Microneedle Assembly

The microneedle assembly with a thermoplastic polymer composition addresses alignment and consistency issues in transdermal delivery, providing a pain-free and steady-state delivery of vaccines through precise microneedle formation.

JP7737398B2Active Publication Date: 2025-09-10TICONA LLC
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Patent Information

Application Number
JP2022563026
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-04
Filing Date
2021-04-21
Publication Date
2025-09-10
Estimated Expiration
2041-04-21

AI Technical Summary

Technical Problem

Existing transdermal delivery devices face challenges in manufacturing microneedles of consistent size and shape, leading to inconsistent vaccine delivery due to their small size and alignment issues, and alternative delivery methods like injection, oral, and infusion are invasive or result in fluctuating systemic concentrations.

Method used

A microneedle assembly using a thermoplastic polymer composition with specific mechanical and thermal properties, including a melting point of 250°C or higher and low melt viscosity, allowing for precise molding and alignment of microneedles for transdermal delivery.

Benefits of technology

The microneedle assembly ensures consistent and steady-state delivery of pharmaceutical compounds across the skin barrier with improved physical integrity and alignment, reducing pain and invasiveness compared to traditional methods.

✦ Generated by Eureka AI based on patent content.

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Abstract

A microneedle assembly capable of delivering a pharmaceutical compound (e.g., a vaccine) and / or detecting the presence of an analyte is provided. The assembly includes at least one microneedle extending outward from a support. The microneedle comprises a polymer composition containing a thermoplastic polymer having a melting point of about 250°C or higher. The polymer composition exhibits a melt viscosity of about 100 Pa·s or less and a tensile elongation of about 5% or less.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims the benefit of U.S. Provisional Patent Application No. 63 / 016560, filed April 28, 2020, and U.S. Provisional Patent Application No. 63 / 034429, filed June 4, 2020, the entire contents of which are incorporated herein by reference. [Background technology]

[0002] Due to their relatively high molecular weight and viscosity, most vaccines require delivery to subjects via oral delivery, injection, or infusion. Unfortunately, these methods are problematic for a variety of reasons. For example, injections often use small-gauge needles, which can be painful, and can require extremely high pressure for extended periods of time to deliver the vaccine. Oral delivery similarly requires favorable absorption of the vaccine by the epithelial lining of the digestive tract and avoidance of degradation by digestive substances. Both injection and oral delivery also tend to result in bursts of vaccine and large fluctuations in systemic concentration, rather than the preferred steady-state delivery. Vaccines can also be delivered directly into blood vessels, muscles, or subcutaneous connective tissue using infusion therapy. However, infusion therapy is invasive, increases the risk of infection at the infusion site, and requires the use of pumps, percutaneous tubes, and the like. As a result of these challenges, attempts have also been made to deliver vaccines via transdermal delivery devices. Unfortunately, due to their relatively small size, it is often complicated to manufacture microneedles of consistent size and shape. Furthermore, the microneedles are often not properly aligned with one another, which can lead to inconsistent delivery of the vaccine dose. Summary of the Invention [Problem to be solved by the invention]

[0003]

[0003] Therefore, there is currently a need for improved transdermal delivery devices. [Means for solving the problem]

[0004]

[0004] In accordance with one aspect of the present invention, a microneedle assembly is disclosed that includes at least one microneedle extending outward from a support. The microneedle comprises a polymer composition containing a thermoplastic polymer having a melting point of about 250°C or higher. The polymer composition exhibits a melt viscosity of about 100 Pa·s or less and a tensile elongation of about 5% or less.

[0005] Other features and aspects of the present invention are set forth in further greater detail below.

[0006] A full and enabling disclosure of the present invention, including the best mode thereof, to one of ordinary skill in the art, is set forth more particularly in the remainder of the specification, including reference to the accompanying figures. [Brief explanation of the drawings]

[0006] [Figure 1]

[0007] 1 is an SEM image of one embodiment of a microneedle assembly that may be formed in accordance with the present invention. [Figure 2]

[0008] FIG. 1 is a schematic plan view of one embodiment of a microneedle assembly that may be formed in accordance with the present invention. [Figure 3]

[0009] FIG. 3 is a schematic front view of an array of microneedles in the assembly shown in FIG. 2. [Figure 4]

[0010] FIG. 3 is a schematic front view of one embodiment of the microneedle shown in the assembly of FIG. 2. [Figure 5]

[0011] FIG. 3 is a schematic side view of one embodiment of a microneedle shown in the assembly of FIG. 2. [Figure 6]

[0012] FIG. 3 is a schematic plan view of one embodiment of a microneedle shown in the assembly of FIG. 2. DETAILED DESCRIPTION OF THE INVENTION

[0007]

[0013] It should be understood by one of ordinary skill in the art that the discussion of the present invention is a description of exemplary embodiments only and is not intended as limiting the broader aspects of the present invention.

[0014] In general, the present invention is directed to a microneedle assembly capable of transdermal delivery of a pharmaceutical compound, e.g., a vaccine (e.g., a vaccine), across the skin barrier of a subject (e.g., a human), and / or detecting the presence of an analyte in the subject. The microneedles can be formed from a thermoplastic polymer composition having a melt viscosity low enough to be easily molded into the small dimensions required for the microneedles. For example, the polymer composition can be melted at a shear rate of 1,000 s -1 At a temperature about 30°C above the melting point (e.g., about 380°C), the polymer composition may have a melt viscosity of about 100 Pa·s or less, in some embodiments about 80 Pa·s or less, in some embodiments about 1 Pa·s to about 60 Pa·s, and in some embodiments about 2 to about 50 Pa·s, as measured in accordance with ISO test 11443:2014. The polymer composition may also have a melt viscosity of about 100 Pa·s or less, in some embodiments about 80 Pa·s to about 80 Pa·s, in some embodiments about 1 Pa·s to about 60 Pa·s, and in some embodiments about 2 to about 50 Pa·s, as measured in accordance with ISO test 11443:2014 at a shear rate of 400 s -1 At a temperature about 30°C above the melting point (e.g., about 380°C), the melt viscosity, measured in accordance with ISO test 11443:2014, can be about 150 Pa·s or less, in some embodiments about 100 Pa·s or less, in some embodiments about 5 Pa·s to about 90 Pa·s, and in some embodiments, about 10 to about 70 Pa·s.

[0008]

[0015] It was previously believed that thermoplastic polymer compositions exhibiting such low melt viscosities would still not possess sufficiently good thermal and mechanical properties to allow for good physical integrity and consistent shape and size for use in forming microneedles in substantial alignment. However, contrary to conventional belief, the present inventors have discovered that by carefully controlling the specific thermoplastic polymer(s) and / or other optional materials used, the resulting polymer composition can also have both excellent thermal and mechanical properties. More specifically, the polymer composition contains a thermoplastic polymer having a melting point, measured in accordance with ISO 11357-2:2013, of about 250°C or higher, in some embodiments about 275°C or higher, in some embodiments about 300°C or higher, and in some embodiments about 320°C to about 450°C. Even at such melting points, the deflection temperature under load ("DTUL"), a ratio of a measure of short-range thermal resistance to the melting point, can still be relatively high, which may enable, among other things, the use of high-speed processing to form the microneedles. For example, the ratio may be in the range of about 0.5 to about 1.00, about 0.65 to about 0.95 in some embodiments, and about 0.75 to about 0.85 in some embodiments. The specific DTUL value, measured in accordance with ISO test 75-2:2013 (technically equivalent to ASTM D648-07) at a load of 1.8 megapascals, may be, for example, about 160°C or higher, about 200°C to about 350°C in some embodiments, about 220°C to about 320°C in some embodiments, and about 250°C to about 300°C in some embodiments.

[0009]

[0016] The polymer composition can generally be inherently rigid, thus maintaining a desired degree of physical integrity during microneedle formation. Such rigidity can generally be characterized by a low tensile elongation and / or a high tensile modulus. For example, the tensile elongation, measured at a temperature of about 23°C according to ISO Test 527:2012, can be about 5% or less, in some embodiments, about 4% or less, in some embodiments, about 0.1 to about 3.5%, in some embodiments, about 0.2 to about 3%, and in some embodiments, about 0.5 to about 2.5%. For example, the tensile modulus, measured at a temperature of 23°C according to ISO Test 527:2012, can similarly be about 7,000 MPa or more, in some embodiments, about 7,500 MPa or more, in some embodiments, about 8,000 MPa to about 25,000 MPa, in some embodiments, about 8,500 MPa to about 20,000 MPa, and in some embodiments, about 9,000 MPa to about 15,000 MPa. The polymer composition can also exhibit other favorable mechanical properties, for example, a tensile strength measured in accordance with ISO test 527:2012 at a temperature of 23° C. of about 10 MPa or more, in some embodiments, about 50 MPa or more, in some embodiments, about 70 MPa to about 300 MPa, and in some embodiments, about 80 MPa to about 200 MPa.

[0010]

[0017] The polymer composition may also exhibit a flexural strength of about 40 to about 500 MPa, in some embodiments, about 50 to about 300 MPa, and in some embodiments, about 100 to about 200 MPa; a flexural break strain of about 0.5% to about 15%, in some embodiments, about 0.6% to about 10%, and in some embodiments, about 1% to about 5%; and / or a flexural modulus of about 5,000 MPa to about 20,000 MPa, in some embodiments, about 6,000 MPa to about 15,000 MPa, and in some embodiments, about 80,000 MPa to about 12,000 MPa. Flexural properties may be measured according to ISO Test 178:2010 (technically equivalent to ASTM D790-10) at 23°C. The composition has an unnotched and / or notched Charpy impact strength of about 1 kJ / m at 23°C, measured according to ISO test 179-1:2010 (technically equivalent to ASTM D256-10e1). 2 In some embodiments, about 1.5 to about 30 kJ / m 2 In some embodiments, about 2 to about 20 kJ / m 2 can also be presented.

[0011]

[0018] Various aspects of the invention will now be described in more detail. I. Polymer Composition A thermoplastic polymer

[0019] Any of a variety of thermoplastic polymers having the above characteristics can be used in the polymer composition.Specific examples of such polymers include, for example, fully or partially aromatic polymers, such as polyarylene sulfides (e.g., polyphenylene sulfide), polyamides (e.g., aromatic polyamides or semi-aromatic polyamides), polyarylene ketones (e.g., polyether ether ketones), liquid crystal polymers, and aliphatic polymers, such as aliphatic polyamides.

