Pharmaceutical composition containing coated API

Coating APIs with water-insoluble materials and silica, applied with mechanical and thermal energy, addresses aggregation and air miscibility issues, improving stability and dosing accuracy in pharmaceutical compositions.

JP7853948B2Active Publication Date: 2026-04-30CATALENT U K SWINDON ZYDIS LIMITED
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
CATALENT U K SWINDON ZYDIS LIMITED
Filing Date
2021-07-30
Publication Date
2026-04-30

AI Technical Summary

Technical Problem

Existing pharmaceutical compositions face challenges in handling hydrophobic coated API particles, which can lead to aggregation, air miscibility, and erosion of functional coatings, resulting in instability and inaccurate dosing due to increased disintegration time and heterogeneous suspensions.

Method used

A method involving coating APIs with a water-insoluble material like wax and a second coating of silica, applied with mechanical and thermal energy, followed by sieving and freeze-drying, to minimize aggregation and air miscibility, while preserving the functional coating.

Benefits of technology

This approach enhances the stability and homogeneity of pharmaceutical compositions, ensuring accurate dosing and prolonged shelf life by reducing aggregation and air entrainment, maintaining the functional coating integrity.

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Abstract

Pharmaceutical compositions containing coated APIs and methods for preparing the pharmaceutical compositions are provided. Excess coating material not bound to the coated API can be removed by a sieving process. Coating and dosage ratios can also be optimized to minimize the amount of excess unbound coating material. Additionally, the compositions can be formulated to preserve the functional coating of the coated API and minimize aeration of the API when mixed into a suspension.
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Description

Technical Field

[0001] Cross - reference to related applications This application claims priority based on U.S. Provisional Application No. 63 / 059,684, filed on July 31, 2020, the entire content of which is incorporated herein by reference.

[0002] The present invention relates to a process for coating an API and incorporating the coated API into a lyophilized orally disintegrating dosage form. Specifically, the present invention relates to a process for coating an API, which comprises a water - insoluble material and silica.

Background Art

[0003] [[ID=l8]]Pharmaceutical compositions typically contain both one or more inactive ingredients along with an active pharmaceutical ingredient. The active pharmaceutical ingredient (API) can be biologically active and can be designed to directly affect a patient's symptoms, disease, disorder, and / or illness. One example of an active pharmaceutical ingredient is ibuprofen. On the other hand, the inactive ingredients of a pharmaceutical composition are pharmaceutically inactive and can be used for various purposes including improving long - term stabilization, filling or diluting a solid dosage form, promoting drug absorption, adjusting the viscosity of a liquid dosage form, enhancing solubility, and / or assisting in the manufacture of the pharmaceutical composition, but are not limited thereto.

[0004] In addition, some inactive ingredients can be used to mask the taste of an API such as ibuprofen. Many APIs are known to exhibit unpleasant sensory properties such as bitterness, a burning sensation, and numbness when dissolved in the mouth. For example, some orally administered pharmaceutical compositions are designed to disperse in the mouth to enable administration without water and are targeted at pediatric patients, elderly patients, animal patients, and / or other types of patients who may have difficulty swallowing. For these types of orally administered pharmaceutical compositions, inactive ingredients can be used to form a "functional coating" for masking the taste of the API.

[0005] For example, inert components can be used to mask the taste of APIs by wet-coating or dry-coating API particles to create a functional coating surrounding the API particles, which prevents API release in the mouth. In wet particle coating, the inert components (polymers and additives) are dissolved or dispersed in a solvent or water to form a suspension or solution. This suspension or solution can then be sprayed onto the surface of the API particles to form a film coating by evaporation of the solvent or water. Examples of wet particle coating techniques include microencapsulation, fluidized bed coating, spray drying, and pan coating. In dry particle coating (also called solvent-free coating), API particles are physically coated with fine particles of inert components (polymers and additives) to form a particle complex. Examples of dry particle coatings include hot-melt coating, supercritical coating, impaction coating, and electrostatic coating. API particles coated with taste-masking inert components can provide a more pleasant experience for patients who have difficulty swallowing or who have taste sensitivity that would otherwise lead to a negative patient experience and poor medication adherence.

[0006] In addition, one type of pharmaceutical composition is the orally disintegrating tablet (ODT). ODTs are typically pharmaceutical compositions intended for pediatric patients, elderly patients, animal patients, and / or other types of patients who may have difficulty swallowing. [Prior art documents] [Patent Documents]

[0007] [Patent Document 1] U.S. Patent No. 5,976,577 [Patent Document 2] U.S. Patent No. 6,413,549 [Patent Document 3] U.S. Patent No. 6,709,669 [Patent Document 4] U.S. Patent Application Publication No. 2011 / 0229573 [Patent Document 5] U.S. Patent No. 9,107,851 [Overview of the Initiative] [Problems that the invention aims to solve]

[0008] To accurately distribute pharmaceutical compositions into small, dosable forms, hydrophobic coated API particles can be added to a matrix solution / suspension to form a pharmaceutical suspension. Mixing to form a pharmaceutical suspension allows for improved dispensing accuracy. Often, this pharmaceutical suspension containing hydrophobic coated API particles is poured into a mold, dried, and then the molded product can be transferred to, for example, a bottle. However, this type of handling of pharmaceutical compositions can increase the risk of damage and contamination.

[0009] Therefore, many API suspensions are now instead placed in pre-formed blister packs. Pre-formed blister packs eliminate one of the handling steps described above. Instead of placing the suspension in a mold and then transferring the molded product to a bottle for packaging, pre-formed blister packs allow manufacturers to place the pharmaceutical suspension in pre-formed blister packs that can then be frozen, dried, sealed, and packaged. Thus, pre-formed blister packs function as both a mold and a package in which the pharmaceutical composition can be stored. [Means for solving the problem]

[0010] The applicants have discovered an API coating process that eliminates water-soluble and / or water-swellable materials from the coating. Instead, the API to be coated may be coated with a water-insoluble material such as wax. In addition, the API may be coated with a second coating material (e.g., silica), which may be in the same coating as the water-insoluble material, in a second coating on top of the water-insoluble material coating, or a combination thereof. Furthermore, the applicants have discovered that the API coating process does not require a coating or grinding medium. Instead, the API may simply be coated using a first coating material (e.g., a water-insoluble material) and a second coating material (e.g., silica), and mechanical and / or thermal energy applied to a combination of the API, the first coating material, and the second coating material.

[0011] In addition, the present invention provides a method for minimizing the aggregation of coating materials in coated APIs manufactured using various mixing processes. Aggregation of coating materials can reduce the stability of pharmaceutical products over time. For example, if a pharmaceutical product contains aggregated coating material, the disintegration time of the pharmaceutical product may increase over time. Increased disintegration time and / or decreased dissolution rate implies an unstable pharmaceutical product. An unstable pharmaceutical product may lead to a shorter shelf life than desired. Therefore, the embodiments provided can help to minimize the aggregation of coating materials in coated APIs, thereby improving the stability of pharmaceutical products during storage and increasing their shelf life.

[0012] For example, the method described includes a step of removing excess coating material from the coated API to minimize the possibility of aggregation of coating material particles. In particular, the method provided includes a step of sieving the coated API so that the final pharmaceutical product is adequately surrounded by a dry matrix and any aggregation of coating material particles during storage is minimized. The pharmaceutical composition described remains relatively stable over time, resulting in a certain decay time and dissolution rate.

[0013] Compositions and methods for preparing such compositions are also provided that can minimize air miscibility of hydrophobic coated APIs in suspensions. For example, hydrophobic coated APIs can be mixed with a matrix solution / suspension to form a pharmaceutical suspension, which can then be precisely molded to form a solid pharmaceutical composition (e.g., articles, tablets, etc.) for administration to a patient. However, the hydrophobicity of the coated APIs can cause them to resist dispersion in the solution / suspension. As a result, this can cause air to be entrained into the pharmaceutical suspension, also known as air miscibility (aeration). Entrained air or air miscibility in a pharmaceutical suspension can cause phase separation of the coated APIs in the pharmaceutical suspension, resulting in a heterogeneous pharmaceutical suspension. Air miscibility and heterogeneous pharmaceutical suspensions can lead to insufficient input mass accuracy and insufficient content uniformity in the finished product (i.e., pharmaceutical composition) of pharmaceutical suspensions containing hydrophobic APIs that have been placed in pre-formed blister packs.

[0014] Traditional mechanical means for preventing and / or minimizing air miscibility have not been found successful due to the high viscosity of pharmaceutical suspensions. For example, minimizing air miscibility can be achieved by applying a vacuum to the pharmaceutical suspension, but this method may not be suitable depending on the composition and further processing requirements. In particular, applying a vacuum to a pharmaceutical suspension can increase its viscosity because viscous suspensions "cling" to the accompanying air. Volatile formulation components may also be lost during vacuum processing. Furthermore, traditional anti-air miscibles such as ethanol or simethicone emulsions are similarly ineffective in preventing air miscibility in suspensions.

