Prefilled patch
The pre-filled patch with an adhesive layer, capsule, handle, and microneedles addresses drug absorption and delivery issues, enhancing skin absorption and preventing leakage, thus improving drug delivery efficacy.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-10-21
- Publication Date
- 2026-04-08
AI Technical Summary
Existing transdermal drug delivery systems face limitations in drug absorption rates, leading to the need for excessive drug doses and issues with evaporation, leakage, and complex configurations, while molten polymer microneedles have limitations in drug capacity and skin penetration efficiency.
A pre-filled patch with an adhesive layer, a capsule for storing a drug, a handle to open the discharge port, and microneedles for subcutaneous delivery, utilizing bioabsorbable metals for enhanced absorption and rapid drug penetration.
The patch effectively prevents drug evaporation and leakage, allows high-volume drug storage, and ensures rapid absorption through the skin, overcoming limitations of previous methods.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a prefilled patch configured to adhere to the skin and deliver a liquid active ingredient or drug into the body. [Background technology]
[0002] Generally, methods for delivering active ingredients or drugs into the body include taking the drug orally, injecting the drug, and absorbing the drug through the skin.
[0003] Of these methods, oral administration, i.e., taking the drug by hand, can cause central nervous system side effects such as headache, drowsiness, dizziness, and neurotic tendencies, as well as serious gastrointestinal side effects such as nausea, indigestion, diarrhea, peptic ulcers, gastrointestinal bleeding, and gastrointestinal perforation. Therefore, its use is limited to short-term therapy only.
[0004] Furthermore, while injecting drugs by needle is a method that allows for rapid absorption because the drug is directly injected into the body through the skin, it has the inconvenience of requiring administration only by a specialist (making self-administration difficult), and since it generally uses needles with a diameter of several millimeters, the pain of injection makes it difficult for patients to adapt.
[0005] To eliminate the aforementioned side effects and drawbacks, the development of transdermal drug delivery systems is being actively pursued.
[0006] Drugs that are typically absorbed through the skin are formulated in the form of liquids, creams, gels, etc. However, due to the characteristics of these formulations, dosage adjustment is difficult, and there are problems such as stickiness and contamination of the skin.
[0007] Therefore, a method is used in which a patch containing the drug is applied to the skin, allowing the drug to be absorbed through the skin.
[0008] The patch-based drug administration method allows drugs to be absorbed through the skin, thus preventing side effects from drug use, such as gastrointestinal disorders and effects on diet. It also eliminates the pain and inconvenience of injections, and its convenience has led to a gradual increase in its use in recent years.
[0009] The patch can be broadly composed of a drug-impermeable backing layer that prevents the drug from passing through, a drug-permeable membrane, and an adhesive layer that adheres the patch to the skin. The storage space for storing the drug is provided between the backing layer and the drug-permeable membrane.
[0010] A major drawback of such patches is that, due to the low rate of drug absorption through the skin, the skin's function as a barrier to permeability must be reduced. Generally, the drug absorption rate through patches is known to be around 20%, and to date, methods to improve absorption have included chemical methods such as the use of skin absorption enhancers and precursor drugs, as well as physical methods such as iontophoresis and electrophoresis.
[0011] However, even with the use of these known methods, there are still limitations to improving drug absorption rates to a satisfactory level. Therefore, in order to expect therapeutic effects, it is unavoidable to use excessive amounts of the drug, taking into account the water absorption rate.
[0012] In particular, the type of skin absorption enhancer is determined according to the design of the formulation to be used or the physicochemical properties of its components, and a certain level of concentration is required to show its effect. However, when skin absorption enhancers are added, it is not easy to prevent crystal formation over time, and there is a disadvantage that the adhesive properties such as adhesion and cohesiveness change to the point where they are unsuitable for use.
[0013] Furthermore, technologies that utilize electricity have drawbacks, including the fact that patches must contain batteries, electrodes, circuits, and other components, resulting in complex product configurations, larger size, higher prices, and the generation of large amounts of waste after use.
[0014] As a result, molten polymer microneedles carrying active ingredients or drugs have been developed to increase the skin absorption rate of active ingredients or drugs. However, they have limitations, such as the small amount of drug they can carry, the low skin penetration efficiency of the microneedles due to the strength limitations of the polymer, and the fact that the microneedles break when they attach to the skin on an inclined surface rather than vertically. Therefore, they still have disadvantages that make them difficult to commercialize for medical purposes.
[0015] Therefore, the applicant developed the present invention to solve these problems, and a related prior art document is Korean Patent No. 10-0847222, "Phase-mutation skin cosmetic patch with increased absorption rate." [Overview of the project] [Problems that the invention aims to solve]
[0016] The present invention aims to solve the above-mentioned problems and to provide a pre-filled patch configured to prevent evaporation of liquid active ingredients or drugs, thereby increasing skin absorption and allowing for the storage of high volumes of active ingredients or drugs.
[0017] Furthermore, the present invention aims to provide a pre-filled patch configured to prevent liquid active ingredients or drugs from leaking out of the patch due to the curvature of the skin when it is applied to the skin.
[0018] Furthermore, the present invention aims to provide a pre-filled patch configured to allow a liquid active ingredient or drug to penetrate the skin rapidly.
[0019] Furthermore, the present invention aims to provide a pre-filled patch configured to allow the user to easily open a capsule containing a liquid active ingredient and drug, thereby discharging the drug onto the skin. [Means for solving the problem]
[0020] The present invention includes an adhesive layer that adheres to the skin, a capsule provided on the adhesive layer for storing an active ingredient or a drug, and a handle connected to a discharge port formed in the capsule, and the handle can be separated from the capsule by a user to open the discharge port.
[0021] Further, the capsule can be provided on one surface of the adhesive layer while being disposed closer to the skin than the adhesive layer, and can have a planar area smaller than the planar area formed by the adhesive layer.