[0012]

[0020] Aromatic polymers are particularly suitable for use in polymer compositions. Aromatic polymers may be semicrystalline or crystalline in nature. An example of a suitable semicrystalline aromatic polymer is an aromatic polyamide. Aromatic polyamides typically contain repeating units linked by amide bonds (NH—CO) and are synthesized by polycondensation of dicarboxylic acids (e.g., aromatic dicarboxylic acids), diamines (e.g., aliphatic diamines), and the like. For example, aromatic polyamides can contain aromatic repeating units derived from aromatic dicarboxylic acids such as terephthalic acid, isophthalic acid, 2,6-naphthalenedicarboxylic acid, 2,7-naphthalenedicarboxylic acid, 1,4-naphthalenedicarboxylic acid, 1,4-phenylenedioxy-diacetic acid, 1,3-phenylenedioxy-diacetic acid, diphenic acid, 4,4′-oxydibenzoic acid, diphenylmethane-4,4′-dicarboxylic acid, diphenylsulfone-4,4′-dicarboxylic acid, 4,4′-biphenyldicarboxylic acid, and the like, and combinations thereof. Terephthalic acid is particularly preferred. Of course, it should be understood that other types of acid units, such as aliphatic dicarboxylic acid units, polyfunctional carboxylic acid units, etc., can also be used. The aromatic polyamide can also contain aliphatic repeat units derived from aliphatic diamines, which typically have 4 to 14 carbon atoms. Examples of such diamines include linear aliphatic alkylenediamines such as 1,4-tetramethylenediamine, 1,6-hexanediamine, 1,7-heptanediamine, 1,8-octanediamine, 1,9-nonanediamine, 1,10-decanediamine, 1,11-undecanediamine, 1,12-dodecanediamine, and the like; branched aliphatic alkylenediamines such as 2-methyl-1,5-pentanediamine, 3-methyl-1,5-pentanediamine, 2,2,4-trimethyl-1,6-hexanediamine, 2,4,4-trimethyl-1,6-hexanediamine, 2,4-dimethyl-1,6-hexanediamine, 2-methyl-1,8-octanediamine, 5-methyl-1,9-nonanediamine, and the like; and combinations thereof. Repeat units derived from 1,9-nonanediamine and / or 2-methyl-1,8-octanediamine are particularly preferred.Of course, other diamine units, such as alicyclic diamines and aromatic diamines, can also be used.

[0013]

[0021] Particularly suitable aromatic polyamides include poly(nonamethylene terephthalamide) (PA9T), poly(nonamethylene terephthalamide / nonamethylenedecanediamide) (PA9T / 910), poly(nonamethylene terephthalamide / nonamethylenedodecanediamide) (PA9T / 912), poly(nonamethylene terephthalamide / 11-aminoundecanamide) (PA9T / 11), and poly(nonamethylene terephthalamide / 12-aminododecanamide) (PA9T / 12). ), poly(decamethylene terephthalamide / 11-aminoundecanamide) (PA10T / 11), poly(decamethylene terephthalamide / 12-aminododecanamide) (PA10T / 12), poly(decamethylene terephthalamide / decamethylenedecanediamide) (PA10T / 1010), poly(decamethylene terephthalamide / decamethylenedodecanediamide) (PA10T / 1012), poly(decamethylene terephthalamide) Examples of suitable aromatic polyamides include poly(tetramethylene terephthalamide / tetramethylene hexanediamide) (PA10T / 46), poly(decamethylene terephthalamide / caprolactam) (PA10T / 6), poly(decamethylene terephthalamide / hexamethylene hexanediamide) (PA10T / 66), poly(dodecamethylene terephthalamide / dodecamethylene dodecanediamide) (PA12T / 1212), poly(dodecamethylene terephthalamide / caprolactam) (PA12T / 6), poly(dodecamethylene terephthalamide / hexamethylene hexanediamide) (PA12T / 66), and the like. Still other examples of suitable aromatic polyamides are described in U.S. Patent No. 8,324,307 to Harder et al.

[0014]

[0022] Another suitable semicrystalline aromatic polymer that can be used in the present invention is polyaryletherketone. Particularly suitable polyaryletherketones are those that primarily contain phenyl moieties linked to ketone and / or ether moieties. Examples of such polymers include polyetheretherketone ("PEEK"), polyetherketone ("PEK"), polyetherketoneketone ("PEKK"), polyetherketoneetherketoneketone ("PEKEKK"), polyetheretherketoneketone ("PEEKK"), polyether-diphenyl-ether-ether-diphenyl-ether-phenyl-ketone-phenyl, and the like, as well as blends and copolymers thereof.

[0015]

[0023] In addition to the polymers mentioned above, crystalline polymers can also be used in polymer compositions.The thermoplastic polymer particularly suitable for use in polymer compositions is liquid crystal polymer.Liquid crystal polymers are generally classified as "thermotropic" to the extent that they can retain a rod-like structure, and exhibit crystalline behavior in their molten state (for example, thermotropic nematic state).Such polymers can be formed from one or more types of repeating units known in the art.Liquid crystal polymers can, for example, contain one or more aromatic ester repeating units, generally represented by the following formula (I):

[0016] [ka]

[0017] (In the formula, Ring B is a substituted or unsubstituted 6-membered aryl group (e.g., 1,4-phenylene or 1,3-phenylene), a substituted or unsubstituted 6-membered aryl group fused to a substituted or unsubstituted 5- or 6-membered aryl group (e.g., 2,6-naphthalene), or a substituted or unsubstituted 6-membered aryl group bonded to a substituted or unsubstituted 5- or 6-membered aryl group (e.g., 4,4-biphenylene); and Y1 and Y2 are independently O, C(O), NH, C(O)HN, or NHC(O)).

[0018]

[0024] Typically, at least one of Y1 and Y2 is C(O). Examples of such aromatic ester repeat units can include, for example, aromatic dicarboxylic acid repeat units (Y1 and Y2 in Formula I are C(O)), aromatic hydroxycarboxylic acid repeat units (Y1 is O and Y2 is C(O) in Formula I), and various combinations thereof.

[0019]

[0025] For example, aromatic hydroxycarboxylic acid repeating units derived from aromatic hydroxycarboxylic acids such as 4-hydroxybenzoic acid, 4-hydroxy-4'-biphenylcarboxylic acid, 2-hydroxy-6-naphthoic acid, 2-hydroxy-5-naphthoic acid, 3-hydroxy-2-naphthoic acid, 2-hydroxy-3-naphthoic acid, 4'-hydroxyphenyl-4-benzoic acid, 3'-hydroxyphenyl-4-benzoic acid, 4'-hydroxyphenyl-3-benzoic acid, etc., as well as alkyl, alkoxy, aryl, and halogen substituents thereof, and combinations thereof, can be used. Particularly suitable aromatic hydroxycarboxylic acids are 4-hydroxybenzoic acid ("HBA") and 6-hydroxy-2-naphthoic acid ("HNA"). When used, repeat units derived from hydroxycarboxylic acids (e.g., HBA and / or HNA) typically constitute about 20 mol.% or more, in some embodiments, about 25 mol.% or more, in some embodiments, about 30 mol.% or more, in some embodiments, about 40 mol.% or more, in some embodiments, about 50 mol.% or more, in some embodiments, about 55 mol.% to 100 mol.%, and in some embodiments, about 60 mol.% to about 95 mol.% of the polymer.

[0020]

[0026] Aromatic dicarboxylic acid repeat units derived from aromatic dicarboxylic acids, such as terephthalic acid, isophthalic acid, 2,6-naphthalenedicarboxylic acid, diphenyl ether-4,4'-dicarboxylic acid, 1,6-naphthalenedicarboxylic acid, 2,7-naphthalenedicarboxylic acid, 4,4'-dicarboxybiphenyl, bis(4-carboxyphenyl)ether, bis(4-carboxyphenyl)butane, bis(4-carboxyphenyl)ethane, bis(3-carboxyphenyl)ether, bis(3-carboxyphenyl)ethane, etc., and their alkyl, alkoxy, aryl, and halogen substituents, and combinations thereof, can also be used. Particularly suitable aromatic dicarboxylic acids can include, for example, terephthalic acid ("TA"), isophthalic acid ("IA"), and 2,6-naphthalenedicarboxylic acid ("NDA"). When used, repeat units derived from aromatic dicarboxylic acids (e.g., IA, TA, and / or NDA) each typically comprise from about 1 mol.% to about 40 mol.%, in some embodiments, from about 2 mol.% to about 30 mol.%, and in some embodiments, from about 5 mol.% to about 25% of the polymer.

[0021]

[0027] Other repeating units can also be used in the polymer. In some embodiments, for example, repeating units derived from aromatic diols, such as hydroquinone, resorcinol, 2,6-dihydroxynaphthalene, 2,7-dihydroxynaphthalene, 1,6-dihydroxynaphthalene, 4,4'-dihydroxybiphenyl (or 4,4'-biphenol), 3,3'-dihydroxybiphenyl, 3,4'-dihydroxybiphenyl, 4,4'-dihydroxybiphenyl ether, bis(4-hydroxyphenyl)ethane, etc., and their alkyl, alkoxy, aryl, and halogen substituents, and combinations thereof, can be used. Particularly suitable aromatic diols can include, for example, hydroquinone ("HQ") and 4,4'-biphenol ("BP"). When used, repeat units derived from aromatic diols (e.g., HQ and / or BP) typically comprise from about 1 mol.% to about 50 mol.%, in some embodiments, from about 1 to about 40 mol.%, in some embodiments, from about 2 mol.% to about 40 mol.%, in some embodiments, from about 5 mol.% to about 35 mol.%, and in some embodiments, from about 5 mol.% to about 25% of the polymer.

[0022]

[0028] For example, repeat units derived from aromatic amides (e.g., acetaminophen (“APAP”)) and / or aromatic amines (e.g., 4-aminophenol (“AP”), 3-aminophenol, 1,4-phenylenediamine, 1,3-phenylenediamine, etc.) can also be used. When used, repeat units derived from aromatic amides (e.g., APAP) and / or aromatic amines (e.g., AP) typically comprise from about 0.1 mol.% to about 20 mol.%, in some embodiments, from about 0.5 mol.% to about 15 mol.%, and in some embodiments, from about 1 mol.% to about 10% of the polymer. It should also be understood that various other monomeric repeat units may be incorporated into the polymer. For example, in certain embodiments, the polymer can contain one or more repeat units derived from non-aromatic monomers, such as aliphatic or alicyclic hydroxycarboxylic acids, dicarboxylic acids, diols, amides, amines, etc. Of course, in other embodiments, the polymer may be "fully aromatic," lacking repeat units derived from non-aromatic (eg, aliphatic or alicyclic) monomers.

[0023]

[0029] In some embodiments, the liquid crystal polymer may be a "high naphthenic" polymer to the extent that it contains a relatively high content of repeat units derived from naphthenic hydroxycarboxylic acids and naphthenic dicarboxylic acids, such as NDA, HNA, or combinations thereof. That is, the total amount of repeat units derived from naphthenic hydroxycarboxylic acids and / or naphthenic dicarboxylic acids (e.g., NDA, HNA, or combinations of HNA and NDA) is typically about 10 mol.% or more, in some embodiments about 12 mol.% or more, in some embodiments about 15 mol.% or more, in some embodiments about 18 mol.% or more, in some embodiments about 30 mol.% or more, in some embodiments about 40 mol.% or more, in some embodiments about 45 mol.% or more, in some embodiments about 50 mol.% or more, in some embodiments about 55 mol.% or more, and in some embodiments about 55 mol.% to about 95 mol.% of the polymer. Without intending to be limited by theory, it is believed that such "high naphthenic" polymers can reduce the tendency of the polymer composition to absorb water, which can aid in the processability and proper alignment of microneedles. That is, such high naphthenic polymers typically have a water absorption of about 0.015% or less, in some embodiments about 0.01% or less, and in some embodiments about 0.0001% to about 0.008% after 24 hours of immersion in water according to ISO 62-1:2008. The high naphthenic polymers can also have a water absorption of about 0.01% or less, in some embodiments about 0.008% or less, and in some embodiments about 0.0001% to about 0.006% after exposure to a humid environment (50% relative humidity) at 23°C according to ISO 62-4:2008.

