Polymer compositions and methods for producing medical implants
A polymer composition of biostable thermoplastic polyurethane and inorganic particles addresses durability and monitorability issues in orthopedic implants, providing strong bonding and compatibility with medical imaging.
Patent Information
- Application Number
- JP2022569557
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-05-29
- Filing Date
- 2021-05-28
- Publication Date
- 2026-02-04
- Estimated Expiration
- 2041-05-28
AI Technical Summary
Existing orthopedic implants, particularly those used to replace damaged cartilage, face issues with durability and compatibility with bone tissue, leading to high revision rates and complications, and lack of monitorability using medical imaging techniques.
A polymer composition comprising biostable thermoplastic polyurethane and biocompatible inorganic particles, specifically transition metal compounds, is used to create bone fixation parts of orthopedic implants, allowing for durable bonding to bone tissue and monitorability via X-ray and MRI.
The polymer composition enables strong and durable bonding to bone, with the ability to be visualized over time, and offers improved mechanical properties and compatibility with medical imaging techniques.
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Abstract
Description
Detailed Description of the Invention
[0001] [Field] The present invention relates to a polymer composition suitable for producing bone anchoring parts of orthopedic implants, a method for producing the polymer composition and a method for producing an orthopedic implant comprising said polymer composition.
[0002] [background] Orthopedic implants are medical implants used in orthopedic surgery for conditions involving the human or animal musculoskeletal system. This system provides form, stability, and movement for the body and is made up of the body's bones (skeleton), muscles, cartilage, tendons, ligaments, joints, and other connective tissues (tissues that support and bind tissues and organs together). The primary functions of the musculoskeletal system include supporting the body, enabling movement, and protecting vital organs. The joints and musculoskeletal tissues of the human body can be subject to trauma, disease, and degenerative processes that can cause joint deterioration or disability over time, resulting in severe pain or immobility. In general, the ability of joints to provide painless articulation and carry loads depends on the presence of healthy bone, cartilage, and associated musculoskeletal tissues that provide stable joints. In the context of this disclosure, orthopedic surgery also relates to maintaining movement in various joints in the human body. Orthopedic implants include devices used in partial or total joint arthroplasty, artificial knee and hip joints, and osteochondral implants. Examples of orthopedic implants include bone anchors, plugs and screws applied to fixate implants, such as artificial cartilage and tendons, meniscus or labrum replacement devices, spinal implants such as intervertebral cages, and cartilage replacement devices.
[0003] Cartilage is a smooth connective tissue on the surfaces of bone ends where they meet to form joints, protecting them and cushioning them, absorbing forces transmitted throughout the body. Cartilage is an elastic tissue that allows smooth joint movement, but because it lacks a direct blood supply, it has limited self-healing ability in cases of fatigue or trauma. A frequent and serious cartilage injury causing pain and / or immobility is damage to the articular cartilage in the knee joint, located in the joint formed between the femur and tibia. If left untreated, such initial local defects over time can lead to further degeneration and damage to the cartilage in the joint, necessitating partial or total knee replacement surgery (UKR / TKR, also known as hemi / total knee replacement or HKA / TKA). However, with such total joint replacements, the durability of most artificial joints is limited, and subsequent revision procedures require longer surgical and hospital stays, which can lead to complications, especially in elderly patients. To postpone, and even avoid, the need for total joint replacement surgery such as TKR, orthopedic implants have been developed to locally replace damaged cartilage, thereby creating a new, smooth articular surface at the site of the injury. Such implants are often called cartilage plugs.
[0004] Such known cartilage plugs, also called osteochondral constructs, cartilage replacement devices, or resurfacing implants, are typically made of metals, such as titanium. However, the use of metallic implants results in a high rate of revision surgery, which is related to the large difference in mechanical properties, such as stiffness and deformability, between the metal and the subchondral bone and cartilage tissue. Numerous publications have described or proposed replacement devices made of natural and / or synthetic materials. Cartilage plugs often have a cylindrical or mushroom-like shape and may include at least two parts: a cartilage replacement part and a bone fixation part. The cartilage replacement part is typically made of a flexible, resilient, and wear-resistant biocompatible material that mimics some of the properties of natural cartilage, while the bone fixation part may be made of a more rigid and hard material, including metal.
[0005] One approach to fabricating plugs from natural materials is to harvest bone and cartilage from the patient (autogenous graft or autograft) and use tissue from a genetically dissimilar donor of the same species (allograft or homograft). U.S. Pat. No. 5,782,835, for example, describes devices and methods for implementing such an allograft approach. However, the use of such grafts presents a risk of infection or disease transmission.
[0006] Alternatively, orthopedic implants such as cartilage plugs can be fabricated from synthetic materials, such as biocompatible polymers, which may be biodegradable or biostable. The use of synthetic polymers may offer advantages over metallic implants, as polymers offer a much wider range of properties, are less likely to cause damage to tissues they come into contact with, and are not magnetic, making them more compatible with medical imaging techniques such as MRI.
[0007] U.S. Patent Application Publication No. 2008 / 0249632A1 describes a cartilage plug with a stepped shoulder shape that includes four or more layers, intended to better distribute loads on the implanted plug and surrounding tissue and reduce undesired movement. The different layers of the plug can be selected from a number of natural and synthetic materials and can be made from the same or different materials, which can be porous or non-porous.
[0008] U.S. Patent Application Publication No. 2011 / 0218647A1 discloses a cartilage plug comprising a hydrogel containing a hydrophilic polymer, a fibrous filler, and 40-80% water by weight. The polymer is preferably cross-linked polyvinyl alcohol. The implant will have a Young's modulus of 0.75-50 MPa, preferably 23-30 MPa, to allow for initial compression to allow placement within the opening and subsequent expansion for proper fit.
[0009] U.S. Patent No. 6,626,945 B2 describes a cartilage plug formed into a laminated structure to accommodate the physiological requirements of the repair site. The plug may be cylindrical and may be formed from three materials fused or bonded together. In one embodiment, the first layer, which will be closest to the subchondral bone after implantation, is made from a biostable thermoplastic polyurethane (TPU) with a Shore hardness of 75 ShD. The middle layer of the implant is made from TPU with a hardness of 55 ShD, while the third layer, which is closest to the surface of the cartilage surrounding the implanted plug, is made from a more flexible material, such as TPU with a hardness of 80 ShA, or a thermoplastic hydrogel. This last layer is said to exhibit properties similar to those of hyaline cartilage, the type of cartilage found on the outer surface of articulating joints, and the 75 ShD material has an elastic modulus similar to that of subchondral bone.
[0010] WO 2011 / 098473 A1 describes orthopedic implants, such as meniscal or spinal disc implants, that have two or more distinct sections, each containing a different but chemically related polymeric material, which are attached to each other at their interface by interaction between the materials. Preferably, the material is selected from block copolymers, such as thermoplastic polyurethane (TPU). These implants can be fabricated by multi-component molding techniques. WO 2015 / 0135907 A1 also describes a meniscal prosthesis with different parts made from two non-resorbable polymeric materials, each with a tensile modulus of up to 100 MPa and at least 101 MPa, respectively. In experiments, a TPU material with a Shore hardness of 80 ShA and 75 ShD was used. It is indicated that this material may be a polymer composition containing TPU and up to 25% by weight of radiopaque filler particles, such as barium sulfate.
[0011] WO 2007 / 007062 A2 describes an implant for cartilage repair in which an elastic layer is bonded to a stationary phase, the stationary part being made from a bone cement composition comprising an acrylate-based polymer containing calcium ions that promote bone ingrowth.
[0012] US Patent Application Publication No. 2004 / 0188011A1 discloses a method for manufacturing a prosthetic bearing element comprising a rigid backing material made from a carbon fiber reinforced polymer, the backing material supporting a soft elastic polyurethane bearing liner, in which improved adhesion of the backing material to the bearing liner is achieved by laser welding, i.e., passing a laser beam through the transparent bearing liner causes thermal fusion at the interface between the liner and the laser-opaque backing material.
[0013] U.S. Patent Application Publication No. 2009 / 043398 A1 describes a method for manufacturing articular surface implants, such as replacement plugs, in which a viscous material is subjected to centrifugal force, e.g., by rotational molding, to create a gradient in density, porosity, and / or concentration within the implant. The viscous material may be a composite material comprising a polymer matrix and particles or fibers dispersed therein; this method results in a product with a concentration gradient within the particles or fibers, and therefore a stiffness gradient.
[0014] U.S. Patent Application Publication No. 2008 / 0081061 A1 discloses an orthopedic device that includes a composite material based on a biocompatible polymer having ceramic particles dispersed therein, and may further include a ceramic-free polymer intimately bonded to the composite material. The ceramic material may be in the form of particles or fibers and, like the polymer, can be selected from a wide range of materials. In one embodiment, the polymer is ultra-high molecular weight polyethylene (UHMWPE) and the ceramic includes hydroxyapatite (HA) particles. Such composite parts are manufactured by blending UHMWPE powder with (optionally coated) HA particles and compression molding the mixture.
[0015] Geary et al., in Mater. Sci. Mater. Med (2008) 19:3355-3363 (DOI 10.1007 / s10856-008-3472-8), describe that thermoplastic polyurethanes, such as commercially available Bionate® polycarbonate urethane grades, have excellent hydrolysis and aging resistance and are suitable biostable materials for use in manufacturing in vivo biomedical devices, such as devices for use in replacing diseased or damaged joints. The incorporation of carbon fibers or hydroxyapatite (HA) particles into such polyurethanes via melt compounding can result in improved mechanical properties of the polymer material. However, it has also been noted that such compounding processes enhance polymer degradation and result in a significant reduction in the molar mass of the polymer in the polymer composition. It has been shown that this degradation is more pronounced during melt processing processes such as injection molding, particularly when TPU is compounded with HA. In contrast to carbon fiber, polyurethane compositions based on TPU and HA particles did not show any improvement in tensile properties.
[0016] Chinese Patent No. 1215890C discloses polyurethane compositions containing 0.1 to 30% by weight of zinc oxide, titanium dioxide, or zirconium dioxide nanoparticles, with 80 to 99% of the particles having a particle size of less than 50 nm. Solvent-based compositions are prepared by high-speed mixing of the nanoparticles into polyurethane solution, which can be used to coat substrates or cast films. These films or coated substrates are said to exhibit anticoagulant properties and are suitable for use in blood-contact medical products, such as catheters and vascular prostheses.
[0017] [overview] Although various synthetic polymeric materials have been proposed or described in the literature for producing bone fixation parts of orthopedic implants, there remains a need for implant materials that make it possible to produce implants for more durable replacement of local cartilage defects, for example in joints, and that can be monitored during and after implantation using common medical techniques.
[0018] It is an object of the present disclosure to provide such a polymeric material for manufacturing orthopedic implants, for example implants for resurfacing joints, such as for replacing locally damaged cartilage tissue in a knee joint, and more particularly, it is an object of the present disclosure to provide such a polymeric material that is suitable for manufacturing the bone fixation part of the implant, and which material allows for durable and monitorable bonding to bone tissue.