[0015] Therefore, the compositions and methods provided herein minimize air miscibility in pharmaceutical suspensions containing hydrophobic-coated APIs, thereby improving the homogeneity of the suspension and enhancing the accuracy of the input mass (dose mass). Specifically, the embodiments provided may include a matrix solution / suspension containing a compound comprising a terpene and / or terpinol. In some embodiments, the matrix solution / suspension may contain limonene, which is a terpene. By introducing a compound containing a terpene such as limonene, the hydrophobic-coated API can be more easily incorporated into the matrix solution / suspension, thereby minimizing the overall air miscibility of the pharmaceutical suspension.

[0016] Also provided herein are pharmaceutical compositions formulated to retain the functional coating of functionally coated APIs during the manufacturing process, and methods for preparing such pharmaceutical compositions. Functionally coated APIs are often mixed to form pharmaceutical suspensions. Pharmaceutical suspensions allow for precise doses to form administerable pharmaceutical products. Typically, the shear force required to incorporate functionally coated APIs into pharmaceutical suspensions can erode the functional coating. This erosion of the coating can destroy or impair the properties of the functional coating. Therefore, functionally coated APIs with an eroded coating may exhibit increased dissolution rate and reduced taste-masking properties when administered orally to a patient.

[0017] However, the pharmaceutical compositions and methods for preparing the pharmaceutical compositions provided herein include preserving the coating of functionally coated APIs in a pharmaceutical suspension with hydrophobic fumed silica. Specifically, the hydrophobic fumed silica can provide a protective layer surrounding and / or embedded in the functionally coated API particles. In some embodiments, a solvent-free process for producing functionally coated APIs can produce APIs including a first coating. According to some embodiments, the hydrophobic fumed silica can be added during a solvent-free mixing process to create a second protective coating surrounding and / or partially or completely embedded in the functionally coated APIs.

[0018] In addition, the second protective coating can limit the interaction between the functionally coated API and the matrix solution / suspension to minimize the influence of the functionally coated API on the performance characteristics of the matrix.

[0019] In some embodiments, the pharmaceutical composition comprises an API of 85-95% w / w including a water-insoluble material and at least one coating containing silica; a matrix-forming agent of 3-7% w / w; and a structure-forming agent of 2-6% w / w. In some embodiments, the water-insoluble material constitutes 10-30% w / w of the API including at least one coating. In some embodiments, the silica constitutes 0.5-2% w / w of the API including at least one coating. In some embodiments, the water-insoluble material comprises wax. In some embodiments, the wax comprises carnauba wax. In some embodiments, the silica comprises hydrophobic silica. In some embodiments, the matrix-forming agent comprises gelatin. In some embodiments, the structure-forming agent comprises mannitol. In some embodiments, the pharmaceutical composition comprises a viscosity modifier. In some embodiments, the pharmaceutical composition comprises 0.1-1% w / w of the viscosity modifier. In some embodiments, the viscosity modifier comprises xanthan gum. In some embodiments, the pharmaceutical composition comprises a sweetener. In some embodiments, the pharmaceutical composition comprises 0.1-2% w / w of the sweetener. In some embodiments, the sweetener is sucralose. In some embodiments, the pharmaceutical composition contains a flavoring agent. In some embodiments, the pharmaceutical composition contains 0.5 to 3% w / w of a flavoring agent. In some embodiments, the flavoring agent contains terpenes and / or terpinol. In some embodiments, the pharmaceutical composition has a mid-volume 60-minute dissolution result of 70% or less after 15 minutes. In some embodiments, the pharmaceutical composition has a mid-volume 60-minute dissolution result of 85% or less after 30 minutes. In some embodiments, the pharmaceutical composition has a mid-volume 60-minute dissolution result of 90% or less after 45 minutes. In some embodiments, the pharmaceutical composition has a mid-volume 60-minute dissolution result of 95% or less after 60 minutes.

[0020] In some embodiments, a method of preparing a coated API includes sieving a raw API, mixing the sieved raw API and a water-insoluble material in a container, applying mechanical energy to the container and heating the container to a temperature of 50 °C or higher, continuing to apply mechanical energy and adding silica to the container while maintaining the temperature of the container to form a coated API comprising at least one coating comprising the water-insoluble material and silica. In some embodiments, sieving the raw API includes sieving the raw API to an average particle size of 75 to 250 microns. In some embodiments, the method includes sieving the coated API. In some embodiments, sieving the coated API includes sieving the coated API to an average particle size of 75 to 250 microns. In some embodiments, the water-insoluble material includes wax. In some embodiments, the wax includes carnauba wax. In some embodiments, the silica includes hydrophobic silica. In some embodiments, the ratio of at least one coating of the API comprising at least one coating to the API is 15 to 40:60 to 85.

[0021] In some embodiments, a method for preparing a pharmaceutical composition includes the steps of forming a pharmaceutical suspension comprising: forming a pharmaceutical suspension comprising 30-50% w / w of an API comprising at least one coating containing a water-insoluble material and silica; 1-5% w / w of a matrix-forming agent; 1-3% w / w of a structure-forming agent; and a solvent; placing the pharmaceutical suspension into a mold; and freeze-drying the placed pharmaceutical suspension in the mold to form a pharmaceutical composition. In some embodiments, the water-insoluble material constitutes 10-30% w / w of the API comprising at least one coating. In some embodiments, the silica constitutes 0.5-2% w / w of the API comprising at least one coating. In some embodiments, the water-insoluble material includes wax. In some embodiments, the wax includes carnauba wax. In some embodiments, the silica includes hydrophobic silica. In some embodiments, the matrix-forming agent includes gelatin. In some embodiments, the structure-forming agent includes mannitol. In some embodiments, the pharmaceutical suspension includes a viscosity modifier. In some embodiments, the pharmaceutical suspension includes 0.01-0.1% w / w of a viscosity modifier. In some embodiments, the viscosity modifier includes xanthan gum. In some embodiments, the pharmaceutical suspension includes a sweetener. In some embodiments, the pharmaceutical suspension includes 0.1 to 1% w / w of a sweetener. In some embodiments, the sweetener is sucralose. In some embodiments, the pharmaceutical suspension includes a flavoring agent. In some embodiments, the pharmaceutical suspension includes 0.1 to 1% w / w of a flavoring agent. In some embodiments, the flavoring agent includes terpenes and / or terpinol.

[0022] In some embodiments, a method of preparing a pharmaceutical composition comprises the steps of screening raw API, mixing the screened raw API and water-insoluble materials in a container, applying mechanical energy to the container and heating the container to a temperature of 50 °C or higher, adding silica to the container while continuing to apply mechanical energy and maintaining the temperature of the container to form a coated API comprising at least one coating comprising the water-insoluble material and silica, screening the coated API, forming a pharmaceutical suspension comprising 30-50% w / w of the coated API comprising at least one coating comprising the water-insoluble material and silica, 1-5% w / w of a matrix former, 1-3% w / w of a structure former, and a solvent, placing the pharmaceutical suspension in a mold, and lyophilizing the placed pharmaceutical suspension in the mold to form a pharmaceutical composition.

[0023] Additional advantages will be readily apparent to those skilled in the art from the following detailed description. The examples and descriptions herein are to be considered illustrative in nature and not restrictive.

[0024] All publications, including patent documents, scientific papers, and databases, referred to in this application are hereby incorporated by reference in their entirety for all purposes to the same extent as if each individual publication were incorporated by reference individually. If the definitions set forth herein conflict with or otherwise do not agree with the definitions set forth in patents, applications, published applications, and other publications incorporated herein by reference, the definitions set forth herein shall control.

[0025] The present invention will now be described by way of example only, with reference to the accompanying drawings.

