Medical material, method for producing same, and medical tool
A block copolymer-based medical material with hydrophobic resin achieves superior slipperiness and mechanical properties comparable to PTFE, addressing environmental concerns and regulatory issues, suitable for medical instruments.
Patent Information
- Application Number
- PCT/JP2025/001096
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-01-23
- Filing Date
- 2025-01-16
- Publication Date
- 2025-07-31
AI Technical Summary
There is a demand for a medical material that exhibits mechanical properties comparable to polytetrafluoroethylene (PTFE) and superior slipperiness, as organic fluorine compounds like PTFE have environmental concerns and regulatory scrutiny, necessitating a safer alternative with equivalent performance.
A medical material comprising a block copolymer with structural units derived from reactive monomers containing epoxy groups and hydrophilic monomers, combined with a hydrophobic resin such as polyvinyl chloride or polyurethane elastomer, achieving a sliding resistance of 50 gf or less and tensile strength/elongation comparable to PTFE.
The material provides superior slipperiness and mechanical properties, including tensile strength and elongation, while avoiding the environmental drawbacks of PTFE, suitable for medical instruments like insertion needles, dilators, sheaths, and catheters.
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Abstract
Description
Medical materials, their manufacturing methods, and medical devices
[0001] The present invention relates to a medical material, a method for producing the same, and a medical device.
[0002] Medical instruments (medical devices) inserted into the body, such as plastic insertion needles, dilators, sheaths (introducers), catheters, and medical tubing, are required to exhibit excellent slip properties (sliding properties, lubricity) in order to reduce tissue damage to blood vessels and improve operability for the surgeon.
[0003] Polytetrafluoroethylene (PTFE) has excellent properties such as chemical resistance, non-stickiness, and low friction, and is therefore widely used as a material for these medical devices (for example, Japanese Patent Application Laid-Open No. 8-33704).
[0004] On the other hand, organic fluorine compounds (PFAS, perfluoroalkyl compounds, and polyfluoroalkyl compounds) have the property of being "highly persistent and accumulating," and there are concerns that they place a heavy burden on the environment. For this reason, the EU is currently considering a proposal to regulate all PFAS. PFAS includes polytetrafluoroethylene (PTFE).
[0005] For this reason, there is a demand for the development of a resin that has slipperiness equivalent to that of PTFE and mechanical properties that allow it to be used in medical instruments (medical devices).
[0006] Therefore, the present invention has been made in consideration of the above circumstances, and an object of the present invention is to provide a medical material or medical device that has mechanical properties (particularly tensile strength and tensile elongation) comparable to those of polytetrafluoroethylene (PTFE) and has superior slip properties (slidability) to PTFE.
[0007] The present inventors have conducted extensive research to solve the above-mentioned problems, and as a result have found that the above-mentioned problems can be solved by combining a block copolymer having specific structural units with a specific hydrophobic resin, thereby completing the present invention.
[0008] The above object can be achieved by the present invention having the following configuration, and the present invention includes the following aspects and configurations.
[0009] One aspect of the present invention is as follows: 1. A medical material comprising a block copolymer having a structural unit (A) derived from a reactive monomer having an epoxy group and a structural unit (B) derived from a hydrophilic monomer, and at least one hydrophobic resin selected from the group consisting of polyvinyl chloride resin and polyurethane elastomer, wherein the content of the hydrophobic resin in the medical material is greater than the content of the block copolymer, the medical material has a sliding resistance of 50 gf or less, and satisfies at least one of a tensile strength of 8.0 MPa or more and a tensile elongation of more than 80%. 2. In the medical material described in 1. above, the hydrophobic resin is preferably contained in a proportion of 125 to 300 parts by mass per 100 parts by mass of the block copolymer. 3. The medical material described in 1. above or 2. above. 3. In the medical material described in 1. above, it is preferable that the reactive monomer having an epoxy group includes at least one selected from the group consisting of glycidyl acrylate, glycidyl methacrylate, 3,4-epoxycyclohexylmethyl acrylate, 3,4-epoxycyclohexylmethyl methacrylate, β-methylglycidyl methacrylate, and allyl glycidyl ether. 4. In the medical material described in any of 1. to 3. above, it is preferable that the hydrophilic monomer includes at least one selected from the group consisting of N,N-dimethylacrylamide, acrylamide, 2-hydroxyethyl methacrylate, and N-vinylpyrrolidone.
[0010] Another aspect of the present invention is a medical device comprising or consisting of the medical material described in any one of 1. to 4. above.
[0011] Yet another aspect of the present invention is a medical device comprising: 6. a substrate layer and a coating layer containing or consisting of the medical material described in any one of 1. to 4. 7. The medical device described in 5. or 6. above is preferably a plastic insertion needle, a dilator, a sheath (introducer), a catheter, or a medical tube.
[0012] Yet another aspect of the present invention is 8. a method for producing the medical material according to any one of 1. to 4. above, comprising: preparing a mixture by mixing the block copolymer, the hydrophobic resin, and an organic solvent such that the content of the hydrophobic resin is greater than the content of the block copolymer; and heat-treating the mixture at a temperature greater than 100°C and less than 150°C for 30 minutes to 3 hours.
[0013] One aspect of the present invention relates to a medical material comprising a block copolymer having a structural unit (A) derived from an epoxy-containing reactive monomer and a structural unit (B) derived from a hydrophilic monomer, and at least one hydrophobic resin selected from the group consisting of polyvinyl chloride resin and polyurethane elastomer, wherein the content of the hydrophobic resin in the medical material is greater than the content of the block copolymer, the medical material has a sliding resistance of 50 gf or less, and satisfies at least one of a tensile strength of 8.0 MPa or more and a tensile elongation of more than 80%. This configuration makes it possible to provide a medical material and medical device with mechanical properties (particularly tensile strength and tensile elongation) comparable to those of polytetrafluoroethylene (PTFE) and superior slipperiness (slidability) to PTFE.
[0014] Herein, the structural unit (A) derived from a reactive monomer having an epoxy group is also referred to simply as the "structural unit (A) according to the present invention" or "structural unit (A)." Herein, the structural unit (B) derived from a hydrophilic monomer is also referred to simply as the "structural unit (B) according to the present invention" or "structural unit (B)." Herein, a block copolymer having structural units (A) and (B) is also referred to simply as the "block copolymer according to the present invention" or "block copolymer."
[0015] In this specification, "at least one hydrophobic resin selected from the group consisting of polyvinyl chloride resin and polyurethane elastomer" is also simply referred to as "the hydrophobic resin according to the present invention" or "hydrophobic resin."
[0016] In this specification, when a certain structural unit is defined as being "derived from" a certain monomer, it means that the structural unit is a structural unit that is generated by cleavage of one of the polymerizable unsaturated double bonds of the corresponding monomer.
[0017] As used herein, the term "(meth)acrylic" encompasses both acrylic and methacrylic. Thus, for example, the term "(meth)acrylic acid" encompasses both acrylic acid and methacrylic acid. Similarly, the term "(meth)acryloyl" encompasses both acryloyl and methacryloyl. Thus, for example, the term "(meth)acryloyl group" encompasses both acryloyl and methacryloyl groups. Similarly, the term "(meth)acrylate" encompasses both acrylate and methacrylate. For example, the term "alkoxyalkyl(meth)acrylate" encompasses both alkoxyalkylacrylate and alkoxyalkylmethacrylate.
[0018] In this specification, the term "X to Y" indicating a range includes X and Y and means "X or more and Y or less." Furthermore, "X and / or Y" includes each of X and Y and all combinations of one or more thereof, specifically means at least one of X and Y, and includes X alone, Y alone, and a combination of X and Y.
[0019] Unless otherwise specified, the operations and measurements of physical properties are carried out under the conditions of room temperature (20 to 25°C) and relative humidity of 40 to 50% RH.