[0019] Aspects and embodiments of the present invention as described herein below and characterized in the claims provide, in particular, polymer compositions suitable for producing bone fixation parts of orthopaedic implants, which exhibit excellent biocompatibility and mechanical properties compatible with bone tissue, and which implants can be monitored during and / or after implantation using medical imaging techniques such as X-ray and MRI, and methods for producing said polymer compositions. Accordingly, one aspect of the present invention provides a polymer composition as claimed in claim 1, more particularly a polymer composition suitable for producing bone fixation parts of orthopaedic implants, which implants may be adapted to locally replace damaged cartilage tissue in joints, the polymer composition comprising 15-70% by weight of inorganic particles comprising a biostable thermoplastic polyurethane and a biocompatible transition metal compound, the inorganic particles having a particle size (D) in the range of 0.1-5 μm. 50 ) is a polymer composition having
[0020] Orthopedic implants, such as cartilage replacement plugs, in which the polymer composition is used may have a cylindrical or mushroom-like shape and may include at least two parts; the bone fixation part and the cartilage replacement part are typically made of elastic and wear-resistant biocompatible materials. It has been found that the relatively rigid TPU composition containing inorganic particles makes it possible to produce fixation parts that can be inserted and / or pressed into pre-drilled bone holes, forming a strong and durable bond to the bone, and the implant part and its bond to the bone can be visualized or monitored over time, for example, using X-ray or MRI methods. The polymer composition exhibits favorable crystallization behavior, and its (mechanical) properties are better than those of similar compositions based on, for example, HA filler particles. Another advantage of using polyurethane compositions is the freedom in designing and dimensioning the implant, and in manufacturing the implant using common techniques such as injection molding, which allows for even more complex shapes. In particular, if the implant further comprises another part made of a thermoplastic material compatible with the polyurethane composition, such as a more flexible type of TPU as the cartilage replacement part, the implant can be manufactured using two-component injection molding techniques; this is generally a fairly simple method that produces sufficient adhesion between the bone fixation part in the cartilage replacement part and the polyurethane composition in the flexible TPU, without the need for adhesive components.
[0021] In another aspect, the present invention relates to a method for producing the polymer composition.
[0022] In another aspect, the present invention relates to the use of a polymer composition according to the present disclosure in the manufacture of an orthopedic implant or a bone fixation part of an orthopedic implant, and a method for manufacturing an orthopedic implant or a bone fixation part of an orthopedic implant, such as a plug or a screw, comprising injection molding the implant or bone fixation part from a polymer composition according to the present disclosure, for example by forming the implant using a multi-component injection molding process comprising molding the bone fixation part from the polymer composition. Another aspect relates to an orthopedic implant having a bone fixation part comprising said polymer composition.
[0023] The invention will now be explained in more detail by means of the following exemplary figures, without being limited thereto: [Brief explanation of the drawings]
[0024] [Figure 1] 1 is a schematic diagram showing a two-component cylindrical cartilage plug. [Figure 2A] 1 is a schematic diagram showing a mushroom-like cartilage plug in two different views. [Figure 2B] 1 is a schematic diagram showing a mushroom-like cartilage plug in two different views. [Figure 3] 1-3 are schematic cross-sectional views of a mushroom-like plug including a bone fixation part (3a) with two "stems" (3b' and 3b''). In FIGS. 1-3, like numbers represent like elements. [Figure 4] FIG. 1 shows particle size distributions measured on three grades of zirconia. [Figure 5] FIG. 1 represents DSC curves (heat-cool-reheat) obtained on unfilled polyurethane and on corresponding polymer compositions containing 20, 40 and 60 wt. % zirconia (SA). [Figure 6]1 is a graph showing the scoring of bone-to-implant contact (BIC, %) as an indicator of osseointegration for implanted plugs M (metal), U (unfilled polyurethane) and I (invention; zirconia-filled polyurethane, BCP coated) 6 and 12 months after implantation in goat knee joints. [Figure 7A] FIG. 1 shows representative photomicrographs of histological sections taken from plugs M, U and I (after 6 months) implanted in goats. [Figure 7B] FIG. 1 shows representative photomicrographs of histological sections taken from plugs M, U and I (after 6 months) implanted in goats. [Figure 7C] FIG. 1 shows representative photomicrographs of histological sections taken from plugs M, U and I (after 6 months) implanted in goats. [Figure 8] FIG. 1 shows the results of the modified Mankin score (MMS) of articulatory cartilage quality on opposing bone surfaces of joints with implanted plugs M or I compared to sham-operated joints (after 6 and 12 months).
[0025] [Detailed explanation] Within the context of the present disclosure, a biocompatible material is biologically compatible by not producing a toxic, harmful, or immunological response when in contact with living tissue. Biodegradable means that the material undergoes chemical breakdown or transformation by biological means, e.g., by enzymatic action, into simpler components under physiological conditions. Biostable or bioinert means that the material is not substantially biodegradable when in contact with living tissue under the conditions and time of intended use.
[0026] According to one aspect, the present invention provides a polymer composition comprising a biostable thermoplastic polyurethane and biocompatible inorganic particles comprising 15 to 70% by weight of a transition metal compound, which polymer composition can be suitably used to manufacture an orthopedic implant or at least a bone fixation part thereof, e.g. a biostable implant suitable for use in repairing damaged tissue such as cartilage tissue in a joint.
[0027] Suitable polymer compositions for manufacturing bone fixation parts include biostable thermoplastic polyurethanes (TPUs). Thermoplastic polyurethanes have essentially linear polymer chains, are soluble in good solvents, can be melted at elevated temperatures, and can then be resolidified by cooling; they are non-crosslinked polyurethanes that allow for melt processing, for example, via extrusion or injection molding. Thermoplastic polyurethanes are typically block copolymers (also called segmented copolymers).
[0028] Block copolymers are polymers containing multiple blocks (also called segments) of polymers (including oligomers) that are chemically distinct and exhibit different thermal and mechanical properties and different solubilities. Often, the blocks in a block copolymer containing two (or more) types of blocks are described as "hard" and "soft" polymer blocks, and such (chemically) distinct blocks result in microphase separation into domains enriched in either the hard or soft block. The hard blocks in a block copolymer typically have a melting temperature (T) higher than the use temperature, typically about 35-40°C for biomedical applications. m ) or glass transition temperature (T g The soft block in the block copolymer generally has a T of less than 25°C, preferably less than 0°C. g For most mechanical properties, the polymers include flexible, low modulus amorphous polymers with T m and T gThermal parameters such as σ are typically determined on dry samples using well-known techniques such as DSC or DMA. In such phase-separated block copolymers, the hard segments function as physical (and non-magnetic, thermoreversible) crosslinks for the flexible soft segments, resulting in materials with properties ranging from very rigid to flexible and elastic, depending, for example, on the ratio of hard block to soft block. Depending on the type and content of the hard block, polyurethane block copolymers can exhibit good stability and elasticity over a desired temperature range without the need for chemical crosslinking and can generally be processed as thermoplastics. The term thermoplastic polyurethane basically refers to a family of polymers having a backbone comprising the reaction product of at least three main components: a diisocyanate, a diol chain extender, and a polymeric diol or macroglycol. Optionally, a monofunctional compound may be used as an additional component to function as a chain terminator and form (non-reactive) end groups. In embodiments, the backbone of the polyurethane or TPU applied in the present invention is substantially linear.
[0029] In embodiments, the TPU comprises hard blocks in repeat units comprising urethane and optionally urea groups resulting from the reaction of diisocyanates with diols and optionally diamines as reactive chain extenders.
[0030] Suitable diisocyanates include aromatic, aliphatic, and cycloaliphatic compounds having an average of 1.9 to 2.1 isocyanate groups per molecule. In one embodiment, the diisocyanate includes 4,4'-diphenylmethane diisocyanate (MDI), 2,4-toluene diisocyanate, 2,6-toluene diisocyanate (TDI), 1,4-phenylene diisocyanate, hexamethylene diisocyanate (HDI), tetramethylene-1,4-diisocyanate, cyclohexane-1,4-diisocyanate, dicyclohexylmethane-4,4'-diisocyanate (CHMDI), isophorone diisocyanate (IPDI), or a mixture thereof. In one embodiment, the diisocyanate includes hexamethylene diisocyanate, dicyclohexylmethane-4,4'-diisocyanate, isophorone diisocyanate, or a mixture thereof. In one embodiment, the diisocyanate comprises hexamethylene diisocyanate, dicyclohexylmethane 4,4'-diisocyanate, isophorone diisocyanate, or a mixture thereof. In another embodiment, the diisocyanate comprises 4,4'-diphenylmethane diisocyanate, 2,4-toluene diisocyanate, 2,6-toluene diisocyanate, or 1,4-phenylene diisocyanate. In one embodiment, the diisocyanate comprises 4,4'-diphenylmethane diisocyanate, 2,4-toluene diisocyanate, 2,6-toluene diisocyanate, 1,4-phenylene diisocyanate, or a mixture thereof. In one embodiment, the molar mass of the diisocyanate is 100 to 500 g / mol. In one embodiment, the molar mass of the diisocyanate is 150 to 260 g / mol.
[0031] Chain extenders are typically low-molar mass aliphatic compounds containing two or more, preferably two, hydroxyl or amine groups. Difunctional chain extenders result in linear, generally thermoplastic, polymers, while multifunctional chain extenders and / or isocyanates lead to branched or crosslinked products. In one embodiment, the difunctional chain extender has a molar mass of at least 60 g / mol, at least 70 g / mol, at least 80 g / mol, at least 90 g / mol, or at least 100 g / mol. In one embodiment, the chain extender has a molar mass of at most 500 g / mol, at most 400 g / mol, at most 300 g / mol, at most 200 g / mol, or at most 150 g / mol. In one embodiment, the chain extender comprises ethylene glycol, diethylene glycol, propylene glycol, dipropylene glycol, 1,3-propanediol, 1,4-butanediol, 1,5-pentanediol, 1,6-hexanediol, or 1,8-octanediol, and / or their corresponding diamines. In an embodiment, the thermoplastic polyurethane comprises only diol chain extenders.
[0032] In other embodiments, the TPU contains hard blocks with both urethane and urea linkages. The advantage is enhanced interaction between the hard blocks, allowing for a higher softening temperature and / or a higher soft block content; resulting in block copolymers with enhanced flexibility and elasticity, as well as excellent flexural strength or fatigue resistance. Depending on the diol / diamine ratio, polyurethane chains may exhibit such strong interactions that thermal degradation may occur at melt processing temperatures, making solution processing preferred for optimal performance. Commercially available examples of such polyurethanes containing both urethane and urea linkages, also known as polyurethaneureas, include Biospan® products (e.g., available from DSM Biomedical BV, Sittard-Geleen NL).
[0033] In a further embodiment, the thermoplastic polyurethane comprises a soft block derived from at least one aliphatic polymeric diol or polyol selected from the group consisting of polyethers, polyesters, polyacrylates, polyolefins, and polysiloxanes (also called silicones), where the polymer is difunctional with hydroxyl (or amine) end groups. Such polymeric diols for the soft block are herein understood to include oligomers, homopolymers, and copolymers, and polyesters are considered to include polycarbonates. Commonly known polyurethane block copolymers and methods for preparing these copolymers are described, inter alia, in U.S. Patent Nos. 4,739,013, 4,810,749, 5,133,742, and 5,229,431.
[0034] In an embodiment of the present disclosure, the thermoplastic polyurethane comprises at least one polymer diol selected from aliphatic polyester diols, aliphatic polyether diols, poly(isobutylene) diols, and polysiloxane diols as a soft block. As for the chain extender, some amine-functional soft blocks can be used, which provide additional urea bonds. The biocompatibility and biostability of such polyurethane block copolymers in the human body have been proven.