Brief Description of the Drawings

[0026] [Figure 1]Figure 1A shows API particles coated with deformable coating material particles (i.e., a first coating layer) according to some embodiments. Figure 1B shows API particles coated with a continuous film layer of deformable coating material (i.e., a first coating layer) according to some embodiments. Figure 1C shows API particles coated with a continuous film layer of deformable coating material (i.e., a first coating layer) including partially embedded and / or embedded silica particles (i.e., a second coating layer) on the surface of the first coating layer, according to some embodiments. [Figure 2] Figure 2 shows scanning electron microscope (SEM) images of uncoated API particles according to some embodiments. [Figure 3] Figure 3 shows SEM images of coated API particles according to some embodiments. [Figure 4-1] Figure 4A shows a series of micrographs of the sieved coated APIs from Examples 1-4. Figure 4B shows a series of micrographs of the sieved coated APIs from Examples 1-4. [Figure 4-2] Figure 4C shows a series of micrographs of the sieved coated APIs from Examples 1-4. Figure 4D shows a series of micrographs of the sieved coated APIs from Examples 1-4. [Figure 4-3] Figure 4E shows a series of micrographs of the sieved coated APIs from Examples 1-4. Figure 4F shows a series of micrographs of the sieved coated APIs from Examples 1-4. [Figure 4-4] Figure 4G shows a series of micrographs of the sieved coated APIs from Examples 1-4. Figure 4H shows a series of micrographs of the sieved coated APIs from Examples 1-4. [Figure 4-5]Figure 4I shows a series of micrographs of the sieved coated APIs from Examples 1-4. Figure 4J shows a series of micrographs of the sieved coated APIs from Examples 1-4. [Figure 5] Figure 5 is a graph showing the evaluation of the d10 particle size of functionally coated APIs, including a second protective coating of silica at different concentrations, according to some embodiments. [Figure 6A] Figure 6 is a graph showing the evaluation of the d50 particle size of functionally coated APIs, including a second protective coating of silica at different concentrations, according to some embodiments. [Figure 6B] Figure 6 is a graph (second half) showing the evaluation of d50 particle size of functionally coated APIs, including a second protective coating of silica at different concentrations, according to some embodiments. [Figure 7] Figure 7 is a graph showing the evaluation of the d90 particle size of functionally coated APIs, including a second protective coating of silica at different concentrations, according to some embodiments. [Figure 8] Figure 8 shows a graph of low-volume dissolution of APIs coated with carnauba wax containing various levels of hydrophobic fumed silica, according to some embodiments. [Figure 9] Figure 9 shows a graph of low-volume dissolution of APIs coated with sazole (synthetic) wax containing various levels of hydrophobic fumed silica, according to some embodiments. [Figure 10] Figure 10 shows a graph illustrating the evaluation of the d10 particle size of hydrophobic coated APIs using liquid flavorings of various concentrations. [Figure 11] Figure 11 shows a graph illustrating the evaluation of the d50 particle size of hydrophobic coated APIs using liquid flavorings of various concentrations. [Figure 12] Figure 12 shows a graph illustrating the evaluation of the d90 particle size of hydrophobic coated APIs using liquid flavorings of various concentrations. [Figure 13]Figure 13 shows a graph illustrating the evaluation of d10 particle size of hydrophobic coated APIs using various concentrations of pure limonene. [Figure 14] Figure 14 shows a graph illustrating the evaluation of d50 particle size of hydrophobic coated APIs using various concentrations of pure limonene. [Figure 15] Figure 15 shows a graph illustrating the evaluation of d90 particle size of hydrophobic coated APIs using various concentrations of pure limonene. [Figure 16] Figure 16 shows a graph comparing various particle size analyses of hydrophobic coated APIs using strawberry and orange liquid flavorings. [Figure 17] Figure 17 illustrates an example flowchart of a method for manufacturing a coated API according to some embodiments disclosed herein. [Figure 18] Figure 18 illustrates an example flowchart of a method for preparing a dosage form according to some embodiments disclosed herein. [Figure 19] Figure 19A shows an SEM image of sample Z3703 / 136 / 07. Figure 19B shows an SEM image of sample Z3703 / 136 / 07. [Figure 20] Figure 20A shows an SEM image of sample Z3703 / 136 / 09. Figure 20B shows an SEM image of sample Z3703 / 136 / 09. [Figure 21] Figure 21A shows an SEM image of sample Z3703 / 136 / 10. Figure 21B shows an SEM image of sample Z3703 / 136 / 10. [Figure 22] Figure 22A shows an SEM image of sample Z3703 / 136 / 12. Figure 22B shows an SEM image of sample Z3703 / 136 / 12. [Figure 23] Figure 23 is a chart showing the dissolution results of coated APIs produced with and without the coating medium described in the examples. [Figure 24]Figure 24 is a chart comparing API raw materials and coated API raw materials using a low-volume 5-minute dissolution test. [Figure 25] Figure 25 is a diagram showing the dissolution profile of coated APIs over a 60-minute time frame as disclosed herein. [Figure 26] This chart shows a comparison of the dissolution of coated API (LVD) and 200 mg of finished product (MVD) as described herein. [Figure 27] Figure 27 is a chart showing APAP raw materials and coated APAP using a low-volume dissolution test. [Modes for carrying out the invention]

[0027] Exemplary embodiments of methods for coating APIs that can exclude water-soluble and / or water-swellable materials from the API coating are described herein. These methods may include a step of coating the API with a water-insoluble material, such as wax. In addition, the API may be coated with a second coating material (e.g., silica), which may be in the same coating as the water-insoluble material, in a second coating on top of the water-insoluble material coating, or a combination thereof. The coated API can then be mixed with a matrix premix to form a pharmaceutical suspension, which can then be freeze-dried to form a pharmaceutical composition (e.g., a dosage form).

[0028] Figures 1A, 1B, and 1C show different phases of coated API particles (e.g., ibuprofen or acetaminophen (APAP) according to some embodiments). Figure 17 shows an example of a flow chart for coating API particles according to some embodiments described herein. In some embodiments, API particles can be mixed with one or more coating materials to create coated APIs. The applicant has found that water-soluble and / or water-swellable materials are not required for the coating. Therefore, the coating may include materials containing water-insoluble materials.

[0029] For example, Figure 1A shows API particles 102 surrounded by coating material particles 104. To achieve the coated API particles of Figure 1A, a mixture of API (i.e., API particles 102) and one or more coating materials (i.e., coating material particles 104) can be exposed to mechanical and / or thermal energy to create a regular mixture of API particles 102 containing discrete layers of coating material particles 104 that layer the surface of the API particles 102. The API particles 102 in Figure 1A are shown with a single layer of discrete coating material particles. However, the API particles 102 may have two or more discrete layers of coating particles. In addition, Figure 2 shows an SEM image of uncoated API particles.

[0030] Figure 1B shows API particles 102 surrounded by a continuous, deformable film layer 104. Specifically, Figure 1B shows that all of the coating material particles 104 can be deformable and can deform when subjected to mechanical stress and / or increased temperature. Thus, since all coating materials include deformable properties, the coating material 104 in Figure 1B is a relatively smooth and continuous coating layer after exposure to mechanical and / or thermal energy. In some embodiments, the API particles 102 may have two or more relatively smooth and continuous coating layers. When used herein, “continuous film” may be a layer surrounding API particles formed by melting / softening or otherwise decomposing one or more deformable components of individual coating material particles so that the individual coating material particles constitute a single continuous layer surrounding the API particles. Figure 3 also provides an SEM image showing coated API particles according to some embodiments.

[0031] In some embodiments, one or more coating materials may be non-deformable but may be embedded in a deformable coating layer. Thus, a continuous film may contain solid particles of non-deformable material embedded within the deformed coating material. Figure 1C shows that a continuous film 104 may contain one or more solid non-deformable particles 108 of non-deformable material partially embedded and / or embedded within the deformed coating material of the continuous film 104. This continuous film 104 in Figure 1B or Figure 1C can ensure coating (e.g., a coating that masks the taste of the API) and delayed API release. In some embodiments, the API particles 102 may have two or more continuous coating layers in which non-deformable coating material particles are partially embedded and / or embedded. Figure 3 also provides an SEM image showing functionally coated API particles according to some embodiments.

[0032] As used herein, the terms “deformable,” “deformable component,” “deformable component of coating material,” and other related terms refer to one or more components of water-insoluble material (material insoluble in water) that can decompose when subjected to mechanical stress and / or elevated temperature. As described in the examples, API coatings can be achieved without the use of water-soluble or water-swellable materials.

[0033] In some embodiments, a method for coating an API may include the steps of sieving an untreated API, coating the API with a coating material, and sieving the coated API, as shown in Figure 17. In some embodiments, the untreated API (e.g., ibuprofen, acetaminophen, etc.) may be sieved to an average size of 50–500 microns, 50–300 microns, or 75–250 microns. In some embodiments, the untreated API may be sieved using 25, 50, 75, or 100 (bottom sieve mesh) and 150, 200, 250, 300, 400, or 500 (top sieve mesh) micron meshes and appropriate sieving equipment to obtain a particle size fraction desirable for the coating process by removing fine and coarse material.

[0034] Any API may be used in this invention. Those skilled in the art will understand that certain active ingredients and / or APIs are desirable for formulation into dosage forms for various reasons, such as stability, compatibility with other ingredients, and desired drug release profiles. In some embodiments, the API may be an active pharmaceutical ingredient for the treatment of human or veterinary diseases. The API may be an ingredient delivered using a solid lyophilized dosage form. The API may be an ingredient that can be absorbed via mucous membranes. The API may be one or more of antibacterial agents, antifungal agents, antiprotozoal agents, antiviral agents, labor-inducing agents, spermicides, prostaglandins, steroids, and bactericides, proteins / peptides, and vaccine antigens.