[0024]

[0030] In one embodiment, for example, repeat units derived from HNA can constitute 30 mol % or more, in some embodiments, about 40 mol % or more, in some embodiments, about 45 mol % or more, in some embodiments, 50 mol % or more, in some embodiments, about 55 mol % or more, and in some embodiments, about 55 mol % to about 95 mol % of the polymer. In such embodiments, the liquid crystal polymer can contain various other monomers, such as aromatic hydroxycarboxylic acid(s) (e.g., HBA) in an amount of about 1 mol.% to about 50 mol.%, in some embodiments, about 1 mol.% to about 20 mol.%, and in some embodiments, about 2 mol.% to about 10 mol.%; aromatic dicarboxylic acid(s) (e.g., IA and / or TA) in an amount of about 1 mol.% to about 40 mol.%, in some embodiments, about 5 mol.% to about 25 mol.%; and / or aromatic diol(s) (e.g., BP and / or HQ) in an amount of about 1 mol.% to about 40 mol.%, in some embodiments, about 5 mol.% to about 25 mol.%. In other embodiments, repeat units derived from NDA can constitute 10 mol.% or more, in some embodiments, about 12 mol.% or more, in some embodiments, about 15 mol.% or more, and in some embodiments, about 18 mol.% to about 95 mol.% of the polymer. In such embodiments, the liquid crystal polymer may also contain various other monomers, such as aromatic hydroxycarboxylic acid(s) (e.g., HBA) in an amount of about 20 mol.% to about 60 mol.%, and in some embodiments, about 30 mol.% to about 50 mol.%; aromatic dicarboxylic acid(s) (e.g., IA and / or TA) in an amount of about 2 mol.% to about 30 mol.%, and in some embodiments, about 5 mol.% to about 25 mol.%; and / or aromatic diol(s) (e.g., BP and / or HQ) in an amount of about 2 mol.% to about 40 mol.%, and in some embodiments, about 5 mol.% to about 35 mol.%.

[0025]

[0031] Of course, "low naphthenic" liquid crystalline polymers can also be used alone or in combination with "high naphthenic" liquid crystalline polymers in the compositions. In such low naphthenic polymers, the total amount of repeat units derived from naphthenic hydroxycarboxylic acids and / or naphthenic dicarboxylic acids (e.g., NDA, HNA, or a combination of HNA and NDA) is typically less than 10 mol.%, in some embodiments, about 8 mol.% or less, in some embodiments, about 6 mol.% or less, and in some embodiments, from about 1 mol.% to about 5 mol.% of the polymer.

[0026]

[0032] Regardless of the specific components and properties of the polymer, liquid crystal polymers can be prepared by first introducing the aromatic monomer(s) used to form ester repeating units (e.g., aromatic hydroxycarboxylic acids, aromatic dicarboxylic acids, etc.) and / or other repeating units (e.g., aromatic diols, aromatic amides, aromatic amines, etc.) into a reaction vessel to initiate a polycondensation reaction.The specific conditions and processes used in this reaction are well known and are described in more detail in U.S. Patent No. 4,161,470 to Calundann; U.S. Patent No. 5,616,680 to Linstid, III et al.; U.S. Patent No. 6,114,492 to Linstid, III et al.; U.S. Patent No. 6,514,611 to Shepherd et al.; and International Publication No. 2004 / 058851 to Waggoner.The vessel used in the reaction is typically, but not limited to, one commonly used in the reaction of high-viscosity fluids. Examples of such reaction vessels include stirred tank-type devices having stirrers with various shapes of stirring blades, such as anchor-type, multi-stage-type, spiral ribbon-type, screw shaft-type, etc., or modified shapes thereof. Further examples of such reaction vessels include mixing devices commonly used in resin kneading, such as kneaders, roll mills, and Banbury mixers.

[0027]

[0033] Optionally, the reaction can proceed by acetylation of the monomer, as is known in the art. This can be achieved by adding an acetylating agent (e.g., acetic anhydride) to the monomer. Acetylation is generally initiated at a temperature of about 90°C. During the initial stages of acetylation, reflux can be used to maintain a vapor phase temperature below the temperature at which the acetic acid by-product and anhydride begin to distill. The temperature during acetylation typically ranges from 90°C to 150°C, and in some embodiments, from about 110°C to about 150°C. When reflux is used, the vapor phase temperature typically exceeds the boiling point of acetic acid but remains low enough to retain residual acetic anhydride. For example, acetic anhydride vaporizes at a temperature of about 140°C. Therefore, it is particularly desirable to provide a reactor with a vapor phase reflux at a temperature of about 110°C to about 130°C. To ensure a substantially complete reaction, an excess amount of acetic anhydride can be used. The amount of excess anhydride can vary depending on the specific acetylation conditions used, including the presence or absence of reflux. It is not uncommon to use about a 1 to about 10 mole percent excess of acetic anhydride, based on the total moles of reactant hydroxyl groups present.

[0028]

[0034] Acetylation may occur in a separate reactor or in situ in the polymerization reactor. When a separate reactor is used, one or more of the monomers may be introduced into the acetylation reactor and then transferred to the polymerization reactor. Similarly, one or more of the monomers may also be introduced directly into the reactor without prior acetylation.

[0029]

[0035] In addition to the monomer and optional acetylating agent, other components can be included in the reaction mixture to help facilitate polymerization. For example, catalysts, such as metal salt catalysts (e.g., magnesium acetate, tin(I) acetate, tetrabutyl titanate, lead acetate, sodium acetate, potassium acetate, etc.) and organic compound catalysts (e.g., N-methylimidazole), can optionally be used. Such catalysts are typically used in amounts of about 50 to about 500 parts per million (ppm), based on the total weight of the repeating unit precursor. When a separate reactor is used, it is typically desirable to apply the catalyst to the acetylation reactor rather than the polymerization reactor, although this is by no means a requirement.

[0030]

[0036] The reaction mixture is generally heated to an elevated temperature in a polymerization reactor to initiate melt polycondensation of the reactants. Polycondensation can occur, for example, within a temperature range of about 250°C to about 380°C, and in some embodiments, about 280°C to about 380°C. For example, one suitable technique for forming an aromatic polyester can include charging precursor monomers and acetic anhydride into a reactor, heating the mixture to a temperature of about 90°C to about 150°C to acetylate the hydroxyl groups of the monomers (e.g., to form acetoxy groups), and then increasing the temperature to about 280°C to about 380°C to carry out melt polycondensation. As the final polymerization temperature approaches, volatile by-products of the reaction (e.g., acetic acid) can also be removed to facilitate obtaining the desired molecular weight. The reaction mixture is stirred during polymerization to ensure good heat and mass transfer, which in turn ensures good material homogeneity. The agitator rotation speed may vary during the course of the reaction, but typically ranges from about 10 to about 100 revolutions per minute ("rpm"), and in some embodiments, from about 20 to about 80 rpm. To build molecular weight in the melt, the polymerization reaction may also be carried out under vacuum, the application of which facilitates the removal of volatile materials generated during the final stages of polycondensation. The vacuum may be created, for example, by application of a suction pressure in the range of about 5 to about 30 pounds per square inch ("psi"), and in some embodiments, in the range of about 10 to about 20 psi.

[0031]

[0037] After melt polymerization, the molten polymer is discharged from the reactor, typically through an extrusion orifice fitted with a die of the desired profile, cooled, and may be recovered. Typically, the melt is discharged through a perforated die and taken up in a water bath to form strands, pelletized, and dried. In some embodiments, the melt-polymerized polymer may subsequently be subjected to a solid-state polymerization process to further increase its molecular weight. Solid-state polymerization can be carried out in the presence of a gas (e.g., air, an inert gas, etc.). Suitable inert gases may include, for example, nitrogen, helium, argon, neon, krypton, xenon, etc., and combinations thereof. The solid-state polymerization reactor may be of virtually any design that allows the polymer to be maintained at the desired solid-state polymerization temperature for the desired residence time. Examples of such vessels may include fixed beds, stationary beds, moving beds, fluidized beds, etc. The temperature at which solid-state polymerization is carried out may vary, but is typically within the range of about 250°C to about 350°C. The polymerization time will, of course, vary based on the temperature and the target molecular weight. In most cases, however, the solid state polymerization time will be from about 2 to about 12 hours, and in some embodiments from about 4 to about 10 hours. B. Other additives

[0038] In some cases, a thermoplastic polymer may comprise the entire polymer composition (e.g., 100 wt.%). However, in certain embodiments, it may be desirable to include one or more additives within the polymer composition to help achieve targeted properties. In such embodiments, the polymer composition typically contains one or more thermoplastic polymers (e.g., liquid crystal polymers) in an amount of about 30 wt.% to about 99 wt.%, in some embodiments, about 40 wt.% to about 95 wt.%, and in some embodiments, about 50 wt.% to about 90 wt.% of the entire polymer composition, and one or more additives in an amount of about 1 wt.% to about 70 wt.%, in some embodiments, about 5 wt.% to about 60 wt.%, and in some embodiments, about 10 wt.% to about 50 wt.% of the polymer composition.

[0032]

[0039] When used, the specific nature of the additive may vary. For example, the polymer composition may contain an inorganic filler, which may be in the form of particles (e.g., platelet-shaped, flake-shaped, etc.), fibers, etc. In one embodiment, for example, the inorganic filler may include particulate inorganic fillers such as talc, halloysite, kaolinite, illite, montmorillonite, vermiculite, palygorskite, pyrophyllite, mica, diatomaceous earth, etc., and combinations thereof. Mica and / or talc may be particularly suitable. When used, the inventors have found that particulate inorganic fillers of relatively small size are more helpful in filling mold cavities and ensuring proper microneedle alignment. In a particular embodiment, for example, the particulate inorganic filler (e.g., talc) may have a median diameter (e.g., D50 size) of about 10 micrometers or less, in some embodiments, about 0.1 to about 8 micrometers, in some embodiments, about 0.5 to about 5 micrometers, and in some embodiments, about 0.6 to about 2.5 micrometers. Besides silicates, other suitable inorganic filler particles can include carbonates, such as calcium carbonate (CaCO) or copper hydroxide carbonate (CuCO(OH)); fluorides, such as calcium fluoride (CaFl); phosphates, such as calcium pyrophosphate (CaPO), anhydrous dicalcium phosphate (CaHPO), or hydrated aluminum phosphate (AlPO·2H0); glass (e.g., glass powder), and the like. Mineral fibers (also known as "whiskers") can also be used as inorganic fillers in the polymer compositions.Examples of such mineral fibers include those derived from silicates, such as neosilicates, sorosilicates, inosilicates (e.g., calcium inosilicates, e.g., wollastonite; calcium magnesium inosilicates, e.g., tremolite; calcium magnesium iron inosilicates, e.g., anthoclase; magnesium iron inosilicates, e.g., anthophyllite), phyllosilicates (e.g., aluminum phyllosilicates, e.g., palygorskite), tectosilicates, etc.; sulfates, such as calcium sulfate (e.g., dehydrated or anhydrous gypsum); mineral wool (e.g., rock wool or slag wool); glass, etc. Particularly suitable are inosilicates, such as wollastonite fibers available from Nyco Minerals under the trade name NYGLOS® (e.g., NYGLOS® 4W, NYGLOS® 5, or NYGLOS® 8). In addition to possessing the above size characteristics, the mineral fibers can also have a relatively high aspect ratio (average length divided by median width), which helps to further improve mechanical properties. For example, the mineral fibers can have an aspect ratio of from about 1 to about 50, from about 2 to about 20 in some embodiments, and from about 4 to about 15 in some embodiments. The volume-average length of such mineral fibers can range, for example, from about 1 to about 200 micrometers, from about 2 to about 150 micrometers in some embodiments, from about 5 to about 100 micrometers in some embodiments, and from about 10 to about 50 micrometers in some embodiments.

