MEDICAL DEVICE DELIVERY SYSTEM WITH IMPROVED MEDICAL DEVICE RETENTION
20230166008 · 2023-06-01
Assignee
Inventors
- Thomas Rieth (Hirrlingen, DE)
- Christoph Klaus (Tübingen, DE)
- Falk Stukowski (Haigerloch, DE)
- Pietro Beinrauch (Steinbach am Wald, DE)
Cpc classification
C08L77/00
CHEMISTRY; METALLURGY
A61F2/958
HUMAN NECESSITIES
A61L29/06
HUMAN NECESSITIES
A61F2002/9583
HUMAN NECESSITIES
A61L29/06
HUMAN NECESSITIES
A61L29/14
HUMAN NECESSITIES
C08L77/00
CHEMISTRY; METALLURGY
International classification
Abstract
The invention relates to a medical device delivery system comprising a catheter shaft having a proximal end and a distal end portion; an expandable member provided at the distal end portion of the shaft, the expandable member having a delivery configuration and a deployed configuration; the expandable member being folded around the catheter shaft in its delivery configuration; characterized in that a coating is disposed on at least a portion of the outer surface area of the expandable member in its delivery configuration such that the coating does not cover portions of the expandable member located inside the folds of the expandable member in its delivery configuration; and an expandable medical device is mounted on the expandable member in the delivery configuration with the coating being disposed between the expandable member and the expandable medical device.
Claims
1. A medical device delivery system comprising a catheter shaft having a proximal end and a distal end portion; an expandable member provided at the distal end portion of the shaft, the expandable member having a delivery configuration and a deployed configuration; the expandable member being folded around the catheter shaft in its delivery configuration; characterized in that a coating is disposed on at least a portion of the outer surface area of the expandable member in its delivery configuration such that the coating does not cover portions of the expandable member located inside the folds of the expandable member in its delivery configuration; and an expandable medical device is mounted on the expandable member in the delivery configuration with the coating being disposed between the expandable member and the expandable medical device.
2. The medical device delivery system of claim 1, wherein the coating is a spray coating.
3. The medical device delivery system of claim 1 , wherein the coating comprises a polyurethane that is not crosslinked.
4. The medical device delivery system of claim 1, wherein the coating comprises thermoplastic polyurethane elastomer.
5. The medical device delivery system of claim 4, wherein the thermoplastic polyurethane elastomer is a polycarbonate-based thermoplastic polyurethane elastomer.
6. The medical device delivery system of claim 1 , wherein the coating consists of a polycarbonate-based thermoplastic polyurethane elastomer.
7. The medical device delivery system of claim 1, wherein the coating has a thickness of between 1 .Math.m and 100 .Math.m.
8. The medical device delivery system of claim 1, wherein the medical device is a stent or a stent graft.
9. A method for manufacturing a medical device delivery system according to claim 1, the method comprising the steps of providing an intraluminal catheter device including a catheter shaft having a proximal end portion and a distal end portion with an expandable member disposed at the distal end portion of the shaft; the expandable member having a delivery configuration and a deployed configuration; folding the expandable member around the catheter shaft to put the expandable member in its delivery configuration; disposing a coating on at least a portion of the outer surface area of the expandable member in its delivery configuration such that the coating does not cover portions of the expandable member located inside the folds of the expandable member in its delivery configuration; providing an expandable medical device and mounting the expandable medical device on the expandable member in the delivery configuration with the coating being disposed between the expandable member and the expandable medical device.
10. The method according to claim 9, wherein the coating is disposed on at least a portion of the folded medical device by spraying a coating solution onto the folded balloon.
11. The method according to claim 9 , wherein the coating solution comprises a thermoplastic polyurethane elastomer and a solvent and is sprayed onto at least a portion of the folded balloon.
12. The method according to claim 11, wherein the coating solution comprises between 10 and 200 g/l of a polycarbonate-based thermoplastic polyurethane in trichloromethane or hexafluoroisopropanol.
13. The method according to claim 9, wherein the coating is applied to the expandable member in multiple thin layers in multiple consecutive steps.
14. The method according to claim 9, wherein the expandable member is masked with a mask provided with a desired pattern of recesses during the coating process.
15. The method according to claim 9, wherein the folded medical device is rotated along its longitudinal axis during the process of spraying the coating onto at least a portion of the folded balloon.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0026] Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. The method and corresponding steps of the invention will be described in conjunction with the detailed description of the intravascular stent delivery catheter device.