[0035] APIs may include pharmaceutical ingredients as well as other types of active ingredients that can be ingested, such as vitamins and nutritional supplements. Suitable APIs include, without limitation, analgesics and anti-inflammatory agents (e.g., ibuprofen), antacids, anthelmintics, antiarrhythmics, antibacterials, anticoagulants, anxiolytics and antidepressants, antidiabetics, antidiarrheals, antiepileptics, antifungals, antigout agents, antihypertensives, antimalarial drugs, antimigraine agents, antimuscarinic agents, antineoplastic agents and immunosuppressants, antiparasitic agents, antirheumatic agents, antithyroid agents, antiviral agents, anxiolytics, sedatives, hypnotics and tranquilizers. This includes beta-blockers, cardiac stimulants, corticosteroids, antitussives, cytotoxic agents, decongestants, diuretics, enzymes, antiparkinsonian agents, gastrointestinal agents, histamine receptor antagonists, lipid regulators, local anesthetics, neuromuscular agents, nitrates and antianginal agents, nutritional supplements, opioid analgesics, oral vaccines, proteins, peptides and recombinants, sex hormones and contraceptives, spermicides, stimulants, smoking cessation products, and combinations thereof. A list of specific examples of active ingredients can be found in U.S. Patent Nos. 5,976,577, 6,413,549, and 6,709,669, and U.S. Patent Application Publication No. 2011 / 0229573, all of which are incorporated herein by reference in their entirety.

[0036] An API may be a single active pharmaceutical ingredient, such as a single chemical substance, or a mixture of several active pharmaceutical ingredients. The active pharmaceutical ingredient may be one of many classifications of active pharmaceutical ingredients. Examples of active pharmaceutical ingredients include acyclovir, fluconazole, progesterone and its derivatives, nonoxynol-9, terbutaline, lidocaine, testosterone and its derivatives, dinoprostone, lactobacillus, estrogen and its derivatives, naphthalene 2-sulfonic acid, rasmiditane, doxycycline, droxidopa, sapropterin, butoconazole, clindamycin nitrate / phosphate, neomycin sulfate, polymyxin sulfate, nystatin, clotrimazole, and Chistrin sulfate, Glyminox, Miconazole nitrate, Benzalkonium chloride, Sodium lauryl sulfate, Tenofovir, Insulin, Calcitonin, Danazol, Ibuprofen, Acetaminophen, Cefpodoxime proxetil, Desloratadine, Dextromethorphan, Diphenhydramine hydrochloride, Vitamins and / or minerals, Adipic acid, Ascorbic acid, Macrolide antibiotics, NS-AIDS, Cefuroxime Cetyl, amobarbital, ciprofloxacin hydrochloride, sildenafil citrate, pinaverium bromide, propantheline bromide, triprolidine HCl, dimenhydrinate, cefcanerdaloxate HCl, enoxacin, sparfloxacin, aspirin, famotidine, amoxicillin trihydrate, morphine HCl, amiprilose HCl, terfenadine, beclamide, clarithromycin, roxithromycin, nizatidine, cetraxate H The active pharmaceutical ingredient may be selected from, but is not limited to, the group consisting of Cl, ciprofloxacin, bifemelan HCl, cefuroxime axetil, pirenzepine and / or oxybutynin, diclofenac, nicorandil, levofloxacin, acriflavin, leuprorelin acetate, metronidazole, benzydamine hydrochloride, chloramphenicol, oxybutynin, ethinylestradiol, prostaglandins, insulin, calcitonin, and combinations thereof. The active pharmaceutical ingredient may also be a vaccine antigen for the treatment of hepatitis B, HIV, HPV, chlamydia, gonorrhea, etc.

[0037] APIs may also include salts, esters, hydrates, solvates, and derivatives of any of the aforementioned active ingredients. Suitable derivatives are those known to those skilled in the art to have the same activity as the active ingredient, but with lower or higher activity levels. APIs may also include any active ingredient that is not suitable for oral delivery methods or oral delivery compositions.

[0038] If present, the API is typically used in the formulation in an effective amount necessary to provide a dose required to produce at least one physiological effect, as determined by clinical studies. Those skilled in the art can readily determine an appropriate amount of the active ingredient to be included in the multi-dosage forms made according to this disclosure.

[0039] In some embodiments, the coated API particles or pharmaceutical composition may contain 30.0 to 90.0% w / w of API. In some embodiments, the coated API particles or pharmaceutical composition may contain 40.0 to 85.0% w / w, 50.0 to 80.0% w / w, 65.0 to 80.0% w / w of API, or 68 to 78% w / w of API. In some embodiments, the coated API particles or pharmaceutical composition may contain more than 40.0% w / w, more than 50.0% w / w, more than 60.0% w / w, more than 65% w / w, more than 68% w / w, more than 70.0% w / w, more than 75.0% w / w, more than 77% w / w, more than 80.0% w / w, or more than 85.0% w / w of API. In some embodiments, the coated API particles or pharmaceutical composition may contain APIs in amounts less than 90.0% w / w, less than 85.0% w / w, less than 80.0% w / w, less than 78% w / w, less than 75.0% w / w, less than 70.0% w / w, less than 69% w / w, less than 65% w / w, less than 60.0% w / w, less than 50.0% w / w, or less than 40.0% w / w. In some embodiments, the coated API particles may contain APIs in amounts of about 63.5 to 77.5% w / w. In some embodiments, the pharmaceutical composition may contain APIs in amounts of about 68.75% w / w.

[0040] The coating 104 surrounding the API particles 102 may include a water-insoluble material. In some embodiments, this coating can directly coat the API particles (e.g., ibuprofen) or coat API particles that already contain one or more coatings. In some embodiments, the ratio of the coating material to the API can be optimized to minimize excess coating material. For example, the coating material may constitute 5-85% w / w, 10-50% w / w, 15-30% w / w, 20-25% w / w, or 22.5% w / w of the mixture of API and coating material. In some embodiments, the coating material may constitute less than 85%, less than 80%, less than 75%, less than 70%, less than 65%, less than 60%, less than 55%, less than 50%, less than 45%, less than 40%, less than 35%, less than 30%, less than 25%, less than 20%, less than 15%, or less than 10% of the mixture of API and coating material or the pharmaceutical composition. In some embodiments, the coating material may comprise more than 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, or 75% of a mixture of the API and the coating material or the pharmaceutical composition. In some embodiments, the percentage of the coating material may comprise two or more layers of coating material.

[0041] The water-insoluble material of the coating material may contain particles with an average particle size smaller than the average particle size of the API. For example, the water-insoluble material may contain average particle sizes of about 1–20 μm, about 1–12 μm, about 2–10 μm, about 5–12 μm, or about 5–6 μm. In some embodiments, the water-insoluble material may be about one-tenth the average particle size of the API to allow for regular mixing and coating. The water-insoluble material of the coating material may be deformable under mechanical stress and / or elevated temperature. The coated API or pharmaceutical composition may contain 5–70% w / w, 10–60% w / w, 10–50% w / w, 10–40% w / w, 10–35% w / w, 15–30% w / w, 15–25% w / w, or 18–21% w / w of water-insoluble material. In some embodiments, the coated API or pharmaceutical composition may contain more than 5% w / w, more than 10% w / w, more than 15% w / w, more than 18% w / w, more than 20% w / w, more than 21% w / w, more than 25% w / w, more than 30% w / w, more than 35% w / w, or more than 40% w / w of water-insoluble material. In some embodiments, the coated API or pharmaceutical composition may contain less than 70% w / w, less than 60% w / w, less than 50% w / w, less than 45% w / w, less than 40% w / w, less than 35% w / w, less than 30% w / w, less than 25% w / w, less than 22% w / w, or less than 20% w / w of water-insoluble material. In some embodiments, the coated API may contain 21% w / w of water-insoluble material. In some embodiments, the pharmaceutical composition may contain 18.63% w / w of water-insoluble material. Examples of suitable water-insoluble materials include, but are not limited to, ethylcellulose, polyethylene, polypropylene, polytetrafluoroethylene, carnauba wax, candelilla wax, castor wax, polyamide wax, and / or synthetic waxes.