[0033]

[0040] Optionally, tribological additives can be used in the polymer composition to help achieve a good combination of low friction and good water resistance for use in microneedle assemblies. In one embodiment, for example, the tribological additive can include a fluoropolymer. Without intending to be limited by theory, it is believed that the fluoropolymer can improve the processability of the composition by, for example, providing better mold filling, internal lubrication, mold release, and the like. In one embodiment, the fluoropolymer can include a fluoropolymer, which contains a hydrocarbon backbone polymer in which some or all of the hydrogen atoms are replaced with fluorine atoms. The backbone polymer can be a polyolefin or formed from a fluorine-substituted unsaturated olefin monomer. The fluoropolymer can be a homopolymer of such a fluorine-substituted monomer, a copolymer of a fluorine-substituted monomer, or a mixture of a fluorine-substituted monomer and a non-fluorine-substituted monomer. In addition to the fluorine atoms, the fluoropolymer can also be substituted with other halogen atoms, such as chlorine and bromine atoms. Representative monomers suitable for forming the fluoropolymer used in the present invention include tetrafluoroethylene, vinylidene fluoride, hexafluoropropylene, chlorotrifluoroethylene, perfluoroethyl vinyl ether, perfluoromethyl vinyl ether, perfluoropropyl vinyl ether, etc., and mixtures thereof. Specific examples of suitable fluoropolymers include polytetrafluoroethylene, perfluoroalkyl vinyl ether, poly(tetrafluoroethylene-co-perfluoroalkyl vinyl ether), fluorinated ethylene-propylene copolymer, ethylene-tetrafluoroethylene copolymer, polyvinylidene fluoride, polychlorotrifluoroethylene, etc., and mixtures thereof. The fluoroadditive may contain only the fluoropolymer, or may also contain other components, such as those that contribute to the ability to uniformly disperse within the polymer composition. In one embodiment, for example, the fluoroadditive may include a fluoropolymer combined with a plurality of carrier particles.In such embodiments, for example, a fluoropolymer may be coated onto the carrier particles. Silicate particles, such as talc, halloysite, kaolinite, illite, montmorillonite, vermiculite, palygorskite, pyrophyllite, calcium silicate, aluminum silicate, mica, diatomaceous earth, wollastonite, and the like, are particularly suitable for this purpose. Mica, for example, may be a particularly suitable mineral for use in the present invention. The carrier particles may have an average particle size of about 5 to about 50 micrometers, and in some embodiments, about 10 to 20 micrometers. If desired, the carrier particles may also be in the form of plate-like particles, with the ratio of their major axis to thickness being 2 or greater.

[0034]

[0041] In the polymer composition, a variety of other additional additives may be included, such as lubricants, fibrous fillers (e.g., glass fibers), thermally conductive fillers, pigments, antioxidants, stabilizers, surfactants, waxes, flame retardants, anti-dripping additives, nucleating agents (e.g., boron nitride), flow modifiers, coupling agents, antimicrobial agents, pigments or other colorants, impact modifiers, and other materials added to enhance properties and processability. II Formation

[0042] The components used to form the polymer composition can be combined together using any of a variety of different techniques known in the art. In one particular embodiment, for example, the thermoplastic polymer and other optional additives are melt-processed as a mixture in an extruder to form the polymer composition. The mixture may be melt-mixed in a single- or multi-screw extruder at a temperature of about 200°C to about 450°C. In one embodiment, the mixture may be melt-processed in an extruder containing multiple temperature zones. The temperature of each zone is typically set within about -60°C to about 25°C of the melting point of the polymer. As an example, the mixture can be melt-processed using a twin-screw extruder, such as a Leistritz 18-mm co-rotating, fully intermeshing twin-screw extruder. The mixture can be melt-processed using a general-purpose screw design. In one embodiment, the mixture containing all of the components can be fed to the feed throat of the first barrel by a metering feeder. In another embodiment, the various components can be added at various addition points in the extruder, as is known. For example, the polymer may be added at the feed throat, and certain additives (e.g., particulate fillers) may be added downstream at the same or different temperature zones. The resulting mixture may be melted, mixed, and then extruded through a die. The extruded polymer composition may then be quenched in a water bath, solidified, and pelletized in a pelletizer, followed by drying. III Microneedle Assembly

[0043] A microneedle assembly typically includes one or more microneedles extending outward from a support. Microneedles can be formed using a variety of techniques, including embossing (e.g., hot embossing, roll-to-roll molding, etc.); molding, such as micromolding, injection molding (e.g., low-pressure injection molding, gas injection molding, foam injection molding, etc.), compression molding (e.g., extrusion compression molding), extrusion; and printing (e.g., three-dimensional printing). For example, an injection molding device can be used, which includes a mold into which a polymer composition can be injected. The time inside the injector can be controlled and optimized, so that the polymer matrix does not pre-solidify. When the cycle time is reached and the barrel is discharged full, a piston can be used to inject the composition into the mold cavity. Compression molding devices can also be used. Similar to injection molding, shaping of the polymer composition into the desired molded article also occurs within the mold. The composition can be placed into the compression mold using any known technique, for example, by being picked up by an automated robotic arm. The mold temperature is maintained above the solidification temperature of the polymer matrix for the desired time to allow solidification. The molded product can be solidified by lowering the temperature below the melting point. The resulting product can be demolded. The cycle time for each molding step can be adjusted to suit the polymer matrix, to obtain sufficient bonding, and to increase overall process productivity.

[0035]

[0044] 1-6, one particular embodiment of a microneedle assembly 500 is shown in more detail, for example, containing a plurality of microneedles 510 (e.g., an array of microneedles) extending outward from a support 520. As alluded to above, one or more microneedles 510 may be formed from the polymer compositions of the present invention. The support 520 may also be formed from a polymer composition, as well as from a rigid or flexible sheet of metal, ceramic, plastic, or other material. The support 520 may vary in thickness to meet the needs of a particular drug delivery application, for example, up to about 1,000 micrometers, in some embodiments from about 1 to about 500 micrometers, and in some embodiments from about 10 to about 200 micrometers.

[0036]

[0045] The density of the microneedles 510 may vary as desired, for example, about 2,000 microneedles per square centimeter (cm 2 ) or more, and in some embodiments, about 3,000 to about 25,000 microneedles / cm 2 In some embodiments, about 5,000 to about 20,000 microneedles / cm 2The number of microneedles 510 used in the assembly 500 may range, for example, from about 500 to about 10,000, in some embodiments from about 2,000 to about 8,000, and in some embodiments from about 4,000 to about 6,000. The microneedles 510 may be arranged on the support 520 in a variety of patterns. For example, the microneedles may be uniformly spaced, for example, in a rectangular or square grid or in concentric circles, or may be arranged in one or more lines. While a variety of arrangements can be used, one particularly preferred embodiment is shown in FIG. 2, in which the microneedles 510 are arranged in a spaced linear arrangement. The spacing may depend on numerous factors, such as the height and width of the microneedles 510 and the amount and type of constituent intended to be transferred through the microneedles. For example, the spacing between the tips of the microneedles 510 (S1 in FIG. 2) may be about 20 micrometers or more, in some embodiments about 60 to about 800 micrometers, and in some embodiments about 100 to about 600 micrometers, while the spacing between the bases of the microneedles 510 (S2 in FIG. 2) may be about 50 micrometers or more, in some embodiments about 100 to about 1000 micrometers, and in some embodiments about 200 to about 800 micrometers.

[0037]

[0046] The size and shape of the microneedle 510 may also vary as desired. For example, shown is a microneedle 510 having a tapered hexagonal shape containing a tip 611 and a base 612. The base 612 has two substantially parallel sides 621 and 622 that extend from a slight clearance angle, indicated as α1 in FIG. 5, to a transition point 613, indicated as α2 in FIG. 5, where the clearance angle increases. Note that while this example illustrates a specific increase in the clearance angle at transition point 613, the increase in clearance angle may be more gradual than that shown. The clearance angle α1 may range, for example, from about 0 to 20 degrees, from about 0 to 15 degrees in some embodiments, from about 1 to about 15 degrees in some embodiments, and from about 2 to about 10 degrees in some embodiments. Similarly, the angle α2 at the transition point may range from about 20 to 70 degrees, from about 20 to 60 degrees in some embodiments, from about 25 to about 55 degrees in some embodiments, and from about 25 to about 45 degrees in some embodiments. In an alternative embodiment, the ends of the microneedles may be blunted to provide an elongated octagonal profile. The microneedle profile may define an elongated hexagonal or octagonal shape, while the ends of the profile may be somewhat rounded depending on the method of manufacture of the microneedles and microneedle arrays.

[0038]

[0047] The tip 611 of each microneedle 510 terminates in an elongated end. tip and length L tip The length of the tip is about 5 to about 500 mm. micrometer In some embodiments, about 10 to about 200 micrometer In some embodiments, about 20 to about 100 micrometer The width of the tip may range from about 0.5 to about 5 micrometers, in some embodiments, from about 0.6 to about 4 micrometers, and in some embodiments, from about 1 to about 3.5 micrometers. base and length L base 611, which are longer in length than the tip 611. For example, the base of the microneedle may have a diameter of about 10 to about 1,000 mm. micrometer In some embodiments, about 20 to about 500 micrometer In some embodiments, about 30 to about 100 micrometer The length of the base can be about 5 to about 100 mm. micrometer In some embodiments, about 10 to about 80 micrometer In some embodiments, about 20 to about 70 micrometer The cross-sectional length:thickness aspect ratio (L base :T base ) may likewise be relatively high, e.g., about 2:1 or greater, in some embodiments about 2:1 to about 20:1, and in some embodiments about 3:1 to about 10:1. Each microneedle also has an overall height H that is long enough to penetrate at least the outermost layer of the epidermis (i.e., the stratum corneum), but optionally not large enough to pass through the dermis. For example, the height may be about 10 to about 1,000 micrometer In some embodiments, about 20 to about 500 micrometer In some embodiments, about 30 to about 100 micrometer may be.

