Microneedle assembly
The microneedle assembly with a mold and applicator design addresses safe storage and contamination issues, facilitating uniform microneedle insertion for effective drug delivery.
Patent Information
- Application Number
- JP2025187338
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-12-07
- Filing Date
- 2025-11-06
- Publication Date
- 2026-02-03
AI Technical Summary
Existing microneedle delivery systems face issues with safe storage, contamination during use, and uneven insertion due to improper application methods, leading to incomplete drug delivery and potential detachment of the microneedle array.
A microneedle assembly comprising a mold with recessed portions for microneedle formation and a detachable applicator with pressure protrusions and adhesive portions, ensuring uniform pressure application and preventing contamination.
The assembly allows for safe storage and convenient application of microneedles, ensuring uniform penetration and minimizing contamination, thereby enhancing drug delivery efficacy.
Smart Images

Figure 2026016768000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a microneedle assembly, and more particularly to a microneedle assembly that allows for safe storage of microneedles and convenient application to the skin while preventing contamination of the microneedles during use. [Background technology]
[0002] Drug delivery through dissolving microneedles is greatly affected not only by direct mechanochemical properties such as the shape, physical properties, and solubility of the microneedles, but also by the application method such as the administration (insertion) state and administration time. Therefore, if an appropriate application method is not used for administration, not only may individual needles not be able to be properly inserted into the dermis layer, but a fixed amount of drug may not be delivered.
[0003] Specifically, when an inexperienced user applies arbitrary pressure to insert microneedles, the pressure required to penetrate the skin may be insufficient, and the dosage form of each needle may not be fully inserted into the dermis layer. Furthermore, if pressure is applied unevenly across the entire area of the microneedle array or if shear force is applied, uneven insertion may occur. Even if the entire dosage form is fully inserted with strong pressure, if pressure is not applied continuously, the aspect ratio of the individual microneedles may decrease due to dissolution of the polymer, and the microneedle array may become detached due to the elasticity of the skin itself and external movement.
[0004] Furthermore, when a user removes a microneedle patch from a storage container, attaches it to the skin, and then rubs or presses the patch to insert the microneedles into the skin, there are problems such as the microneedles not being inserted perpendicularly into the skin and becoming bent, and the microneedles being contaminated by the user's fingers.
[0005] To solve the above problems, a method is required to safely store microneedles, prevent contamination during use, and minimize administration deviations by microneedle users.
[0006] Prior art documents
[0007] Korean Patent Registration No. 10-1033514 (2011.04.29) Summary of the Invention [Problem to be solved by the invention]
[0008] The present invention is intended to solve the problems of the prior art described above, and an object of the present invention is to provide a microneedle assembly that can be conveniently applied to the skin while safely storing the microneedle and preventing contamination of the microneedle during use. [Means for solving the problem]
[0009] In order to achieve the above object, one aspect of the present invention is a mold having one or more recessed portions on an upper surface and microneedles molded by injection into the recessed portions; and
[0010] an applicator detachably coupled to an upper surface of the mold;
[0011] The applicator is formed in a plate shape and includes a first surface that protects the microneedle from exposure during packaging, and a second surface that has an adhesive portion that is attached to the microneedle during use to separate the microneedle from the mold, thereby providing a microneedle assembly.
[0012] In one embodiment of the present invention, the applicator may be a microneedle assembly characterized in that it further includes one or more pressure protrusions provided on the second surface at positions corresponding to the microneedles and having one end formed flat, and the adhesive portion is formed on the one end of the pressure protrusion.
[0013] In one embodiment of the present invention, the microneedle assembly may be characterized in that the mold further includes one or more guide protrusions formed outside the area where the microneedles are formed, and the applicator further includes one or more guide holes formed outside the area where the pressure protrusions are formed and into which the guide protrusions are inserted, and the guide protrusions and the guide holes are configured to connect the mold and the applicator during packaging and to guide the adhesive portion from moving toward the microneedles during use.
[0014] In one embodiment of the present invention, the microneedle assembly may further include a protective cover that is detachably coupled to the second surface of the applicator during packaging to temporarily close the second surface.
[0015] In one embodiment of the present invention, the applicator may be a microneedle assembly made of a rigid material.