[0020] In the present invention, a block copolymer is combined with a hydrophobic resin (at least one of polyvinyl chloride resin and polyurethane elastomer). The block copolymer imparts slipperiness (slidability, lubricity) to the material. Furthermore, the block copolymer exhibits superior slipperiness (slidability, lubricity) to PTFE. Therefore, the medical material of the present invention and medical devices fabricated using the medical material exhibit slipperiness (slidability) equal to or greater than that of PTFE. Furthermore, the hydrophobic resin promotes the ring-opening and crosslinking reaction of the epoxy groups present in the block copolymer, improving mechanical properties (e.g., tensile strength, tensile elongation). Therefore, the medical material of the present invention and medical devices fabricated using the medical material (e.g., plastic insertion needles, dilators, sheaths (introducers), catheters, medical tubing) exhibit excellent slipperiness (slidability) and mechanical properties (e.g., tensile strength, tensile elongation), with a good balance between these properties. Furthermore, the medical material of the present invention contains more hydrophobic resin than block copolymer. Therefore, when a medical device is produced using the medical material according to the present invention, the ring-opening (crosslinking reaction) of the epoxy groups proceeds densely. This increases the strength of the medical device (or the film strength in the case of a coating layer). Therefore, according to the present invention, a medical material can be provided that has mechanical properties (particularly tensile strength and tensile elongation) comparable to those of polytetrafluoroethylene (PTFE) and superior slipperiness (slidability) to PTFE.
[0021] The above mechanism is speculation and does not limit the technical scope of the present invention.
[0022] Preferred embodiments of the present invention will be described below. Note that the present invention is not limited to the following embodiments, and various modifications can be made within the scope of the claims. Furthermore, the embodiments described in this specification can be arbitrarily combined to form other embodiments.
[0023] Throughout this specification, unless otherwise specified, singular expressions should be understood to include the plural concept. Therefore, singular articles (e.g., "a," "an," "the," etc. in English) should be understood to include the plural concept, unless otherwise specified. Furthermore, terms used in this specification should be understood to be used in the sense commonly used in the art, unless otherwise specified. Therefore, unless otherwise defined, all technical and scientific terms used in this specification have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. In case of conflict, the present specification (including definitions) will prevail.
[0024] (Block Copolymer) The block copolymer according to the present invention has a structural unit (A) derived from a reactive monomer having an epoxy group and a structural unit (B) derived from a hydrophilic monomer.
[0025] The reactive monomer having an epoxy group that constitutes the block copolymer has an epoxy group as a reactive group. By introducing the structural unit (A) derived from such a reactive monomer into the block copolymer, the epoxy group is ring-opened, which promotes crosslinking (bonding) between the block copolymers and increases the strength. Furthermore, when a medical material layer is formed on a substrate layer made of a resin material, the ring-opened epoxy group can also cause crosslinking (bonding) between the block copolymer and the substrate layer.
[0026] The reactive monomer constituting the block copolymer is not particularly limited as long as it has an epoxy group, and known compounds can be used. Among these, the reactive monomer having an epoxy group preferably includes at least one selected from the group consisting of glycidyl acrylate, glycidyl methacrylate (GMA), 3,4-epoxycyclohexylmethyl acrylate, 3,4-epoxycyclohexylmethyl methacrylate, β-methylglycidyl methacrylate, and allyl glycidyl ether, because this facilitates control of the crosslinking or polymerization of the block copolymer. Among these, glycidyl (meth)acrylate is more preferred, and glycidyl methacrylate is particularly preferred, in consideration of the ability to further promote the crosslinking reaction and ease of production.
[0027] The reactive monomers may be used alone or in combination of two or more. That is, the structural unit (A) (reactive site) derived from the reactive monomer may be a homopolymer type composed of one type of reactive monomer alone, or a copolymer type composed of two or more types of the reactive monomers. When two or more types of reactive monomers are used, the structural unit (A) may be in the form of a block copolymer or a random copolymer.
[0028] That is, in a preferred embodiment of the present invention, the reactive monomer having an epoxy group includes at least one selected from the group consisting of glycidyl acrylate, glycidyl methacrylate, 3,4-epoxycyclohexylmethyl acrylate, 3,4-epoxycyclohexylmethyl methacrylate, β-methylglycidyl methacrylate, and allyl glycidyl ether. In a more preferred embodiment of the present invention, the reactive monomer having an epoxy group is at least one of glycidyl acrylate and glycidyl methacrylate. In a particularly preferred embodiment of the present invention, the reactive monomer having an epoxy group is glycidyl methacrylate.
[0029] The hydrophilic monomers constituting the block copolymer swell upon contact with body fluids (e.g., blood, urine) or aqueous solvents, imparting excellent slipperiness (lubricity). Therefore, by introducing the structural unit (B) derived from such a hydrophilic monomer into the block copolymer, medical devices made from the medical material have excellent slipperiness (lubricity) and can reduce friction when the medical device comes into contact with the lumen wall, such as the wall of a blood vessel.
[0030] The hydrophilic monomer constituting the block copolymer is not particularly limited as long as it has the above-mentioned properties, and known compounds can be used, such as acrylamide and its derivatives, vinylpyrrolidone, acrylic acid, methacrylic acid and their derivatives, polyethylene glycol acrylate and its derivatives, monomers having sugars or phospholipids in the side chains, and water-soluble monomers such as maleic anhydride. More specifically, acrylic acid, methacrylic acid, N-methylacrylamide, N,N-dimethylacrylamide (DMAA), acrylamide, acryloylmorpholine, N,N-dimethylaminoethyl acrylate, N-vinylpyrrolidone, 2-methacryloyloxyethyl phosphorylcholine, 2-methacryloyloxyethyl-D-glycoside, 2-methacryloyloxyethyl-D-mannoside, vinyl methyl ether, 2-hydroxyethyl (meth)acrylate, 4-hydroxybutyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, 2-hydroxybutyl (meth)acrylate, 6-hydroxyhexyl (meth)acrylate, 1,4-cyclohexanedimethanol mono(meth)acrylate, 1-chloro-2-hydroxypropyl (meth)acrylate, diethylene glycol mono(meth)acrylate, 1,6-hexanediol mono(meth)acrylate, pentaerythritol tri(meth)acrylate, dipentaerythritol penta(meth)acrylate, neopentyl glycol mono(meth)acrylate, trimethylolpropane di(meth)acrylate, trimethylolethane di(meth)acrylate, 2-hydroxy-3-phenyloxypropyl(meth)acrylate, 4-hydroxycyclohexyl(meth)acrylate, 2-hydroxy-3-phenyloxy(meth)acrylate, 4-hydroxycyclohexyl(meth)acrylate, cyclohexanedimethanol mono(meth)acrylate, poly(ethylene glycol) methyl ether acrylate, and poly(ethylene glycol) methyl ether methacrylate.From the viewpoints of imparting excellent slipperiness (lubricity), ease of synthesis, and operability, the hydrophilic monomer preferably includes at least one selected from the group consisting of N,N-dimethylacrylamide, acrylamide, 2-hydroxyethyl methacrylate, and N-vinylpyrrolidone, and more preferably at least one selected from the group consisting of N,N-dimethylacrylamide, acrylamide, and 2-hydroxyethyl methacrylate. Of these, from the viewpoint of excellent lubricity, N,N-dimethylacrylamide is particularly preferred as the hydrophilic monomer.
[0031] The hydrophilic monomers may be used alone or in combination of two or more. That is, the structural unit (B) (hydrophilic moiety) derived from the hydrophilic monomer may be a homopolymer type composed of one hydrophilic monomer alone, or a copolymer type composed of two or more of the hydrophilic monomers. When two or more hydrophilic monomers are used, the structural unit (B) may be in the form of a block copolymer or a random copolymer.