[0027] In accordance with the present invention an intraluminal medical device delivery system having improved retention of the medical device is provided. Generally, the medical device delivery system includes a catheter shaft having a proximal end and a distal end portion with an expandable member, preferably a medical balloon, provided at the distal end portion of the shaft. The expandable member has a delivery configuration and a deployed configuration. In its delivery configuration the expandable member is folded onto the catheter shaft or wrapped around the catheter shaft and a coating is disposed on at least a portion of the outer surface area of the expandable member such that the coating does not cover portions of the expandable member located inside the folds of the expandable member in its delivery configuration. Further, an expandable medical device, preferably a stent or stent graft, is mounted on the expandable member in the delivery configuration with the coating disposed therebetween.
[0028]
[0029] A variety of catheter assemblies, particularly dilatation balloon catheters, are known and suitable for the stent delivery system of the invention. The elongated catheter is sized and configured for delivery through a tortuous anatomy. For purpose of illustration only, the catheter shaft 20 embodied herein comprises an outer tubular member 21 and an inner tubular member 22. As shown in
[0030] Between the outer tubular member 21 and the inner tubular member 22 an inflation lumen 24 extending between the proximal end portion and the distal end portion of the catheter shaft 20 is defined. Specifically, as illustrated in
[0031] The expandable member can be provided with a variety of configurations and constructions suitable for deployment of an expandable medical device, preferably a stent or a stent graft. Generally, and for purpose of illustration and not limitation, reference is made to an expandable member in the form of a balloon as is well known in the art. As embodied herein, the expandable member generally inflates to a cylindrical configuration with a central working length. The “working length” or “working portion” of the expandable member, or a balloon as embodied herein, is defined as the portion or length upon which the expandable stent is mounted to as described further below. With reference to the balloon embodied herein, the expandable member can be fabricated from one or more polymers (e.g., mixture, blends or layers of polymers). For example, the polymers can include one or more thermoplastics and/or thermoset polymers. Examples of thermoplastics include polyolefins; polyesters (e.g., polyethylene terephthalate (PET), polybutylene terephthalate (PBT), polyethylene naphthalate (PEN), polytrimethylene terephthalate (PTT)); polyethers; polyurethanes; polyvinyls; polyacrylics; fluoropolymers; copolymers and block copolymers thereof, such as block copolymers of polyether and polyamide (e.g., PEBAX); but preferably polyamides (e.g., nylon, such as nylon 12, nylon 11, nylon 6/12, nylon 6, nylon 66); and mixtures thereof. Other examples of polymers that can be used to fabricate the expandable member include polyethylenes, polyethylene ionomers, polyethylene copolymers, polyetheretherketone (PEEK), thermoplastic polyester elastomers (e.g., Hytrel®), and combinations thereof. The expandable member can include multiple layers provided, for example, by coextrusion.
[0032] The expandable member can be made using any suitable technique, such as blow molding, film molding, injection molding, and/or extrusion. For example, a polymer tube can be extruded, and can thereafter be stretched and blown to form a balloon.
[0033] The expandable member has a delivery condition with a reduced profile, and a deployed condition with an expanded profile. As illustrated in
[0034] As noted above, a coating is disposed on at least a portion of the outer surface of expandable member in its collapsed or also called folded or delivery configuration.
[0035] In a preferred embodiment of the present invention, the coating is a spray coating, i.e. the coating is applied to the expandable member in its delivery configuration by spraying. Generally, also other coating techniques well known in the art, like e.g. swabbing or painting are also possible to be used, however, spaying is the best method to ensure a uniform coating which is applied only to the outer surface of the expandable member in its delivery configuration, such that the coating does not cover portions of the expandable member located inside the folds of the expandable member in its delivery configuration.
[0036] Spray coating offers several advantages over other coating techniques. Spray coating is easy to apply, the coating process is simple, quick and cost effective. Also spray coating can be applied very uniformly and very thin. Spray coating further allows for directed coating in a single layer or alternatively in multiple layers avoiding any dripping of coating solution off the balloon or expandable member. The spray coating can be applied uniformly to the folded balloon or in an alternative embodiment it can be applied to predetermined portions of the folded balloon. In one embodiment the coating is applied to the folded expandable member only partially in a controlled irregular or scattered way. Such a scattered coating can be achieved by masking the balloon portion to be coated with a mask provided with a desired pattern of recesses, like e.g. scattered dots or slits before the device is subjected to the spray coating process.