[0039]

[0048] As is known in the art, the manner in which a microneedle assembly delivers a drug compound may vary. In some embodiments, for example, a drug compound may be applied to the surface of the microneedles. Various application techniques, such as dipping, spraying, or printing (e.g., inkjet printing, spotting, non-contact printing, drop-on-demand piezoelectric microdispensing, etc.), may be used. For example, the microneedles may be dipped into a drug compound reservoir through dip holes spaced according to the microneedle array. The microneedles may also be spray-coated with the drug compound and then dried with a gas. In yet another embodiment, the microneedles may be coated with the drug compound by a printing technique. Various suitable printing techniques are described, for example, in U.S. Patent Application Publication No. 2018 / 0326726 to Wang et al., which is incorporated herein by reference in its entirety. For example, a piezoelectric stack actuator may be used as the driving component, dispensing a fluid drug compound (or a fluid containing the compound) from a pump chamber through a two-dimensional array of nozzles. The nozzles are aligned with the microneedles, so that the dispensed fluid is applied to their surfaces.

[0040]

[0049] For example, as described above, in embodiments in which a drug compound is applied to the surface of the microneedle, the microneedle may be essentially solid and thus may not include hollow channels and / or pores for fluid delivery. In such embodiments, the microneedle assembly does not require conventional components (e.g., a drug reservoir, a release member, etc.) to drive delivery of the drug compound. Examples of such solid microneedles are described, for example, in U.S. Patent Application Publication No. 2018 / 0264244 to Meliga et al., the entire contents of which are incorporated herein by reference.

[0041]

[0050] Of course, in other embodiments, one or more microneedles can contain one or more channels of a certain dimension so that passive capillary flow can drive delivery of the drug compound. For example, the microneedle can define at least one channel that is in fluid communication with the drug compound, e.g., through an opening in the support. Referring again to FIG. 3 , for example, channel 511 is located on the exterior surface of microneedle 510. While the channel is shown on the exterior surface, it may be located in various different locations, e.g., internally in the microneedle. The channel dimensions are precisely selected in the present invention to induce capillary flow of the drug compound. Capillary flow generally occurs when the adhesive forces of the fluid to the channel walls are greater than the cohesive forces between liquid molecules. Specifically, capillary pressure is inversely proportional to the cross-sectional dimension of the channel and directly proportional to the surface tension of the liquid multiplied by the cosine of the contact angle of the fluid with the material forming the channel. Thus, the cross-sectional dimensions (e.g., width, diameter, etc.) of the channel can be selectively controlled, with smaller dimensions generally resulting in higher capillary pressures to facilitate capillary flow. For example, in some embodiments, the cross-sectional dimensions of the channel may range from about 1 micrometer to about 100 micrometers, from about 5 micrometers to about 50 micrometers, and from about 10 micrometers to about 30 micrometers. The dimensions can be constant or can vary as a function of the length of the channel. The length of the channel can also be varied to accommodate different dosages, flow rates, and residence times of the drug compound. For example, the length of the channel can be from about 10 micrometers to about 800 micrometers, from about 50 micrometers to about 500 micrometers in some embodiments, and from about 100 micrometers to about 300 micrometers in some embodiments. The cross-sectional area of ​​the channel can also be varied.For example, the cross-sectional area may be from about 50 square micrometers to about 1,000 square micrometers, in some embodiments, from about 100 square micrometers to about 500 square micrometers, and in some embodiments, from about 150 square micrometers to about 350 square micrometers. Further, the aspect ratio (length / cross-sectional dimension) of the channel may range from about 1 to about 50, in some embodiments, from about 5 to about 40, and in some embodiments, from about 10 to about 20. When the cross-sectional dimension (e.g., width, diameter, etc.) and / or length varies as a function of length, the aspect ratio is determined from the average dimension.

[0042]

[0051] Regardless of the type used, the microneedle assembly can deliver controlled amounts of a pharmaceutical compound through the skin. For example, the microneedle assembly can be placed adjacent to the skin of a subject (e.g., a human) and pressure applied to it, causing the microneedles to penetrate at least the stratum corneum of the epidermis.

[0043]

[0052] Optionally, particularly in embodiments where one or more channels are used, the microneedle assembly may be placed in fluid communication with a reservoir capable of initially holding the drug compound. The term "reservoir" generally refers to a designated area or chamber configured to hold a fluid drug compound. The reservoir may be an open volume, a gel, a solid structure, or the like. However, in many embodiments, the reservoir is a solid matrix through which the drug compound can flow. The selection of a desired material for the matrix typically depends on the solubility and diffusibility of the target drug compound and the time period during which release is desired. In one embodiment, for example, the solid matrix is ​​generally impermeable to the drug compound, and the material used to form the matrix is ​​selected to allow the drug compound to diffuse through it. However, in other embodiments, the solid matrix may be permeable or semi-permeable to the drug compound, thus allowing easy flow through its pores. Examples of such solid matrices include porous fibrous webs (e.g., woven or nonwoven), perforated thin films, foams, sponges, and the like. Regardless of their particular form, polymeric materials such as silicones, acrylics, olefin polymers (e.g., ethylene vinyl acetate), plasticized polyvinyl acetate / plasticized polyvinyl chloride, plasticized hydrolyzed polyvinyl alcohol, rubber-based adhesives (e.g., polyisobutylene extended with a solvent such as mineral oil), plasticized polyvinyl chloride, polyethylene glycols and polypropylene glycols of various molecular weights, cellulose esters, and the like are often used to form the solid matrix.

[0044]

[0053] In some embodiments, multiple reservoirs can be used to store multiple substances for delivery. The reservoirs can be positioned adjacent to each other in either a vertical or horizontal relationship. For example, a first reservoir can contain a drug compound, and a second reservoir can contain an excipient (e.g., a delivery vehicle, such as alcohol, water, etc.; a buffer, etc.). In a particular embodiment, for example, a first reservoir can contain a lyophilized powder of a drug compound, and a second reservoir can contain an aqueous solution for reconstituting the powder. Alternatively, multiple reservoirs can be used, each containing a drug compound. Various substances can be mixed before delivery.

[0045]

[0054] In some embodiments, the microneedle assembly and drug reservoir(s) can be integrated into the form of a transdermal delivery device (e.g., a patch). The pathway can also contain other elements that help maintain the desired flow of the drug compound. For example, the drug reservoir can be in fluid communication with a rate-controlling membrane, which helps control the flow rate of the drug compound by adjusting its pressure downstream from the reservoir. The rate-controlling membrane can help reduce the flow rate of the drug compound upon release. Specifically, the fluid drug compound passing from the drug reservoir to the microneedle assembly can experience a drop in pressure, resulting in a reduced flow rate. If this difference is too large, it can create a degree of backpressure that can impede the flow of the compound and potentially overcome the capillary pressure of the fluid through the microfluidic channel. Therefore, the use of a rate-controlling membrane can improve this pressure difference, allowing the drug compound to be introduced into the microneedles at a more controlled flow rate. The specific material, thickness, etc. of the rate-controlling membrane can vary based on numerous factors, such as the viscosity of the drug compound and the desired delivery time. The rate-controlling membrane can comprise, for example, a permeable, semi-permeable, or microporous material. Suitable membrane materials include, for example, fibrous webs (e.g., woven or nonwoven), perforated thin films, foams, sponges, and the like, which are formed from polymers such as polyethylene, polypropylene, polyvinyl acetate, copolymers of ethylene n-butyl acetate and ethylene vinyl acetate, and the like.

[0046]

[0055] Optionally, the transdermal delivery device can contain additional layers or materials that provide various benefits. For example, the assembly can include an adhesive layer that helps facilitate attachment of the delivery device to the user's skin during use. Although not required, the adhesive layer is often provided with the reservoir. The adhesive layer typically uses an adhesive coated on a backing material. The backing can be made of a material that is substantially impermeable to the drug compound, such as a polymer, metal foil, or the like. Suitable polymers can include, for example, polyethylene terephthalate, polyvinyl chloride, polyethylene, polypropylene, polycarbonate, polyester, and the like. The adhesive can also be a pressure-sensitive adhesive known in the art. Suitable adhesives can include, for example, solvent-based acrylic adhesives, solvent-based rubber adhesives, and silicone adhesives.

[0047]

[0056] The release member can also be located adjacent to the microneedle assembly, and thus adjacent to the support and optional rate-controlling membrane of the microneedle assembly. However, it should be understood that the release layer need not contact these layers, and other layers may actually be located between the release member and the support and / or rate-controlling membrane. However, the release member can contain a material that is substantially impermeable to the drug compound, such as a polymeric material, metal, etc. The material is also desirably hydrophobic. Suitable polymeric materials can include, for example, polyethylene terephthalate, polyvinyl chloride, polyethylene, polypropylene, polycarbonate, polyester, metal foil, etc. Because the release member is entirely impermeable, it can initially seal the opening in the support, thereby restricting the flow of the drug compound therethrough. In this way, the release member can act as a barrier to the flow of the drug compound, thereby inhibiting premature leakage. When it is desired to use the delivery device, a force can be applied by the user to at least partially separate the release member, thereby breaking the seal. Separation of the release member can be achieved in a variety of ways. For example, a portion of the release member may simply separate (e.g., detach, tear, etc.). Thus, flow of the drug compound can be induced "passively," i.e., without the need for traditional active infusion devices, such as liquid pumps, actuators, plungers, finger pressure, etc. This allows the delivery device to be placed on the skin prior to activation, thereby limiting potential leakage of the drug compound. Passive delivery of drug compounds is also simple and easy to use, thereby allowing it to be used by a variety of consumers, not just medical professionals.

[0048]

[0057] The medicinal compounds that can be delivered using the microneedle assembly of the present invention are not particularly limited. Suitable compounds include, for example, protein compounds such as insulin, immunoglobulins (e.g., IgG, IgM, IgA, IgE), TNF-α, antiviral drugs, polynucleotide agents such as plasmids, siRNA, RNAi, antitumor nucleoside drugs, vaccines, small molecule drugs such as alkaloids, glycosides, phenols, infection prevention agents, hormones, drugs that regulate myocardial activity or blood flow, pain management, vaccines, etc. Non-limiting examples of agents include angiogenesis inhibitors, antidepressants, antidiabetics, antihistamines, anti-inflammatory agents, butorphanol, calcitonin and analogs, COX-II inhibitors, dermatological agents, dopamine agonists and dopamine antagonists, enkephalins and other opioid peptides, epidermal growth factor, erythropoietin and analogs, follicle-stimulating hormone, glucagon, growth hormone and analogs (including growth hormone-releasing hormone), growth hormone antagonists, heparin, hirudin and hirudin analogs, e.g., hirulogs, IgE inhibitors and other protein inhibitors, immunosuppressants, insulin, insulinotropin and analogs, interferons, insulin Major diagnostic agents include turleukins, luteinizing hormone, luteinizing hormone releasing hormone and analogs, monoclonal or polyclonal antibodies, anti-motion sickness medications, muscle relaxants, narcotic analgesics, nicotine, nonsteroidal anti-inflammatory drugs, oligosaccharides, parathyroid hormone and analogs, parathyroid hormone antagonists, prostaglandin antagonists, prostaglandins, scopolamine, analgesics, serotonergic and serotonin antagonists, sexual dysfunction, tissue plasminogen activator, tranquilizers, vaccines with or without carrier / adjuvant, vasodilators, tuberculin agents and other hypersensitivity agents.

