the proximal portion. The length of the distal portion can be appropriately selected such that the length is sufficient to create 2 or more loops.
[0064] The wire of the distal portion can have a smaller outer diameter than the wire of the proximal portion. In some embodiments, the outer diameter of the wire of distal portion is 0.002 inch. For the heat setting procedure, the proximal portion of the twisted figure 8 coil can be heat treated (set) prior to welding on the distal portion. Once the distal portion is welded on, the entire coil assembly (proximal and distal portions) can be heat treated again at a temperature ranging from 70-90 degrees Celsius for 4-6 minutes. In some embodiments, the entire coil assembly can be heat treated again at a temperature of 80 degrees Celsius for approximately 5 minutes. This helps shrink the diameter of the distal loops (formed by the welded on distal portion) by 20%. In other words, the diameter of the distal loop is 80% of the main loop.
[0065] Coil 900 can be configured to have a 50/50 distribution over two 3D spaces. In this way, a bi-lobed aneurysm can be effectively filled by framing coil 800.
[0066] The complex shape disclosed in this invention is intended to provide the ability to effectively treat spherical and/or non-spherical (e.g. elliptical, multi-lobed) aneurysms while minimizing risk of loop protrusion into the patient artery. The unique attributes, parameters and relationships identified present a unique opportunity to realize improved performance in areas such as achievable packing density, delivery friction, coil distribution uniformity, neck coverage, ability to minimize compartmentalization and long term stability as compared to existing coil designs. Table 1 below lists performance advantages utilizing key factors (e.g. attributes, parameters and/or relationships) derived from experimental data.
TABLE-US-00001 TABLE 1 Alignment of factors with advantages. Factor (attribute, parameter and/ # or relationship) Advantage 1 Index angle between Ability to evenly seek three loops (1-179 degrees) dimensional space more effectively 2 Paired loop end-to-end Ability to evenly seek three length, common axis dimensional space more effectively in irregularly shaped aneurysms 3 Open or closed Manage compartmentalization loopconfiguration 4 Shape of loops Ability to manage friction, contribute to space seeking performance 5 Degree of curvature/ Ability to evenly seek three dimensional twist at waist space more effectively, prevent coil protrusion in spherical aneurysms 6 Undulating loops Assist with directing coil
[0067] Reference in the specification to one embodiment or an embodiment means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the invention. The appearances of the phrase in one embodiment in various places in the specification are not necessarily all referring to the same embodiment.
[0068] Some portions of the following detailed description are presented in terms of algorithms and symbolic representations of operations on data bits within a computer memory. These algorithmic descriptions and representations are the methods used by those skilled in the data processing arts to most effectively convey the substance of their work to others skilled in the art. An algorithm is here, and generally, conceived to be a self-consistent sequence of steps leading to a desired result. The steps are those requiring physical manipulations of physical quantities. Usually, though not necessarily, these quantities take the form of electrical or magnetic signals capable of being stored, transferred, combined, compared or otherwise manipulated. It has proven convenient at times, principally for reasons of common usage, to refer to these signals as bits, values, elements, symbols, characters, terms, numbers or the like.
[0069] The figures and the following description describe certain embodiments by way of illustration only. One skilled in the art will readily recognize from the following description that alternative embodiments of the structures and methods illustrated herein may be employed without departing from the principles described herein. Reference will now be made in detail to several embodiments, examples of which are illustrated in the accompanying figures. It is noted that wherever practicable similar or like reference numbers may be used in the figures to indicate similar or like functionality.
[0070] The foregoing description of the embodiments of the present invention has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the present invention to the precise form disclosed. Many modifications and variations are possible in light of the above teaching. It is intended that the scope of the present invention be limited not by this detailed description, but rather by the claims of this application. As will be understood by those familiar with the art, the present invention may be embodied in other specific forms without departing from the spirit or essential characteristics thereof. Likewise, the particular naming and division of the modules, routines, features, attributes, methodologies and other aspects are not mandatory or significant, and the mechanisms that implement the present invention or its features may have different names, divisions and/or formats.