[0032] That is, in a preferred embodiment of the present invention, the hydrophilic monomer includes at least one selected from the group consisting of N,N-dimethylacrylamide, acrylamide, 2-hydroxyethyl methacrylate, and N-vinylpyrrolidone. In a more preferred embodiment of the present invention, the hydrophilic monomer is at least one selected from the group consisting of N,N-dimethylacrylamide, acrylamide, and 2-hydroxyethyl methacrylate. In a particularly preferred embodiment of the present invention, the hydrophilic monomer is N,N-dimethylacrylamide.
[0033] The block copolymer has the above-mentioned structural unit (A) and structural unit (B). The ratio of the structural unit (A) to the structural unit (B) is not particularly limited as long as the above-mentioned effects are achieved. Considering further improvements in lubricity (slipperiness, slidability), the ratio of the structural unit (A) to the structural unit (B) (molar ratio of structural unit (A):structural unit (B)) is preferably 1:2 to 1:100, more preferably 1:2 to 1:50, even more preferably 1:5 to 1:50, and particularly preferably 1:10 to 1:30. The molar ratio of the structural unit (A):structural unit (B) can be controlled by adjusting the charge ratio (molar ratio) of each monomer during the production stage of the block copolymer. Therefore, the charge ratio (molar ratio) of the reactive monomer to the hydrophilic monomer in the production stage of the block copolymer is preferably 1:2 to 1:100, more preferably 1:2 to 1:50, even more preferably 1:5 to 1:50, and particularly preferably 1:10 to 1:30. The composition (molar ratio) of the structural unit (A):structural unit (B) can be determined, for example, by NMR measurement ( 1 H-NMR measurement, 13 This can be confirmed by performing spectroscopy (e.g., C-NMR measurement).
[0034] The composition of each structural unit (structural units (A) and (B) and other structural units) can be measured by a known method. For example, 1 The composition (molar ratio) of each structural unit can be determined by measuring the integral ratio of the intensity of each signal in the H-NMR spectrum.
[0035] In one embodiment of the present invention, the block copolymer according to the present invention is composed essentially of, or consists of, a structural unit (A) derived from at least one reactive monomer selected from the group consisting of glycidyl acrylate, glycidyl methacrylate, 3,4-epoxycyclohexylmethyl acrylate, 3,4-epoxycyclohexylmethyl methacrylate, β-methylglycidyl methacrylate, and allyl glycidyl ether, and a structural unit (B) derived from at least one hydrophilic monomer selected from the group consisting of N,N-dimethylacrylamide, acrylamide, 2-hydroxyethyl methacrylate, and N-vinylpyrrolidone.
[0036] In one embodiment of the present invention, the block copolymer according to the present invention is composed essentially of, or consists of, a structural unit (A) derived from at least one reactive monomer of glycidyl acrylate and glycidyl methacrylate, and a structural unit (B) derived from at least one hydrophilic monomer selected from the group consisting of N,N-dimethylacrylamide, acrylamide, and 2-hydroxyethyl methacrylate.
[0037] In one embodiment of the present invention, the block copolymer according to the present invention is composed essentially of, or consists of, a structural unit (A) derived from glycidyl methacrylate (a reactive monomer having an epoxy group) and a structural unit (B) derived from N,N-dimethylacrylamide (a hydrophilic monomer).
[0038] The weight-average molecular weight of the block copolymer is preferably 10,000 to 10,000,000 from the viewpoint of solubility. The weight-average molecular weight of the block copolymer is more preferably 100,000 to 5,000,000 from the viewpoint of ease of preparation of the coating liquid. In this specification, the "weight-average molecular weight" is a value measured by gel permeation chromatography (GPC) using polystyrene as a standard substance.
[0039] (Hydrophobic Resin) The hydrophobic resin of the present invention is at least one of polyvinyl chloride and polyurethane elastomer. The hydrophobic resin induces ring-opening of epoxy groups present in the block copolymer. Ring-opening of the epoxy groups promotes crosslinking (bonding) between the block copolymers. Furthermore, when a coating layer is formed on a substrate layer made of a resin material using the medical material of the present invention, the ring-opened epoxy groups may also cause crosslinking (bonding) between the block copolymer and the substrate layer. Therefore, in medical devices obtained using the medical material of the present invention, the coating layer is firmly bonded to the substrate layer. This improves the mechanical properties (e.g., tensile strength, tensile elongation) of medical devices manufactured using the medical material of the present invention. Furthermore, the medical device can maintain its shape well even after sliding. Additionally, hydrophobic resins (polyvinyl chloride, polyurethane elastomers) are already used as medical materials, making them suitable for safety.
[0040] The hydrophobic resin according to the present invention is at least one of polyvinyl chloride and polyurethane elastomer. From the viewpoint of mechanical properties, particularly tensile strength, the hydrophobic resin preferably contains at least polyvinyl chloride resin, more preferably polyvinyl chloride resin. From the viewpoint of mechanical properties, particularly tensile elongation, the hydrophobic resin preferably contains at least polyurethane elastomer, more preferably polyurethane elastomer alone.
[0041] The weight-average molecular weight (Mw) of the hydrophobic resin is 1,000 or more. From the viewpoint of solubility, the weight-average molecular weight of the hydrophobic resin is preferably 500,000 or less. Furthermore, from the viewpoint of promoting crosslinking and stability, the weight-average molecular weight of the hydrophobic resin is preferably 10,000 or more. For example, the weight-average molecular weight (Mw) of the hydrophobic resin is 1,000 to 10,000,000, and preferably 10,000 to 500,000.
[0042] The mixing ratio (mass ratio) of the block copolymer to the hydrophobic resin in the medical material is such that the content of the hydrophobic resin is greater than the content of the block copolymer. This allows the production of medical devices (e.g., plastic insertion needles, dilators, sheaths (introducers), catheters, and medical tubing) with excellent slipperiness (sliding property, lubricity). Although it is possible to separately apply a lubricious coating, the medical device (including a coating layer made of the medical material in part) formed using the medical material of the present invention has slipperiness (sliding property, lubricity), so there is no need to apply a separate lubricious coating. From the viewpoints of smoothness (slidability, lubricity), mechanical properties, and a good balance thereof, the hydrophobic resin is preferably contained in a proportion of 125 to 300 parts by mass relative to 100 parts by mass of the block copolymer, more preferably 150 to 230 parts by mass relative to 100 parts by mass of the block copolymer, and particularly preferably 160 to 180 parts by mass relative to 100 parts by mass of the block copolymer. When the mixing ratio (mass ratio) of the block copolymer to the hydrophobic resin is within the above range, the medical device (or coating layer) formed using the medical material has sufficient mechanical properties and lubricity (especially better lubricity) and an excellent balance between these.
[0043] (Characteristics of the medical material) The medical material of the present invention (and therefore the medical device (or coating layer) formed using the medical material) has mechanical properties (particularly tensile strength and tensile elongation) comparable to those of polytetrafluoroethylene (PTFE), while also having excellent slip properties (slidability) comparable to or better than PTFE.
[0044] Specifically, the sliding resistance of the medical material (and therefore the medical device (or coating layer) formed using the medical material) is 50 gf or less. The sliding resistance is preferably less than 30 gf, and more preferably less than 20 gf. Since a lower sliding resistance is preferable, the lower limit is not particularly limited and is 0 gf, but a value of 3 gf or more is acceptable. Therefore, the sliding resistance of the medical material is, for example, 0 gf or more and 50 gf or less, preferably 0 gf or more and less than 30 gf, and more preferably 0 gf or more and less than 20 gf. The sliding resistance of the medical material may also be 3 gf or more and less than 30 gf, or 3 gf or more and less than 20 gf. In this specification, "sliding resistance" is a value measured according to the method described in the examples.