[0042] Dry coating the API with silica as a second coating material can slow down the dissolution rate and improve the in vivo taste-masking performance of the coating. As discussed above, the second coating material can form a second coating on a water-insoluble material, and may be part of the coating on the water-insoluble material, embedded in the coating, or a combination thereof. The coated API (e.g., ibuprofen) may contain 0.5-35% w / w, 0.5-5% w / w, 0.5-3% w / w, or 1-2% w / w of silica. In some embodiments, the coated API or pharmaceutical composition may contain 0.5-20% w / w, 0.5-10% w / w, 0.5-5% w / w, 0.5-3% w / w, or 1-2% w / w of silica (e.g., hydrophobic fumed silica). In some embodiments, the coated API may contain about 1.5% w / w of hydrophobic silica. In some embodiments, the pharmaceutical composition may contain about 1.33% w / w of hydrophobic silica. In some embodiments, the coated API or pharmaceutical composition may contain more than 0.5% w / w, more than 1.0% w / w, more than 1.5% w / w, more than 2.0% w / w, more than 2.5% w / w, more than 3.0% w / w, more than 4.0% w / w, more than 5.0% w / w, more than 10% w / w, more than 15% w / w, more than 20% w / w, more than 25% w / w, or more than 30% w / w of silica (e.g., hydrophobic fumed silica). In some embodiments, the coated API or pharmaceutical composition may contain silica (e.g., hydrophobic fumed silica) in amounts less than 35% w / w, less than 25% w / w, less than 15% w / w, less than 10% w / w, less than 5.0% w / w, less than 4.0% w / w, less than 3.5% w / w, less than 3.0% w / w, less than 2.5% w / w, less than 2.0% w / w, less than 1.5% w / w, or less than 1.0% w / w.Examples of silica that may be used include, but are not limited to, Aerosil R972 silica (Degussa), CAB-O-SIL EH-5 silica (Cabot), OX-50 silica (Degussa), COSM055 (Catalyst & Chemical Ind. Co. Ltd (Japan)), P-500 hydrophilic silica (Catalyst & Chemical Ind. Co. Ltd (Japan)), and TS5 silica (Cabot). Furthermore, suitable equipment that may be used for dry coating with silica includes, but are not limited to, Comil (U3 Quadro Comil, Quadro, Pennsylvania, US), LabRAM (Resodyne, Minnesota, US), Magnetically Assisted Impact Coater (MAIC, Aveka, Minnesota, US), and Fluid Energy Mill (FEM, Qualification Micronizer, Sturtevant, Massachusetts, US).

[0043] In some embodiments, mechanical and / or thermal energy can be used to deform one or more water-insoluble materials and / or silica onto the API during coating. For example, mechanical stress can be applied to a functionally coated API using a PharmaRAM II acoustic mixer (i.e., acoustic energy), RAM 5 Pharma mixer, or RAM 55 Pharma mixer (Resodyn Mixers). The coated API may be exposed to up to 100 times gravity (100G acceleration) during this acoustic mixing process. These high forces can cause particle-particle collisions that generate energy in the form of heat, which can be used to deform water-insoluble materials or silica onto the API.

[0044] In some embodiments, desired amounts of API and water-insoluble material can be added to the mixer, and mechanical and / or thermal energy (i.e., heating) can be used to deform the water-insoluble material onto the API during coating. Next, silica (e.g., hydrophobic silica) can be added to the mixer, and mechanical and / or thermal energy can be continued to be applied to add the silica to or onto the API coating containing the water-insoluble material.

[0045] In some embodiments, a mixer can be used to coat a desired particle size fraction of API, which has been pre-sieved, with a water-insoluble material. The desired particle size fraction of API and the water-insoluble material can be added to the mixer container, and mechanical stress and / or thermal energy can be applied to the mixture in the container. The temperature of the container during mixing may be at least 30°C (±2°C), 35°C (±2°C), 40°C (±2°C), 45°C (±2°C), 50°C (±2°C), 55°C (±2°C), or 60°C (±2°C) and at most 100°C (±2°C), 90°C (±2°C), 80°C (±2°C), 75°C (±2°C), 70°C (±2°C), 65°C (±2°C), 60°C (±2°C), 55°C (±2°C), or 50°C (±2°C), and may be maintained at this set point. Next, silica can be added and mixed while mechanical and / or thermal stress is continuously applied to assist the fluidity of the coated API and improve its handling. In some embodiments, the coated API can be sieved to an average size of 50-500 microns, 50-300 microns, or 75-250 microns. In some embodiments, the coated API can be sieved using 25, 50, 75, or 100 (bottom sieve mesh) and 150, 200, 250, 300, 400, or 500 (top sieve mesh) micron meshes and appropriate sieving equipment to obtain a desired particle size fraction, which can then be collected and stored for downstream dosage form manufacturing.

[0046] The above coating process may result in "detached" or "free" coating material particles. Figure 2 is an SEM image of uncoated API particles. Figure 3 is an SEM image of coated API particles 312. The "detached" or "free" coating material particles 314 are not bound to the coated API particles 312.

[0047] Once sieved, the coated APIs can be mixed into a matrix solution / suspension to form a pharmaceutical suspension (e.g., a matrix solution / suspension containing coated APIs) and then weight-loaded into pockets of a pre-formed blister pack to form aliquots of the pharmaceutical suspension. In some embodiments, the ratio of coated APIs to matrix solution / suspension in the pharmaceutical suspension may be about 20-60:40-80, about 30-50:50-70, about 35-45:55-65, or about 40:60. In some embodiments, the pharmaceutical suspension (i.e., before lyophilization) may contain about 20-60% w / w, about 30-50% w / w, about 35-45% w / w, about 38-42% w / w, or about 40% w / w of coated APIs. In some embodiments, the pharmaceutical suspension may contain at least about 20% w / w, about 25% w / w, about 30% w / w, about 35% w / w, or about 40% w / w of coated APIs. In some embodiments, the pharmaceutical suspension may contain at most about 60% w / w, about 55% w / w, about 50% w / w, about 45% w / w, or about 40% w / w. In some embodiments, the pharmaceutical suspension may contain about 10-50% w / w, about 20-40% w / w, about 25-35% w / w, about 28-33% w / w, or about 31% w / w of APIs (e.g., ibuprofen). In some embodiments, the pharmaceutical suspension may contain about 1-20% w / w, about 5-15% w / w, about 5-10% w / w, or about 8.4% w / w of water-insoluble material (as part of the coated API). In some embodiments, the pharmaceutical suspension may contain about 0.1–5% w / w, about 0.1–3% w / w, about 0.1–1% w / w, or about 0.6% w / w of silica (e.g., hydrophobic silica) (as part of a coated API).

[0048] The matrix solution / suspension may comprise a matrix-forming agent, a structure-forming agent, and a solvent. For example, the matrix-forming agent may comprise any water-soluble or water-dispersible material that is pharmacologically acceptable or inert to functionally coated APIs. In some embodiments, the matrix-forming agent may be a polypeptide such as gelatin. Gelatin may be at least partially hydrolyzed (by heating in water). Other suitable matrix-forming agent materials include polysaccharides, e.g., hydrolyzed dextran, dextrin, and alginates, polyvinyl alcohol, polyvinylpyrrolidone, and / or Acacia rubber This includes, but is not limited to, the following embodiments. In some embodiments, the pharmaceutical suspension contains about 1–10% w / w, about 1–5% w / w, about 1–3% w / w, about 2–3% w / w, or about 2.4% w / w of matrix-forming agent. In some embodiments, the amount of matrix-forming agent in the matrix solution / suspension or pharmaceutical suspension may be about 0.1–10% w / w. In some embodiments, the amount of matrix-forming agent in the matrix solution / suspension or pharmaceutical suspension may include 1.0–8.0% w / w or 2.0–5.0% w / w. In some embodiments, the amount of matrix-forming agent in the matrix solution / suspension or pharmaceutical suspension may include more than 0.1% w / w, more than 0.5% w / w, more than 1.0% w / w, more than 2.0% w / w, more than 3.0% w / w, more than 4.0% w / w, more than 4.5% w / w, more than 5.0% w / w, or more than 8.0% w / w. In some embodiments, the amount of matrix-forming agent in the matrix solution / suspension or pharmaceutical suspension may include less than 10% w / w, less than 8.0% w / w, less than 6.0% w / w, less than 5.0% w / w, less than 4.0% w / w, less than 3.0% w / w, less than 2.5% w / w, less than 2.0% w / w, less than 1.5% w / w, or less than 1.0% w / w.

[0049] Structuring agents or fillers in matrix solutions / suspensions may contain sugars. For example, suitable structural agents include, but are not limited to, mannitol, dextrose, lactose, galactose, glycine, cyclodextrin, or combinations thereof. Structuring agents can be used as fillers in freeze-drying because they crystallize and provide structural robustness to the freeze-dried dosage form. In some embodiments, the amount of structural agent in the matrix solution / suspension may be about 0.1–10% w / w. In some embodiments, the amount of structural agent in the matrix solution / suspension or pharmaceutical suspension may include 1.0–8.0% w / w, 1.0–5% w / w, 1–3% w / w, 1.5–2.0% w / w, or 1.8% w / w. In some embodiments, the amount of the structural agent in the matrix solution / suspension or pharmaceutical suspension may include more than 0.1% w / w, more than 0.5% w / w, more than 1.0% w / w, more than 1.5% w / w, more than 2.0% w / w, more than 3.0% w / w, more than 4.0% w / w, more than 4.0% w / w, more than 5.0% w / w, or more than 8.0% w / w. In some embodiments, the amount of the structural agent in the matrix solution / suspension or pharmaceutical suspension may include less than 10% w / w, less than 8.0% w / w, less than 6.0% w / w, less than 5.0% w / w, less than 4.0% w / w, less than 3.0% w / w, less than 2.5% w / w, less than 2.0% w / w, less than 1.5% w / w, or less than 1.0% w / w.