[0049]

[0058] Microneedle assemblies can be particularly useful in the delivery of high molecular weight pharmaceutical compounds. The term "high molecular weight" generally refers to compounds having a molecular weight of about 1 kilodalton ("kDa") or greater, in some embodiments about 10 kDa or greater, in some embodiments about 20 kDa to about 250 kDa, and in some embodiments greater than about 40 kDa to about 150 kDa. Examples of such high molecular weight compounds include protein therapeutics, which refer to biologically active protein-based compounds including, but not limited to, natural, synthetic, and recombinant compounds, fusion proteins, peptides, chimeras, and the like, as well as compounds containing the 20 standard amino acids and / or synthetic amino acids.

[0050]

[0059] In a specific embodiment, the pharmaceutical compound can include a vaccine antigen, which, when introduced into the body, stimulates an immune response, e.g., T-cell activation and / or antibody production for protection against a virus. Vaccine antigens can include natural intact pathogens (e.g., bacteria or viruses), live attenuated viruses, or portions and / or subunits of pathogens, e.g., single viral or bacterial proteins. Vaccine antigens can also include cancer antigens or fragments thereof. In a specific embodiment, for example, the vaccine antigen can be a coronavirus vaccine antigen, e.g., SARS-CoV-1, SARS-CoV-2, MERS-CoV, etc., used for protection against coronaviruses. Such vaccine antigens can be derived from coronaviruses or other types of viruses.Specific examples of such coronavirus vaccine antigens include, for example, mRNA-1273 (a novel lipid nanoparticle (LNP)-encapsulated mRNA-based vaccine), BNT162 (LNP-encapsulated mRNA-based vaccine), Ad5-nCoV (recombinant adenovirus type 5 vector), ChAdOx1 (an adenovirus viral vector capable of producing the spike protein of SARS-CoV-2), bacTRL-spike (a live Bifidobacterium longum bacterium developed to deliver a plasmid containing synthetic DNA encoding the spike protein from SARS-CoV-2), BCG (prepared from live attenuated (reduced virulence) Mycobacterium bovis strain of Mycobacterium tuberculosis complex), AdCovid (an intranasal vaccine), NVX-CoV2373 (recombinant spike protein nanoparticles), SARS recombinant spike protein plus delta inulin (protein subunits), and SARS VLPs. These may include S protein and influenza M1 protein, DNA vaccine VRC-SRSDNA015-00-VP(DNA), replicating and / or non-replicating viral vectors expressing SARS-CoV S (e.g., VEEV replicon particles expressing SARS-CoV S or LV-SMENP (dendritic cells modified with a lentiviral vector expressing CoV-19 minigene SMENP and an immunomodulatory gene)), inactivated SARS-CoV-2 virus or viral vector, and live attenuated SARS-CoV-2 virus.

[0051]

[0060] Other suitable viral vaccine antigens may be derived from and / or used to protect against adenoviruses, arenaviruses, bunyaviruses, flaviviruses, hantaviruses, hepadnaviruses, herpesviruses, papillomaviruses, paramyxoviruses, parvoviruses, picornaviruses, poxviruses, orthomyxoviruses, retroviruses, reoviruses, rhabdoviruses, rotaviruses, sponge viruses, or togaviruses. Examples of such vaccine antigens may include peptides expressed by viruses such as CMV, EBV, flu, hepatitis A, B, or C, herpes simplex, HIV, influenza, Japanese encephalitis, measles, polio, rabies, respiratory syncytial virus, rubella, smallpox, varicella-zoster, West Nile, and / or Zika.CMV vaccine antigens include envelope glycoprotein B and CMVpp65; EBV vaccine antigens include EBV EBNAI, EBVP18, and EBVP23; hepatitis vaccine antigens include hepatitis B virus S protein, M protein, and L protein, hepatitis B virus pre-S antigen, HBCAG DELTA, HBV HBE, hepatitis C virus RNA, HCV NS3, and HCV NS4; herpes simplex vaccine antigens include immediate early proteins and glycoprotein D; and human immunodeficiency virus (HIV) vaccine antigens include gene products of the gag gene, pol gene, and env gene, such as HIV gp32, HIV gp41, HIV gp120, HIV gp160, HIV P17 / 24, HIV P24, HIV P55 GAG, HIV P66 POL, HIV TAT, HIV Human papillomavirus (HPV) viral antigens include L1 protein; influenza vaccine antigens include hemagglutinin and neuraminidase; Japanese encephalitis vaccine antigens include protein E, protein ME, protein ME-NS1, protein NS1, protein NS1-NS2A, and protein 80%E; malaria vaccine antigens include Plasmodium sporozoite surface protein (CSP), glutamate dehydrogenase, lactate dehydrogenase, and fructose-bisphosphate. The vaccine antigens include aldolase; measles vaccine antigens include measles virus fusion protein; rabies vaccine antigens include rabies glycoprotein and rabies nucleoprotein; respiratory syncytial vaccine antigens include RSV fusion protein and M2 protein; rotavirus vaccine antigens include VP7sc; rubella vaccine antigens include protein E1 and protein E2; varicella zoster vaccine antigens include gpI and gpII; and Zika vaccine antigens include premembrane, envelope (E), domain III, and nonstructural proteins 1 to 5 of the E protein.

[0052]

[0061] In the above embodiments, the microneedle assemblies of the present invention are generally used to deliver pharmaceutical compounds to a subject. In addition to and / or instead of drug delivery, the microneedle assemblies can also be used as sensors. For example, the microneedle assemblies can be used solely as sensors, or alternatively, to determine the dosage of pharmaceutical compounds to be delivered. However, the microneedles can be placed in contact with the skin of a subject and allowed to remain for a sufficient time to contact bodily fluids (e.g., blood) from the subject containing the analyte of interest. The fluid can be withdrawn and tested. Alternatively, a detection device can be coupled to the microneedle assembly, for example, at the exterior surface of the microneedle (e.g., a solid microneedle) or incorporated within the microneedle (e.g., a microneedle with a hollow channel), thereby allowing fluids to be easily brought into contact with the microneedle for testing. Various examples of such sensors are known in the art and are described, for example, in U.S. Patent Application Publication No. 2020 / 0015751 to Chickering et al. and U.S. Patent Application Publication No. 2013 / 0225956 to Huang et al., both of which are incorporated by reference in their entireties.

[0053]

[0062] Examples of target analytes that can be detected using sensors include, but are not limited to, pH or metal ions, proteins, nucleic acids (e.g., DNA, RNA, etc.), drugs, sugars (e.g., glucose), hormones (e.g., estradiol, estrone, progesterone, progestins, testosterone, androstenedione, etc.), carbohydrates, or other analytes of interest. Other conditions that can be determined include pH changes that may indicate disease, yeast infection, periodontal disease at mucosal surfaces, oxygen or carbon monoxide levels that indicate pulmonary dysfunction, and drug levels, e.g., legally prescribed levels of drugs such as Coumadin, other drugs such as nicotine, or illegal drugs such as cocaine. Further examples of analytes include indicators of disease, e.g., cancer-specific markers such as CEA and PSA, viral and bacterial antigens, and autoimmune indicators, e.g., antibodies to double-stranded DNA. Still other conditions include elevated carbon monoxide exposure, which may be from external sources or due to sleep apnea, excessive heat (important in the case of infants whose internal temperature control is not fully self-regulating), or fever. Other potentially suitable analytes include various pathogens, e.g., bacteria or viruses, and / or markers produced by such pathogens. As additional non-limiting examples, the sensor may contain antibodies capable of interacting with markers of a disease state, enzymes capable of detecting glucose, e.g., glucose oxidase or glucose 1-dehydrogenase. Analytes may be measured quantitatively or qualitatively, and / or the presence or absence of an analyte in the withdrawn fluid may be measured in some cases.

[0054]

[0063] The specific detection device used in combination with the microneedle assembly to detect an analyte may vary, as will be understood by those skilled in the art. For example, various non-limiting examples of sensor technologies include pressure or temperature measurements, spectroscopy such as infrared, absorption, fluorescence, UV / visible, FTIR (Fourier transform infrared spectroscopy), or Raman; piezoelectric measurements; immunoassays; electrical measurements, electrochemical measurements (e.g., ion-selective electrodes); magnetic measurements, optical measurements such as optical density measurements; circular dichroism; light scattering measurements such as quasi-electric light scattering; polarimetry; refractometry; chemical indicators such as dyes; or turbidity measurements, including nephelometry. In a particular embodiment, for example, the sensor can rely on electrochemical impedance for detection and therefore includes at least one working electrode, which is typically located on, within, or in fluid contact with the first microneedle. For example, the working electrode may be a metal (e.g., gold) deposited on the surface of the microneedle. The sensor can also include at least one reference electrode located on, within, or in fluid contact with the second microneedle, and / or at least one counter electrode located on, within, or in fluid contact with the third microneedle. For example, the reference and counter electrodes can also be fabricated from metals (e.g., gold) deposited on the surface of each microneedle. Impedance values ​​can be detected to assess the concentration of the analyte. If necessary, the sensitivity of the detection device can be enhanced by the accumulation of trace amounts of target molecules at the electrode. For specificity, the microneedle (e.g., working electrode) can be surface-modified with, for example, enzymes, antibodies, aptamers, single-chain variable fragments (ScFv), carbohydrates, and combinations thereof. In one embodiment, for example, the working electrode can be modified with glucose oxidase (GOx) for glucose detection.

[0055]

[0064] The present invention may be better understood with reference to the following examples. [Example]

[0056] Test Method

[0065] Melt viscosity: Melt viscosity (Pa·s) is measured at a shear rate of 400 s in accordance with ISO test 11443:2005. -1 or 1,000 seconds -1 and 15°C above the melting point (e.g., about 350°C) using a Dynisco LCR7001 capillary rheometer. The rheometer orifice (die) had a diameter of 1 mm, a length of 20 mm, an L / D ratio of 20.1, and an approach angle of 180°. The barrel diameter was 9.55 mm + 0.005 mm, and the rod length was 233.4 mm.

[0057]

[0066] Melting Point: Melting point ("Tm") can be measured by differential scanning calorimetry ("DSC") as known in the art. The melting point is the differential scanning calorimetry (DSC) peak melting point as determined by ISO test 11357-2:2013. Using DSC measurements performed on a TA Q2000 instrument under the DSC procedure, samples were heated and cooled at 20°C / min as specified in ISO standard 10350.