[0022] Also, one end portion in the length direction of the handle can block the discharge port formed in the capsule, and the other end portion in the length direction of the handle can be exposed outside the adhesive layer.
[0023] Further, a plurality of the discharge ports can be provided, and one end portion of the handle can branch into a number corresponding to the number of the discharge ports.
[0024] Furthermore, it can further include microneedles that are attached to the adhesive layer while having a planar area larger than the planar area formed by the capsule and smaller than the planar area formed by the adhesive layer.
[0025] Also, the microneedles can include a substrate portion that adheres to the adhesive layer, a plurality of support holes formed in the substrate portion, and insertion needles that project from a portion of the substrate portion partitioning the support holes and are inserted into the skin.
[0026] Further, the discharge port formed in the capsule can correspond to the support holes.
[0027] Also, a guide region can be formed in the substrate portion to guide the movement of the handle without interfering when the portion of the handle connected to the capsule is separated from above the capsule.
[0028] Furthermore, the microneedle includes a support groove that provides a path through which the active ingredient or drug discharged via the discharge port can flow, and the support groove may extend from a portion of the area formed by the substrate toward the end of the insertion needle.
[0029] Furthermore, the system may further include a slit groove for guiding the active ingredient or drug supported in the support groove to the end of the insertion needle.
[0030] Furthermore, the microneedles may be formed from bioabsorbable metals, and the bioabsorbable metal may contain at least one component from magnesium, calcium, zinc, and iron.
[0031] The material further includes a pair of release papers that adhere to the area surrounding the adhesive layer, the pair of release papers moving in different directions from each other to separate from the adhesive layer, and either one of the pair of release papers can adhere to the handle. [Effects of the Invention]
[0032] A pre-filled patch according to one embodiment of the present invention has a structure in which a capsule dispenses the active ingredient or drug inside the adhesive layer attached to the skin, thereby preventing the evaporation of the active ingredient or drug and increasing skin absorption by ensuring continuous contact with the skin.
[0033] Furthermore, since the pre-filled patch according to one embodiment of the present invention is equipped with an adhesive layer and microneedles on the lower side of the capsule, the active ingredient or drug stored in the capsule can be easily delivered subcutaneously via the microneedles, and the skin can be stimulated to provide beneficial effects.
[0034] Furthermore, a pre-filled patch according to one embodiment of the present invention provides a configuration that allows the active ingredient or drug stored in the loading holes, or the active ingredient or drug remaining on the surface of the substrate, to be delivered subcutaneously via the loading grooves and slit grooves formed in the insertion needle, thereby enabling rapid penetration and diffusion of the active ingredient or drug into the subcutaneous tissue. [Brief explanation of the drawing]
[0035] [Figure 1] This is a perspective view of a prefilled patch according to one embodiment of the present invention.
[0036] [Figure 2] Figure 1 is a cross-sectional view showing the pre-filled patch attached to the skin.
[0037] [Figure 3] This is a perspective view showing the coupling relationship between the capsule and the handle according to one embodiment of the present invention.
[0038] [Figure 4] This is a bottom view showing how various types of dispensing holes are formed at the bottom of a capsule according to one embodiment of the present invention.
[0039] [Figure 5] This is a perspective view from the bottom of a prefilled patch equipped with microneedles according to one embodiment of the present invention.
[0040] [Figure 6] Figure 5 is a plan view of the prefilled patch shown.
[0041] [Figure 7] Figure 5 is a cross-sectional view showing the pre-filled patch attached to the skin.
[0042] [Figure 8] Figure 5 is a plan view of the microneedle shown.
[0043] [Figure 9] This is a front view of a microneedle insertion needle according to one embodiment of the present invention.
[0044] [Figure 10]Figure 9 is a perspective view of the insertion needle shown.
[0045] [Figure 11] This is a cross-sectional view showing an insertion needle according to one embodiment of the present invention inserted into the skin.
[0046] [Figure 12] This is an experimental results table showing whether or not the active ingredient was discharged or leaked, based on the thickness of the adhesive layer and the amount of active ingredient.
[0047] [Figure 13] This is a plan view showing a prefilled patch with release paper attached, according to one embodiment of the present invention.
[0048] [Figure 14] This is a perspective view showing a handle according to one embodiment of the present invention, integrally connected to a capsule.
[0049] [Figure 15] Figure 14 is a perspective view showing the handle being pulled in the direction of the arrow.
[0050] [Figure 16] Figure 14 is a perspective view showing the handle completely separated from the capsule.
[0051] [Figure 17] Figure 16 is a perspective view showing the state after the release paper has been removed. [Modes for carrying out the invention]
[0052] The advantages and features of the present invention, as well as methods for achieving them, will become apparent with reference to the embodiments described in detail later with the accompanying drawings.
[0053] However, the present invention is not limited to the embodiments disclosed below, but can be realized in a variety of different forms, provided that these embodiments complete the disclosure of the present invention and fully inform those who are ordinary skill in the art to which the present invention pertains, and the present invention is defined only by the scope of the claims.
[0054] A prefilled patch according to one embodiment of the present invention will be described in detail below with reference to Figures 1 to 16. In describing the present invention, specific descriptions of related known functions or configurations will be omitted in order to avoid obscuring the essence of the invention.