[0037] The coating material preferably comprises a polyurethane that is not crosslinked as crosslinked polyurethane cannot be dissolved in the solvents applicable in the coating process. In a preferred embodiment the coating material comprises a thermoplastic polyurethane elastomer, and more preferably a polycarbonate-based thermoplastic polyurethane elastomer. Even more preferably, the coating material consists essentially a thermoplastic polyurethane elastomer, and more preferably consists of a polycarbonate-based thermoplastic polyurethane elastomer.
[0038] Thermoplastic polyurethanes and in particular polycarbonate-based thermoplastic polyurethane elastomers are free of crosslinks and have many favorable properties such as excellent elasticity and abrasion resistance. Also, as the polyurethanes employed in the present invention are fully polymerized, no residual monomers are included in the coating or the coating solution. As such, there is no risk, that potentially hazardous monomers occur in the process of coating or in the medical device when using these polymers as a coating material. These monomers are often harmful to health or in case of for example UV curable polyurethanes even hazardous to the human body. Accordingly, the use of highly biocompatible thermoplastic polyurethanes and in particular polycarbonate-based thermoplastic polyurethane elastomers highly increases the safety of both, the production process of the medical device as well as the safety of the use of the medical device.
[0039] Further, the use of polycarbonate-based thermoplastic polyurethane elastomers for coating the expandable member of the medical device delivery system allows for excellent stent retention without inhibiting balloon or catheter function, as polycarbonate-based thermoplastic polyurethane elastomers possess high flexibility, elasticity and adhesion strength allowing excellent stent embedding and/or retention as well as unhindered balloon inflation or expansion. Also, polycarbonate-based thermoplastic polyurethane elastomers have excellent biocompatible properties, high resistance to bodily fluids as well as good abrasive resistance. These advantageous properties allow for optimized stent retention properties and improved performance of the medical device in terms of balloon compliance as well as safety in view of abrasion resistance of the coating during crimping of the medical device onto the expandable member, during release of the medical device as well as while navigation the medical device delivery system through tortuous anatomy.
[0040] Examples of suitable thermoplastic polyurethane elastomers are Carbothane PC3575A, Carbothane PC3585A or Carbothane PC3595A (Lubrizol Advanced Materials, Inc.) or mixtures thereof.
[0041] In an alternative embodiment the coating material comprises a thermoplastic polyurethane elastomer polymer and is further blended with one or more polymers differing from the thermoplastic polyurethane elastomer polymer. By blending the thermoplastic polyurethane elastomer the physical properties of the coating can be largely varied without adding hazardous material to the medical device or to the process.
[0042] In a preferred embodiment of the present invention, the coating has a thickness of 1 to 100 .Math.m, preferably 1 to 50 .Math.m. As depicted above, the coating may be applied to, preferably sprayed onto the expandable member in one step, namely in one layer, or may be applied, preferably sprayed in multiple thin layers in multiple consecutive steps to the expandable member. When applying at least two layers to the expandable member, the at least two layers may all consist of the same coating material. In an alternative embodiment, the at least two or more (multiple) layers may each consist of its own coating material differing from the other materials. At least one of the multiple polymer layers constituting the coating may comprise a thermoplastic polyurethane elastomer, and more preferably a polycarbonate-based thermoplastic polyurethane elastomer which is different from the thermoplastic polyurethane elastomer and more preferably the polycarbonate-based thermoplastic polyurethane elastomer comprised in the other layer or layers. This allows to adjust the properties of the coating, especially in terms of elasticity and adhesion strength.
[0043] The coating is configured to enhance retention of a medical device suitable for implant as described in further detail below. For example, the implantable device can be a stent, a stent graft, a filter, an occlusive device and the like. Furthermore, the stent or medical stent device is not intended to be limited to cardiovascular applications. For example and not limitation, other applications within the scope of the subject matter disclosed herein include spinal or other orthopedic implants, neurovascular or gastrointestinal implants and the like.