[0035] The mechanical and other properties of thermoplastic polyurethanes can be adjusted by varying the chemical composition and / or molar mass of the blocks. The hard blocks of the thermoplastic polyurethanes contained in the compositions of the present invention can have a molar mass of about 160 to 10,000 Da, more preferably about 200 to 2,000 Da. The molar mass of the soft segments can typically be 200 to 100,000 Da, and preferably at least about 400, 600, 800, or 1,000 Da, and up to about 10,000, 7,500, 5,000, 4,000, 3,000, or 2,500 Da. Within the context of the present disclosure, the molar masses of the polymers and oligomers forming the blocks in the polymer are referred to as number-average molar masses (M), derived, for example, from GPC measurements. n ) The ratio of soft block to hard block can be selected to provide a desired stiffness or hardness of the polyurethane. Typically, the hardness of the polyurethane, as measured by Shore Durometer hardness testing using the A or D scale, can be 40 ShA to 90 ShD, generally representing a flexural modulus range of about 10 to 2000 MPa. In embodiments, the thermoplastic polyurethane included in the composition has a hardness of 45 ShA to 90 ShA, preferably at least 50, 55, or 60 ShA. An advantage of using a TPU with a significantly lower hardness can be higher toughness of the resulting composition, which further includes a transition metal compound such as zirconia. In other embodiments, the TPU in the polymer composition has a hardness of 90 ShA to 90 ShD, which will result in higher stiffness of the composition. In further embodiments, the TPU has a stiffness of at least 40, 50, or 60 ShD and a hardness of up to 85 or 80 ShD for a good balance between stiffness and processing behavior.
[0036] In a further embodiment of the present invention, the thermoplastic polyurethane comprises in the soft block an aliphatic polyether, an aliphatic polyester or an aliphatic polycarbonate, more particularly an aliphatic polycarbonate. The composition of the soft block preferably has a T of 10, 0 and preferably less than -10°C. gThe polycarbonate-based TPU is selected to produce an essentially amorphous oligomer or polymer having the following structure: Suitable aliphatic polyethers include poly(propylene oxide) diol, poly(tetramethylene oxide) diol, and copolymers thereof. Suitable aliphatic polyesters are generally prepared from at least one aliphatic dicarboxylic acid and at least one aliphatic diol. Aliphatic polycarbonate diols are based on aliphatic diols similar to those used for polyester diols and can be synthesized via various routes known in the art. Suitable examples include poly(hexamethylene carbonate) diol and poly(tetrahydrofuran carbonate) diol. Such polycarbonate-based TPUs exhibit favorable biocompatibility, such as hemocompatibility, and enhanced in vivo stability. In one embodiment, the soft block of the TPU is based on poly(hexamethylene carbonate) diol, poly(polytetrahydrofuran carbonate) diol, or a mixture thereof. In a preferred embodiment, the soft blocks of the TPU contain or are substantially based on poly(hexamethylene carbonate) diol.
[0037] In a further embodiment, the soft block of the TPU comprises a polysiloxane diol, such as poly(dimethylsiloxane) diol, polycarbonate diol, or poly(tetramethylene oxide) diol. In one embodiment, the soft block is based on a polysiloxane diol, polycarbonate diol, poly(tetramethylene oxide) diol, or a mixture thereof. In one embodiment, the soft block comprises a mixture of two or more of a polysiloxane diol, polycarbonate diol, or poly(tetramethylene oxide) diol. Such a mixture allows for the production of a biocompatible polyurethane exhibiting enhanced hydrolytic stability combined with high toughness. In one embodiment, the soft block is based on a mixture of two or more of a polysiloxane diol, polycarbonate diol, or poly(tetramethylene oxide) diol. In one embodiment, the soft block comprises a polysiloxane diol and one or more of a polycarbonate diol and a poly(tetramethylene oxide) diol. In one embodiment, the soft blocks are based on polysiloxane diols and one or more of polycarbonate diols and poly(tetramethylene oxide) diols.
[0038] In one embodiment, the soft blocks are C2 to C 16 Fluoroalkyldiol or C2-C 16In one embodiment, the soft block in the polyurethane backbone is selected from the group consisting of 1H,1H,4H,4H-perfluoro-1,4-butanediol, 1H,1H,5H,5H-perfluoro-1,5-pentanediol, 1H,1H,6H,6H-perfluoro-1,6-hexanediol, 1H,1H,8H,8H-perfluoro-1,8-octanediol, 1H,1H,9H,9H-perfluoro-1,9-nonanediol, 1H,1H,1 Contains a residue of 0H,10H-perfluoro-1,10-decanediol, 1H,1H,12H,12H-perfluoro-1,12-dodecanediol, 1H,1H,8H,8H-perfluoro-3,6-dioxaoctane-1,8-diol, 1H,1H,11H,11H-perfluoro-3,6,9-trioxaundecane-1,11-diol, fluorinated triethylene glycol, or fluorinated tetraethylene glycol.
[0039] In one embodiment, C2 to C 16 Fluoroalkyldiol or C2-C 16 The fluoroalkyl ether diol has an M of at least 150 g / mol, at least 250 g / mol, or at least 500 g / mol. n In one embodiment, the fluoroalkyl diol or fluoroalkyl ether diol has a molar mass of at most 1500 g / mol, at most 1000 g / mol, or at most 850 g / mol. 16 Fluoroalkyldiol or C2-C 16 The fluoroalkyl ether diol is present in an amount of at least 1 wt%, at least 2 wt%, or at least 5 wt%, based on the total weight of the polyurethane. 16 Fluoroalkyldiol or C2-C 16 The fluoroalkyl ether diol is present in an amount of up to 15 weight percent, up to 10 weight percent, or up to 8 weight percent, based on the total weight of the polyurethane.
[0040] In embodiments, polyurethanes may contain one or more hydrophobic or hydrophilic end groups. Generally, end groups are non-reactive moieties present at the end of a molecule. In one embodiment, polyurethanes contain end groups at each end of the main chain; i.e., polyurethanes have an average of about two end groups. In one embodiment, the end groups are linear compounds. In another embodiment, the end groups are branched. The end groups may be formed by reacting terminal isocyanate groups present during or after the formation of the polymer backbone with co-reactive groups on a monofunctional compound, also known as a chain terminator. For example, a formulation for forming a polyurethane may include a diisocyanate, a polymeric aliphatic diol, a chain extender, and a monofunctional alcohol or amine, such as 1-octanol or octylamine, to form C8 alkyl end groups.
[0041] In one embodiment, the end groups are, for example, C2 to C6, including copolymers thereof. 20 Alkyl, C2-C 16 Fluoroalkyl, C2-C 16 The hydrophobic end group comprises a fluoroalkyl ether, a hydrophobic poly(alkylene oxide), or a polysiloxane. In one embodiment, the hydrophobic poly(alkylene oxide) is poly(propylene oxide), poly(tetramethylene oxide), or copolymers thereof. In one embodiment, the hydrophobic end group is a polysiloxane, such as poly(dimethylsiloxane). In one embodiment, the end group is a C2-C 20 Alkyl, C2-C 16 Fluoroalkyl, C2-C 16 These include fluoroalkyl ethers or hydrophobic poly(alkylene oxides). Such end groups can be formed using monofunctional alcohols, including carbinols, or the amines mentioned above. Such polyurethane elastomers with hydrophobic end groups have been found to positively affect the properties of polyurethanes and their interaction with other materials, including other polymers such as polyolefins, and with body tissues and fluids, such as blood.
[0042] In one embodiment, the hydrophobic end group is C2-C16 Fluoroalkyl or C2-C 16 Such end groups include C2 to C6 fluoroalkyl ethers. 16 Fluoroalkyl or C2-C 16 In one embodiment, the terminal group may be formed by a monofunctional alcohol or amine, including fluoroalkyl ethers. In one embodiment, the terminal group may be 1H,1H-perfluoro-3,6-dioxaheptan-1-ol, 1H,1H-nonafluoro-1-pentanol, 1H,1H-perfluoro-1-hexyl alcohol, 1H,1H-perfluoro-3,6,9-trioxadecan-1-ol, 1H,1H-perfluoro-1-heptyl alcohol, 1H,1H-perfluoro-3,6-dioxadecan-1-ol, 1H,1H-perfluoro-1-octyl The alcohol is formed from 1H,1H-perfluoro-1-nonyl alcohol, 1H,1H-perfluoro-3,6,9-trioxatridecan-1-ol, 1H,1H-perfluoro-1-decyl alcohol, 1H,1H-perfluoro-1-undecyl alcohol, 1H,1H-perfluoro-1-lauryl alcohol, 1H,1H-perfluoro-1-myristyl alcohol, or 1H,1H-perfluoro-1-palmityl alcohol.
[0043] In another embodiment, the end groups are hydrophilic end groups formed from hydrophilic monofunctional alcohol or amine compounds. Such compounds are typically water-soluble and may exhibit surface activity, such as polyethylene oxide or sulfonate-functional compounds. Such hydrophilic end groups may affect interaction with or adhesion to other materials, for example, enhancing the dispersion of certain inorganic filler particles.
[0044] In another embodiment, the polyurethane contains a mixture of hydrophobic and hydrophilic end groups. Such modification allows for the adjustment of the hydrophobic-to-hydrophilic balance of the polymer. The general advantage of using TPU with end groups is that it allows for the modification and control of the properties of the polymer and polymer composition without incorporating additives that may introduce potential migration problems from the polymer composition and implant.
[0045] In one embodiment, the end group is monomeric and has a molar mass of 200 g / mol or more, 300 g / mol or more, or 500 g / mol or more, and 1,000 g / mol or less, or 800 g / mol or less. In other embodiments, the end group is polymeric and has a molar mass of 10,000 g / mol or less, 8,000 g / mol or less, 6,000 g / mol or less, or 4,000 g / mol or less. In one embodiment, the end group is polymeric and has a molar mass of 500 g / mol or more, 1,000 g / mol or more, or 2,000 g / mol or more.
[0046] In one embodiment, the end groups are present in an amount of at least 0.1%, at least 0.2%, at least 0.3%, or at least 0.5% by weight, based on the total weight of the polyurethane. In one embodiment, the end groups are present in an amount of at most 3%, at most 2%, or at most 1% by weight, based on the total weight of the polyurethane. In one embodiment, the end groups are present in an amount of at least 0.1%, at least 0.2%, at least 0.3%, or at least 0.5% by weight, and at most 3%, at most 2%, or at most 1% by weight, based on the total weight of the polyurethane.
[0047] In one embodiment, the polyurethane comprises less than 0.1 wt. % end groups, based on the total weight of the polyurethane. In one embodiment, the polyurethane is substantially free of end groups. In one embodiment, the polyurethane is free of end groups.
[0048] The hard block in TPU is typically based on an aromatic diisocyanate, such as toluene diisocyanate (TDI) or methylene diphenyl diisocyanate (MDI), and a low molar mass aliphatic diol, such as 1,4-butanediol. Polyether and polycarbonate polyurethanes are suitable for biomedical applications due to their flexibility, strength, biostability, biocompatibility, and abrasion resistance. TPUs containing a combination of polyether and polysiloxane or polycarbonate and polysiloxane in the soft block exhibit a unique combination of properties and can be advantageously used as polyurethanes in polymer compositions. Commercially available examples of such polymers include Pursil® and Carbosil® products (available from DSM Biomedical BV, Sittard-Geleen NL).
[0049] In a further embodiment, the TPU may be a blend of two or more polyurethanes, e.g., a blend of two biostable, biocompatible TPU grades, such as a combination of biocompatible TPUs with at least different strengths, 50-80 ShA and 70-85 ShD grades. In such TPU blends, the two polymers may also differ in the type of soft block. An example is a mixture of a low-hardness TPU containing polysiloxane in the soft block and a stiffer TPU containing polycarbonate in the soft block. Such TPU blends can provide a beneficial combination of stiffness and toughness.
[0050] In other embodiments, the TPU may contain one or more conventional biocompatible additives, in addition to, for example, catalyst residues, i.e., that enable the use of the TPU and the targeted polymer composition in medical implants. Examples of additives include stabilizers, antioxidants, processing aids, lubricants, surfactants, antistatic agents, colorants, and the like. The additives may be present in typically effective amounts known in the art, such as, for example, 0.01 to 5% by weight, preferably 0.1 to 2% by weight, based on the amount of polyurethane and additive. In yet another embodiment, the TPU is substantially additive-free.