[0055] Figure 1 is a perspective view of a prefilled patch according to one embodiment of the present invention, Figure 2 is a cross-sectional view showing the prefilled patch shown in Figure 1 attached to the skin, Figure 3 is a perspective view showing the connection between the capsule and the handle according to one embodiment of the present invention, Figure 4 is a bottom view showing various shapes of dispensing holes formed at the bottom of the capsule according to one embodiment of the present invention, Figure 5 is a perspective view from the bottom of the prefilled patch with microneedles provided according to one embodiment of the present invention, Figure 6 is a plan view of the prefilled patch shown in Figure 5, Figure 7 is a cross-sectional view showing the prefilled patch shown in Figure 5 attached to the skin, Figure 8 is a plan view of the microneedles shown in Figure 5, and Figure 9 is a microneedle according to one embodiment of the present invention Figure 10 is a front view of the insertion needle, Figure 11 is a cross-sectional view showing the insertion needle according to one embodiment of the present invention inserted into the skin, Figure 12 is an experimental results table showing whether or not the active ingredient is discharged and leaked depending on the thickness of the adhesive layer and the amount of active ingredient, Figure 13 is a plan view showing the pre-filled patch with release paper attached according to one embodiment of the present invention, Figure 14 is a perspective view showing the handle according to one embodiment of the present invention integrally connected to the capsule, Figure 15 is a perspective view showing the handle shown in Figure 14 being pulled in the direction of the arrow, Figure 16 is a perspective view showing the handle shown in Figure 14 completely separated from the capsule, and Figure 17 is a perspective view showing the release paper shown in Figure 16 removed.
[0056] As shown in Figures 1 and 2, a pre-filled patch 100 according to one embodiment of the present invention may include an adhesive layer 110 that adheres to the skin, a capsule 120 provided on the adhesive layer 110 for storing an active ingredient or drug, and a handle 130 connected to an outlet 121 formed in the capsule 120.
[0057] The adhesive layer 110 can have curvature around its periphery and can have various sizes and planar shapes so that it can adhere to various parts of the body. Furthermore, the adhesive layer 110 can be made from a material that is harmless to the human body and is stretchable.
[0058] In other words, since the user's skin to which the adhesive layer 110 adheres is not perfectly flat but has curvature, it is preferable that the surrounding portion has a curved shape to correspond to this curvature. Furthermore, since the adhesive layer 110 attached to the curvatured skin is subjected to pressure in accordance with the user's movements, this pressure allows the active ingredient or drug stored in the capsule 120 to be naturally dispensed onto the skin.
[0059] One surface of the adhesive layer 110 can be coated or applied with a known adhesive substance. Incidentally, one surface of the adhesive layer 110 is the part that comes into direct contact with the skin, while the other surface of the adhesive layer faces outwards.
[0060] Therefore, one side of the adhesive layer 110 can adhere to the release paper (not shown) and then be separated from the release paper and adhere to the skin when used by the user.
[0061] The capsule 120 is positioned closer to the skin than the adhesive layer 110 and can be provided on one surface of the adhesive layer 110 while maintaining its pouch shape.
[0062] Furthermore, the capsule 120 provides an internal space in which an active ingredient or drug can be stored, and may have a smaller surface area than the surface area of the adhesive layer 110.
[0063] For reference, the adhesive layer 110 and capsule 120 can be made of a flexible thin film or polymer material, and it is preferable that they be made of a transparent material so that the user can visually inspect the inside.
[0064] As shown in Figures 3 and 4, one side of the capsule 120 facing the skin. local area An outlet 121 is formed therein. The outlet 121 serves to expel the active ingredient or drug stored in the internal space of the capsule 121 toward the skin, and at least one outlet can be provided on one side of the capsule 120.
[0065] In one embodiment of the present invention, the drawings show that a pair of discharge ports 121 are formed on one surface of the capsule 120, spaced apart from each other.
[0066] Furthermore, as shown in Figure 4, the discharge port 121 can be circular, cross-shaped, straight-line, or circular in shape, and can be shut off by the handle 130, which will be described later.
[0067] As shown in Figures 1 to 3, the handle 130 serves to block the discharge port 121 formed in the capsule 120, and also to separate from one side of the capsule 120 from the user, thereby opening the discharge port 121.
[0068] In other words, one end of the handle 130 in the longitudinal direction is on one surface of the capsule 120. It is connected to the local area The discharge port 121 is blocked, and the other end of the handle 130 in the longitudinal direction can be exposed to the outside of the adhesive layer 110.
[0069] When a user pulls the other longitudinal end of the handle 130, which is exposed outside the adhesive layer, one longitudinal end of the handle 130 can be separated from one surface of the capsule 120 and detached from the adhesive layer 110. This opens the discharge port 121 formed on one surface of the capsule 120, allowing the active ingredient or drug stored in the internal space of the capsule 120 to be discharged toward the skin.
[0070] The active ingredient or drug released from the internal space of the capsule 120 can diffuse throughout the skin area to which the adhesive layer 110 is attached and be absorbed into the skin.
[0071] Incidentally, the active ingredients or drugs stored in capsule 120 include, but are not limited to, ingredients intended for the prevention and treatment of diseases, and may also be genetic material, EGF (Epidermal Growth Factor) or hyaluronic acid for skin cosmetic purposes.
[0072] As shown in Figures 1 and 3, one end of the handle 130 can branch into a number of outlets corresponding to the number of outlets 121. In one embodiment of the present invention, one end of the handle 130, which has a pair of corresponding outlets 121, is forked, and as shown in the drawings, the handle 130 has an overall "Y" shape.
[0073] On the other hand, the handle 130 has a relatively lower adhesive strength than the adhesive strength between the adhesive layer 110 and the capsule 120, so that it can be easily separated from the capsule 120 when pulled by the user. Also, since one end of the handle 130 in the longitudinal direction is attached to one surface of the capsule 120 by an adhesive or heat-sealing method, by setting the tensile strength of the handle 130 to be greater than the adhesive strength formed around the discharge port 121, the phenomenon of the longitudinal portion of the handle 130 breaking when the user pulls on it can be prevented. And naturally, the tensile strength of the capsule 120 is greater than the adhesive strength between the handle 130 and the discharge port.
[0074] Therefore, as shown in Figure 2, once the adhesive layer 110 adheres to the skin, the user can easily separate it from the bottom of the capsule 120 by pulling the other longitudinal end of the handle 130 that is exposed to the outside of the adhesive layer 110.