[0045] The medical material (and therefore the medical device (or coating layer) formed using the medical material) satisfies at least one of a tensile strength of 8.0 MPa or more and a tensile elongation exceeding 80%. Preferably, the medical material satisfies both a tensile strength of 8.0 MPa or more and a tensile elongation exceeding 80%. Here, the tensile strength of the medical material is preferably 8.4 MPa or more, more preferably 10 MPa or more, even more preferably 20 MPa or more, and particularly preferably 25 MPa or more. Since a higher tensile strength of the medical material is preferable, there is no particular upper limit, but it is usually 200 MPa or less. Therefore, the tensile strength of the medical material is, for example, 8.0 MPa to 200 MPa, preferably 8.4 MPa to 200 MPa, more preferably 10 MPa to 200 MPa, even more preferably 20 MPa to 200 MPa, and particularly preferably 25 MPa to 200 MPa. In this specification, "tensile strength" refers to a value measured according to the method described in the Examples. The tensile elongation of the medical material is preferably 100% or more, more preferably 120% or more, even more preferably 150% or more, and particularly preferably 400% or more. The higher the tensile elongation of the medical material, the better, so there is no particular upper limit, but it is usually 500% or less. Therefore, the tensile elongation of the medical material is, for example, more than 80% and 500% or less, preferably 100% or more and 500% or less, more preferably 120% or more and 500% or less, even more preferably 150% or more and 500% or less, and particularly preferably 400% or more and 500% or less. In this specification, "tensile elongation" refers to a value measured according to the method described in the Examples.
[0046] (Method for producing medical material) The medical material according to the present invention has a sliding resistance of 50 gf or less and at least one of a tensile strength of 8.0 MPa or more and a tensile elongation of more than 80%. A medical material satisfying these properties may be produced by any method, but can be produced particularly by appropriately controlling the heating conditions and the mixing ratio of the block copolymer and the hydrophobic resin.
[0047] That is, the present invention provides a method for producing a medical material according to the present invention, comprising the steps of: preparing a mixture by mixing the block copolymer, the hydrophobic resin, and an organic solvent such that the content of the hydrophobic resin is greater than the content of the block copolymer (a mixture preparation step); and heat-treating the mixture at a temperature exceeding 100°C and less than 150°C for 30 minutes to 3 hours (a mixture heat-treatment step).
[0048] A preferred embodiment of the above method will be described below, but the present invention is not limited to the following embodiment.
[0049] (Mixture Preparation Step) In this step, a mixture is prepared by mixing a block copolymer, a hydrophobic resin, and an organic solvent. The mixing ratio of the block copolymer to the hydrophobic resin is such that the content of the hydrophobic resin is greater than the content of the block copolymer. Preferably, the hydrophobic resin is mixed with the block copolymer at a mixing ratio of 125 to 300 parts by mass per 100 parts by mass of the block copolymer. It is more preferable to mix the hydrophobic resin with the block copolymer at a mixing ratio of 150 to 230 parts by mass per 100 parts by mass of the block copolymer. It is particularly preferable to mix the hydrophobic resin with the block copolymer at a mixing ratio of 160 to 180 parts by mass per 100 parts by mass of the block copolymer. By setting the mixing ratio of the block copolymer to the hydrophobic resin within the above range, the sliding resistance, tensile strength, and tensile elongation of the medical material (and therefore the medical device (or coating layer) formed using the medical material) can be more appropriately controlled.
[0050] The organic solvent that can be used to prepare the mixture is not particularly limited as long as it can dissolve the block copolymer and hydrophobic resin (and other components, if used), and is appropriately selected depending on the type of block copolymer and hydrophobic resin (and other components, if used). From the viewpoint of high solubility, alcoholic solvents such as methanol, ethanol, isopropyl alcohol, and butanol; and organic solvents such as dichloromethane, chloroform, carbon tetrachloride, tetrahydrofuran (THF), dimethyl sulfoxide, N,N-dimethylformamide (DMF), dioxane, and benzene are preferably used. These solvents may be used alone or in combination of two or more (in the form of a mixed solvent). The concentration of the block copolymer in the mixture is 0.1 to 20% by mass, preferably 0.5 to 15% by mass, and more preferably 1 to 10% by mass. The concentration of the hydrophobic resin in the mixture is preferably such that the mixing ratio with the block copolymer falls within the range described above. When the concentrations of the block copolymer and the hydrophobic resin are within the above ranges, the sliding resistance, tensile strength, and tensile elongation of the medical material (and therefore the medical device (or coating layer) formed using the medical material) can be more appropriately controlled.
[0051] The order of mixing the block copolymer and the hydrophobic resin is not particularly limited. For example, (1) the block copolymer and the hydrophobic resin are charged into an organic solvent all at once, (2) the block copolymer is added to the organic solvent and then the hydrophobic resin is added, or (3) the hydrophobic resin is added to the organic solvent and then the block copolymer is added. If necessary, the addition may be carried out with stirring. Alternatively, the mixture may be stirred after the addition.
[0052] (Heat-treating step of the mixture) In this step, the mixture obtained in the above (mixture preparation step) is heat-treated at a temperature above 100°C and below 150°C for 30 minutes to 3 hours. This heat treatment allows for more appropriate control of the sliding resistance, tensile strength, and tensile elongation of the medical material, particularly the sliding resistance. Here, if the heat treatment temperature is 100°C or below or the heat treatment time is less than 30 minutes, the heat treatment is insufficient and the desired durability in terms of slipperiness is not achieved. If the heat treatment temperature exceeds 150°C or the heat treatment time exceeds 3 hours, the heat treatment proceeds excessively and the desired durability in terms of slipperiness is not achieved. In consideration of better lubricity and mechanical properties of the medical material, as well as a better balance between these, the heat treatment temperature is preferably 105°C or above and 140°C or below, more preferably above 105°C and 120°C or below. Considering better lubricity and mechanical properties of the medical material, as well as a better balance between them, the heat treatment time is preferably 40 minutes to 2 hours, more preferably 50 minutes to 1.5 hours. The heat treatment step may be performed once or repeated two or more times. In the latter case, the heat treatment temperature throughout the entire heat treatment step (all repeated heat treatment steps) is greater than 100°C and less than 150°C, and the heat treatment time throughout the entire heat treatment step is preferably 30 minutes to 3 hours, each within the above range.
[0053] (Medical Device) As described above, the medical material according to the present invention has mechanical properties (particularly tensile strength and tensile elongation) comparable to those of polytetrafluoroethylene (PTFE) and has slip properties (slidability) comparable to or superior to those of PTFE.
[0054] Therefore, the present invention also provides a medical device comprising or consisting of the medical material of the present invention. The sliding resistance of the medical device is 50 gf or less (preferably less than 30 gf, more preferably less than 20 gf), and the medical device satisfies at least one of, and preferably both of, a tensile strength of 8.0 MPa or more (preferably 8.4 MPa or more, more preferably 10 MPa or more, even more preferably 20 MPa or more, and particularly preferably 25 MPa or more) and a tensile elongation of more than 80% (preferably 100% or more, more preferably 120% or more, even more preferably 150% or more, and particularly preferably 400% or more). The size of the medical device can be appropriately selected depending on the desired application (e.g., a catheter).
[0055] Alternatively, the present invention also provides a medical device comprising a substrate layer and a coating layer containing or consisting of the medical material of the present invention. The coating layer has a sliding resistance of 50 gf or less (preferably less than 30 gf, more preferably less than 20 gf), and the coating layer satisfies at least one of the following: a tensile strength of 8.0 MPa or more (preferably 8.4 MPa or more, more preferably 10 MPa or more, even more preferably 20 MPa or more, particularly preferably 25 MPa or more) and a tensile elongation of more than 80% (preferably 100% or more, more preferably 120% or more, even more preferably 150% or more, particularly preferably 400% or more), and preferably satisfies both.
[0056] When a medical device contains the medical material of the present invention, the medical device may be in a form consisting of the medical material and the other components described above, a form consisting of the medical material and a coiled or braided metal (for example, a structure in which a metal coil or metal braid is embedded in a tubular medical device made using the medical material), or a form coated on a metal wire or metal surface.