[0051] In embodiments, the polymer composition consists essentially of, or consists of, a) 30-85% by weight of a biostable thermoplastic polyurethane, and b) 15-70% by weight of biocompatible particles comprising a transition metal compound, where the sum of a) and b) is 100% by weight.
[0052] In another embodiment, the polymer composition comprises a) 20-85 wt. % of the biostable thermoplastic polyurethane described above, b) 15-70 wt. % of biocompatible particles containing a transition metal compound, and c) 0-10 wt. % of other compounds, where the sum of a)-c) equals 100 wt. Examples of other compounds include bioactive compounds such as antibacterial or anti-inflammatory agents, active compounds or drugs that reduce pain or improve healing or bone formation, additives typically applied to polymer composite compositions such as stabilizers, dispersants, or other intentionally added compounds, as well as residual amounts of solvents that may be used to create the composition, including those for cleaning devices used in the composition. In an embodiment, the composition and parts made therefrom contain up to 5, 4, 3, or 2 wt. % of other compounds and up to 1000 ppm of solvent, preferably up to 800, 600, 500, or 400 ppm of solvent.
[0053] The polymer composition includes biocompatible inorganic particles comprising a radiopaque transition metal compound. Transition metals, in the context of this application, are defined as elements designated as transition metals in the periodic table of elements, including the lanthanide series. Suitable transition metal compounds are oxides (or other salts) of one or more transition metals, which combine inertness to TPU and related processing conditions, biocompatibility, radiopacity, and MRI compatibility. Radiopaque or radiopaque, and radiopaque or radio-opaque, mean that the inorganic particles block the passage (or absorption) of radio waves and X-rays of the electromagnetic spectrum to an extent that sufficient contrast with native tissue is visible using medical X-ray imaging techniques (also called radioimaging). Factors contributing to radiopacity are electron density and atomic number. MRI compatibility or compatibility means that the material is free of known hazards in all MRI environments; i.e., non-conductive, non-metallic, and non-magnetic. Such radiopaque and MRI compatible particles may exhibit contrast with native tissue on MRI images.
[0054] In embodiments, the polymer composition comprises biocompatible metal salt particles or, preferably, biocompatible transition metal oxide particles as inorganic particles.
[0055] In an embodiment, the polymer composition comprises biocompatible inorganic particles comprising a salt, preferably an oxide of at least one of titanium (Ti), zinc (Zn), yttrium (Y), zirconium (Zr), lanthanum (La), ytterbium (Yb), hafnium (Hf), and tantalum (Ta). In another embodiment, the polymer composition comprises inorganic particles comprising a salt, preferably an oxide of at least one of Ti, Zn, Y, Zr, and Ta. Alternatively, the polymer composition comprises inorganic particles consisting essentially of, or consisting of, one or more of the salts or oxides. In a further embodiment, the polymer composition comprises inorganic particles consisting essentially of, or consisting of, a salt, preferably an oxide of at least one of Ti, Zn, and Zr.
[0056] In an embodiment, the polymer composition comprises particles comprising an oxide of titanium, preferably consisting essentially of, or consisting essentially of, titania. Titania is also called titanium dioxide or TiO2. Titania occurs in different mineral forms, such as rutile and anatase, and is mostly used as a white pigment in paints, plastics, foods, toothpaste, and pills.
[0057] In embodiments, the polymer composition comprises particles comprising an oxide of zinc; preferably, the polymer composition comprises particles consisting essentially of or consisting of zinc oxide (ZnO). Naturally occurring zinc oxide typically contains numerous impurities and is therefore generally synthesized from metallic zinc. Pure zinc oxide is a white powder that has applications in a number of different applications, including paints, plastics, rubber, and cement fillers, ceramics, and (given its antibacterial properties) dental and skin care products.
[0058] In an embodiment, the polymer composition comprises particles comprising an oxide of zirconium; preferably, the polymer composition comprises particles comprising zirconia. In an embodiment, the inorganic particles consist essentially of, or consist of, zirconia. Zirconia, also known as zirconia dioxide or ZrO2, is a white crystalline oxide of zirconium.
[0059] The primary use of zirconia is in the manufacture of hard ceramics, for example, by sintering at high temperatures. The use of such ceramics within the biomedical field is typically as crowns and bridges in dentistry. Other uses include protective, optical, and thermal barrier coatings, ceramic knives, and as diamond analogs in jewelry. Unlike many other mineral particles, zirconia is rarely used as a filler or reinforcing agent in thermoplastic polymer compositions (also called polymer compounds).
[0060] Although zirconia itself is chemically stable, it may undergo a phase change at high temperatures—much higher than those present during compounding with thermoplastic polyurethanes—during injection molding of the composition or during use of implants made therefrom. Commercially available zirconia grades may contain other elements, such as MgO, YO, CaO, or CeO, added in amounts of 1 to more than 10 mol% as thermally stabilizing dopants to certain layers. Furthermore, zirconia grades may contain small amounts of elements such as Hf, Al, Si, Fe, and Na. Therefore, within the context of the present disclosure, zirconia is understood to include substantially pure ZrO and mixed oxides containing ZrO and up to about 20% by weight, preferably up to 15, 10, or 5% by weight, of the other inorganic oxides mentioned above.
[0061] Polymer compositions containing polyurethane and inorganic particles such as titania, zirconia, and / or zinc oxide particles are radiopaque and can therefore be distinguished from other materials and tissues using medical X-ray techniques. The addition of non-magnetic particles to polyurethane also allows parts made from the composition to be imaged using MRI techniques, which is not possible with metallic implants commonly used in orthopedic procedures. Thus, implants made from the polymer composition can be visualized using common medical imaging techniques such as X-ray and MRI, allowing for proper monitoring of the implant's position at the target implantation site during surgical procedures and postoperative examination of its position relative to the surrounding tissue.
[0062] The inorganic particles in the polymer composition typically have a particle size in the range of 0.1 to 5 μm. Within the scope of this disclosure, the particle size of the inorganic particles is defined as D 50value, i.e. the median size or the middle value of the particle size distribution, as measured by light diffraction according to ISO 13320:2009, for example using a Malvern Mastersizer 2000. Particle size refers to the size of particles dispersed in water, which may differ from the particle size distribution in the polymer composition, since primary particles may not deagglomerate or disperse in the same way during mixing with the polymer.
[0063] The inorganic particles in the polymer composition may have different types of particle shapes, and may be regular or irregular. Particle shapes range from substantially spherical to more elongated or flattened shapes; cigar-like, platelet-shaped, needle-like, or fibrous shapes, with cross sections that may be circular, elliptical, triangular, or rectangular, and with average aspect ratios ranging from 1 to more than 10. The advantage of substantially circular particles is the isotropic properties of the composition, while elongated shapes may result in compositions with better mechanical properties, which often depend on the orientation of the particles. In embodiments, the polymer composition comprises a mixture of particles of various shapes.
[0064] In embodiments, the particles have a D of at least 0.10, 0.15, 0.20, 0.25, or 0.30 μm, with handling properties such as flow behavior and dosing behavior generally improving with particle size. 50 The particle size is preferably at most 5.0, 4.5, 4.0, 3.5, 3.0, 2.5, or 2.0 μm, taking into consideration dispersibility in polyurethanes and the mechanical properties of the polymer composition. The particles in the composition may also be a mixture of different sizes, such as a mixture of particles at the lower and upper ends of the range, to optimize the density and mechanical properties, such as stiffness or toughness, of the composition.
[0065] In embodiments, the polymer composition contains a biostable thermoplastic polyurethane and 15-70 wt. % inorganic particles, including particles of a transition metal compound, preferably zirconia. A significant amount of such particles will enhance the stiffness, e.g., tensile modulus and radiopacity, of a part fabricated from the composition, but may also impair the extensibility and toughness of the composition. Furthermore, polymer degradation due to shear during compounding to fabricate the composition may be enhanced by a large amount of particles. Thus, in embodiments, the composition contains at least 20, 25, 30, or 35 wt. % inorganic particles and up to 68, 66, 64, 62, 60, 58, 56, 54, 52, 50, 48, or 46 wt. % inorganic particles.
[0066] The polymer composition may also contain various particle combinations, for example, zirconia particles in combination with one or more other biocompatible inorganic particles, including other transition metal compound particles as defined above, such as titania and zinc oxide, and / or natural mineral particles, such as clay, mica, talcum, etc. The other inorganic particles typically have a similar particle size range and shape to the transition metal compound or oxide particles; however, they may also have a variety of particle shapes, for example, to produce a combination of spherical and acicular or fibrous particles. The other particles may be (bio)inert, such as zirconia, but may also exhibit bioactivity, such as osteoconductivity, such as bioglass or other silicate-treated bioceramics.
[0067] In embodiments, up to 25% by weight of the total amount of transition metal compound particles, such as zirconia and other inorganic particles, present in the polymer composition is preferably formed by up to 20, 15, 10 or 5% by weight of other inorganic particles.
[0068] In a further embodiment, the polymer composition is substantially free of calcium phosphate-based particles, such as hydroxyapatite, in view of the enhanced degradation reported in the literature and observed after preparation of such polyurethane compositions (see Experimental). More generally, in embodiments, the compositions are substantially free of inorganic particles or other compounds that may initiate or enhance the (hydrolytic) degradation of the polyurethane because such particles or compounds contain reactive groups that promote such degradation or have such hygroscopic properties that they cannot be adequately dried to a sufficiently low moisture content, e.g., less than 250, 150, or 100 ppm.
[0069] In another aspect, the present invention provides a method for producing a polymer composition as described above, including all variations and preferred embodiments thereof, and combinations thereof, comprising: providing a biostable thermoplastic polyurethane having a water content of up to 300 ppm; providing inorganic particles comprising a biocompatible transition metal compound and having a water content of up to 250 ppm; Optionally, mechanically or chemically treating the inorganic particles; Optionally, providing other compounds having a water content of at most 250 ppm; and mixing polyurethane, inorganic particles and other compounds.
[0070] Methods for producing the polymer composition can utilize various mixing equipment and processes known to those skilled in the art, such as solvent-assisted or melt-mixing processes. Generally, the polyurethane polymer and any other compounds, such as the optional transition metal compound, zirconia, or other inorganic particles and / or additives, are thoroughly dried before mixing using known methods. Typically, the polyurethane, including all of the variations and preferred embodiments described above, is dried for several hours, e.g., 4 to 30 hours, below its softening or melting point to obtain a water content of up to 300 ppm, preferably up to 250, 200, or 150 ppm. The inorganic particles, including all of the variations and preferred embodiments described above, can be dried at significantly higher temperatures for extended periods, e.g., 100 to 200°C for 20 to 40 hours, to obtain a water content of up to 250 ppm, preferably up to 150 or 100 ppm.
[0071] In embodiments, the method includes a step of mechanically or chemically (pre-)treating (dried) inorganic particles to enhance the properties of the resulting polymer composition. In embodiments, the mechanical treatment step includes milling or grinding the particles, optionally in the presence of auxiliary components. Such auxiliary components may be low-viscosity or low-viscosity liquids, dispersing aids, and / or polymers, each of which is biocompatible and compatible with polyurethane. Such treatment may be facilitated by the use of sonication to break down particle agglomerates and / or enhance dispersion. Such mechanical treatment steps can result in powders, dispersions, pastes, or solid compositions containing inorganic particles, the use of which can result in improved dispersion levels of the particles in the polyurethane during the subsequent mixing step. The treated inorganic particles can be dried to reach a desired moisture level of up to 250 ppm.