[0044] In the embodiment depicted in
[0045] The medical device 50 or stent embodied herein is shown in a non-expanded configuration extending along the central, working length of the expandable member 30 and mounted on the coating 40 as illustrated in
[0046] The stent or other medical device for delivery can be made of any suitable material, such as metal, metal alloy, or polymeric material. Exemplary materials include stainless steel, nitinol, cobalt chromium alloy, ceramics and composites, bioabsorbable polymers, biostable polymers and thermotropic liquid crystal polymers. The stent or medical device to be delivered can be fabricated by utilizing any number of methods known in the art. For example, a stent can be fabricated from a hollow or formed tube that is machined using lasers, electric discharge milling, chemical etching or other known techniques. Alternatively, the stent can be fabricated from a sheet that is rolled into a tubular member, or formed of a toroidal rings, wire or filament construction as known in the art. In a preferred embodiment of the present invention the medical device comprises a metallic stent. Though the stent may also be made from any degradable or nondegradable polymer. In a further preferred embodiment, the medical device is a stent graft, the stent graft preferably being a metallic stent being covered with a graft material as depicted above.
[0047] In accordance with the invention, the coating is configured to retain the medical device stent on the expandable member. As illustrated in
[0048] In an alternative embodiment, as depicted in
[0049] In accordance with one embodiment of the invention, as illustrated in
[0050] The stent delivery balloon catheter of the present invention is delivered to the desired treatment site. Once the catheter is in place across the site, the expandable member is inflated in a conventional manner. As illustrated in
[0051] It will be appreciated that in addition to the characteristics of the coating there are other factors like the crimping process that may be modified to improve the stent retention.
[0052] In a further embodiment of the present application, the balloon may be additionally layered by a layer comprising any beneficial agent, such as e.g. an antiproliferative, an anti-inflammatory, an antiplatelet, anticoagulant, antithrombotic, antibiotic, or antioxidant. In order to avoid interference of such a layer and the coating, it is preferred that the layer including the beneficial agent is applied to the surface of the expandable member before folding and crimping to ensure that this layer comprising the beneficial agent is located at least on those portions of the expandable device that are located inside the folds once the expandable member is in its delivery configuration, that is on those portions that are not covered by the coating. This has the advantage that no interference of the layer and the coating may occur in the regions inside the folds, thus preventing any possible destruction or interference of the layer comprising the beneficial agent or the beneficial agent itself in these regions. Also, being placed inside the folds during the delivery process, the beneficial agent is protected from being eluted off the surface of the expandable member during delivery of the catheter to the treatment site.
[0053] In accordance with the invention, there is also provided a method for securing a stent onto a stent delivery system. The method comprises the steps of providing an intraluminal catheter device including a catheter shaft having a proximal end portion and a distal end portion with an expandable member disposed at the distal end portion of the shaft; the expandable member having a delivery configuration and a deployed configuration; folding the expandable member onto the catheter shaft to put the expandable member in its delivery configuration; disposing a coating on at least a portion of the outer surface area of the expandable member in its delivery configuration such that the coating does not cover portions of the expandable member located inside the folds of the expandable member in its delivery configuration; providing an expandable medical device and mounting the expandable medical device on the expandable member in the delivery configuration with the coating disposed therebetween.
[0054] In a preferred embodiment, the coating is disposed on at least a portion of the folded medical device by spraying a coating solution onto the folded balloon. The coating solution comprises a thermoplastic polyurethane elastomer and a solvent. The solvent can be any solvent suitable to dissolve the thermoplastic polyurethane elastomer. In particular, the solvent can be selected from trichlormethane, dimethylacetamide, methylene chloride, trichloroethane, tetrahydrofurane, and hexafluoroisopropanol, whereas trichloromethane or hexafuoroisopropanol are preferred. In one embodiment, the coating solution contains between 50 and 250 g/L, preferably between 100 and 200 g/L, most preferably 125 g/L thermoplastic polyurethane elastomer. In an even more preferred embodiment, the coating solution comprises 125 g/l or less of a polycarbonate-based thermoplastic polyurethane in trichloromethane or hexafluoroisopropanol.
[0055] The coating solution is preferably prepared at a temperature of 50° C. or below. The application of the coating solution to the expandable member in its delivery configuration is preferably performed at room temperature.
[0056] In accordance with another aspect of the invention the coating is applied to the delivery device by spraying the coating onto delivery device, while the delivery device is rotated.
[0057] As depicted in
[0058] Generally, by spraying multiple very thin coating layers on the folded expandable member, it is assured that no coating solution will enter into the inside portion of the folds of the expandable member. Accordingly, a uniform coating only on the outer surface of the expandable member of the delivery system in its delivery configuration is achieved.
[0059] As depicted above, a great advantage of the coating according to the present invention is its easy applicability, its effective stent retention capabilities, and its small dimension.