[0075] When the user re-applies the adhesive layer 110 to the skin in the state described above, the active ingredient or drug dispensed from the capsule 120 can be absorbed into the skin without leaking outside the area formed by the adhesive layer 110.
[0076] In particular, as shown in Figure 2(b), when the adhesive layer 110 adheres to curved skin, the internal pressure of the capsule 120 increases as it conforms to the curved skin surface morphology. This internal pressure causes the discharge port 121 to open, allowing the stored drug or active ingredient to be naturally delivered to the skin.
[0077] Therefore, in the pre-filled patch 100 according to one embodiment of the present invention, the adhesive layer 110 and capsule 120 deform in response to the curvature of skin, so that it can maintain a tightly adhering state without moving around on a preset surface of skin, and the capsule 120 can easily dispense the drug or active ingredient onto the skin by receiving pressure from the deformation of the skin due to body movement, without the user having to apply any additional pressure to the capsule 120.
[0078] Furthermore, the prefilled patch 100 according to one embodiment of the present invention may further include microneedles 200 that are attached to one surface of the adhesive layer 110, while having a planar area larger than that formed by the capsule 120 and smaller than that formed by the adhesive layer 110, as shown in Figures 5 to 10.
[0079] The microneedle 200 may include a substrate portion 210 that adheres to the adhesive layer 110, a number of support holes 220 formed in the substrate portion 210, and an insertion needle 230 that protrudes from the portion of the substrate portion 210 that divides the support holes 220 and is inserted into the skin.
[0080] The substrate portion 210 can have the shape of a thin plate having a predetermined area and thickness, and as described above, it can be provided on one surface of the adhesive layer 110 to which the adhesive substance is coated or applied. More precisely, as shown in Figure 7, it can be positioned on the lower side of the adhesive layer 110 and the capsule 120.
[0081] The substrate portion 210 can be manufactured in various sizes and shapes to correspond to the skin area to which it is to be attached, and can be formed with various curvatures to allow for airtight contact with curved skin. Incidentally, in one embodiment of the present invention, the substrate portion 210 is shown in the drawing to have the same shape as the adhesive layer 110.
[0082] The support holes 220 can be formed in the substrate portion 210 using a pressing method or a laser cutting device, and a large number of them can be provided at intervals on the surface of the substrate portion 210.
[0083] The support holes 220 can be provided in the substrate portion 110 in a circular or regular polygonal shape, and it is preferable that they be formed in a regular hexagonal shape in order to improve the structural durability of the substrate portion 110.
[0084] If the support holes 220 are formed in the shape of a regular hexagon, the substrate portion 210 can have a honeycomb structure.
[0085] The honeycomb structure of the substrate portion 210 prevents deformation or damage to parts of the substrate portion 210 positioned between the numerous support holes 220 when the insertion needle 230, which is positioned horizontally inside the support holes 220, is pressed with a press to stand upright.
[0086] More specifically, as the pressurizing piece provided on the movable die of the press is inserted into the support hole 220, it pressurizes the insertion needle 230, which is positioned horizontally, causing it to bend vertically. However, at this time, there is a risk that the portion of the substrate 210, which is positioned between the numerous support holes 220, may be deformed or damaged by the influence of the pressurizing piece.
[0087] However, in the microneedle 200 according to one embodiment of the present invention, the support hole 220 is provided in the shape of a regular hexagon, and the substrate portion 210 can be formed in a honeycomb structure, thereby increasing the overall strength of the substrate portion 210 and preventing deformation or damage to the substrate portion 210 during the press-based work process.
[0088] As described above, the support hole 220 provides a space in which the active ingredient or drug dispensed through the discharge port 121 of the capsule 120 can be stored. That is, the active ingredient or drug dispensed through the discharge port 121 can diffuse along the planar region of the substrate portion 210 and be stored in the support hole 220.
[0089] Furthermore, it is preferable that the loading hole 220 be formed at a position corresponding to the discharge port 121 formed in the capsule 120. That is, it is preferable that the loading hole 220 and the discharge port 121 be formed at positions corresponding to each other so that when the handle 130 is separated from one side of the capsule 120, the active ingredient or drug is smoothly discharged and diffused through the discharge port 121.
[0090] Furthermore, the support holes 220 also serve to allow the adhesive layer 110 attached to the substrate portion 210 to further adhere to the skin. In other words, the adhesive layer 110 positioned at a location corresponding to the support holes 220 can also adhere to the skin via the support holes 220.
[0091] When the substrate portion 210 comes into close contact with the skin, only the area around the adhesive layer 110 that is not in contact with the substrate portion 210 adheres to the skin, which may cause the substrate portion 210 to move around on the skin. However, since the substrate portion 210 has numerous support holes 220, the adhesive surface of the adhesive layer 110 can adhere to the skin by passing through these support holes 220. Therefore, even if the user moves their body, the substrate portion 210 can be fixedly positioned at the initial attachment site.
[0092] On the other hand, as shown in Figure 7, when the adhesive layer 110 of the substrate portion 210 adheres to the skin, it is preferable that it does not interfere with the movement of the handle 130 during the process of separating the handle 130, as it adheres to the skin.
[0093] Therefore, it is preferable that the substrate portion 210 is provided with a guide region 240 corresponding to the shape of the handle 130, as shown in Figure 8.
[0094] The guide region 240 provides a path for the handle 130 to move so as not to interfere with the movement of the handle 130 when one longitudinal end of the handle 130 connected to the capsule 120 is separated from the capsule 120. Therefore, when a user pulls the handle 130 to dispense the active ingredient or drug stored in the capsule 120, the handle 130 moves along the guide region 240 formed on the base portion 210, allowing it to move easily without being obstructed by the base portion 210 and be easily separated from the capsule 120.