[0016] In one embodiment of the present invention, the microneedle assembly may be characterized in that the recessed portion of the mold is a pointed recessed portion.
[0017] In one embodiment of the present invention, the microneedles may be a microneedle assembly characterized in that they exist independently of each other.
[0018] In one embodiment of the present invention, the mold may be a primary packaging container that is completely attached to the microneedle and is removed just before the microneedle is applied to a human body, which may be a microneedle assembly.
[0019] In one embodiment of the present invention, the microneedle assembly may be characterized in that the guide hole is formed penetrating from the first surface to the second surface of the applicator. [Effects of the Invention]
[0020] According to one aspect of the present invention, the microneedle assembly can be safely stored when packaged so that the microneedles are not exposed to the outside, and when in use, the microneedles can be conveniently applied to the skin using an applicator.
[0021] In addition, the applicator is provided with pressure protrusions and adhesive portions at positions corresponding to the positions of the microneedles formed on the mold, making it easier to separate the microneedles from the mold and allowing the microneedles to penetrate the skin with a uniform pressure force throughout.
[0022] The applicator can ensure the depth of skin insertion of the microneedles through the height of the pressure protrusions.
[0023] The effects of the present invention are not limited to the effects described above, but should be understood to include all effects that can be inferred from the configuration of the invention described in the detailed description of the present invention or the claims. [Brief explanation of the drawings]
[0024] [Figure 1] 1(a) and 1(b) are a perspective view and a cross-sectional view taken along line AA', respectively, of a microneedle assembly according to one embodiment of the present invention.
[0025] [Figure 2] 1(a) and 1(b) are a perspective view and a cross-sectional view along the line BB' of a microneedle assembly in an exploded state according to one embodiment of the present invention.
[0026] [Figure 3] 1(a) and 1(b) are a perspective view and a cross-sectional view along CC', respectively, of a mold and an applicator before separation of a microneedle according to one embodiment of the present invention.
[0027] [Figure 4]1(a) and 1(b) are a perspective view and a DD' cross-sectional view, respectively, of a mold and an applicator when a microneedle is attached according to one embodiment of the present invention.
[0028] [Figure 5] 1(a) and 1(b) are a perspective view and an E-E′ cross-sectional view, respectively, of a mold and an applicator after separation of a microneedle according to one embodiment of the present invention.
[0029] [Figure 6] 1(a) and 1(b) are diagrams showing the state of use before and after application of a microneedle to a human body using an applicator according to one embodiment of the present invention, respectively. DETAILED DESCRIPTION OF THE INVENTION
[0030] The present invention will be described below with reference to the accompanying drawings. However, the present invention may be embodied in various different forms and is not limited to the embodiments described herein. In order to clearly illustrate the present invention in the drawings, parts that are not relevant to the description are omitted, and similar parts are designated by similar reference numerals throughout the specification.
[0031] Throughout this specification, when a part is said to be "connected" to another part, this includes not only "directly connected" but also "indirectly connected" through another member in between. Furthermore, when a part is said to "include" some component, this does not mean that it excludes other components, but that it may further include other components, unless otherwise specified.
[0032] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings.
[0033] Figures 1(a) and (b) are respectively a perspective view and an AA' cross-sectional view of a microneedle assembly according to one embodiment of the present invention; Figures 2(a) and (b) are respectively a perspective view and a BB' cross-sectional view of a disassembled microneedle assembly according to one embodiment of the present invention; Figures 3(a) and (b) are respectively a perspective view and a CC' cross-sectional view of a mold and applicator before microneedle separation according to one embodiment of the present invention; Figures 4(a) and (b) are respectively a perspective view and a DD' cross-sectional view of a mold and applicator when microneedles are attached according to one embodiment of the present invention; Figures 5(a) and (b) are respectively a perspective view and an EE' cross-sectional view of a mold and applicator after microneedle separation according to one embodiment of the present invention; and Figures 6(a) and (b) are respectively diagrams of the use state showing a microneedle before and after application to a human body using an applicator according to one embodiment of the present invention.
[0034] Referring to FIGS. 1 to 6, a microneedle assembly 1000 of the present invention includes a mold 100, an applicator 200 and a protective cover 300.