[0057] When a medical device comprises a substrate layer and a coating layer containing or consisting of the medical material of the present invention, the substrate layer may be made of any material, such as metal materials, polymer materials (resin materials), and ceramics.
[0058] The metal material constituting the substrate layer is not particularly limited, and metal materials commonly used for medical devices such as catheters, guidewires, and indwelling needles can be used. Specific examples include various stainless steels such as SUS304, SUS314, SUS316, SUS316L, SUS420J2, and SUS630, as well as gold, platinum, silver, copper, nickel, cobalt, titanium, iron, aluminum, tin, and various alloys such as nickel-titanium alloys, nickel-cobalt alloys, cobalt-chromium alloys, and zinc-tungsten alloys. These may be used alone or in combination of two or more. The metal material may be appropriately selected from those optimal for the substrate layer of the intended use, such as a catheter, guidewire, or indwelling needle.
[0059] Furthermore, among the materials constituting the substrate layer, the polymer material (resin material or elastomer material) is not particularly limited, and may be a polymer material commonly used in medical devices such as plastic insertion needles (indwelling needles), dilators, sheaths (introducers), catheters, or medical tubing. Specific examples include polyamide resins, polyolefin resins such as polyethylene resins and polypropylene resins, modified polyolefin resins, cyclic polyolefin resins, epoxy resins, polyurethane resins, diallyl phthalate resins (allyl resins), polycarbonate resins, fluororesins (e.g., polytetrafluoroethylene resins), amino resins (urea resins, melamine resins, benzoguanamine resins), polyester resins such as polyethylene terephthalate resins and polybutylene terephthalate resins, styrene resins, acrylic resins, polyacetal resins, vinyl acetate resins, phenolic resins, vinyl chloride resins, silicone resins (silicon resins), polyether resins, and polyimide resins.
[0060] Thermoplastic elastomers such as polyurethane elastomers, polyester elastomers, and polyamide elastomers (nylon elastomers) can also be used as materials for the substrate layer.
[0061] These polymer materials may be used alone, as a mixture of two or more types, or as a copolymer of two or more monomers constituting any of the above resins or elastomers. Among these, polyethylene resins, polyurethane resins, polyethylene terephthalate resins, polyamide resins, and polyamide elastomers are preferred, with polyamide resins and polyamide elastomers being more preferred. Carboxy groups and amino groups as terminal groups contained in polyamide resins and polyamide elastomers can undergo crosslinking reactions with epoxy groups in block copolymers. Furthermore, these polymer materials (particularly polyamide resins and polyamide elastomers) are relatively soft and can be easily impregnated with block copolymers and hydrophobic resins. This enhances the bonding between the polymer material (particularly polyamide resins and polyamide elastomers) and the block copolymer, allowing for the formation of a more durable coating layer. The polymer material may be appropriately selected based on the substrate layer of the intended use, such as a plastic insertion needle (indwelling needle), dilator, sheath (introducer), catheter, or medical tubing.
[0062] The shape of the substrate layer is not particularly limited, and may be appropriately selected depending on the mode of use, such as a sheet, a wire, a rod, or a tube.
[0063] The entire substrate layer may be made of any of the above materials. The substrate layer may be a multilayer structure formed by laminating different materials in multiple layers, or a structure in which components formed of different materials are joined together for each portion of the medical device. Alternatively, the substrate may have a structure in which the surface of a substrate layer core portion formed of any of the above materials is coated with any of the other materials by an appropriate method to form a substrate surface layer. Examples of the latter include a substrate in which the surface of a substrate layer core portion formed of a resin material or the like is coated with a metal material by an appropriate method (conventionally known methods such as plating, metal vapor deposition, sputtering, etc.) to form a substrate surface layer; a substrate in which the surface of a substrate layer core portion formed of a hard reinforcing material such as a metal material or a ceramic material is coated with a polymer material that is softer than the metal reinforcing material by an appropriate method (conventionally known methods such as dipping, spraying, coating / printing, etc.); or a substrate in which the reinforcing material forming the substrate layer core portion and the polymer material are combined to form a substrate surface layer. The core substrate layer may be a multilayer structure formed by laminating different materials in multiple layers, or a structure in which different parts of the medical device are joined together, etc. A separate middle layer may be formed between the core substrate layer and the substrate surface layer, and the substrate surface layer may also be a multilayer structure formed by laminating different materials in multiple layers, or a structure in which different parts of the medical device are joined together, etc.
[0064] Another layer may be provided between the substrate layer and the coating layer. In this embodiment, the other layer may be made of the same material as the polymer material (resin material or elastomer material) described above.
[0065] Alternatively, the coating layer may be in a form consisting of a medical material and the other components described above, or in a form consisting of a medical material and a coiled or braided metal (for example, a structure in which a metal coil or metal braid is embedded in a coating layer made using a medical material).
[0066] (Method for Manufacturing Medical Devices) When a medical device includes or is composed of the medical material of the present invention, a method for manufacturing the medical device includes molding a mixture containing a block copolymer and a hydrophobic resin, and, if necessary, the other components. The mixture can be prepared by mixing the block copolymer and the hydrophobic resin, adding the block copolymer and the hydrophobic resin all at once to a solvent, adding the block copolymer and the hydrophobic resin to a solvent in this order, or adding the hydrophobic resin and the block copolymer to a solvent in this order. When a solvent is used to prepare the mixture, the solvent can be appropriately selected depending on the type of block copolymer and hydrophobic resin used. Specific examples include, but are not limited to, N,N'-dimethylformamide (DMF), chloroform, acetone, tetrahydrofuran (THF), dioxane, benzene, and methanol. These solvents may be used alone or in combination. The concentration of the block copolymer in the mixture is 0.1 to 20% by mass, preferably 0.5 to 15% by mass, and more preferably 1 to 10% by mass. The concentration of the hydrophobic resin in the mixture is preferably such that the mixing ratio with the block copolymer falls within the above-mentioned range.
[0067] Known molding methods can be used in the same manner or with appropriate modifications. Specific examples include a dipping method in which a medical material is applied to a substrate (e.g., a wire) by immersion and then the substrate is removed, as well as melt extrusion molding, paste extrusion molding, and spray coating. The molding conditions are also not particularly limited and can be appropriately selected depending on the type and amount of medical material used, the type and size of the medical device, etc. The molding temperature is, for example, greater than 100°C and less than 150°C, preferably greater than 105°C and less than 140°C, and more preferably greater than 105°C and less than 120°C. The molding time is, for example, 30 minutes to 3 hours, preferably 40 minutes to 2 hours, and more preferably 50 minutes to 1.5 hours. Under these conditions, the resulting medical device exhibits better lubricity and mechanical properties (especially lubricity), and achieves a better balance between these properties. The molding operation may be performed once or repeatedly two or more times. In the latter case, it is preferable that the molding temperature in the entire molding operation (all molding operations repeated) is higher than 100°C and lower than 150°C, and that the molding time in the entire molding operation is 30 minutes or more and 3 hours or less, each falling within the above range.
[0068] When a medical device has a layer (coating layer, covering layer) containing the medical material of the present invention formed on a substrate layer, a manufacturing method for the medical device includes, for example, preparing a coating liquid containing a block copolymer, a hydrophobic resin, and a solvent (preparation step); applying the coating liquid to the substrate layer to form a coating film on the substrate layer (coating step); and heat-treating the coating film at a temperature above 100°C and below 150°C for 30 minutes to 3 hours (heat-treatment step). If necessary, a drying step (drying step) may be performed after the coating step and before the heat-treatment step. Furthermore, a cleaning step (cleaning step) may be performed after the heat-treatment step. Furthermore, according to the medical material of the present invention, the hydrophobic resin is stably retained in the coating layer (covering layer). Furthermore, the epoxy groups of the block copolymer are ring-opened without the need for the addition of an acid or base. Therefore, the medical material of the present invention does not require a separate cleaning step, which is advantageous for mass production.