[0095] When the support hole 220 is formed in the shape of a regular polygon, the insertion needle 230 can be provided in the center of the inner edge of the substrate portion 210 that demarcates the support hole 220, as shown in Figure 10.
[0096] If the insertion needle 230 is located at the inner apex of the substrate portion 210 that defines the support hole 220, there is a risk that the insertion needle 230 may break during the bending process (pressure process by pressing) when the insertion needle 230 is lying horizontally. Therefore, in order to prevent the insertion needle 230 from breaking, it is preferable to provide the insertion needle 230 in the center of the inner edge of the substrate portion 210 that defines the support hole 220.
[0097] The insertion needle 230 allows the active ingredient or drug stored in the carrying hole 220, or the active ingredient or drug transferred to the surface of the substrate portion 210, to penetrate into the skin.
[0098] As shown in Figure 7, once the adhesive layer 110 adheres to the skin, the numerous insertion needles 230 are inserted subcutaneously, and in this process, the active ingredient or drug stored in the capsule 120 can be delivered subcutaneously via the numerous insertion needles 230.
[0099] In one embodiment of the present invention, since a large number of insertion needles 230 are arranged in a fixed pattern with respect to the carrying hole 220, the active ingredient or drug discharged through the discharge port 121 can be uniformly delivered subcutaneously by the large number of insertion needles 230.
[0100] Furthermore, the microneedle 200 according to one embodiment of the present invention may further include a carrying groove 231 that provides a path through which the active ingredient or drug discharged via the discharge port 121 can flow, as shown in Figures 9 to 11.
[0101] The support groove 231 extends from a portion of the area formed by the substrate portion 210 toward the end of the insertion needle 230, and can be formed while maintaining a predetermined depth between the substrate portion 210 and the insertion needle 230.
[0102] The support grooves 231 formed on the substrate portion 210 serve to transfer the active ingredient or drug diffused on the surface of the substrate portion 210 to the insertion needle 230.
[0103] In other words, when the discharge port 121 of the capsule 120 is opened, the active ingredient or drug stored in the capsule 120 diffuses into the planar region formed by the substrate 210. At this time, the diffused active ingredient or drug flows in the direction in which the carrying holes 220 are formed and is stored in the carrying holes 220, or it remains in the surface region of the substrate 210 where the carrying holes 220 are not provided.
[0104] At this time, the portion of the substrate 210 with the support groove 231 plays a role in transferring the active ingredient or drug accumulated in the surface area of the support hole 220 to the insertion needle 230, as shown in Figure 11.
[0105] As shown in Figure 11, the loading groove 231 formed on the insertion needle 230 plays a role in delivering the active ingredient or drug stored in the loading hole 220 to the subcutaneous tissue, and also plays a role in receiving and delivering the active ingredient or drug delivered from the loading groove 231 formed on the substrate portion 210 to the subcutaneous tissue.
[0106] In other words, when the insertion needle 230 is inserted into the skin, the contractile force of the subcutaneous tissue prevents a gap from being formed between the insertion needle 230 and the subcutaneous tissue, making it difficult for the active ingredient or drug to penetrate. The carrying groove 230 according to one embodiment of the present invention is a component provided with consideration for the contractile force of the skin, and allows the active ingredient or drug dispensed from the capsule 120 to flow into the insertion needle 230 already inserted subcutaneously, thereby enabling easy delivery of the active ingredient or drug to the subcutaneous tissue.
[0107] Preferably, the support groove 231 is formed on one surface and the other surface of the substrate portion 210 and the insertion needle 230, respectively.
[0108] This is because, in order to efficiently deliver the active ingredients or drugs remaining on one and the other surface of the substrate portion 210, and the active ingredients or drugs stored in the loading holes 220, to the subcutaneous tissue, it is more efficient to form loading grooves 231 on both surfaces than to form loading grooves 231 on just one surface.
[0109] For example, if the support groove 231 is formed only on the other side of the substrate portion 210 and the other side of the insertion needle 230, no pathway is formed for the active ingredient or drug that remains on one side of the substrate portion 210 to flow through. As a result, it remains continuously on one side of the substrate portion 210, and consequently, it does not get absorbed into the skin or penetrate into the subcutaneous tissue.
[0110] Furthermore, since the active ingredient or drug is not transmitted at all to the subcutaneous area facing one side of the insertion needle 230, a phenomenon occurs in which the effect of the active ingredient or drug is halved. Here, one side of the substrate portion 210 can be said to be the surface that faces the skin and is in direct contact with the skin.
[0111] Therefore, on the side of the substrate portion 210 that facilitates the subcutaneous delivery of the active ingredient or drug that flows and remains on one surface, it is preferable to form the support groove 231 on one surface and the other surface of the substrate portion 210 and the insertion needle 230, respectively, as shown in Figure 11. This allows the active ingredient or drug to be effectively delivered to the subcutaneous region facing one surface and the other surface of the insertion needle 230, respectively, while flowing in the directions of arrows A and B shown in Figure 11.
[0112] Furthermore, the microneedle 200 according to one embodiment of the present invention may further include a slit groove 232 that guides the active ingredient or drug supported in the support groove 231 to the end of the insertion needle 230, as shown in Figures 9 to 11.
[0113] As described above, the slit groove 232 allows the active ingredient or drug stored in the loading groove 231 to easily flow subcutaneously through the tip of the insertion needle 230.
[0114] As shown in Figure 11, the support groove 231 allows the active ingredient or drug to be discharged through the end of the insertion needle 230. One end in the longitudinal direction is connected to the support groove 231 formed on the insertion needle 230 so as to be able to communicate with it, and the other end in the longitudinal direction can be connected to the end of the insertion needle 230.
[0115] Therefore, the active ingredient or drug that flows into the support groove 231 can be discharged to the end of the insertion needle 230 via the slit groove 232.