[0072] In a further embodiment, the method includes chemically treating (dried) inorganic particles to alter the type and amount of functional groups on the particle surface, and thereby the particle's dispersibility in and / or interfacial adhesion to polyurethane. This treatment can include corona treatment, plasma treatment, and / or wet chemical treatment. Corona or plasma treatment itself can modify the particle surface, as known to those skilled in the art, but can also be combined with wet chemical modification. In wet chemical treatment, the particles are typically first dispersed in a suitable solvent, and then a reagent is added, generally in an amount of 5 to 300% by weight of the particles. Dispersion can be facilitated using sonication to break down particle agglomerates. Suitable reagents are, for example, alkyl, amine, carboxylic acid, or peroxide functional groups, or silane compounds. Examples include carbon dioxide, oxygen, unsaturated hydrocarbons, alkylamines, carboxylic acids, and various amine- and / or alkoxy-functional silanes, such as 3-aminopropyltriethoxysilane. Such compounds are also referred to in the art as coupling agents. Considering the intended medical use of the polymer composition, the addition of other components such as catalysts is preferably excluded, the solvent is virtually completely removed after pretreatment, and the moisture level is a maximum of 250 ppm. A person skilled in the art will be able to select reagents and suitable treatment conditions based on general knowledge and optionally some routine experimentation.
[0073] In embodiments, other compounds as described above for the polymer composition may be provided, but these compounds have a water content of up to 250 ppm. Examples of other compounds include bioactive compounds, stabilizers, and compounds that aid in the dispersion of inorganic particles within the TPU during mixing.
[0074] In embodiments, a method for producing a polymer composition comprising a biostable polyurethane and 15-70 wt. % inorganic particles comprises adding dried particles or a dried masterbatch comprising such particles during the synthesis of the polyurethane. For example, such addition can be carried out prior to the first step—polymerization reaction, e.g., by mixing with liquid, starting chemicals, or during the second step—polymerization, e.g., by mixing the particles with a prepolymer before or during the second polymerization step.
[0075] In another embodiment, a method for producing a polymer composition comprising a biostable thermoplastic polyurethane and inorganic particles includes providing a polymerized polyurethane and using a solvent-assisted mixing process. For example, a solution of the dried polyurethane in a good solvent for the polymer, such as THF, is first prepared, followed by mixing with dried or pre-dispersed inorganic particles in a liquid, preferably the same good solvent. In embodiments, a biocompatible dispersing agent can optionally be added to aid in homogeneously dispersing the inorganic particles. Depending on the concentration of the polyurethane and the amount of particles in the mixture, a liquid dispersion or a paste-like mixture can be obtained. In a subsequent step, the solvent can be removed by known methods, such as evaporation, preferably at elevated temperature and / or reduced pressure. The resulting solidified polymer composition can then be shaped into a suitable form, for example, by cutting or grinding, for use in a molding process, such as compression molding or injection molding. Advantages of such a solvent-assisted mixing method include the relatively low shear and low temperature, i.e., low risk of polymer degradation, and the relatively small scale on which it can be operated.
[0076] In a further embodiment, a method for producing the polymer composition, also referred to as compounding, includes melt-mixing the components at a temperature above the softening or melting point of the polyurethane using known equipment, such as a batch mixer or a continuous mixer, such as a single- or twin-screw extruder. Optionally, a biocompatible wetting or dispersing agent can be added before or during melt-mixing to enhance particle dispersion. Prior to melt-mixing, the polyurethane and particles are thoroughly dried to minimize hydrolytic degradation during melting and mixing, as noted above. For similar reasons, the melt-mixing equipment and mixing conditions are selected to maintain the temperature of the composition as low as possible. In an embodiment, the polymer composition is produced by blending the dry components on a twin-screw extruder, applying conditions such as screw configuration, screw speed, throughput, and temperature settings that generate sufficient shear or torque for proper dispersion of the inorganic particles within the polyurethane while minimizing overheating and polymer chain scission or molar mass reduction. In an embodiment, the extruder barrel temperature setting is at most 210°C, preferably about 205 or 200°C. It has been observed that melt mixing polyurethane with dried particles under such conditions results in better dispersion and significantly less polymer degradation than found for the same thermoplastic polyurethanes such as hydroxyapatite and bismuth oxide.
[0077] In embodiments, the TPU in the polymer composition from which the bone fixation part of an orthopedic implant can be manufactured has a mass-average molar mass (or weight-average molecular weight) Mw of at least 70 kDa. Molar mass and molar mass distribution are typically measured using a GPC method, as described in the experimental section. Note that in this disclosure, the ISO terms "mass" and "molar mass" are generally used rather than the still commonly used terms "weight" and "molecular weight." It has been found that parts manufactured from polymer compositions produced by (melt) blending TPU and inorganic particles exhibit certain minimum desired properties, such as strength or elongation at break, when the TPU in the composition has such a minimum molar mass. In preferred embodiments, the TPU in the composition has a molar mass Mw of at least 75, 80, 85, 90, 95, or 100 kDa. The molar mass Mw of the TPU used to prepare the composition also meets this minimum value, but is typically higher; but preferably not so high that its melt viscosity would interfere with processing and mixing with inorganic oxide particles; This also limits the molar mass of the TPU in the resulting composition. In embodiments, the TPU in the prepared polymer composition has a molar mass of up to 400, 300, 250, or 200 kDa to produce a balanced combination of processability and mechanical properties.
[0078] In embodiments, the polymer composition has a modulus of at least 800 MPa, preferably at least 850 or 900 MPa, and at most 3000, preferably at most 2500, 2000, 1800 or 1600 MPa, measured at 20° C. on samples dried as molded. Alternatively, the polymer composition is characterized by a modulus of at least 200 or at least 225 MPa, and at most 700, preferably at most 600, 550, 500 or 450 MPa, measured on samples under conditioned wet conditions (in water at 37° C.), which better mimics the biological conditions during its targeted use in the implant. Without wishing to be bound by any theory, the inventors believe that the bone anchoring parts of the implant should mimic the mechanical properties, in particular the stiffness or modulus, of the surrounding bone tissue to achieve more durable results. In this regard, the inventors have noted that the bone fixation part of the implant will primarily contact the cancellous bone (also called trabecular bone or spongy bone) rather than the subchondral or cortical bone, which form the hard subchondral and hard outer layers of the bone, respectively; it will contact the hard outer layer and hard outer layer of the bone. For example, if the fixation part has an elastic modulus below the above level, micromotion between the implant and the surrounding bone may induce the formation of a fibrous tissue interface instead of the desired direct bond. If the implant part has an elastic modulus that is too high, stress shielding may occur; in this case, loads on the implant, such as on the cartilage replacement cap, may be transmitted primarily throughout the implant itself without loading the surrounding bone tissue. If the bone is not loaded, it may remodel and / or resorb in areas where it is not loaded, ultimately resulting in loosening of the implant. If the stiffness of the implant is too low, the implant may deform or break when loaded. Furthermore, the polymer composition exhibits reduced creep and plastic deformation compared to low stiffness materials such as unfilled polyurethane; this contributes to better stability of the implant.
[0079] In embodiments, and similar to the above paragraph, the polymer composition exhibits an elongation at break (Eab; dry at 20°C) during tensile testing of at least 5%, preferably at least 10, 20, 30, 40, or 50%, or an Eab (wet at 37°C) of at least 10, 20, 30, 40, or 50%. In embodiments, the polymer composition has a tensile strength at break (TS; dry at 20°C) of at least 30, 35, or 40 MPa, or a TS (wet at 37°C) of at least 15, 20, or 25 MPa after conditioning. Such stiffness and strength properties of the present composition in a conditioned state, comparable to those of cancellous bone, have been found to enhance compatibility and adhesion of implants made from the present composition to such living tissue over time. This further facilitates or improves insertion of the implant into a bone cavity with a lower risk of tissue damage compared to more rigid implants made from metal. Furthermore, implants made from the polymer compositions have been found to be strong enough to withstand forces during implantation as well as after implantation. For example, a typical implantation procedure applied by an orthopedic surgeon may involve inserting and press-fitting the implant into a hole drilled in bone using a hammer at the site of defective cartilage and a directional guide that may further limit the depth of penetration, and typically using their sensory responsiveness (such as noticing acoustic changes during hammering).
[0080] In an embodiment, the polymer composition has a Shore hardness of 76 to 85 ShD, typically 78 to 82 ShD (dry / 20° C.).
[0081] In a further aspect, the present invention relates to the use of a polymer composition comprising a biostable thermoplastic polyurethane and 15-70% by weight of inorganic particles as described above, including all features, embodiments and combinations thereof, in the manufacture of orthopedic implants and orthopedic implants, in particular bone fixation parts thereof. Examples of such uses include implants formed using an injection molding process, in particular such a process comprising molding a bone fixation part from the composition.
[0082] In another aspect, the present invention relates to a method for producing an orthopaedic implant or a bone fixation part of an orthopaedic implant, comprising forming the implant using an injection molding process, which comprises molding the orthopaedic implant or the bone fixation part of an orthopaedic implant from the polymer composition of the present invention as defined above. Such molding processes are generally known to a person skilled in the art with average skill.
[0083] The use of the polymer composition and / or method for manufacturing an orthopedic implant or bone fixation part of an implant may involve other parts that can be used to attach or fixate plugs, screws or parts of the implant to the bone, such as sutures, artificial ligaments or tendons, menisci, acetabular labrum replacement devices or cartilage replacement parts, etc. In embodiments, such additional parts may form an integral part of the implant, such as bone fixation parts and cartilage replacement parts, or may be detachably attached, such as sutures.
[0084] In an embodiment, the use and / or method comprises manufacturing an implant comprising at least two parts, such as a bone fixation part and a cartilage replacement part. The cartilage replacement part is typically manufactured from a resilient, wear-resistant, biocompatible material, such as a segmented block copolymer with a hard segment based on polyester, polyamide, or polyurethane. In an embodiment, the cartilage replacement part is manufactured from a biostable, resilient thermoplastic polyurethane (TPU), preferably comprising a hard block and a soft block chemically similar to TPU in polymer composition. In an embodiment, the use and / or method comprises manufacturing an implant in which the cartilage replacement part is manufactured from a biostable, resilient thermoplastic polyurethane with a hardness of 55-100 ShA. An advantage of using TPU material for both the bone fixation part and the further part of the implant is that these two parts can be injection molded, for example by applying an insert molding process or by a two-component molding process, to form a product with an adhesive, integrated part.
[0085] In an embodiment, the use and / or method comprises manufacturing a bone fixation part of an implant, which part consists essentially of the polymer composition. The bone fixation part may have a smooth outer surface or a textured surface and may optionally be provided with a surface coating, for example to influence the interaction with body tissue.
[0086] In an embodiment, the use and / or method comprises the step of producing an orthopedic implant comprising a bone fixation part and a cartilage replacement part, the method comprising forming the implant by a multi-component injection molding process, comprising the step of injection molding the polymer composition of the present invention into a mold containing an insert in the form of a cartilage replacement part to form the bone fixation part, followed by the step of removing the insert from the mold, and injecting a resilient, wear-resistant, biocompatible TPU material into the mold partially filled with the polymer composition to form the cartilage replacement part on the bone fixation part. Producing implants from different polymer grades by multi-component molding techniques is known in the art. For example, WO 2011 / 098473 A1 describes producing orthopedic implants, such as meniscus or spinal disc implants, having two or more separate sections, each containing different, but chemically related, polymeric materials of different TPU grades.
[0087] In a further embodiment, the use and / or method comprises producing a bone anchoring part with a textured surface, such as a surface with a surface roughness of at least 1, 3, or 5 μm, to enhance interaction with surrounding bone tissue after implantation. Such surface roughness can be introduced during or after production of the part from the composition. In an embodiment, such a part is produced by applying a mold with a predetermined surface texture, for example, as defined by the VDI 3400 scale commonly used in industry. For examples of polymeric implants with bone anchors having such textured surfaces and methods for producing them, see WO 2019 / 068903 A1. In a further embodiment, the bone anchoring part of the implant has a surface roughness Ra of at least 6, 8, 10, 12, 14, 16, 18, or 20 μm and at most 25 μm.