[0069] A preferred embodiment of the method for producing the medical device will be described below, although the present invention is not limited to the following embodiment.
[0070] (Preparation Step) In this step, a coating liquid containing a block copolymer, a hydrophobic resin, and a solvent is prepared. In this step, a coating liquid containing a block copolymer, a hydrophobic resin, and a solvent may be purchased and used. Alternatively, the coating liquid may be prepared by mixing the block copolymer, the hydrophobic resin, and the solvent.
[0071] Hydrophobic resins are preferred in terms of safety and ease of operation because they are stable in the coating solution. Furthermore, if the coating solution is kept at room temperature, the ring-opening (crosslinking reaction) of the epoxy groups does not proceed. Therefore, the coating solution is easy to work with.
[0072] The concentration of the block copolymer in the coating solution is 0.1 to 20% by mass, preferably 0.5 to 15% by mass, and more preferably 1 to 10% by mass. The concentration of the hydrophobic resin in the mixture is preferably such that the mixing ratio with the block copolymer falls within the following range. When the concentrations of the block copolymer and hydrophobic resin are within the above ranges, the sliding resistance, tensile strength, and tensile elongation of the medical material can be more appropriately controlled.
[0073] The mixing ratio of the block copolymer and the hydrophobic resin when preparing the coating solution is such that the content of the hydrophobic resin is greater than the content of the block copolymer. Preferably, the hydrophobic resin is mixed with the block copolymer at a mixing ratio of 125 to 300 parts by weight per 100 parts by weight of the block copolymer. More preferably, the hydrophobic resin is mixed with the block copolymer at a mixing ratio of 150 to 230 parts by weight per 100 parts by weight of the block copolymer. It is particularly preferred that the hydrophobic resin is mixed with the block copolymer at a mixing ratio of 160 to 180 parts by weight per 100 parts by weight of the block copolymer. By maintaining the mixing ratio of the block copolymer and the hydrophobic resin within the above range, the sliding resistance, tensile strength, and tensile elongation of the medical material can be more appropriately controlled. Furthermore, a uniform coating layer (coating layer) of the desired thickness can be easily obtained with a single coating, and the viscosity of the solution is within an appropriate range, which is preferable in terms of operability (e.g., ease of coating) and production efficiency.
[0074] The other preparation steps are the same as the (mixture preparation step) in the (medical material manufacturing method) above.
[0075] (Coating Step) In this step, the coating liquid is applied onto a substrate layer to form a coating film on the substrate layer. Here, the substrate layer is the same as that of the above-mentioned (medical device).
[0076] The method for applying (coating) the coating liquid to the surface of the substrate layer is not particularly limited, and any conventionally known method can be used, such as a coating / printing method, a dipping method (dipping method, dip coating method), a spraying method (spray method), a spin coating method, a mixed solution impregnated sponge coating method, a bar coating method, a die coating method, a reverse coating method, a comma coating method, a gravure coating method, a doctor knife method, etc. Of these, the dipping method (dipping method, dip coating method) is preferably used.
[0077] Furthermore, when forming a coating film (coat layer, covering layer) only on a part of the substrate layer, the coating film (coat layer, covering layer) can be formed on a desired surface portion of the substrate layer by immersing only a part of the substrate layer in a coating liquid and coating the coating liquid onto that part of the substrate layer.
[0078] When it is difficult to immerse only a portion of the substrate layer in the coating liquid, the surface portion of the substrate layer that does not require the formation of a coating film (coating layer, covering layer) can be protected (coated, etc.) with a suitable detachable (attachable) member or material, and then the substrate layer can be immersed in the coating liquid to coat the substrate layer with the coating liquid. After that, the protective member (material) on the surface portion of the substrate layer that does not require the formation of a coating film (coating layer, covering layer) can be removed, and then the substrate layer can be reacted by heat treatment or the like to form a coating film (coating layer, covering layer) on the desired surface portion of the substrate layer. However, the present invention is not limited to these formation methods, and a coating film (coating layer, covering layer) can be formed using any conventionally known method as appropriate. For example, when it is difficult to immerse only a portion of the substrate layer in the coating liquid, other coating methods (e.g., a method of applying the coating liquid to a predetermined surface portion of a medical device using an application device such as a sprayer, bar coater, die coater, reverse coater, comma coater, gravure coater, spray coater, or doctor knife) can be used instead of the immersion method. When the structure of a cylindrical medical device requires that both the outer and inner surfaces of the device have a coating film (coating layer, covering layer), the immersion method (dipping method) is preferably used because it allows coating of both the outer and inner surfaces at the same time.
[0079] The amount of coating liquid to be applied is preferably such that the thickness (dry film thickness) of the resulting coating layer (coating layer) is 0.1 to 300 μm, more preferably 0.5 to 200 μm, and even more preferably 1 to 100 μm.
[0080] (Drying Step) In this step, the coating film is dried if necessary, to remove at least a portion of the solvent.
[0081] The drying conditions are not particularly limited as long as they allow the solvent to be removed, and can be appropriately selected depending on the type of solvent. The drying temperature is, for example, 10°C or higher and 50°C or lower, preferably 10°C or higher and 30°C or lower, and more preferably 20°C or higher and 25°C or lower. The drying time is, for example, 10 minutes to 5 hours or lower, preferably 20 minutes to 3 hours or lower, and more preferably 30 minutes to 1.5 hours or lower. The pressure conditions during drying are also not particularly limited, and drying can be performed under normal pressure (atmospheric pressure).
[0082] (Heat Treatment Step) In this step, the coating film formed in the above (applying step) or the coating film dried in the above (drying step) is heat-treated at a temperature above 100°C and below 150°C for 30 minutes to 3 hours. This heat treatment allows the sliding resistance, tensile strength, and tensile elongation of the medical device, particularly the sliding resistance, to be more appropriately controlled. The heat treatment temperature is preferably 105°C or higher and 140°C or lower, more preferably above 105°C and 120°C or lower. The heat treatment time is preferably 40 minutes to 2 hours, more preferably 50 minutes to 1.5 hours. Under these heat treatment conditions, the medical device can exhibit better lubricity and mechanical properties, and these properties can be well balanced. In addition, crosslinking or polymerization in the block copolymer is effectively promoted, forming a strong layer (coat layer, covering layer). Therefore, high lubricity (surface lubricity) can be maintained for a longer period of time. Furthermore, by setting the heat treatment temperature and time to the upper limit or less, excessive crosslinking or polymerization can be prevented. Therefore, a decrease in swelling caused by excessive hardening of the layer (coating layer, covering layer) can be prevented, and as a result, good lubricity (surface lubricity) can be maintained. Furthermore, there is an advantage that even polymer materials that are easily deformed or plasticized by heat can be used as the substrate layer. Therefore, the present invention broadens the range of materials available, enabling the manufacture of medical devices for a variety of applications. Furthermore, since it is possible to form a layer (coating layer, covering layer) with excellent durability at low temperatures, it is also preferable from the perspective of energy costs during the manufacture of medical devices. The heat treatment step may be performed once or repeatedly performed two or more times. In the latter case, it is preferable that the heat treatment temperature during the entire heat treatment step (all repeated heat treatment steps) is greater than 100°C and less than 150°C, and that the heat treatment time during the entire heat treatment step is 30 minutes to 3 hours, each within the above range.
[0083] From the viewpoint of particularly effectively (efficiently) promoting crosslinking or polymerization of the block copolymer by the hydrophobic resin, the heat treatment may be performed after the drying treatment. By performing the drying and heat treatment in this manner, the heat treatment is further performed in a state where the solvent has been distilled off (i.e., in a state where the block copolymer and the hydrophobic resin are easily brought into contact with each other), thereby further improving the effect of promoting crosslinking or polymerization of the block copolymer by the hydrophobic resin. Furthermore, since the heat treatment can be performed in a shorter time, even polymer materials that are easily deformed or plasticized by heat can be used as the base layer.