[0050] In some embodiments, the matrix solution / suspension and pharmaceutical suspension may contain viscosity modifiers. For example, viscosity modifiers in the embodiments provided herein may include vegetable gums such as xanthan gum, arginine, guar gum, or locust bean gum; proteins such as collagen or gelatin; sugars such as agar, carboxymethylcellulose, pectin, or carrageenan; starches such as arrowroot, corn starch, katakuri starch, potato starch, sago, or tapioca; and / or other suitable viscosity modifiers. In some embodiments, the amount of viscosity modifier in the matrix solution / suspension or pharmaceutical suspension may be 0-0.2% w / w, 0.01-0.1% w / w, 0.02-0.08% w / w, or about 0.05% w / w. In some embodiments, the amount of viscosity modifier in the matrix solution / suspension or pharmaceutical suspension may be greater than 0.01% w / w, greater than 0.03% w / w, greater than 0.05% w / w, greater than 0.07% w / w, greater than 0.1% w / w, greater than 0.12% w / w, greater than 0.15% w / w, or greater than 0.17% w / w. In some embodiments, the amount of viscosity modifier in the matrix solution / suspension or pharmaceutical suspension may be less than 0.2% w / w, less than 0.18% w / w, less than 0.15% w / w, less than 0.12% w / w, less than 0.1% w / w, less than 0.08% w / w, less than 0.06% w / w, or less than 0.03% w / w.

[0051] The solvent in the matrix solution / suspension and pharmaceutical suspension may be water, but the suspension solution may also contain a co-solvent. In some embodiments, the solvent may be ethanol, alcohol, isopropanol, other lower alkanols, water (e.g., purified water), or a combination thereof. For example, a suitable solvent and / or co-solvent may be an alcohol such as tert-butyl alcohol. In some embodiments, the amount of solvent in the pharmaceutical suspension may be about 35-75% w / w, about 45-65% w / w, about 50-60% w / w, about 52-58% w / w, or about 54.9% w / w. In some embodiments, the remainder of the pharmaceutical suspension is the solvent (i.e., an appropriate amount so that the whole is 100%).

[0052] Matrix solutions / suspensions and pharmaceutical suspensions may also contain additional pharmaceutically acceptable agents or excipients. Such additional pharmaceutically acceptable agents or excipients include, without limitation, sugars, inorganic salts such as sodium chloride and aluminum silicate, modified starch, preservatives, antioxidants, thickeners, colorants, flavorings, pH adjusters, sweeteners, taste masking agents, and combinations thereof. Suitable colorants may include red, black, and yellow iron oxides and FD&C dyes such as FD&C Blue 2 and FD&C Red 40, and combinations thereof. Suitable flavorings may include mint, raspberry, licorice, orange, lemon, grapefruit, caramel, vanilla, cherry, and grape flavorings, and combinations thereof. In some embodiments, the pharmaceutical suspension contains flavoring agents in amounts of about 0.1–5% w / w, about 0.1–3% w / w, about 0.1–1% w / w, about 0.5–0.9% w / w, or about 0.6% w / w. Suitable pH adjusters may include citric acid, tartaric acid, phosphoric acid, hydrochloric acid, maleic acid, sodium hydroxide (e.g., a 3% w / w sodium hydroxide solution), and combinations thereof. Suitable sweeteners may include sucralose, aspartame, acesulfame K, and thaumatin, and combinations thereof. In some embodiments, the pharmaceutical suspension contains sweeteners in amounts of about 0.1–5% w / w, about 0.1–3% w / w, about 0.1–1% w / w, about 0.1–0.5% w / w, or about 0.24% w / w. Suitable taste masking agents may include sodium bicarbonate, ion exchange resins, cyclodextrin inclusion compounds, adsorbents, or microencapsulating active substances, and combinations thereof. Those skilled in the art can easily determine the appropriate amounts of these various additional excipients as needed.

[0053] Figure 18 shows an example flowchart of a method for producing a dosage form according to some embodiments disclosed herein. In some embodiments, matrix-forming agents, structure-forming agents, viscosity modifiers, and solvents can be mixed together to form a matrix premix. The premix can be heated to approximately 30–90°C, 40–80°C, 50–70°C, 55–65°C, or 60°C to reduce the microbial content. The premix can then be cooled and filtered into a suitable container. Upon completion of filtration, the premix can be cooled to a maximum of 15°C, 20°C, 23°C, 24°C, 25°C, 26°C, 27°C, or 30°C. Sweeteners and flavoring agents can then be added to the premix to form a matrix solution / suspension. The matrix solution / suspension can be mixed (e.g., continuously stirred) and maintained at a maximum of 15°C, 20°C, 23°C, 24°C, 25°C, 26°C, 27°C, or 30°C.

[0054] In some embodiments, premixed and coated APIs can be mixed to form a pharmaceutical suspension. Blister pockets may be filled with a target wet dose (i.e., the pharmaceutical suspension is placed) of a specific amount of the pharmaceutical suspension in a specific mg amount relative to a certain API dosage form (e.g., 200 mg, 100 mg, or 50 mg). Once placed, the blister pack containing the aliquots of the pharmaceutical suspension is frozen under sub-zero conditions. The frozen aliquots of the placed pharmaceutical suspension remain frozen until ready for lyophilization, during which the solvent in the pharmaceutical suspension is removed to form the pharmaceutical composition. In some embodiments, after the pharmaceutical suspension is placed in the blister pocket, the suspension may be frozen in a freezing tunnel. The tunnel temperature and the time the suspension remains in the tunnel may be controlled to ensure that all manufactured units are thoroughly frozen. After freezing, the frozen products may be stored in a freezer that is temperature-controlled and monitored to ensure that the units remain frozen throughout the frozen storage period.

[0055] After a pharmaceutical suspension is frozen, the frozen suspension can be freeze-dried. The freeze-drying process allows for the rapid removal of frozen water by sublimation under low pressure and vacuum, forming a solid dosage form (i.e., pharmaceutical composition). Once dried, the dosage forms can be transferred to a drying storage cabinet and held in a temperature and humidity controlled environment while in-process testing is performed for inspection of product defects and tablet mass. Upon completion of in-process testing, the dried dosage forms can be transferred to a sealing line for attaching foil to blister packs.

[0056] In some embodiments, a pharmaceutical composition (also known as a dosage form) may be prepared by placing a pharmaceutical suspension into a pre-formed blister pack. In some embodiments, lyophilized orally disintegrating tablets may be prepared by placing a suspension into a blister pack. In some embodiments, the dispensing pump dispenses in volume units, but the process is controlled by mass. Therefore, to ensure uniformity of content from one dosage form to the next, the dispensing process may be controlled so that the volume-to-mass percentage of the dispensed suspension is consistent. For example, the volume-to-mass percentage may be consistent within 10 percent, 8 percent, 6 percent, 5 percent, 4 percent, 3 percent, 2 percent, 1.5 percent, 1 percent, 0.5 percent, or 0.25 percent. In some embodiments, the mass of the pharmaceutical suspension to be added is within 10 percent, 8 percent, 6 percent, 5 percent, 4 percent, 2.5 percent, 2 percent, 1.5 percent, 1 percent, 0.5 percent, or 0.25 percent of the target mass. In addition, the viscosity of the pharmaceutical suspension should be kept sufficiently low to facilitate addition. As mentioned above, high viscosity of the pharmaceutical suspension can cause the pump to seize up during addition.

[0057] In some embodiments, the amount of coated API in the pharmaceutical composition (e.g., orally disintegrating tablets or dosage forms) may be about 50–99% w / w, about 70–99% w / w, about 80–95% w / w, about 85–95% w / w, about 85–90% w / w, or about 88.71% w / w. In some embodiments, the amount of coated API in the pharmaceutical composition may be less than 99% w / w, less than 95% w / w, less than 93% w / w, less than 90% w / w, less than 89% w / w, less than 85% w / w, or less than 80% w / w. In some embodiments, the amount of coated API in the pharmaceutical composition may be greater than 50% w / w, greater than 60% w / w, greater than 70% w / w, greater than 80% w / w, greater than 85% w / w, greater than 86% w / w, greater than 87% w / w, greater than 88% w / w, or greater than 90% w / w.

[0058] In some embodiments, the amount of API in the pharmaceutical composition may be about 50-90% w / w, about 60-80% w / w, about 65-75% w / w, about 65-70% w / w, or about 68.75% w / w. In some embodiments, the amount of API in the pharmaceutical composition may be less than 90% w / w, less than 85% w / w, less than 80% w / w, less than 75% w / w, less than 70% w / w, less than 69% w / w, or less than 65% w / w. In some embodiments, the amount of API in the pharmaceutical composition may be greater than 50% w / w, greater than 55% w / w, greater than 60% w / w, greater than 62% w / w, greater than 63% w / w, greater than 65% w / w, greater than 66% w / w, greater than 68% w / w, or greater than 70% w / w.