[0088] In another embodiment, the use and / or method comprises the further step of providing the (smooth or textured) surface of the bone anchoring part of the implant with a surface coating, e.g. a bioactive coating, preferably an osteoconductive coating, to further promote interaction with tissue. Onto the bone anchoring part of the implant various bioactive or osteoconductive coatings can be applied, based on both organic and inorganic bioactive materials and as described in the art.
[0089] In a further embodiment, the use and / or method comprises providing bioactive ceramic particles on at least a portion of the surface of a bone anchoring part made from the polymer composition in order to induce osteoconductive properties in said part. A suitable method for providing a bioactive coating on the surface of a bone anchoring part molded from a polymer composition comprises treating at least a portion of the surface with a dispersion of bioactive ceramic particles in a solvent for the polyurethane contained in the polymer composition, as described in WO 2019 / 068903 A1.
[0090] Suitable bioactive ceramic particles include all inorganic materials that exhibit the ability to adhere directly to living bone, for example, by forming bioactive bone-like apatite through interaction with surrounding body fluids or through chemical reaction. Examples of suitable materials include various calcium phosphates, so-called bioglass, and other silica-based ceramics (so-called silica-coated ceramics). For such applications, dicalcium phosphate anhydrous (CaHPO4; DCPA), dicalcium phosphate dihydrate (CaHPO4.2H2O; DCPD), octacalcium phosphate (Ca8(HPO4)2.5H2O; OCP), tricalcium phosphate (Ca3(PO4)2; TCP), and hydroxyapatite (Ca 10 Various types of calcium phosphates have been described, such as (PO4)6(OH)2; HA). Furthermore, blends of different types, such as mixtures of HA and TCP or HA and bioglass, can also be applied or may even show advantages. Ceramic particles, in addition to their main constituents, may also contain small or trace amounts of other (inorganic) elements or ions, such as Si, Na, Mg, Fe, Zn, Ti, Ag, Cu, or -SO4, or -CO3, which may improve certain properties of the particles.
[0091] The term "bioglass," including the commercial Bioglass® product, refers to mixed inorganic oxide or silica-coated ceramics that have a tissue-compatible surface reactive glass film and can be used as a surface coating on medical and dental implants. For example, Bioglass® 45S5 grade is described as a glass composed of 45% SiO2, 24.5% CaO, 24.5% Na2O, and 6.0% PO5 by weight. The high calcium-to-phosphorus ratio in this material will promote the formation of apatite crystals; calcium and silica ions can act as crystallization nuclei. Glass is a non-crystalline, amorphous solid generally composed of silica-based materials containing small amounts of other inorganic elements.
[0092] In one embodiment, the bioactive ceramic particles have a particle size in the range of 0.1 to 10 μm. Particle size and particle size distribution can be measured using SEM or optical microscopes, or using (laser) photorefractive techniques. Within the scope of this disclosure, the particle size and particle size distribution can be measured using, for example, a Malvern Mastersizer 2000 using the photorefractive method according to ISO 13320:2009. 50 The value is defined as the particle size of the bioceramic particles. This particle size does not appear to be particularly critical, although larger particles may be more effective in interacting with body fluids and cells. For ease of handling, ceramic particles with a particle size of at least 200 nm, or at least 300, 400, or 500 nm are preferred. In further embodiments, the implant has ceramic particles at the surface of the bone anchoring part with a particle size of at most 10, 8, 6, 5, 4, 3, 2 μm, or at most 1 μm.
[0093] In embodiments, methods for producing orthopedic implants comprising a polymer composition and / or a bone fixation part and a cartilage replacement part relate to various forms or shapes of implants proposed in the art, such as implants with substantial axial symmetry or implants in which at least one part has substantial axial symmetry. In an exemplary, fairly simple embodiment, as diagrammatically illustrated by the simplified drawing of FIG. 1 , which shows an oblique top view, the implant 1 has a cylindrical shape with a substantially constant diameter, where the large section 3 of the cylinder represents the bone fixation part, and the cartilage replacement part is a section (or layer) 2 at one end of the cylinder. The diameter of the cylinder may be 5-20 mm, 10-18 mm, 12-17 mm, or typically about 15 mm. Alternatively, the substantially cylindrical shape may exhibit some tapering, but the cartilage replacement part or layer has a diameter that is at most 10% larger than the smallest diameter of the bone fixation part. A slightly tapered bone fixation part has been found to be beneficial not only when releasing the part from the mold in which it was manufactured, but also when placing it into a bone cavity to ensure contact with the bone after implantation. Compared to the longitudinal direction of the fixation part, the lateral side may exhibit a tapering of 1 to 5°, preferably at least 1.5 or 2.0° and at most 4.5, 4.0, 3.5 or 3.0°. The cartilage replacement part, or at least its upper surface, may be substantially flat, or may be curved, or may be shaped to mimic the curvature of the articulating joint into which it is implanted. In embodiments, the cartilage replacement part of an orthopedic implant for cartilage replacement is of substantially constant or uniform thickness, preferably within the same range as the cartilage it replaces; for example, as the layer of material on the bone fixation part, which part also functions as a resilient layer.
[0094] In other embodiments, the implant 1 may have a mushroom-like shape with a basic axial symmetry and a cap and stem with different diameters. The simplified drawings shown in Figures 2A and 2B show a schematic oblique top view and a side cross-sectional view of such a mushroom-like implant. The stem 3b is cylindrical with a substantially constant diameter or a slight taper and forms the bone fixation part 3 together with the lower section 3a of the cap. Compared to its longitudinal direction, the outside of the stem may exhibit a taper of 1 to 5° as described above; the diameter of the stem slightly decreases from the cap toward the lower end. Both sections 3a and 3b forming the bone fixation part 3 are made of the same polymer composition as described in this disclosure. The upper section (or layer) 2 of the cap represents a cartilage replacement part, for example, made of elastic TPU with a hardness of 55 to 100 ShA. The stem diameter may be about 5-15 mm, typically about 6-10 mm; and the cap may have a diameter of about 5-25, 10-20, 12-18, or about 15 mm. In fact, a series of implants, typically varying in size (especially the cap), may be manufactured, for example as part of a kit, allowing for the selection of a suitable implant depending on the patient to be treated. The cartilage replacement part 2, or at least its upper surface, may be curved or contoured in one or more directions to mimic the curvature of the articulating joint into which it is implanted. In embodiments, the cartilage replacement part of such an orthopedic implant for cartilage replacement is a layer of substantially constant thickness, preferably within the same range as the cartilage layer it replaces. The underside of the cap 3a, which forms the bone fixation part, is essentially flat and preferably includes rounded edges and a rounded transition to the stem. Similarly, the bottom edge of the stem is rounded (not shown in the simplified drawing in FIG. 2). Generally, sharp edges and transitions are avoided to eliminate stress concentrations.When implanted, a bone hole is formed with a diameter equal to or slightly smaller than that of the stem 3b of the plug, while damaged cartilage is removed so as to expose bone tissue at such a diameter and depth, preferably so that the lateral and lower surfaces of section 3a are in contact with the patient's bone tissue upon insertion, and likewise so that the surface of stem 3b is in contact with cancellous bone. Cartilage replacement part 2 will then preferably only be in contact with the natural cartilage on its lateral sides (and the cartilage surface of the opposing bone in the joint with the upper surface of part 2).
[0095] In other embodiments, the use of the polymer composition and / or the method for producing an orthopedic implant can be considered to include two similar mushroom-like implant parts that do not have an overall axial symmetry, but do have axial symmetry, similar to the parts discussed above that are partially fused together, e.g., like Siamese twins. An example of such an implant containing a substantially oval or elliptical cap with a contoured upper surface and two substantially identical cylindrical or tapered stems is shown diagrammatically in Figure 3. Here, the contoured upper layer 2 of the cap, which has a substantially uniform thickness, forms the cartilage replacement part, and the cap 3a and the two stems 3b' and 3b'' together form the bone fixation part 3.
[0096] In further embodiments, the use and / or method may further include including an orientation marker within the implant, such as at the interface between the bone fixation part and the cartilage replacement part. For example, the marker may include a recessed or protruding line or pointer on the top surface of the bone fixation part during molding, or the bone fixation part may be formed by placing a small, elongated object in the mold between the steps of injecting the polymer composition and injecting the biocompatible material forming the cartilage replacement part into the mold. Such a marker, when made from unfilled TPU, may be visible through the transparent or translucent cartilage replacement part, allowing for the placement of implants that do not have perfect axial symmetry with the desired orientation at the implantation site. The orientation marker may also be radiopaque to allow visualization of the orientation of the plug during and after implantation. For example, in the case of an implant comprising a cartilage replacement part with a surface having two or more contour radii to better adapt to the curvature of the bone, the orthopedic implant may further include a fairly small, radiopaque, elongated marker, such as a short, thin metal wire or piece, or an array of small marker particles. Such a radiopaque orientation marker may have a length of about 2-6 mm, such as a piece of tantalum wire. In an embodiment, such an orientation marker is present in the region between the bone fixation part and the cartilage replacement part. Such an orientation marker is shown as line 4 in FIG. 2b. The surgeon can then use his or her eyes and / or medical imaging to position the plug in the desired orientation; and can also use medical imaging techniques to postoperatively inspect its position and any potential changes therein.
[0097] In a further aspect, the present invention relates to an orthopedic implant comprising a bone fixation part, which part comprises the polymer composition of the present invention, including all the features, embodiments and combinations thereof described herein, and which implant has been obtained by the method of the present invention as described above.
[0098] The terms "a," "an," "the," and similar uses in connection with the description of the present invention (particularly in connection with the claims that follow) are to be construed as including both the singular and the plural, unless otherwise indicated herein or clearly contradicted by context. The terms "comprise," "have," "include," and "contain" are to be construed as open-ended terms (i.e., meaning "including, but not limited to"), unless otherwise expressly stated. The recitation of ranges of values herein is merely intended to serve as a shorthand method of individually referring to each separate value falling within the range, and each separate value is incorporated into the specification as if it were individually set forth herein. Unless otherwise claimed, the use of any and all examples or exemplary language (e.g., "such as" or "like") provided herein is intended merely to better describe the invention and does not pose a limitation on the scope of the invention. No language in the specification should be construed as indicating any non-claimed element essential to the practice of the invention.
[0099] Preferred embodiments of this invention, including the best mode known to the inventors for carrying out the invention, are described herein. Variations of those preferred embodiments may become apparent to those of ordinary skill in the art upon reading the foregoing description. The inventors expect that such variations will be utilized by those of ordinary skill in the art, and the inventors intend to practice the invention otherwise than as specifically described herein. Accordingly, this invention includes all modifications and equivalents of the subject matter recited in the claims appended hereto as permitted by applicable law. Although specific optional features are described as embodiments of the invention, the description is meant to include and specifically disclose all combinations of these embodiments unless specifically indicated otherwise or physically impossible.
[0100] The following experiments and examples further illustrate embodiments of the present invention but, of course, should not be construed as in any way limiting the scope of the claims.
[0101] [Experimental section] [method] [Molar mass] The molar mass and molar mass distribution of the samples were measured by GPC (gel permeation chromatography, also known as size exclusion chromatography or SEC) on a Viscotek GPCMax VE2001 system equipped with a TDA302 triple detector array and three Phenogel™ columns (10 μm 10E6A, 10 μm 10E4A, and 10 μm 100A) as described in ASTM D5296-11. The detectors and columns were operated at 80°C. Polymer samples were dissolved at a concentration of 1.0 mg / ml in DMF containing 0.05 wt% LiBr and 300 mg / l DHT at 70°C for up to 4 hours and filtered through a 0.2 μm PTFE membrane. This solvent composition was also used as the eluent. Molar mass calculations were based on a calibration curve obtained using EasyCal polystyrene standards, and results were adjusted using polyurethane samples with known molar masses.