[0116] In other words, the loading grooves 231 formed on one and the other surface of the insertion needle 230 deliver the active ingredient or drug to the opposing subcutaneous region, while the drug flowing into the slit groove 232 delivers the active ingredient or drug to the subcutaneous region opposite the end of the insertion needle 230.
[0117] Therefore, the active ingredient or drug can be uniformly delivered subcutaneously through the support groove 231 and the slit groove 232.
[0118] Incidentally, the support holes 220, insertion needles 230, support grooves 231, and slit grooves 232 formed on the substrate portion 210 can be formed on the substrate portion 210 by known lithography or etching techniques.
[0119] Furthermore, the substrate portion 210 and the insertion needle 230 can be made from a metal containing at least one component from among magnesium, calcium, zinc, and iron, which are used as bioabsorbable metals.
[0120] For reference, there have been cases of bioabsorbable metals being commercialized both domestically and internationally, with magnesium-based alloys being produced for use in orthopedic implants. The focus of bioabsorbable metals applied to orthopedic implants is on minimizing the rate of degradation in the body or improving corrosion resistance for safe fracture fixation.
[0121] However, unlike bioabsorbable metals applied to orthopedic surgery, the bioabsorbable metal forming the microneedle 200 according to one embodiment of the present invention can be subjected to a mechanism that accelerates the rate of decomposition in the body, enabling subcutaneous drug release and mineral supply.
[0122] For example, magnesium, calcium, and zinc, which are used as bioabsorbable metals, can possess a mechanism for decomposition by reacting with water in the body to release hydrogen gas.
[0123] The substrate portion 210 and insertion needle 230, formed from the bioabsorbable metal described above, release ions and decomposition products subcutaneously, and the hydrogen gas generated by these byproducts provides a swelling effect subcutaneously, thereby inducing a wrinkle-improving effect.
[0124] Furthermore, ZnO and MgCl, byproducts generated when magnesium and zinc, components of bioabsorbable metals, are inserted into the body, can also act as drug delivery enhancers, remaining subcutaneously while improving the subcutaneous absorption of the active ingredient or drug supported on the substrate 210 and insertion needle 230. Therefore, the substrate 210 and insertion needle 230, formed from bioabsorbable metals, can effectively deliver the drug they support subcutaneously.
[0125] For reference, Figure 12 shows an experimental results table that confirms whether or not the active ingredient is delivered to the skin and whether or not leakage occurs, depending on the thickness of the adhesive layer 110 and the amount of active ingredient stored in the capsule 120.
[0126] As shown in Figure 12, the thickness of the adhesive layer was set to 0.5 mm, 1 mm, and 2 mm, and the amount of active ingredient stored in capsule 120 was set to 0.01 ml / cm³. 2 , 0.005 ml / cm³ 2 , 0.01 ml / cm³ 2 , 1 ml / cm 2 , 3 ml / cm 2 When set to this state, it is possible to check whether the active ingredient stored in capsule 120 has been delivered to the skin and whether it has leaked out.
[0127] As shown in Sample 1 of the experimental results table, the thickness of the adhesive layer 110 is 0.5 mm, and the amount of active ingredient stored in the capsule 120 is 0.01 ml / cm³. 2 In that case, it was confirmed that the active ingredient was dispensed from capsule 120 onto the skin. However, a phenomenon occurred in which the active ingredient dispensed from capsule 120 leaked outside the adhesive layer 110.
[0128] As shown in Sample 2 of the experimental results table, the thickness of the adhesive layer 110 was 1 mm, and the amount of active ingredient stored in the capsule 120 was 0.005 ml / cm³. 2 In that case, it was confirmed that the active ingredient was not dispensed from capsule 120 onto the skin.
[0129] As shown in Sample 3 of the experimental result table, the thickness of the adhesive layer 110 is 1 mm, and the amount of active ingredient stored in the capsule 120 is 0.01 ml / cm 2 In this case, it was confirmed that the active ingredient was discharged from the capsule 120 to the skin, and it was also confirmed that the active ingredient discharged from the capsule 120 did not leak outside the adhesive layer 110.
[0130] As shown in Sample 4 of the experimental result table, the thickness of the adhesive layer 110 is 1 mm, and the amount of active ingredient stored in the capsule 120 is 1 ml / cm 2 In this case, it was confirmed that the active ingredient was discharged from the capsule 120 to the skin, and it was also confirmed that the active ingredient discharged from the capsule 120 did not leak outside the adhesive layer 110.
[0131] As shown in Sample 5 of the experimental result table, the thickness of the adhesive layer 110 is 1 mm, and the amount of active ingredient stored in the capsule 120 is 3 ml / cm 2 In this case, it was confirmed that the active ingredient was discharged from the capsule 120 to the skin. However, a phenomenon occurred where the active ingredient discharged from the capsule 120 leaked outside the adhesive layer 110.
[0132] As shown in Sample 6 of the experimental result table, the thickness of the adhesive layer 110 is 2 mm, and the amount of active ingredient stored in the capsule 120 is 1 ml / cm 2 In this case, it was confirmed that the active ingredient was discharged from the capsule 120 to the skin, and it was also confirmed that the active ingredient discharged from the capsule 120 did not leak outside the adhesive layer 110.
[0133] As shown in Sample 7 of the experimental result table, the thickness of the adhesive layer 110 is 2 mm, and the amount of active ingredient stored in the capsule 120 is 3 ml / cm 2 In this case, it was confirmed that the active ingredient was discharged from the capsule 120 to the skin. However, a phenomenon occurred where the active ingredient discharged from the capsule 120 leaked outside the adhesive layer 110.
[0134] As can be seen from the experimental results table, if the thickness of the adhesive layer 110 is small, the adhesion to the skin decreases and gaps are formed that allow the active ingredient to leak out, resulting in the phenomenon of the active ingredient dispensed from the capsule 120 leaking to the outside of the adhesive layer 110.