[0035] More specifically, the microneedle assembly 1000 includes a mold 100 having one or more recessed portions 110 on its upper surface and microneedles 120 injected into the recessed portions 110 to form the mold 100, and an applicator 200 detachably coupled to the upper surface of the mold 100. The applicator 200 is formed in a plate shape and includes a first surface 210 that protects the microneedles 120 from exposure during packaging, and a second surface 220 on which an adhesive portion 250 is formed that is attached to the microneedles 120 during use to separate the microneedles 120 from the mold 100.
[0036] The mold 100 may include one or more recesses 110 on its upper surface and may have a flat lower surface. The recesses 110 act as a mold for the microneedles 120 and may have the same shape as the microneedles 120.
[0037] In this case, the recessed portion 110 may be a pointed recessed portion. As used herein, the term "pointed recessed portion" refers to a recessed portion whose cross-sectional area decreases from the flat upper surface to the pointed lower surface, similar to the shape of a typical microneedle 120. The terms "upper surface" and / or "lower surface" used herein are intended to specify the relative positional relationship of each component, but do not specify their absolute positions.
[0038] The engraved portions 110 may be arranged in an array independently of each other on the upper surface of the mold 100 without being connected to each other. Accordingly, the microneedles 120 injected into and molded in the engraved portions 110 may also be arranged in an array independently of each other without being connected to each other. The microneedles 120 may be separated from the engraved portions 110 of the mold 100 by the adhesive portion 250 of the applicator 200.
[0039] The microneedles 120 may be formed by molding a raw material containing at least one selected from the group consisting of non-metallic materials, biodegradable polymers, and pharmacological ingredients in the recessed portion 110 of the mold 100.
[0040] According to one embodiment, the mold 100 may be made of a rigid material. The mold 100 may be made of any suitable material, but is preferably made of a plastic resin.
[0041] More specifically, the mold 100 may be made of at least one selected from the group consisting of polyethylene terephthalate (PET), polyvinyl chloride (PVC), and polypropylene (PP), but is not limited thereto.
[0042] Conventional silicone materials are expensive, making them inconvenient to use as disposable materials and requiring reuse, but in this case, it is difficult to verify the cleaning validation (CV) of the micro-indented area where the microneedles are molded and the silicone permeability of cleaning solvents.In addition, silicone materials are physicochemically decomposed and have a relatively weak hardness, which makes it difficult to verify the generation of debris during the manufacturing or cleaning process and the lifespan of the silicone mold.
[0043] In addition, in the mold manufacturing method using silicone material, silicone cannot protect against external air or foreign substances, so the dried microneedles must be repackaged after being removed from the silicone mold. In this process, since it is practically difficult to individually and tightly pack the microneedles due to their minute size, the microneedles must be packaged in a pouch exposed to the air or in a cap-like container.
[0044] The closure and stability of the packaging container are factors that have a significant impact on maintaining the quality of the internal medicine, so it is necessary to completely protect the internal microneedle medicine from physical and chemical deformation and deterioration through simulation of the final product transportation conditions and mechanical testing.
[0045] The mold 100 of the present invention can function as a primary packaging container that is completely attached to the microneedle 120, eliminating the need to remove and repackage the microneedle 120 formed in the recessed portion 110, and can be configured in a form that can be removed before use. This simplifies the packaging process for the microneedles and makes it easier to maintain the quality of the microneedles.
[0046] The applicator 200 is configured to separate the microneedles 120 from the mold 100 and penetrate the separated microneedles 120 into human skin. The applicator 200 may be formed in a plate shape and may include a first surface 210 and a second surface 220.
[0047] The first surface 210 covers the upper surface of the mold 100 during packaging to protect the microneedles 120 from exposure to the outside.
[0048] The second surface 220 has one or more adhesive portions 250 formed at positions corresponding to the positions of the microneedles 120. The adhesive portions 250 are configured to adhere the microneedles 120 and separate the microneedles 120 from the mold 100 during use.
[0049] The applicator 200 may be made of a rigid material. The applicator 200 may be made of any suitable material, but is preferably made of a plastic resin.
[0050] More specifically, the applicator 200 may be made of at least one selected from the group consisting of polyethylene terephthalate (PET), polyvinyl chloride (PVC), and polypropylene (PP), but is not limited thereto.