[0102] [hardness] The hardness of the molded samples was measured using a Zwick Shore hardness tester 3131 according to ISO 868 (measurement time 15 seconds, 20.9°C / 51.1% relative humidity, average of 5 tests).
[0103] [Tensile properties] Tensile modulus, (absolute) tensile strength, and elongation at break were measured using a method based on ISO 527 on a Zwick Z010 universal tensile testing machine equipped with a 2.5 kN pneumatic jaw and a temperature chamber. Injection-molded test bars (ISO 527 type 1BA) were tested dry as molded articles at 20°C and at 37°C after conditioning in water. Samples for measurements in the dry as molded state were dried overnight in a vacuum oven at 80°C with a small N2 flow and stored in a sealed box filled with silica gel. Samples were conditioned by immersing them in water maintained at 37°C until the change was less than 0.1% by weight (typically for at least 360 hours), and the mass gain was measured every 24 hours. Each sample was stored at these conditions for a short period before placing it in the temperature chamber of the tensile testing machine. Immediately prior to testing, the width and thickness of the sample were measured at the center of the specimen. The sample was placed in the grips with a 54 mm inter-grip distance at the starting position. A preload of 0.5 N was applied before the tensile experiment began. The sample's elastic modulus was determined between the initial 0.05 and 0.25% strain at a rate of 1 mm / min. Stress and strain measurements were then performed at 50 mm / min until the sample broke, and elongation was measured until 60% strain was measured with an extensometer.
[0104] [Particle size] Particle size distribution and particle size (D 10 , D 50 and D 90 ) was measured on samples dispersed in water using a Malvern Mastersizer 2000 according to ISO 13320:2009.
[0105] [Crystallization behavior] Differential scanning calorimetry (DSC) was carried out using a Mettler Toledo standard heat flux DSC. Samples of approximately 5 mg mass were cut from the pellets, weighed using a precision balance, and sealed in (crimped) aluminum pans of known mass. An identical empty pan was used as a reference material. Nitrogen was purged at a rate of 50 ml / min. Heat-cool-heat cycles were applied to determine parameters that numerically characterize the thermal behavior of the investigated materials. The temperature program applied was: [1] 0.0–70.0°C, 10.00 K / min; [2] 70.0°C, 60.00 min; [3] 70.0–90.0°C, −10.00 K / min; [4] −90.0°C, 10.00 min; [5] −90.0–240.0°C, 10.00 K / min; [6] 240.0°C, 2.00 min; [7] 240.0–90.0°C, −10.00 K / min; [8] −90.0°C, 10.0 min; [9] −90.0–240.0°C, 10.00 K / min.
[0106] [Polymer composition] [Experiments 1-3] In the experiments, a polycarbonate urethane based on MDI, butanediol, and poly(hexamethylene carbonate) diol with a hardness of 75 ShD and a mass-average molar mass Mw of 388 kDa was used after drying at 80 °C for 24 h to a moisture content of 113 ppm. Hydroxyapatite with a particle size of 5 μm (Merck, hydroxyapatite for bioceramics) was dried at 120 °C for 24 h to reach a moisture level of approximately 2650 ppm.
[0107] The polyurethane and filler components were melt-mixed on a Coperion ZSK Mc18 twin-screw extruder equipped with two Colortronic LabLine feeders and a die plate with one 3 mm orifice. Polyurethane granules were fed into the intake barrel, and HA powder was fed into barrel 2 via an intake side feeder at an 80 / 20 TPU / HA mass ratio. Temperature settings for all zones were 190°C. The screws rotated at 150–200 rpm, with a throughput of approximately 2.5 kg / h, and torque levels varied somewhat within the 50–70% range. Extrusion conditions were selected to produce a melt temperature of approximately 200°C maximum, allowing for a stable blend that would yield smooth, regular strands. The extruded strands were cooled in a water bath with a total cooling length of 2 m and then chopped into pellets using a motorized strand pick-up and a Scheer 50E pelletizer (operated at low speed).
[0108] The extruder was rinsed before and after mixing experiments with polyurethane at an extrusion rate of 2 kg / h for 5-10 min.
[0109] The resulting pellets were injection molded into test bars on an Xplore IM12 microinjection molding machine after drying the pellets under vacuum / N2 at 120°C for 24 hours. The barrel temperature was set at 200°C and the mold temperature at 100°C. After a melt time of at least 5 minutes, the material was injected into a vented mold at an injection pressure of 10 bar for 2.2 seconds and a pack pressure of 10 bar for 10 seconds.
[0110] Tensile properties were determined at room temperature (20°C) on specimens that were dry as molded, as well as at 37°C in the wet state to mimic the conditions when used as an implant material.
[0111] The results are summarized in Table 1 as (comparative) Experiment 2. The table also presents the molar mass data (Mw) determined on pellets and molded specimens.
[0112] Experiment 1 relates to the results of a reference test carried out on unfilled polyurethane pellets that were injection molded and tested in the same manner as Experiment 2 above, but at a molding temperature of 235°C and an applied pressure of 15 bar.
[0113] Experiment 3 was carried out in the same manner as experiment 2, except that the amount of HA introduced into the extruder was 40% by mass.
[0114] Tensile test measurements, summarized in Table 1, suggest that the hydroxyapatite particles act as a non-reinforcing filler in the polyurethane; dry modulus did not change significantly, tensile strength and elongation decreased significantly, while water uptake decreased and had little effect on properties (20°C / dry vs. 37°C / wet). The Shore hardness of the molded bars increased from 75.7 ShD (Run 1) to 80.2 ShD (Run 2). GPC results indicate a significant decrease in molar mass compared to the unfilled material, likely induced during the melt processing step; primarily due to residual water content contained in the crystalline HA particles, which induces polymer degradation during compounding. Such an explanation would be supported by the observation that the melt temperature during compounding must be kept below 200°C, since otherwise stable strand extrusion would not be possible.
[0115] [Experiment 4] Similar to the compounding procedure in Experiments 2 and 3, HA was replaced with 4 μm particle size bismuth oxide (Bi2O3) (D) particles dried at 120 °C for 24 hours to a moisture content of 153 ppm. 50 5N Plus Product data sheet (Helos / Rodos) was used. Various variations in processing conditions were tried, but the experiment was stopped when it became impossible to achieve a stable process and / or foaming and discoloration of the extrudate were observed, likely caused by excessive decomposition of the polyurethane. No further experiments were performed with this material.
[0116] [Experiments 5-6] In these experiments, zirconium oxide TZ-0 (Tosoh Europe BV), a free-flowing powder with a primary particle size of 0.04 μm (according to a Tosoh brochure), was added as a filler to the polyurethane being compounded. The sample was dried at 120°C for 24 hours and then compounded with the same 75ShD polyurethane using the same procedures as in Experiments 2 and 3. Setting the barrel temperature to 200°C and increasing the screw speed to 300 rpm appeared to prevent strand breakage during compounding and improve particle size distribution. Torque levels were limited to 60-70%, and the melt temperature was a maximum of 212°C. The powder dosing behavior was excellent, but thick-thin variations were observed in the extruded strand, suggesting poor particle dispersion.
[0117] The addition of these zirconia particles at 20 and 40% by weight loadings results in a decrease in strength; at 40% by weight loading, the composition is even brittle. This is likely caused by insufficient dispersion of the agglomerated primary particles within the polyurethane matrix. To enhance dispersion and improve mechanical properties, particle pretreatment and / or the addition of dispersants can be applied.
[0118] [Experiments 7-8] Using the same conditions and procedures as in Experiments 5-6, a 75ShD polyurethane composition containing zirconium oxide TZ-Y3-E (Tosoh) was prepared. This zirconia grade, TZ-Y3, contains 3 mol% yttrium and is also commercially available as a free-flowing powder with a (primary) particle size of 0.04 μm. Processing was similar to that observed for the TZ-0 powder. As with the pure zirconia grade, the polyurethane composition tended to exhibit brittle failure during tensile testing, especially at a load of 60% by mass. The particle size distributions of the TZ-0 and TZ-Y3 grades, determined and shown in Figure 6, confirm that the actual particles are much larger than their primary particles, with maximum values of approximately 60 and 50 μm, respectively, and a smaller maximum value of approximately 1 μm. This again suggests that the observed processing and brittleness problems could be overcome if these particles were pretreated and / or (partially) deagglomerated before mixing with the polymer, and / or if a dispersing aid was added during mixing. Furthermore, applying a mixing device that allows for higher power output than the small laboratory scale device used may also enhance dispersion.
[0119] [Experiments 9-11] In these examples, medical grade zirconium oxide (herein referred to as ZrO / SA) obtained from Sigma Aldrich was used after drying at 120° C. for 24 hours. These particles had a particle size D of approximately 1.8 μm. 50This is much smaller than the particle size found for the particles used in Experiments 5-8 above, as shown in Figure 6. Compounding was performed similarly, but with the use of several additional mixing elements in the feeder to ensure proper dosing of the dry, somewhat viscous powder. Polymer strands and granules were produced in a stabilization process. The compositions produced showed an increase in tensile modulus with zirconia loading (20, 40, and 60 wt%), but a decrease in tensile strength and elongation. All samples exhibited tensile property profiles that would be suitable (even in the conditioned state) for use in manufacturing bone anchors. The addition of zirconia increased hardness from 75.7 ShD (Experiment 1) to 81.1 and 80.2 ShD (Examples 10 and 11).
[0120] GPC measurements show a decrease in molar mass after melt processing, especially during compounding; however, these decreases appear to be significantly smaller than those observed for compositions containing HA particles. Unfilled polyurethanes show higher molar masses after injection molding; however, this material did not undergo a prior compounding step.
[0121] The crystallization behavior of selected samples was investigated using conventional DSC; the relevant results (temperature and enthalpy (J / g sample)) are summarized in Table 2, and the DSC curves for Runs 1 and 9-10-11 are shown in Figure 7. For composition TPU / HA 80 / 20 (Run 2), crystallization appears to begin during cooling at temperatures higher than those for the reference polyurethane, which may be related to the low molar mass of the degraded polyurethane and / or some degree of nucleation by the hydroxyapatite particles. On the other hand, the broadening of the crystallization and melting peaks observed, especially for large amounts of filler particles, would point to an impeded (slower) polymer crystallization. The compositions containing zirconia particles show nucleation during cooling and higher melting temperatures in the reheat scan.
[0122] [Table 1]
[0123] [Table 2]
[0124] [Cartilage plug] The prototype cartilage plugs with a mushroom-like shape shown in Figure 2A-B were fabricated on a benchtop Xplore IM12 microinjection molding machine using a mold holder part containing a two-part mold and applying one set of inserts to enable two-component molding.
[0125] The material used was a TPU composition containing 60 wt% zirconia (Experiment 11) and an unfilled, end-group-modified polycarbonate urethane (Bionate® II 80A; DSM Biomedical BV, Sittard-Geleen, NL) with a hardness of 80 ShA. The material was dried under vacuum / nitrogen gas flush at 120°C for 24 hours or 80°C for 72 hours, respectively, before use.
[0126] The different mold parts together define an implant part with the following basic dimensions: a stem section with a length of 6.5 mm, a diameter of 6.1 mm, and a lower end rounded at a 45° angle; a cap section with a reciprocally rectangular contoured upper surface with a diameter of 10.1 mm, two radii of 11 and 18 mm, and a total cap height of 3.5 mm, the lower 1.0 mm of which joins to the stem made of a rigid polymer composition. All other edges were rounded with a radius of 0.5 mm. The mold part defining the stem section was etched to produce a texture with a roughness of VDI 3400 36.