[0135] Furthermore, the larger the amount of active ingredient stored in the capsule 120, the more likely it was that the active ingredient dispensed from the capsule 120 would leak out of the adhesive layer 110.
[0136] Therefore, it is preferable to optimally set the thickness of the adhesive layer 110 and the amount of active ingredient stored in the capsule 120. More preferably, the thickness of the adhesive layer 110 is set to 1 mm to 2 mm, and the amount of active ingredient stored in the capsule 120 is 0.01 ml / cm³. 2 ~2 ml / cm³ 2 When set to this configuration, the active ingredient stored in capsule 120 is easily delivered to the skin, and leakage to the outside is also prevented.
[0137] Furthermore, the prefilled patch 100 according to one embodiment of the present invention may further include a pair of release papers 141, 142, as shown in Figure 13.
[0138] The release papers 141 and 142 can adhere to the area around the adhesive layer 110 that is not in contact with the substrate portion 210, and can be separated from the adhesive layer 110 with respect to the fold line L.
[0139] For example, one side of the release paper 141 can be separated from the adhesive layer 110 in the direction of arrow A, using the fold line L as a reference, and the other side of the release paper 142 can be separated from the adhesive layer 110 in the direction of arrow B, using the fold line as a reference.
[0140] On the other hand, the other release paper 142 can be connected to the handle 130. The other release paper 142 can adhere to the area around the adhesive layer 110 while having an area that includes the handle 130 which blocks the discharge port 121 formed in the capsule 120, and at this time it can adhere to one end and the other end of the handle 130 in the longitudinal direction.
[0141] In other words, the release paper 142 on the other side can adhere to the longitudinal portion of the handle 130 that does not overlap with the capsule 120.
[0142] Therefore, when the user separates the other release paper 141 from the adhesive layer 110 in the direction of arrow B, the handle 130 can be separated from the adhesive layer 110 together with the other release paper 141. At this point, the dispensing port 121 of the capsule 120 opens and is transmitted to the skin.
[0143] The following describes a method for manufacturing prefilled patches according to one embodiment of the present invention.
[0144] A method for manufacturing a prefilled patch according to one embodiment of the present invention may include: a first step of drilling an outlet 121 in a capsule 120; a second step of attaching a handle 130 to the outlet 121 formed in the first step; a third step of filling the capsule 120 formed in the second step with a drug or active ingredient and then sealing it; a fourth step of attaching release papers 141 and 142 around the adhesive layer 110; a fifth step of attaching the sealed capsule 120 from the third step to the central part of the adhesive layer 110 that is not directly attached to the release papers 141 and 142 in the fourth step; and a sixth step of attaching the substrate portion 210 of a microneedle 200 to the adhesive layer 110 after the fifth step has been completed.
[0145] First, the first step involves forming an outlet 121 in either the first or second film that constitutes the capsule 120. The first and second films are components that provide a space in which a drug or active ingredient can be contained, and are sealed in the third step, which will be described later. For reference, various known perforation methods can be used to form a hole in the capsule 120 to provide the outlet 121.
[0146] In the second step, the longitudinal end of the handle 130 can be joined to the film portion of the capsule 120 in which the discharge port 121 is formed.
[0147] In the third step, the internal space formed by the first and second films of the capsule 120 can be filled with a drug or active ingredient. At this time, it is preferable that one side of the first and second films is already sealed. Once the drug or active ingredient is filled, the other side of the first and second films can be sealed to create a sealed state.
[0148] The fourth step can be described as the step of bonding the adhesive layer 110 with the release papers 141 and 142. Specifically, it can be described as the step of attaching the release papers 141 and 142 to the edge region of one side of the total area formed by the adhesive layer 110. Since the edge region of the adhesive layer 110 is substantially the part that comes into direct contact with the skin without interfering with other components, it is preferable that the release papers 141 and 142 be attached to that part in order to maintain adhesion.
[0149] In the fifth step, the capsule 120, to which the handle 130 is attached, can be attached to the center of the adhesive layer 110 that is not attached to the release papers 141 and 142. At this time, the film of the capsule 120 that does not have a discharge port 121 attached remains positioned opposite the adhesive surface of the adhesive layer 110 and adheres to the adhesive surface, while the film of the capsule 120 with a discharge port 121 and the handle 130 are located on opposite sides.
[0150] The sixth step is a selective process, which involves attaching the aforementioned microneedles 200 to the adhesive surface of the adhesive layer 110. In other words, the sixth step can be performed in order to realize the inherent function of the microneedles 200 and the subcutaneous delivery effect of the drug or active ingredient stored in the capsule 120.
[0151] The pre-filled patches manufactured in step 6 above can finally be packaged and shipped.
[0152] Although specific embodiments of the present invention have been described so far, it goes without saying that various modifications are possible without departing from the scope of the present invention.
[0153] For example, the internal space of the capsule 120 may store a component that reacts with the microneedle 200, which is made of a bioabsorbable metal, to change the color of the substrate 210 or the insertion needle 230.
[0154] Therefore, the user's physical condition can be checked according to the degree of discoloration of the microneedle 200, and it can also be used as a patch to diagnose the presence or absence of various viruses and disease infections using reagents.
[0155] Furthermore, as shown in Figures 14 to 17, the handle 130 can be integrally connected to the capsule 120. Incidentally, Figure 14 shows one side of the pre-filled patch 100 that faces the user's skin.
[0156] As shown in Figure 14, one end of the handle 130 in the longitudinal direction can be integrally connected to the capsule 120.
[0157] Then, as shown in Figures 15 and 16, when the other longitudinal end of the handle 130, which is exposed to the outside of the adhesive layer 110, is pulled by the user and separated from the capsule 120, the portion of the capsule 120 that was integrally connected to one longitudinal end of the handle 130 can be cut open.