[0058]

[0067] Deflection Temperature Under Load ("DTUL"): Deflection under load temperature may be measured in accordance with ISO Test 75-2:2013 (technically equivalent to ASTM D648-07). More specifically, a test specimen having a length of 80 mm, a thickness of 10 mm, and a width of 4 mm may be subjected to an edgewise three-point bending test with a differential load (maximum outer fiber stress) of 1.8 megapascals. The test specimen may be lowered into a silicone oil bath with the temperature increased at 2°C / min until it bends 0.25 mm (0.32 mm per ISO Test 75-2:2013).

[0059]

[0068] Tensile modulus, tensile stress, and tensile elongation: Tensile properties may be tested in accordance with ISO test 527:2012 (technically equivalent to ASTM D638-14). Modulus and strength measurements may be performed on the same specimen sample, having a length of 80 mm, a thickness of 10 mm, and a width of 4 mm. The test temperature may be 23°C, and the test speed may be 1 mm / min or 5 mm / min.

[0060]

[0069] Flexural Modulus, Flexural Stress, and Flexural Elongation: Flexural properties may be tested in accordance with ISO Test 178:2010 (technically equivalent to ASTM D790-10). This test may be performed with a 64 mm support span. Tests may be performed on the center section of uncut ISO 3167 multipurpose bars. The test temperature may be 23°C, and the test speed may be 2 mm / min.

[0061]

[0070] Unnotched and Notched Charpy Impact Strength: Charpy properties may be tested in accordance with ISO test ISO 179-1:2010 (technically equivalent to ASTM D256-10, Method B). This test may be performed using a Type 1 specimen size (80 mm length, 10 mm width, and 4 mm thickness). When testing notched impact strength, the notch may be a Type A notch (0.25 mm base radius). Specimens may be cut from the center of a multipurpose bar using a single-tooth milling machine. The test temperature may be 23°C.

[0062] Example 1

[0071] Samples 1-5 and a control sample were formed for use in microneedle assemblies. The samples contained various combinations of liquid crystal polymer (LCP1 or LCP2), talc (TALC1 or TALC2), and / or polytetrafluoroethylene (PTFE). LCP1 was formed from 60% HBA, 4% HNA, 18% BP, and 18% TA. LCP2 was formed from 48% HNA, 2% HBA, 25% BP, and 25% TA. TALC1 had a median particle size of 4 micrometers, and TALC2 had a median particle size of 1 micrometer. Compounding was performed using an 18 mm single-screw extruder. Samples were injection molded into plaques (60 mm x 60 mm). The formulations are shown below.

[0063] [Table 1]

[0064]

[0072] Samples 1-5 were tested for thermal and mechanical properties, and the results are shown below.

[0065] [Table 2]

[0066] Example 2

[0073] Samples 6-10 were formed for use in microneedle assemblies. The samples contained various combinations of liquid crystal polymer (LCP2), talc (TALC1 or TALC2), and / or polytetrafluoroethylene (PTFE). The LCP was formed from 48% HNA, 2% HBA, 25% BP, and 25% TA. Compounding was performed using an 18mm single-screw extruder. The samples were injection molded into plaques (60mm x 60mm). The formulations are shown below.

[0067] [Table 3]

[0068]

[0074] Samples 6-10 were tested for thermal and mechanical properties, and the results are shown below.

[0069] [Table 4]

[0070]

[0075] These and other modifications and variations of the present invention may be practiced by those skilled in the art without departing from the spirit and scope of the present invention. In addition, it should be understood that aspects of the various embodiments may be substituted in whole or in part. Furthermore, those skilled in the art will recognize that the foregoing description is merely illustrative and is not intended to limit the invention, which is further described in the appended claims. The claims as filed are as follows: [Claim 1] A microneedle assembly comprising at least one microneedle extending outward from a support, the microneedle comprising a polymer composition including a thermoplastic polymer having a melting point of about 250°C or higher, the polymer composition being melted at a shear rate of 1,000 s -1 and the polymer composition exhibits a melt viscosity of about 100 Pa·s or less as measured in accordance with ISO test 11443:2014 at a temperature about 30°C above the melting point, and further exhibits a tensile elongation of about 5% or less as measured in accordance with ISO test 527:2012 at a temperature of about 23°C. [Claim 2] The polymer composition is subjected to a shear rate of 400 s -1 2. The microneedle assembly of claim 1, wherein the microneedle assembly exhibits a melt viscosity of about 150 Pa·s or less at a temperature about 30°C above the melting point, as measured in accordance with ISO test 11443:2014. [Claim 3] 10. The microneedle assembly of claim 1, wherein the polymer composition exhibits a deflection temperature under load of about 160°C or greater as measured in accordance with ISO test 75-2:2013 at a load of 1.8 megapascals. [Claim 4] 4. The microneedle assembly according to claim 3, wherein the ratio of the deflection temperature under load to the melting point is about 0.5 to about 1.00. [Claim 5] 10. The microneedle assembly of claim 1, wherein the polymer composition exhibits a tensile modulus of about 7,000 MPa or greater as measured in accordance with ISO test 527:2012 at a temperature of about 23°C. [Claim 6] The microneedle assembly of claim 1 , wherein the thermoplastic polymer comprises a polyarylene sulfide, a polyamide, a polyarylene ketone, a liquid crystal polymer, or a combination thereof. [Claim 7] The microneedle assembly of claim 1 , wherein the thermoplastic polymer comprises a liquid crystal polymer. [Claim 8] The microneedle assembly of claim 7, wherein the liquid crystal polymer contains repeating units derived from one or more aromatic dicarboxylic acids, one or more aromatic hydroxycarboxylic acids, or a combination thereof. [Claim 9] The microneedle assembly of claim 8 , wherein the aromatic hydroxycarboxylic acid comprises 4-hydroxybenzoic acid, 6-hydroxy-2-naphthoic acid, or a combination thereof. [Claim 10] The microneedle assembly of claim 8 , wherein the aromatic hydroxycarboxylic acid comprises terephthalic acid, isophthalic acid, 2,6-naphthalenedicarboxylic acid, or a combination thereof. [Claim 11] The microneedle assembly of claim 8, wherein the liquid crystal polymer further contains repeating units derived from one or more aromatic diols. [Claim 12] The microneedle assembly of claim 11 , wherein the aromatic diol comprises hydroquinone, 4,4′-biphenol, or a combination thereof. [Claim 13] The microneedle assembly of claim 7 , wherein the liquid crystal polymer is fully aromatic. [Claim 14] The microneedle assembly according to claim 7, wherein the liquid crystal polymer contains repeating units derived from naphthenic hydroxycarboxylic acids and / or naphthenic dicarboxylic acids in an amount of about 10 mol.% or more. [Claim 15] The microneedle assembly according to claim 7, wherein the liquid crystal polymer contains repeating units derived from 6-hydroxy-2-naphthoic acid in an amount of about 30 mol.% or more. [Claim 16] The microneedle assembly of claim 1 , wherein the thermoplastic polymer comprises about 30 wt.% to about 99 wt.% of the polymer composition. [Claim 17] The microneedle assembly of claim 1 , wherein the polymer composition further comprises an inorganic filler. [Claim 18] The microneedle assembly of claim 17, wherein the inorganic filler is in the form of particles. [Claim 19] 20. The microneedle assembly of claim 18, wherein the particles have a median diameter of about 10 micrometers or less. [Claim 20] 19. The microneedle assembly of claim 18, wherein the particles have a median diameter of about 0.6 to about 2.5 micrometers. [Claim 21] The microneedle assembly of claim 18 , wherein the particles comprise talc. [Claim 22] The microneedle assembly of claim 1 , wherein the polymer composition further comprises a tribological additive. [Claim 23] 23. The microneedle assembly of claim 22, wherein the tribological additive comprises a fluoropolymer. [Claim 24] The microneedle assembly of claim 1 , wherein the assembly comprises a plurality of microneedles arranged in an array on the support. [Claim 25] The microneedle assembly of claim 1 , wherein the microneedle has a tip and a base. [Claim 26] 26. The microneedle assembly of claim 25, wherein the tip has a length of about 5 to about 500 nanometers and a width of about 0.5 to about 5 micrometers. [Claim 27] 26. The microneedle assembly of claim 25, wherein the base has a length of about 10 to about 1,000 nanometers and a thickness of about 5 to about 100 micrometers. [Claim 28] 10. The microneedle assembly of claim 1, wherein the microneedles have a height of about 10 to about 1,000 nanometers. [Claim 29] The microneedle assembly of claim 1 , wherein the assembly is configured to deliver a pharmaceutical compound. [Claim 30] 30. The microneedle assembly of claim 29, wherein the pharmaceutical compound comprises a protein-based compound, a polynucleotide drug, a vaccine, a small molecule drug, an anti-infective agent, a hormone, a drug that regulates myocardial activity or blood flow, or a combination thereof. [Claim 31] 30. The microneedle assembly of claim 29, wherein the drug compound has a molecular weight of about 1 kDa or greater. [Claim 32] 30. The microneedle assembly of claim 29, wherein the pharmaceutical compound comprises a viral vaccine antigen. [Claim 33] The microneedle assembly of claim 32 , wherein the vaccine antigen is a coronavirus vaccine antigen. [Claim 34] 34. The microneedle assembly of claim 33, wherein the vaccine antigen is a viral vector, a live attenuated virus, or an inactivated virus. [Claim 35] 34. The microneedle assembly of claim 33, wherein the coronavirus vaccine antigen comprises mRNA-1273, BNT162, Ad5-nCoV, ChAdOx1, bacTRL-spike, BCG, AdCovid, NVX-CoV2373, LV-SMENP, SARS recombinant spike protein plus delta inulin, SARS VLPs S protein and influenza M1 protein, DNA vaccine VRC-SRSDNA015-00-VP, VEEV replicon particles expressing SARS-CoV S, inactivated SARS-CoV-2 virus or viral vector, live attenuated SARS-CoV-2 virus, or a combination thereof. [Claim 36] 33. The microneedle assembly of claim 32, wherein the viral vaccine antigen is derived from and / or is used to prophylactically protect against an adenovirus, arenavirus, bunyaviridae, flavivirus, hantavirus, hepadnavirus, herpesvirus, papillomavirus, paramyxovirus, parvovirus, picornavirus, poxvirus, orthomyxovirus, retrovirus, reovirus, rhabdovirus, rotavirus, sponge virus, togavirus, or a combination thereof. [Claim 37] 30. The microneedle assembly of claim 29, wherein the pharmaceutical compound is applied to the surface of the microneedle. [Claim 38] 38. The microneedle assembly of claim 37, wherein the microneedle is solid. [Claim 39] 30. The microneedle assembly of claim 29, wherein the microneedle contains at least one channel through which the drug compound can flow. [Claim 40] 40. A transdermal delivery device comprising the microneedle assembly of claim 39 and a drug reservoir in fluid communication with the channel, wherein the drug compound is disposed within the reservoir. [Claim 41] 41. The transdermal delivery device of claim 40, further comprising an additional reservoir containing an excipient. [Claim 42] 1. A method for delivering a pharmaceutical compound to a subject, said method comprising: placing the transdermal delivery device of claim 1 adjacent to the skin of a subject; penetrating the stratum corneum of the skin with the microneedles; and transporting the drug compound from the microneedles and across the stratum corneum. A method comprising: [Claim 43] 43. The method of claim 42, wherein the drug compound has a molecular weight of about 1 kDa or greater. [Claim 44] 43. The method of claim 42, wherein the pharmaceutical compound comprises a viral vaccine antigen. [Claim 45] 45. The method of claim 44, wherein the viral vaccine antigen comprises a coronavirus vaccine antigen. [Claim 46] 46. ​​The method of claim 45, wherein the coronavirus vaccine antigen comprises mRNA-1273, BNT162, Ad5-nCoV, ChAdOx1, bacTRL-spike, BCG, AdCovid, NVX-CoV2373, LV-SMENP, SARS recombinant spike protein plus delta inulin, SARS VLPs S protein and influenza M1 protein, DNA vaccine VRC-SRSDNA015-00-VP, VEEV replicon particles expressing SARS-CoV S, inactivated SARS-CoV-2 virus or viral vector, live attenuated SARS-CoV-2 virus, or a combination thereof. [Claim 47] 1. A method for detecting a target analyte in a subject, the method comprising: placing the transdermal delivery device of claim 1 adjacent to the skin of a subject; piercing the stratum corneum of the skin with the microneedles so that the microneedles contact the subject's bodily fluid; and detecting the presence of the analyte in the bodily fluid. A method comprising: [Claim 48] 48. The method of claim 47, wherein the bodily fluid is blood. [Claim 49] 48. The method of claim 47, wherein the analyte is detected at the surface of the microneedle. [Claim 50] 50. The method of claim 49, wherein the microneedles are solid. [Claim 51] 48. The method of claim 47, wherein the analyte is glucose. [Claim 52] 48. The method of claim 47, wherein the bodily fluid is withdrawn from the subject through the microneedles.