[0059] In some embodiments, the amount of water-insoluble material in the pharmaceutical composition may be about 1-40% w / w, about 10-30% w / w, about 15-25% w / w, about 15-20% w / w, or about 18.63% w / w. In some embodiments, the amount of water-insoluble material in the pharmaceutical composition may be less than 40% w / w, less than 35% w / w, less than 30% w / w, less than 25% w / w, less than 22% w / w, less than 20% w / w, or less than 19% w / w. In some embodiments, the amount of water-insoluble material in the pharmaceutical composition may be greater than 1% w / w, greater than 5% w / w, greater than 8% w / w, greater than 10% w / w, greater than 12% w / w, greater than 15% w / w, greater than 16% w / w, greater than 17% w / w, or greater than 18% w / w.

[0060] In some embodiments, the amount of silica in the pharmaceutical composition may be about 0.1-5% w / w, about 0.5-3% w / w, about 1-3% w / w, about 1-2% w / w, about 1-1.5% w / w, or about 1.33% w / w. In some embodiments, the amount of silica in the pharmaceutical composition may be less than 5% w / w, less than 4% w / w, less than 3% w / w, less than 2% w / w, less than 1.8% w / w, less than 1.6% w / w, or less than 1.5% w / w. In some embodiments, the amount of silica in the pharmaceutical composition may be greater than 0.01% w / w, greater than 0.05% w / w, greater than 0.1% w / w, greater than 0.5% w / w, greater than 0.75% w / w, greater than 0.8% w / w, greater than 1% w / w, greater than 1.2% w / w, or greater than 1.3% w / w.

[0061] In some embodiments, the amount of matrix-forming agent in the pharmaceutical composition may be about 1-15% w / w, about 1-10% w / w, about 2-8% w / w, about 3-7% w / w, about 4-6% w / w, about 5-6% w / w, or about 5.32% w / w. In some embodiments, the amount of matrix-forming agent in the pharmaceutical composition may be less than 20% w / w, less than 15% w / w, less than 12% w / w, less than 10% w / w, less than 8% w / w, less than 7% w / w, or less than 6% w / w. In some embodiments, the amount of matrix-forming agent in the pharmaceutical composition may be greater than 1% w / w, greater than 2% w / w, greater than 3% w / w, greater than 4% w / w, greater than 5% w / w, or greater than 5.1% w / w.

[0062] In some embodiments, the amount of structure-forming agent in the pharmaceutical composition may be about 1-15% w / w, about 1-10% w / w, about 2-8% w / w, about 2-6% w / w, about 3-7% w / w, about 3-6% w / w, about 3-5% w / w, or about 4% w / w. In some embodiments, the amount of structure-forming agent in the pharmaceutical composition may be less than 20% w / w, less than 15% w / w, less than 12% w / w, less than 10% w / w, less than 8% w / w, less than 7% w / w, or less than 5% w / w. In some embodiments, the amount of structure-forming agent in the pharmaceutical composition may be greater than 1% w / w, greater than 2% w / w, greater than 2.5% w / w, greater than 3% w / w, greater than 3.5% w / w, or greater than 4% w / w.

[0063] In some embodiments, the amount of viscosity modifier in the pharmaceutical composition may be about 0.01 to 1% w / w, about 0.01 to 0.5% w / w, about 0.05 to 0.5% w / w, about 0.08 to 0.3% w / w, or about 0.11% w / w. In some embodiments, the amount of viscosity modifier in the pharmaceutical composition may be less than 1% w / w, less than 0.8% w / w, less than 0.5% w / w, less than 0.3% w / w, less than 0.2% w / w, less than 0.15% w / w, or less than 0.12% w / w. In some embodiments, the amount of viscosity modifier in the pharmaceutical composition may be greater than 0.01% w / w, greater than 0.03% w / w, greater than 0.05% w / w, greater than 0.08% w / w, greater than 0.09% w / w, or greater than 0.1% w / w.

[0064] In some embodiments, the amount of flavoring agent in the pharmaceutical composition may be about 0.01-2% w / w, about 0.01-1% w / w, about 0.1-1% w / w, about 0.3-0.8% w / w, or about 0.53% w / w. In some embodiments, the amount of flavoring agent in the pharmaceutical composition may be less than 2% w / w, less than 1% w / w, less than 0.9% w / w, less than 0.8% w / w, less than 0.7% w / w, less than 0.6% w / w, or less than 0.5% w / w. In some embodiments, the amount of flavoring agent in the pharmaceutical composition may be greater than 0.01% w / w, greater than 0.5% w / w, greater than 0.1% w / w, greater than 0.2% w / w, greater than 0.3% w / w, or greater than 0.4% w / w.

[0065] In some embodiments, the amount of sweetener in the pharmaceutical composition may be about 0.1-5% w / w, about 0.5-3% w / w, about 1-3% w / w, about 1-2% w / w, about 1-1.5% w / w, or about 1.33% w / w. In some embodiments, the amount of sweetener in the pharmaceutical composition may be less than 5% w / w, less than 4% w / w, less than 3% w / w, less than 2% w / w, less than 1.8% w / w, less than 1.6% w / w, or less than 1.5% w / w. In some embodiments, the amount of sweetener in the pharmaceutical composition may be greater than 0.01% w / w, greater than 0.05% w / w, greater than 0.1% w / w, greater than 0.5% w / w, greater than 0.75% w / w, greater than 0.8% w / w, greater than 1% w / w, greater than 1.2% w / w, or greater than 1.3% w / w.

[0066] <Minimizing and / or preventing aggregation of coating materials in coated APIs> The following describes a method for preparing a pharmaceutical composition containing an API that minimizes the amount of excess coating material and / or the amount of aggregation of excess coating material during storage.

[0067] Methods according to some embodiments include a step of removing excess coating material particles to minimize and / or prevent aggregation of the coating material in the pharmaceutical product. In some embodiments, the method may include a step of sieving the untreated API and / or coated API. Specifically, the provided method may include a step of sieving the API and / or coated API to remove unwanted particles, such as excess coating material particles. The sieving process according to the disclosed embodiments may help prevent and / or minimize the possibility of coating material aggregation, which may adversely affect the disintegration time and / or dissolution rate of the final product. The method may also include optimizing the coating and / or dose ratio in this process.

[0068] Methods for minimizing and / or preventing aggregation of coating material particles according to embodiments described herein may be applied to dry solvent-free mixing processes for coating APIs. Accordingly, the methods provided are described below in relation to one or more dry solvent-free mixing processes for coating APIs. However, other variations of the coating / encapsulation process may also be used. For example, sugar coating, film coating, other variations of microencapsulation, compression coating, other variations of dry coating, melt coating, dipping coating, rotary die coating, electrostatic coating, and / or other suitable types of coatings may be used.

[0069] Generally, a solvent-free mixing process for coating APIs involves mixing a coating material with the API to produce a coated API. Next, mechanical and / or thermal stress is applied to the coated API to deform the deformable coating material, creating a continuous film surrounding the API. Then, the coated API is mixed with a matrix solution / suspension to form a pharmaceutical suspension. The pharmaceutical suspension containing the coated API can be placed in pre-formed molds such as blister packs and further processed to produce a dispensable pharmaceutical composition (e.g., lyophilized products, wafers, tablets, etc.).

[0070] However, when the final product (i.e., the pharmaceutical composition) is stored, excess coating material particles that are not bound to the coated API may aggregate. The amount and / or severity of aggregation may increase over time. Excessive aggregation of coating material can adversely affect the functional properties of the coating material by increasing the disintegration time of the pharmaceutical product and / or decreasing the dissolution rate. Increased disintegration time may also lead to unacceptable dispersion and texture characteristics in vivo.

[0071] Therefore, it has been found that by sieving the coated API, excess coating material can be removed, thereby minimizing the amount of excess coating material agglomeration during storage. Furthermore, some embodiments include optimizing the coating ratio (the amount of coating material relative to the amount of uncoated API) and the dose ratio (the amount of coated API relative to an aqueous matrix containing all other inert components) to further minimize the agglomeration of excess coating material particles.

[0072] The embodiments provided herein may apply to coated APIs manufactured using a dry, solvent-free process. Some mixing processes according to the embodiments described herein involve coating the API with a taste-masking coating. Such coatings can control the disintegration time and / or dissolution rate of an orally dispersible pharmaceutical composition such that, when placed in the mouth, the release of the orally administered API is delayed or significantly reduced during the first few minutes, but a sufficient amount of API is released within 30 minutes of oral administration after swallowing. (For example, a sufficient amount of API may be 90% of the amount of API released without coating). U.S. Patent No. 9,107,851 ('851 Patent), which is incorporated in its entirety herein, covers exemplary dry, solvent-free processes for coating pharmaceutical components.

[0073] However, other variations of the coating / encapsulation process may also be used. For example, sugar coating, film coating, other variations of microencapsulation, compression coating, other variations of dry coating, molten coating, dipping coating, rotary die coating, electrostatic coating, and / or other suitable types of coating may be used.