[0158] As shown in Figures 16 and 17, the incision site of the capsule 120, which is formed as the handle 130 separates, serves as an outlet for dispensing the active ingredient or drug, so there is no need to form a separate outlet on the capsule 120. Furthermore, since the handle 130 is formed during the manufacturing process of the capsule 120, the step of separately manufacturing the handle 130 and then attaching it to the capsule 120 can be omitted.
[0159] On the other hand, it is preferable that when the user pulls on the handle 130, one end of its longitudinal direction can be easily detached from the capsule 120. Therefore, the portion of the capsule 120 that is directly connected to the longitudinal end of the handle 130 can have a relatively lower strength than the remaining portion.
[0160] Alternatively, a cutting line or dotted line may be formed on the portion of the capsule 120 that is directly connected to one longitudinal end of the handle 130. Thus, when a user pulls the other longitudinal end of the handle 130, the longitudinal end of the handle 130 can be easily removed from the capsule 120 by the cutting line or dotted line.
[0161] For reference, the cutting line or cut line may consist of a groove formed along the separation direction of the handle 130 at the portion of the capsule 120 that is directly connected to one longitudinal end of the handle 130, and one or more grooves may be formed at the connection portion between the handle 130 and the capsule 120.
[0162] The grooves forming the cutting lines or cut lines can be formed by a known half-cutting process or blade forming process using a laser.
[0163] Therefore, the scope of the present invention is not limited to the embodiments described above, but should be defined not only by the claims described later, but also by claims equivalent to those described therein. [Industrial applicability]
[0164] This invention can be sold and used in a variety of industrial fields, such as the medical field and the dermatological beauty field.
Claims
1. The adhesive layer that adheres to the skin, A capsule provided in the adhesive layer, in which an active ingredient or drug is stored, The capsule includes a handle connected to a discharge port formed in the capsule, The discharge port is formed in a localized area on one surface of the capsule, A pre-filled patch characterized in that the longitudinal end of the handle is connected to a localized area on one surface of the capsule to block the discharge port.
2. The prefilled patch according to claim 1, characterized in that the capsule is provided on one surface of the adhesive layer while remaining in closer proximity to the skin than the adhesive layer, and has a flat surface area smaller than the flat surface area formed by the adhesive layer.
3. The prefilled patch according to claim 1, characterized in that one end of the handle in the longitudinal direction blocks the discharge port formed in the capsule, and the other end of the handle in the longitudinal direction is exposed to the outside of the adhesive layer.
4. The prefilled patch according to claim 3, characterized in that a number of discharge ports are provided, and one end of the handle branches to a number corresponding to the number of discharge ports.
5. The adhesive layer further comprises microneedles that adhere to the adhesive layer, The microneedles form an area larger than the plane formed by the capsule and smaller than the plane formed by the adhesive layer. The prefilled patch according to claim 2, characterized in that...
6. The aforementioned microneedle is The substrate portion that adheres to the adhesive layer, Numerous support holes are formed in the substrate portion, The prefilled patch according to claim 5, characterized in that it includes an insertion needle that protrudes from the portion of the substrate that demarcates the support hole and is inserted into the skin.
7. The prefilled patch according to claim 6, characterized in that the discharge port formed in the capsule corresponds to the carrying hole.
8. The aforementioned substrate portion includes: The prefilled patch according to claim 6, characterized in that a guide region is formed to guide the portion of the handle connected to the capsule so as not to interfere with the movement of the handle when the portion of the handle connected to the capsule is separated from the capsule.
9. The microneedle includes a carrying groove that provides a path through which the active ingredient or drug discharged through the discharge port can flow. The prefilled patch according to claim 6, characterized in that the support groove extends from a part of the area formed by the substrate toward the end of the insertion needle.
10. The pre-filled patch according to claim 9, further comprising a slit groove for guiding the active ingredient or drug supported in the support groove to the end of the insertion needle.
11. The prefilled patch according to claim 6, wherein the microneedles include those formed of a bioabsorbable metal, and the bioabsorbable metal includes at least one component selected from magnesium, calcium, zinc, and iron.
12. The prefilled patch according to any one of claims 1 to 11, further comprising release paper adhering to the area surrounding the adhesive layer.
13. The aforementioned release paper is provided in pairs and adheres to the area surrounding the adhesive layer. The pair of release papers move in different directions from each other and are separated from the adhesive layer. The prefilled patch according to claim 12, characterized in that one of the pair of release papers adheres to the handle.
14. The adhesive layer that adheres to the skin, A capsule provided in the adhesive layer, in which an active ingredient or drug is stored, Includes a handle that is integrally connected to the capsule, A pre-filled patch characterized in that when the handle is pulled by the user, the capsule is cut open so that the active ingredient or drug can be dispensed.
15. The prefilled patch according to claim 14, characterized in that one end of the handle in the longitudinal direction is integrally connected to the capsule, and the other end of the handle in the longitudinal direction is exposed to the outside of the adhesive layer.
16. The prefilled patch according to claim 15, characterized in that a cutting line or a cut line is formed on the portion of the capsule that is directly connected to one end of the handle in the longitudinal direction.
17. The adhesive layer that adheres to the skin, A capsule provided on the adhesive layer, in which an active ingredient or drug is stored, The capsule includes a handle connected to a discharge port formed in the capsule, The handle is a pre-filled patch that is separated from the capsule by the user to open the discharge port, The capsule is provided on one surface of the adhesive layer, while remaining in closer proximity to the skin than the adhesive layer, and has a smaller surface area than the surface area formed by the adhesive layer. One end of the handle in the longitudinal direction blocks the discharge port formed in the capsule, and the other end of the handle in the longitudinal direction is exposed to the outside of the adhesive layer. The aforementioned discharge ports are provided in large numbers, and one end of the handle is branched into a number of parts corresponding to the number of discharge ports. A pre-filled patch featuring the following characteristics.
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