[0084] The conditions (temperature, time, etc.) for the drying and heating treatments are not particularly limited, but from the viewpoint of efficiently producing a medical device, it is preferable to perform a drying treatment at 10°C to 50°C, maintaining the temperature for 10 minutes to 5 hours, followed by a heating treatment at 105°C to 140°C, maintaining the temperature for 40 minutes to 2 hours. From the same viewpoint, it is even more preferable to perform a drying treatment at 10°C to 30°C, maintaining the temperature for 20 minutes to 3 hours, followed by a heating treatment at above 105°C to 120°C, maintaining the temperature for 50 minutes to 1.5 hours. After the above heating treatment, a further drying treatment may be performed.
[0085] Under the above conditions (temperature, time, etc.), a strong coating layer (covering layer) can be formed on the surface of the substrate layer. Furthermore, depending on the type of substrate layer, a crosslinking reaction occurs via the epoxy groups in the block copolymer in the layer (coating layer, covering layer), forming a high-strength coating layer (covering layer) that does not easily peel off from the substrate layer. Therefore, the drying / heating process can effectively suppress or prevent peeling of the coating layer (covering layer) from the substrate layer. Furthermore, the pressure conditions during the heat treatment are not particularly limited, and the heat treatment can be carried out under normal pressure (atmospheric pressure).
[0086] As the heat treatment means (device), for example, an oven or the like can be used.
[0087] (Uses of Medical Devices) Medical devices are preferably used in devices that come into contact with body fluids, blood, and the like, and have a surface that is lubricious in body fluids, physiological saline, and other aqueous liquids, enabling improved operability and reduced damage to tissue and mucosa. Specific examples include plastic insertion needles, dilators, sheaths (introducers), catheters, medical tubing, and the like used in blood vessels, but other examples include the following medical devices. That is, in one embodiment of the present invention, the medical device is a plastic insertion needle, dilator, sheath (introducer), catheter, or medical tubing.
[0088] (a) Catheters inserted or left in the digestive tract via the mouth or nose, such as gastric catheters, nutritional catheters, and tube feeding tubes; (b) Catheters inserted or left in the airway or trachea via the mouth or nose, such as oxygen catheters, oxygen cannulas, endotracheal tube tubes and cuffs, tracheostomy tube tubes and cuffs, and endotracheal suction catheters; (c) Catheters inserted or left in the urethra or ureter, such as urethral catheters, urinary catheters, and urethral balloon catheter catheters; (d) Catheters inserted or left in various body cavities, organs, and tissues, such as suction catheters, drainage catheters, and rectal catheters; (e) Catheters inserted or left in blood vessels, such as indwelling needles (e.g., plastic indwelling needles), IVH catheters, thermodilution catheters, angiography catheters, vasodilator catheters, and dilators or introducers, or guide wires, stylets, and the like for these catheters; (f) Artificial tracheas, artificial bronchi, etc.
[0089] The effects of the present invention will be explained using the following examples and comparative examples. However, the technical scope of the present invention is not limited to the following examples, and examples obtained by appropriately combining the technical means disclosed in each example are also included in the scope of the present invention. In the following examples, unless otherwise specified, operations were performed at room temperature (25°C). Furthermore, unless otherwise specified, "%" and "parts" mean "% by mass" and "parts by mass", respectively.
[0090] Synthesis Example 1 The following reaction was carried out to produce a block copolymer (1).
[0091]
[0092] 29.7 g of triethylene glycol was added dropwise to 72.3 g of adipic acid dichloride at 50°C, and then the hydrochloric acid was removed under reduced pressure at 50°C for 3 hours to obtain an oligoester. Next, 4.5 g of methyl ethyl ketone was added to 22.5 g of the obtained oligoester, and this was added dropwise to a solution consisting of 5 g of sodium hydroxide, 6.93 g of 31% hydrogen peroxide, 0.44 g of dioctyl phosphate as a surfactant, and 120 g of water, and the reaction was carried out at -5°C for 20 minutes. The obtained product was repeatedly washed with water and methanol and then dried to obtain a polyperoxide (PPO) having multiple peroxide groups in the molecule.
[0093] Next, 0.5 g of this PPO, 9.5 g of glycidyl methacrylate (GMA), and 30 g of benzene as a solvent were polymerized at 80°C for 2 hours with stirring under reduced pressure. The reaction product obtained after the polymerization was reprecipitated with diethyl ether to obtain polyglycidyl methacrylate (PPO-GMA) having multiple peroxide groups in the molecule.
[0094] Subsequently, 1.35 g of the obtained PPO-GMA (corresponding to 9.5 mmol of GMA) was dissolved in chlorobenzene together with 11.2 g (113 mmol) of N,N-dimethylacrylamide (DMAA) to give concentrations of 1.35 mass % (PPO-GMA concentration) and 11.2 mass % (DMAA concentration), respectively, and the solution was polymerized by heating to 80°C for 7 hours under a nitrogen atmosphere. The reaction product was reprecipitated with cyclohexane and recovered to obtain a block copolymer (1) (structural unit (A):structural unit (B) = GMA:DMAA = 1:12 (molar ratio)) having epoxy groups in its molecule and exhibiting lubricity when wet. The block copolymer (1) thus obtained was 1 Analysis by H-NMR and ATR-IR confirmed the presence of an epoxy group in the molecule.
[0095] Example 1 Polyvinyl chloride resin (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd., product name: polyvinyl chloride, average degree of polymerization (n) = 1,050) (PVC) was dissolved in N,N-dimethylformamide (DMF) so that the final concentration in the coating solution was 9.0 mass% (solution (1)). The block copolymer (1) synthesized in Synthesis Example 1 above was added to and dissolved in the solution (1) so that the final concentration in the coating solution was 5.0 mass% to prepare coating solution (1).
[0096] A copper wire (diameter: 1.775 mm) was dip-coated in the coating solution (1) prepared above at a rate of 10 mm / sec, and then heated at 110°C for 1 hour to carry out a crosslinking reaction. After the heating, the temperature was returned to room temperature (25°C), the copper wire was removed, and a tube (1) (inner diameter: 1.775 mm, outer diameter: 1.950 mm, thickness: 0.085 mm, cross-sectional area: 0.512 mm) was obtained. 2 ) was obtained.
[0097] The sliding resistance (gf), tensile strength (MPa), and tensile elongation (%) of the tube (1) obtained above were measured according to the following methods. As a result, the sliding resistance, tensile strength, and tensile elongation of the tube (1) were 11.6 gf, 26.5 MPa, and 120%, respectively.
[0098] [Evaluation of sliding resistance] The tube was cut to a length of 200 mm to prepare a test piece (inner diameter: 1.775 mm, outer diameter: 1.950 mm). Each test piece was immersed in tap water and set in a pinch tester (OAKRIVER TECHNOLOGY, DL1000), and slid 100 times at a grip force of 500 gf, a test speed of 8.3 mm / s, and a test stroke of 25 mm (grip pad material: silicone, grip pad height: 12.35 mm). The sliding resistance (gf) after 100 slides was measured to evaluate the sliding properties. The lower the sliding resistance, the better the sliding properties were judged to be.
[0099] [Evaluation of Tensile Strength and Tensile Elongation] Tensile strength and tensile elongation were measured in accordance with ASTM D412 using a tensile tester (Shimadzu Corporation, Autograph AGX-X). Specifically, each tube was cut to a length of 20 mm to prepare a test specimen. Next, the chuck distance of the tensile tester was set to 10 mm, and the test specimen was clamped in the tensile tester. Measurements were performed at room temperature (25°C), with a chuck pressure of 0.5 MPa and a tensile speed of 50 mm / min. The tensile strength (MPa) was determined by dividing the strength at break of each test specimen by the cross-sectional area of the sample before the test. The elongation at break of each test specimen was defined as the tensile elongation (%). Measurements were performed on five test specimens, and the average value was calculated.