Claims

1. A microneedle assembly comprising at least one microneedle extending outward from a support, the microneedle comprising a polymer composition including a thermoplastic polymer having a melting point of about 300°C or higher, the polymer composition being melted at a shear rate of 1,000 s -1 and exhibiting a melt viscosity of about 100 Pa s or less, measured in accordance with ISO test 11443:2014, at a temperature about 30°C above the melting point; a ratio of the deflection temperature under load to the melting point, as measured in accordance with ISO test 75-2:2013 at a load of 1.8 megapascals, of about 0.75 to about 1; The microneedle assembly further wherein the polymer composition exhibits a tensile elongation of about 5% or less at a temperature of about 23°C as measured in accordance with ISO test 527:2012.

2. The polymer composition is subjected to a shear rate of 400 s -1 2. The microneedle assembly of claim 1, wherein the microneedle assembly exhibits a melt viscosity of about 150 Pa·s or less at a temperature about 30°C above the melting point, as measured in accordance with ISO test 11443:2014.

3. 10. The microneedle assembly of claim 1, wherein the polymer composition exhibits a deflection temperature under load of about 160°C or greater as measured in accordance with ISO test 75-2:2013 at a load of 1.8 megapascals.

4. The microneedle assembly of claim 3 , wherein the ratio of the deflection temperature under load to the melting point is from about 0.75 to about 0.

95.

5. 10. The microneedle assembly of claim 1, wherein the polymer composition exhibits a tensile modulus of about 7,000 MPa or greater as measured in accordance with ISO test 527:2012 at a temperature of about 23°C.

6. The microneedle assembly of claim 1 , wherein the thermoplastic polymer comprises a polyarylene sulfide, a polyamide, a polyarylene ketone, a liquid crystal polymer, or a combination thereof.

7. The microneedle assembly of claim 1 , wherein the thermoplastic polymer comprises a liquid crystal polymer.

8. The microneedle assembly of claim 7 , wherein the liquid crystal polymer contains repeating units derived from one or more aromatic dicarboxylic acids, one or more aromatic hydroxycarboxylic acids, or a combination thereof.

9. The microneedle assembly of claim 8, wherein the aromatic hydroxycarboxylic acid comprises 4-hydroxybenzoic acid, 6-hydroxy-2-naphthoic acid, or a combination thereof.

10. The microneedle assembly of claim 8 , wherein the aromatic dicarboxylic acid comprises terephthalic acid, isophthalic acid, 2,6-naphthalenedicarboxylic acid, or a combination thereof.

11. The microneedle assembly of claim 8 , wherein the liquid crystal polymer further contains repeat units derived from one or more aromatic diols.

12. The microneedle assembly of claim 11 , wherein the aromatic diol comprises hydroquinone, 4,4′-biphenol, or a combination thereof.

13. The microneedle assembly of claim 7 , wherein the liquid crystal polymer is fully aromatic.

14. The microneedle assembly according to claim 7, wherein the liquid crystal polymer contains repeating units derived from naphthenic hydroxycarboxylic acid and / or naphthenic dicarboxylic acid in an amount of about 10 mol. % or more.

15. The microneedle assembly according to claim 7, wherein the liquid crystal polymer contains repeating units derived from 6-hydroxy-2-naphthoic acid in an amount of about 30 mol % or more.

16. The microneedle assembly of claim 1 , wherein the thermoplastic polymer comprises from about 30 wt. % to about 99 wt. % of the polymer composition.

17. The microneedle assembly of claim 1 , wherein the polymer composition further comprises an inorganic filler.

18. The microneedle assembly of claim 17 , wherein the inorganic filler is in the form of particles.

19. The microneedle assembly of claim 18 , wherein the particles have a median diameter of about 10 micrometers or less.

20. The microneedle assembly of claim 18, wherein the particles have a median diameter of about 0.6 to about 2.5 micrometers.

21. The microneedle assembly of claim 18 , wherein the particles comprise talc.

22. The microneedle assembly of claim 1 , wherein the polymer composition further comprises a tribological additive.

23. The microneedle assembly of claim 22 , wherein the tribological additive comprises a fluoropolymer.

24. The microneedle assembly of claim 1 , wherein the assembly comprises a plurality of microneedles arranged in an array on the support.

25. The microneedle assembly of claim 1 , wherein the microneedle has a tip and a base.

26. 26. The microneedle assembly of claim 25, wherein the tip has a length of about 5 to about 500 micrometers and a width of about 0.5 to about 5 micrometers.

27. 26. The microneedle assembly of claim 25, wherein the base has a length of about 10 to about 1,000 micrometers and a thickness of about 5 to about 100 micrometers.

28. The microneedle assembly of claim 1 , wherein the microneedles have a height of about 10 to about 1,000 micrometers.

29. The microneedle assembly of claim 1 , wherein the assembly is configured to deliver a pharmaceutical compound.

30. 30. The microneedle assembly of claim 29, wherein the pharmaceutical compound comprises a protein-based compound, a polynucleotide agent, a vaccine, a small molecule drug, an anti-infective agent, a hormone, a drug that regulates myocardial activity or blood flow, or a combination thereof.

31. 30. The microneedle assembly of claim 29, wherein the drug compound has a molecular weight of about 1 kDa or greater.

32. The microneedle assembly of claim 29 , wherein the pharmaceutical compound comprises a viral vaccine antigen.

33. The microneedle assembly of claim 32 , wherein the vaccine antigen is a coronavirus vaccine antigen.

34. The microneedle assembly of claim 33, wherein the vaccine antigen is a viral vector, a live attenuated virus, or an inactivated virus.

35. 34. The microneedle assembly of claim 33, wherein the coronavirus vaccine antigen comprises mRNA-1273, BNT162, Ad5-nCoV, ChAdOx1, bacTRL-spike, BCG, AdCovid, NVX-CoV2373, LV-SMENP, SARS recombinant spike protein plus delta inulin, SARS VLPs S protein and influenza M1 protein, DNA vaccine VRC-SRSDNA015-00-VP, VEEV replicon particles expressing SARS-CoV S, inactivated SARS-CoV-2 virus or viral vector, live attenuated SARS-CoV-2 virus, or a combination thereof.

36. The viral vaccine antigen is selected from the group consisting of adenovirus, arenavirus, bunyavirus, flavivirus, hantavirus, hepadnavirus, herpesvirus, papillomavirus, paramyxovirus, parvovirus, picornavirus, poxvirus, orthomyxovirus, retrovirus, reovirus, rhabdovirus, rotavirus, 33. The microneedle assembly of claim 32, derived from and / or used in prophylaxis against a sponge virus, a togavirus, or a combination thereof.

37. 30. The microneedle assembly of claim 29, wherein the pharmaceutical compound is applied to the surface of the microneedle.

38. 38. The microneedle assembly of claim 37, wherein the microneedle is solid.

39. 30. The microneedle assembly of claim 29, wherein the microneedle contains at least one channel through which the drug compound can flow.

40. 40. A transdermal delivery device comprising the microneedle assembly of claim 39 and a drug reservoir in fluid communication with the channel, wherein the drug compound is disposed within the reservoir.

41. 41. The transdermal delivery device of claim 40, further comprising an additional reservoir containing an excipient.

42. The transdermal delivery device of claim 40, wherein the transdermal delivery device is for use in a method for delivering a pharmaceutical compound to a subject, the method comprising: placing the transdermal delivery device adjacent to the skin of a subject; penetrating the stratum corneum of the skin with the microneedles; and transporting the drug compound from the microneedles and across the stratum corneum. The transdermal delivery device comprising:

43. 43. The transdermal delivery device of claim 42, wherein the drug compound has a molecular weight of about 1 kDa or greater.

44. 43. The transdermal delivery device of claim 42, wherein the pharmaceutical compound comprises a viral vaccine antigen.

45. 45. The transdermal delivery device of claim 44, wherein the viral vaccine antigen comprises a coronavirus vaccine antigen.

46. 46. ​​The transdermal delivery device of claim 45, wherein the coronavirus vaccine antigen comprises mRNA-1273, BNT162, Ad5-nCoV, ChAdOxl, bacTRL-spike, BCG, AdCovid, NVX-CoV2373, LV-SMENP, SARS recombinant spike protein plus delta inulin, SARS VLPs S protein and influenza M1 protein, DNA vaccine VRC-SRSDNA015-00-VP, VEEV replicon particles expressing SARS-CoV S, inactivated SARS-CoV-2 virus or viral vector, live attenuated SARS-CoV-2 virus, or a combination thereof.

47. The transdermal delivery device of claim 40, wherein the transdermal delivery device is for use in a method for detecting a target analyte in a subject, the method comprising: placing the transdermal delivery device adjacent to the skin of a subject; piercing the stratum corneum of the skin with the microneedles so that the microneedles contact the subject's bodily fluids; and detecting the presence of the analyte in the bodily fluid. A transdermal delivery device comprising:

48. 48. The transdermal delivery device of claim 47, wherein the bodily fluid is blood.

49. 48. The transdermal delivery device of claim 47, wherein the analyte is detected at the surface of the microneedle.

50. 50. The transdermal delivery device of claim 49, wherein the microneedles are solid.

51. 48. The transdermal delivery device of claim 47, wherein the analyte is glucose.

52. 48. The transdermal delivery device of claim 47, wherein the bodily fluid is withdrawn from the subject through the microneedles.

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