[0127] In the first step, a polyurethane / zirconia composition was injected into a mold containing an insert in the cap section using a barrel temperature of 210°C, a mold temperature of 80°C, an injection pressure of 10 bar for 2.2 seconds, and a packing pressure of 10 seconds. The insert was then removed from the mold, and a 4 mm long tantalum wire preheated on a hot plate set at 250°C, oriented with an 18 mm radius of the cap, was placed into the mold on the injection surface. Subsequently, a resilient polyurethane material was injected to form the top section of the cap using a barrel temperature of 235°C, a mold temperature of 80°C, an injection pressure of 12 bar for 2.2 seconds, and a packing pressure of 12 bar for 10 seconds.
[0128] The molded plugs were functionalized with bioceramic particles by coating the underside of the stem and cap with a dispersion of BCP particles (biphasic calcium phosphate; Cam BioCeramics) in THF; allowing the samples to air dry, rinsing multiple times with ethanol (under vacuum at 50°C), and drying. These plugs according to the invention were designated Plug I).
[0129] Similar to the procedure described above, plugs were molded from the corresponding unfilled materials: the stem section from a polycarbonate urethane with a hardness of 75 ShD (Bionate® 75D; DSM Biomedical BV, Sittard-Geleen NL) and the cap section from a Bionate® II 80A material. These unfilled plugs are referred to below as Plug U.
[0130] Additionally, a metallic plug was fabricated with a shape and dimensions corresponding to the polymer plug, but in this case the stem part was fabricated from titanium, the cap part from cobalt-chromium, and the stem was post-treated by corundum blasting (designated Plug M).
[0131] [In vivo test] The three types of plugs described above were evaluated in an animal study by implanting the devices into the knee joints of 32 female Dutch dairy goats. The study was approved by the local and national animal ethics committees under project license number PV2015-018-003.
[0132] The knee joints of the animals (32 × 2) were divided into four groups, three of which were implanted with 16 plugs each (I, U, and M); and the remaining group underwent a sham operation (placebo operation without inserting a plug) as a reference for natural cartilage degeneration.
[0133] The surgical procedure included creating a skin incision around the medial patella, opening the joint capsule to expose the medial femoral condyle, and locating the center of its weight-bearing part. To implant the plug, an osteochondral defect was created using a cannulated drill under K-wire guidance. The depth of the drill hole was adjusted so that the implant was flush or slightly recessed relative to the adjacent cartilage. The plug was then inserted using a press-fit fixation, adjusting the double curvature of the cap (using an orientation marker) to accommodate the morphology of the knee joint. No intraoperative or postoperative complications occurred.
[0134] After 26 weeks (6 months) in the Maastricht University Laboratory Animal Testing Facility, four animals from each group were euthanized by an overdose of pentobarbital (200 mg / kg body weight). The knee joints were excised and subsequently dissected. The medial femoral condyles and tibial plateaus were isolated and fixed in neutral buffered formalin. Fixed specimens were dehydrated by incubation in increasing concentrations of ethanol up to 100% ethanol. The medial femoral condyles were embedded in hydroxyethyl methacrylate resin (Technovit 8100, Hereaus Kulzer, Hanua, DE) under vacuum. A polymethyl methacrylate (PMMA, Technovit 3040, Hereaus Kulzer, Hanua, DE) mantle was then fabricated for each block to prevent swelling. The plastic block was then cut using a band saw to orient the implant horizontally, and the block was mounted on a diamond saw (SP1600, Leica Biosystems, Nussloch, DE) using ultra-low viscosity cyanoacrylate glue. A section was made through the center of the implant. Safranin-O / Fast Green (Carl Roth, Karlsruhe, DE) staining was applied. The tissue was gently wiped dry and allowed to air dry for 5–10 minutes. A glass coverslip was glued to the tissue using cyanoacrylate glue. 50–70 μm sections were cut and glued to glass slides using cyanoacrylate glue. These sections were scanned using a high-intensity light microscope (M8 Microscope, Precipoint, Freising, DE) at 200x magnification. A custom-written MATLAB script (MathWorks, Natick, MA, US) was used to determine the bone-to-implant contact ratio (BIC), defined as the percentage of the implant surface in direct contact with bone. The remaining animals were euthanized after 12 months, and the knee joints and implants were evaluated using the procedures described above. The results of BIC scoring of the implants after 6 and 12 months, expressed as a mean numerical score (%), are shown in Figure 6.Plug I, which had a stem made from a zirconia-TPU composite and provided with BCP particles on its surface, showed the highest mean BIC score; this indicates better bone-implant contact or in vivo osteointegration of the plug than observed for Plugs M and U. One Plug, Plug M and Plug I, was found to show almost no bone contact after 6 months. This was likely caused by misalignment or tilting of the metallic plug and cracks initiated at air entrapment sites within the plug based on the filled polymer composition, for example. Four of the eight implants made entirely from unfilled polyurethane had very low BIC scores, likely caused by deformation of the rather soft plug.
[0135] Twelve months after implantation, one of eight M plugs, four of eight I plugs, and eight of eight U plugs had BIC scores of (nearly) 0%. Similarly, the unfilled plugs appeared to lack sufficient rigidity; in the case of the metal and composite plugs, this likely resulted from defects induced by the small-scale compounding and / or molding process used or the method of plug insertion during surgery, rather than from the actual performance of a properly manufactured and placed plug. The other plugs, M and I, both performed well, with photographs showing increased bone adhesion compared to after six months. For metallic plugs, this was not unexpected, as such plugs would initially exhibit significantly lower adhesion to bone, but after several years, the so-called stress-shielding effect commonly induces debonding. Disregarding erroneous results, the BIC scores after 12 months were 40 and 46% for M and I plugs, respectively. As the polymer composition and the manufacturing of composite plugs are scaled up and improved, implantation of the plugs may be better controlled, reducing or preventing the observed defects and poor outcomes.
[0136] The above is further illustrated by representative photographs of histological sections shown in Figure 7 for each plug type (after 6 months and using transmitted light). Note that these photographs are grayscale versions of the original color photographs. Nevertheless, it can be clearly concluded that Plug I exhibits a close fit to the surrounding tissue, without cavities or other irregularities at the interface or within the tissue. Furthermore, note the clearly visible difference between the upper cartilage replacement part and the bone fixation part of the TPU-based plug, and the presence of a tantalum wire orientation marker (shown as a dark dot oriented perpendicular to the section) at the interface of both parts.
[0137] Furthermore, MRI images taken of knee joints containing implants 6 months after implantation showed no substantial differences between Plugs I and U, although images of Plug I were noted to show clearer contrast between the plug and tissue. Neither plug appeared to interfere with MRI evaluation of the intra-articular cartilage, whereas MRI imaging of Metal Plug M and adjacent cartilage was not feasible due to artifacts caused by the metal parts. Like Plug M, the stem part of Plug I was clearly visible on radiographs, whereas Plug U was only partially and faintly visible.
[0138] After fixation and dehydration of the tibial plateau, 3-4 mm-thick coronal osteochondral slabs were cut from the tibial plateau at 6 and 12 months using a band saw. Each slab was then decalcified in formic acid at room temperature for at least 6 weeks. The specimens were then embedded in paraffin, and 5 μm-thick sections were prepared using a standard microtome (Leica RM2245, Leica Biosystems, Nussloch, DE). The sections were stained with Safranin-O / Fast Green (Carl Roth, Karlsruhe, DE) and subsequently digitized using a high-intensity light microscope slide scanner at 200x magnification (M8 Microscope, Precipoint, Freising, DE). Finally, tibial cartilage quality was scored using the modified Mankin scoring (MMS) system, as described by Little et al. (DOI: 10.1016 / j.joca.2010.04.016). Figure 8 summarizes the results of the numerical scoring of cartilage damage or degeneration on opposing bone surfaces. In these cases, the metallic implants were found to induce substantially more severe cartilage damage than the TPU-based plug and sham-operated groups. Plug I, with a zirconia-filled polyurethane stem and an unfilled polyurethane cartilage-contacting part, was found to perform similarly to the sham-operated goats, i.e., those with only natural cartilage in their knee joints. Plug U showed similar scoring to Plug I, a soft polyurethane that did not induce damage; however, this is not shown in Figure 8.
[0139] In summary, the cartilage plug (Plug I) having a stem made from a zirconia / TPU composition and a cartilage replacement cap made from unreinforced TPU exhibited excellent osseointegration with reasonable operability and implantability, caused little damage to the opposing cartilage surface, could be imaged as an implant using micro-CT, X-ray, and MRI techniques, and exhibited the best overall performance. Furthermore, this disclosure describes several options for further improving the performance characteristics of filled TPU compositions and implants made therewith.
Claims
1. A polymer composition comprising: a) 30 to 65% by mass of a biocompatible and biostable thermoplastic polyurethane (TPU); b) 35 to 70% by mass of biocompatible inorganic particles including zirconia; and c) 0 to 10% by mass of other compounds, the total of a) to c) being 100% by mass, wherein the inorganic particles have a particle size (D) in the range of 0.1 to 5 μm. 50 ). A polymer composition having
2. 2. The polymer composition of claim 1, wherein the TPU has a Shore hardness of 40 to 90 ShD.
3. 2. The polymer composition of claim 1, wherein the TPU has a Shore hardness of 60 to 85 ShD.
4. The polymer composition according to any one of claims 1 to 3, wherein the TPU comprises an aliphatic polyether, an aliphatic polyester, an aliphatic polycarbonate, or a combination thereof in the soft blocks.
5. The polymer composition according to any one of claims 1 to 4, wherein the TPU is a blend of a TPU with a hardness of 50 to 80 ShA and a TPU with a hardness of 70 to 85 ShD.
6. The polymer composition of any one of claims 1 to 5, wherein the TPU further comprises 0.01 to 5% by weight, based on the amount of the TPU, of one or more biocompatible additives.
7. The polymer composition according to any one of claims 1 to 6, wherein the inorganic particles further comprise an oxide of at least one of Ti, Zn, Y, La, Yb, Hf, and Ta.
8. The polymer composition according to any one of claims 1 to 6, wherein the inorganic particles consist of zirconia.
9. The polymer composition according to any one of claims 1 to 8, wherein the composition contains at least 35% by weight and at most 50% by weight of said inorganic particles.
10. 10. The polymer composition according to any one of claims 1 to 9, wherein the TPU has a weight average molar mass (Mw) of 70 to 400 kDa, measured by GPC according to ASTM D5296-11.
11. 10. The polymer composition according to any one of claims 1 to 9, wherein the TPU has a weight average molar mass (Mw) of 80 to 250 kDa, measured by GPC according to ASTM D5296-11.
12. 12. A polymer composition according to any one of claims 1 to 11, having a modulus of elasticity of 900 to 1800 MPa, measured at 20°C on as-molded dried samples (according to ISO 527).
13. A polymer composition according to any one of the preceding claims, having a modulus of elasticity of 225 to 500 MPa, measured at 37°C (according to ISO 527) on samples conditioned in water.
14. 14. The polymer composition of any one of claims 1 to 13, having an elongation at break of at least 5%, measured at 20°C (according to ISO 527) on as-molded dried samples.
15. 15. The polymer composition of any one of claims 1 to 14, having an elongation at break of at least 10%, measured at 20°C (according to ISO 527) on as-molded dried samples.
16. The polymer composition according to any one of claims 1 to 15, wherein the TPU comprises an aliphatic polycarbonate in the soft blocks.
17. A method for producing the polymer composition of any one of claims 1 to 16, comprising the steps of: drying the TPU and the inorganic particles to a moisture level of up to 250 ppm; and melt mixing the dried TPU and the dried inorganic particles using an extruder barrel temperature setting of up to 210°C; A method comprising:
18. A method for producing an orthopaedic implant or a bone fixation part of an orthopaedic implant, such as a plug or a screw, comprising the step of injection molding said implant or said bone fixation part from the polymer composition according to any one of claims 1 to 16.
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