[0051] According to an embodiment, the applicator 200 may further include one or more pressure protrusions 240 provided on the second surface 220 at positions corresponding to the microneedles 120 and having one flattened end.
[0052] The pressure protrusion 240 may be formed in a cylindrical shape, but is not limited thereto, and may be formed in a polygonal prism shape such as a triangular prism or a quadrangular prism.
[0053] One pressure protrusion 240 may be formed on the second surface 220 at a position corresponding to the position of one microneedle 120 , and the adhesive part 250 may be formed on one end of the pressure protrusion 240 .
[0054] That is, the applicator 200 is provided with pressure protrusions 240 at positions corresponding to the positions of the microneedles 120, which allows the microneedles 120 to be more easily separated from the mold 100 and allows the microneedle 120 array to penetrate the skin with a uniform pressure force across the entire surface.
[0055] In addition, the applicator 200 can ensure the depth of the microneedles 120 inserted into the skin through the height of the pressure protrusions 240 .
[0056] The applicator 200 may be releasably coupled to the top surface of the mold 100 .
[0057] According to one embodiment, the mold 100 may further include one or more guide protrusions 130 formed on the upper surface outside the area where the microneedles 120 are formed. Also, the applicator 200 may further include one or more guide holes 230 formed outside the area where the pressure protrusions 240 are formed, into which the guide protrusions 130 are inserted. In this case, the guide protrusions 130 and the guide holes 230 are configured to connect the mold 100 and the applicator 200 during packaging, and to guide the adhesive portion 250 to move toward the microneedles 120 during use.
[0058] In other words, when the first surface 210 of the applicator 200 is arranged to cover the upper surface of the mold 100 during packaging, the guide protrusions 130 are inserted into the guide holes 230, thereby allowing the mold 100 and the applicator 200 to be coupled together. Also, when the adhesive portions 250 formed on the pressure protrusions 240 of the applicator 200 approach to attach the microneedles 120 during use, the guide protrusions 130 are guided into the guide holes 230, allowing the microneedles 120 to be easily attached.
[0059] According to an embodiment, the guide protrusion 130 may be formed in a cylindrical shape, but is not limited thereto and may be formed in a polygonal prism shape such as a triangular prism, a quadrangular prism, etc. Also, the guide hole 230 may be formed in a shape corresponding to the guide protrusion 130.
[0060] Meanwhile, the guide hole 230 may be formed penetrating from the first surface 210 to the second surface 220 of the applicator 200. Accordingly, the guide protrusions 130 may be inserted into the guide hole 230 from both sides of the first surface 210 and the second surface 220 of the applicator 200, i.e., from both sides of the applicator 200.
[0061] If the adhesive strength between the side of the microneedle 120 and the recessed portion 110 is greater than the adhesive strength between the adhesive portion 250 and the top surface of the microneedle 120, when the microneedle 120 is separated from the recessed portion 110 for skin application, the microneedle 120 will not be completely separated from the recessed portion 110, and the required amount of active ingredient contained in the microneedle 120 will not be administered.
[0062] Therefore, the adhesive portion 250 can be formed and the resulting adhesive force adjusted so that the adhesive force between the adhesive portion 250 and the top surface of the microneedle 120 is greater than the bonding force between the side surface of the microneedle 120 and the indented portion 110, or the indented portion 110 that comes into contact with the microneedle 120 can be coated with a certain material or surface-treated to give it a certain level of roughness, thereby reducing the bonding force between the side surface of the microneedle 120 and the indented portion 110, making it possible to easily separate the microneedle 120 from the indented portion 110.
[0063] According to one embodiment, the microneedle assembly 1000 may further include a protective cover 300 that is detachably coupled to the second surface 220 of the applicator 200 during packaging to temporarily close the second surface 220.
[0064] The protective cover 300 may have an open bottom and may have an inner depth greater than the height of the pressure protrusions 240 so as not to come into contact with the pressure protrusions 240 of the applicator 200 during packaging. The protective cover 300 may also be joined or coupled to the applicator 200 through its edges.
[0065] Meanwhile, referring to FIGS. 1 to 6, the microneedle assembly 1000 is used as follows.