[0100] Example 2 A polyurethane elastomer (trade name: Pellethane 2363-80AE, manufactured by Lubrizol) (TPU) was dissolved in N,N-dimethylformamide (DMF) so that the final concentration in the coating solution was 8.0% by mass (solution (2)). The block copolymer (1) synthesized in Synthesis Example 1 above was added to and dissolved in the solution (2) so that the final concentration in the coating solution was 5.0% by mass, thereby preparing coating solution (2).
[0101] A tetrafluoroethylene-hexafluoropropylene copolymer (FEP) wire (diameter: 1.775 mm) was dip-coated with the coating solution (2) prepared above at a speed of 10 mm / sec, and then heated at 110°C for 1 hour to carry out a crosslinking reaction. After the heating, the temperature was returned to room temperature (25°C), the FEP wire was removed, and a tube (2) (inner diameter: 1.775 mm, outer diameter: 1.950 mm, cross-sectional area: 0.512 mm) was obtained. 2 ) was obtained.
[0102] The sliding resistance (gf), tensile strength (MPa), and tensile elongation (%) of the tube (2) obtained above were measured in the same manner as in Example 1. As a result, the sliding resistance, tensile strength, and tensile elongation of the tube (2) were 18.3 gf, 8.4 MPa, and 430%, respectively.
[0103] Example 3 A polyurethane elastomer (trade name: Pellethane 2363-80AE, manufactured by Lubrizol) (TPU) was dissolved in N,N-dimethylformamide (DMF) so that the final concentration in the coating solution was 10.0% by mass (solution (3)). The block copolymer (1) synthesized in Synthesis Example 1 above was added to and dissolved in the solution (3) so that the final concentration in the coating solution was 4.5% by mass, thereby preparing coating solution (3).
[0104] A tetrafluoroethylene-hexafluoropropylene copolymer (FEP) wire (diameter: 1.775 mm) was dip-coated with the coating solution (3) prepared above at a speed of 10 mm / sec, and then heated at 110°C for 1 hour to carry out a crosslinking reaction. After the heating, the temperature was returned to room temperature (25°C), the FEP wire was removed, and a tube (3) (inner diameter: 1.775 mm, outer diameter: 1.950 mm, cross-sectional area: 0.512 mm) was obtained. 2 ) was obtained.
[0105] The sliding resistance (gf), tensile strength (MPa), and tensile elongation (%) of the tube (3) obtained above were measured in the same manner as in Example 1. As a result, the sliding resistance, tensile strength, and tensile elongation of the tube (3) were 26.1 gf, 8.0 MPa or more, and 80% or more, respectively.
[0106] Comparative Example 1 A tube (4) (inner diameter: 1.775 mm, outer diameter: 1.950 mm, cross-sectional area: 0.512 mm) made of polyvinyl chloride resin (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd., product name: Polyvinyl Chloride, average degree of polymerization (n) = 1,050) (PVC) 2 ) was prepared.
[0107] The sliding resistance (gf), tensile strength (MPa), and tensile elongation (%) of the tube (4) obtained above were measured in the same manner as in Example 1. As a result, the sliding resistance, tensile strength, and tensile elongation of the tube (4) were 657.4 gf, 46.5 MPa, and 60%, respectively.
[0108] Comparative Example 2: Polytetrafluoroethylene (PTFE) tube (manufactured by Chukoh Chemical Industry Co., Ltd., model number: TUF-100, outer diameter: 3 mm, inner diameter: 2 mm, cross-sectional area: 3.93 mm)2 ) (5) (Inner diameter: 1.775mm, Outer diameter: 1.950mm, Cross-sectional area: 0.512mm 2 ) was prepared.
[0109] The sliding resistance (gf), tensile strength (MPa), and tensile elongation (%) of the tube (5) obtained above were measured in the same manner as in Example 1. As a result, the sliding resistance, tensile strength, and tensile elongation of the tube (5) were 353.7 gf, 27.5 MPa, and 300%, respectively.
[0110] Comparative Example 3 Polyurethane elastomer (trade name: Pellethane 2363-80AE, manufactured by Lubrizol) (TPU) was dissolved in N,N-dimethylformamide (DMF) so that the final concentration in the coating solution was 8.0% by mass (solution (4)).
[0111] A tetrafluoroethylene-hexafluoropropylene copolymer (FEP) wire (diameter: 1.775 mm) was dip-coated in the coating liquid (4) prepared above at a speed of 10 mm / sec, and then heated at 110°C for 1 hour. After the heating, the temperature was returned to room temperature (25°C), the FEP wire was removed, and a polyurethane elastomer (TPU) tube (6) (inner diameter: 1.775 mm, outer diameter: 1.950 mm, cross-sectional area: 0.512 mm) was formed. 2 ) was obtained.
[0112] The sliding resistance (gf), tensile strength (MPa), and tensile elongation (%) of the tube (6) obtained above were measured in the same manner as in Example 1. As a result, the sliding resistance, tensile strength, and tensile elongation of the tube (6) were 750.0 gf, 12.5 MPa, and 470%, respectively.
[0113] The results are summarized in Table 1. In Table 1, "mixing ratio (parts by mass)" indicates the mixing ratio of the hydrophobic resin to 100 parts by mass of the block copolymer (hydrophobic resin (parts by mass) / 100 parts by mass of block copolymer).
[0114]
[0115] From the above results, it can be seen that all of the tubes of the examples exhibit excellent slipperiness (low sliding resistance). Note that the tube (1) of Example 1 has a tensile strength comparable to that of the PTFE tube (tube (5)). Furthermore, the tube (2) of Example 2 has a tensile elongation higher than that of the PTFE tube (tube (5)).
[0116] This application is based on Japanese Patent Application No. 2024-007808, filed on January 23, 2024, the disclosure of which is incorporated by reference in its entirety.
Claims
1. A medical material comprising a block copolymer having a structural unit (A) derived from a reactive monomer having an epoxy group and a structural unit (B) derived from a hydrophilic monomer, and at least one hydrophobic resin selected from the group consisting of a polyvinyl chloride resin and a polyurethane elastomer, wherein in the medical material, the content of the hydrophobic resin is greater than the content of the block copolymer, the sliding resistance is 50 gf or less, and it satisfies at least one of a tensile strength of 8.0 MPa or more and a tensile elongation exceeding 80%.
2. The medical material according to claim 1, wherein the hydrophobic resin is contained in a proportion of 125 parts by mass or more and 300 parts by mass or less with respect to 100 parts by mass of the block copolymer.
3. The medical material according to claim 1, wherein the reactive monomer having an epoxy group contains at least one selected from the group consisting of glycidyl acrylate, glycidyl methacrylate, 3,4-epoxycyclohexylmethyl acrylate, 3,4-epoxycyclohexylmethyl methacrylate, β-methyl glycidyl methacrylate, and allyl glycidyl ether.
4. The medical material according to claim 1, wherein the hydrophilic monomer contains at least one selected from the group consisting of N,N-dimethylacrylamide, acrylamide, 2-hydroxyethyl methacrylate, and N-vinylpyrrolidone.
5. A medical instrument comprising or composed of the medical material according to any one of claims 1 to 4.
6. The medical instrument according to claim 5, which is a plastic insertion needle, a dilator, a sheath (introducer), a catheter, or a medical tube.
7. A medical instrument comprising a base material layer and a coating layer comprising or composed of the medical material according to any one of claims 1 to 4.
8. The medical instrument according to claim 7, which is a plastic insertion needle, a dilator, a sheath (introducer), a catheter, or a medical tube.
9. A method for producing the medical material according to any one of claims 1 to 4, comprising mixing the block copolymer, the hydrophobic resin, and an organic solvent to prepare a mixture such that the content of the hydrophobic resin is greater than the content of the block copolymer, and heat-treating the mixture at a temperature exceeding 100 °C and less than 150 °C for 30 minutes to 3 hours.
Citation Information
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