[0066] First, in order to apply the microneedle 120 to the user's skin, the protective cover 300 temporarily attached or bonded to cover the applicator 200 is removed to expose the applicator 200 provided on the upper side of the mold 100 to the outside.
[0067] Thereafter, the applicator 200, which is coupled to the mold 100 so as to cover the upper surface of the mold 100, is separated from the mold 100. That is, a force is applied to move the applicator 200 away from the mold 100, separating the guide hole 230 from the guide protrusion 130.
[0068] Thereafter, the applicator 200 is turned over and placed so that the pressure projections 240 and the adhesive portions 250 formed on the pressure projections 240 face the mold 100 in which the microneedles 120 are formed.
[0069] Thereafter, the applicator 200 is moved toward the mold 100 so that the adhesive portion 250 and the microneedles 120 are attached. At this time, the movement of the applicator 200 can be guided by the guide hole 230 and the guide protrusion 130.
[0070] Thereafter, the microneedles 120 attached to the adhesive portion 250 are separated from the engraved portion 110 of the mold 100, and then the first surface 210 of the applicator 200 is pressed to penetrate the microneedles 120 into the skin. At this time, the applicator 200 is made of a hard material and has pressure protrusions 240, so that the microneedles 120 can penetrate the skin with uniform pressure over the entire area.
[0071] The above description of the present invention is for illustrative purposes only, and those skilled in the art will understand that the present invention can be easily modified into other specific forms without changing the technical spirit or essential features of the present invention. Therefore, the above-described embodiments should be understood to be illustrative in all respects and not limiting. For example, each component described as a single component may be implemented in a distributed form, and similarly, each component described as a distributed component may be implemented in a combined form.
[0072] The scope of the present invention is defined by the claims that follow, and all modifications and variations that fall within the meaning and scope of the claims and their equivalents should be construed as being included within the scope of the present invention.
[0073] Different Aspects of the Disclosure [Item 1] a mold including one or more recesses corresponding to the shape of the microneedles; an array of microneedles formed by and contained in the mold; an applicator detachably coupled to an upper surface of the mold; the mold is a first part of a packaging container that contains and protects the array of microneedles; With the array of microneedles housed in the mold, an upper portion of the array of microneedles is exposed; the applicator is a second part of a packaging container that covers and protects the exposed top of the array of microneedles when bonded to the top surface of the mold; The applicator includes a pressure surface that contacts the array of microneedles and presses the array of microneedles against the subject's skin. [Item 2] Item 2. The microneedle assembly of item 1, wherein an adhesive portion is formed on the pressure surface of the applicator so that the array of microneedles can be attached and separated from the mold. [Item 3] the applicator includes pressure protrusions formed on the pressure surface at positions corresponding to the array of microneedles; 3. The microneedle assembly according to item 2, wherein the adhesive portion is formed on the surface of the pressure projection. [Item 4] the mold includes a guide protrusion that forms a connection with the applicator; Item 4. The microneedle assembly according to item 3, wherein the applicator includes a guide hole into which the guide protrusion is inserted. [Explanation of symbols]
[0074] 1000: Microneedle assembly 100: Mold 110: Intaglio part 120: Microneedle 130: Guide protrusion 200: Applicator 210: 1st page 220: 2nd side 230: Guide hole 240: Pressure protrusion 250:Adhesive part 300: Protective cover
Claims
1. a mold including one or more recesses corresponding to the shape of the microneedles; an array of microneedles formed by and contained in the mold; an applicator detachably coupled to the mold; the mold being a first part of a packaging container that contains and protects the array of microneedles; the applicator is a second portion of the packaging container that, when coupled to the mold, covers the mold such that the array of microneedles is located between the applicator and the mold; the applicator separates the array of microneedles from the mold and presses the array of microneedles against the subject's skin; A microneedle assembly, wherein the applicator is made of a rigid material that allows uniform pressure to be applied over the entire area of the array of microneedles.
2. The microneedle assembly of claim 1 , wherein the applicator is made of a plastic resin.
3. An adhesive portion is formed on the applicator, The microneedle assembly of claim 2 , wherein the adhesive portion functions to attach the array of microneedles and to separate the array of microneedles from the mold.
4. The microneedle assembly according to claim 3 , wherein the applicator includes one or more pressure protrusions formed at positions corresponding to the array of microneedles.