[0074] In addition, the specific data provided herein relate to disintegration time. Disintegration time may be measured according to the method described in the United States Pharmacopeia (Disintegration 701). In some embodiments, disintegration time may be 2 to 30 seconds or 5 to 20 seconds. In some embodiments, disintegration time may be less than 30 seconds, less than 25 seconds, less than 20 seconds, less than 15 seconds, less than 10 seconds, or less than 5 seconds. In some embodiments, disintegration time may be greater than 2 seconds, greater than 5 seconds, greater than 10 seconds, greater than 15 seconds, greater than 20 seconds, or greater than 25 seconds. Similarly, dissolution rate may also be tested according to the method described in the United States Pharmacopeia (Dissolution 711).

[0075] In some embodiments, the untreated API may be sieved before the coating process to achieve a narrower particle size range. For example, the untreated API may be sieved to remove larger particles and / or smaller particles. In some embodiments, one or more meshes may be used to remove certain particles. For example, a sieving device may include a series of two or more meshes to remove particles of a certain size according to the mesh size. The sieve may incorporate a vacuum transfer system for transporting particles through the series of meshes of the device. In addition, an ultrasonic probe may be incorporated into the sieving device to improve material flow and minimize mesh clogging during processing.

[0076] In some embodiments, untreated APIs may be sieved using mesh sizes of 30 μm to 500 μm, 50 μm to 450 μm, 100 μm to 400 μm, 150 μm to 350 μm, or 200 μm to 300 μm. In some embodiments, untreated APIs may be sieved using mesh sizes of less than 500 μm, less than 450 μm, less than 400 μm, less than 350 μm, less than 300 μm, less than 250 μm, less than 200 μm, less than 150 μm, or less than 100 μm. In some embodiments, untreated APIs may be sieved using mesh sizes greater than 30 μm, greater than 50 μm, greater than 100 μm, greater than 150 μm, greater than 200 μm, greater than 250 μm, greater than 300 μm, greater than 350 μm, or greater than 400 μm.

[0077] Once the API is coated with a coating material and the coated API is manufactured, the coated API can be sieved to remove excess coating material and any remaining fine API particles that are uncoated, partially coated, or partially coated. Excess coating material may include coating material particles that are not bound to the coated API. During storage of the final pharmaceutical product, the excess coating material may aggregate. For example, fusion may occur between the excess coating particles and coating particles already bound to the API, which may prevent the disintegration of the unit or tablet or the entry of a medium that would otherwise aid in the dissolution of the coated API. Therefore, aggregation of excess coating material may lead to increased disintegration time and / or decreased dissolution rate during administration.

[0078] However, it has been confirmed that a method for sieving off excess coating material from coated APIs can minimize aggregation of the coating material and maintain the initial disintegration time and / or dissolution rate of the final product. The sieving process may be batch or continuous. In addition, this sieving process may be performed in addition to, or instead of, the sieving process performed on untreated APIs as described above. In some embodiments, the sieving process parameters may differ between untreated APIs and coated APIs.

[0079] In some embodiments, coated APIs can be sieved to remove coating material particles having an average particle size smaller than a desired average coated API particle size. In some embodiments, more than one mesh can be used to remove certain particles. For example, a sieving device may include a series of two or more meshes to remove particles of a certain size according to the mesh size. The sieve may incorporate a vacuum transfer system for delivering particles to the series of meshes of the device. In addition, an ultrasonic probe may be incorporated into the sieving device to improve material flow and minimize mesh clogging during processing. Flow aids (e.g., silica) may be included to facilitate movement through the sieve. For example, the coating material used to coat the API may contain a flow aid. Conversely, untreated APIs may not be cohesive and may not require the assistance of a flow aid during sieving. The sieving process may be a batch process or a continuous process.

[0080] In some embodiments, untreated APIs may be sieved using mesh sizes of 30 μm to 500 μm, 50 μm to 450 μm, 100 μm to 400 μm, 150 μm to 350 μm, or 200 μm to 300 μm. In some embodiments, untreated APIs may be sieved using mesh sizes of less than 500 μm, less than 450 μm, less than 400 μm, less than 350 μm, less than 300 μm, less than 250 μm, less than 200 μm, less than 150 μm, or less than 100 μm. In some embodiments, untreated APIs may be sieved using mesh sizes greater than 30 μm, greater than 50 μm, greater than 100 μm, greater than 150 μm, greater than 200 μm, greater than 250 μm, greater than 300 μm, greater than 350 μm, or greater than 400 μm.

[0081] The coating ratio (i.e., the amount of coating material relative to the amount of uncoated API) can be optimized to minimize and / or prevent the aggregation of excess coating material. For example, in some embodiments, the coating ratio may be in the range of 5-85% w / w, 10-50% w / w, 10-40% w / w, 15-40% w / w, 20-40% w / w, 22.5-36.5% w / w, 15-25% w / w, 20-25% w / w, or 22.5% w / w for an uncoated API of 15-95% w / w, 50-90% w / w, 60-90% w / w, 60-85% w / w, 60-80% w / w, 63.5-77.5% w / w, 70-85% w / w, 75-85% w / w, 75-80% w / w, or 77.5% w / w for a coating material. In some embodiments, the amount of coating material in the coated API may be less than 80% w / w, less than 70% w / w, less than 60% w / w, less than 50% w / w, less than 40% w / w, less than 35% w / w, less than 30% w / w, less than 25% w / w, less than 20% w / w, or less than 10% w / w. In some embodiments, the amount of coating material in the coated API may be greater than 5% w / w, greater than 10% w / w, greater than 15% w / w, greater than 20% w / w, greater than 30% w / w, greater than 35% w / w, greater than 40% w / w, greater than 50% w / w, greater than 60% w / w, or greater than 70% w / w. In some embodiments, the amount of uncoated API in a coated API may be less than 95% w / w, less than 85% w / w, less than 80% w / w, less than 75% w / w, less than 70% w / w, less than 65% w / w, less than 55% w / w, less than 45% w / w, less than 35% w / w, or less than 25% w / w. In some embodiments, the amount of uncoated API in a coated API may be greater than 20% w / w, greater than 30% w / w, greater than 40% w / w, greater than 50% w / w, greater than 60% w / w, greater than 65% w / w, greater than 70% w / w, greater than 75% w / w, greater than 80% w / w, or greater than 90% w / w.

[0082] The dosing ratio (i.e., the amount of coated API relative to the amount of matrix solution / suspension containing all inert components) can be optimized to minimize and / or prevent aggregation of excess coating material. For example, in some embodiments, the dosing ratio may range from 5-60% w / w, 20-60% w / w, 30-50% w / w, 35-45% w / w, or 40% coated API relative to a matrix solution / suspension of 40-95% w / w, 40-80% w / w, 50-70% w / w, 55-65% w / w, or 60% w / w. In some embodiments, the dosing ratio may include less than 60% w / w, less than 50% w / w, less than 45% w / w, less than 40% w / w, less than 30% w / w, less than 20% w / w, or less than 10% w / w of coated API. In some embodiments, the dose ratio may include coated APIs with a dose ratio of more than 5% w / w, more than 10% w / w, more than 20% w / w, more than 30% w / w, more than 35% w / w, more than 40% w / w, or more than 50% w / w. In some embodiments, the dose ratio may include matrix solutions / suspensions with a dose ratio of less than 95% w / w, less than 90% w / w, less than 80% w / w, less than 70% w / w, less than 65% w / w, less than 60% w / w, or less than 50% w / w. In some embodiments, the dose ratio may include matrix solutions / suspensions with a dose ratio of more than 40% w / w, more than 50% w / w, more than 55% w / w, more than 60% w / w, more than 70% w / w, more than 80% w / w, or more than 90% w / w.

[0083] <Storage of functionally coated APIs manufactured by a dry, solvent-free mixing process and mixed in a suspension> The pharmaceutical compositions and methods for preparing the pharmaceutical compositions provided herein may include adding hydrophobic fumed silica during the coating process to provide a protective layer surrounding and / or partially or completely embedded within the functional layer (or "first coating") of the functionally coated API. The addition of this hydrophobic fumed silica layer (or "second layer") can provide a protective layer over the first coating layer of the functionally coated API, minimizing erosion of the first coating layer by the shear forces required to mix the functionally coated API into a pharmaceutical suspension.

[0084] Generally, a solvent-free mixing process for coating an API involves mixing a coating material with the API to produce a functionally coated API. Next, mechanical and / or thermal stress is applied to the functionally coated API to deform the deformable coating material, creating a continuous film surrounding the API. The functionally coated API is then mixed with a matrix solution or suspension to form a pharmaceutical suspension. The pharmaceutical suspension containing the functionally coated API can be placed in a pre-formed mold, such as a blister pack, and further processed to produce a distributable pharmaceutical composition (e.g., lyophilized products, wafers, tablets, etc.). In some embodiments, the distributable pharmaceutical composition may be an orally dispersible product. Ideally, the minimum amount of API in the final distributable pharmaceutical composition, if any, dissolves within the first few minutes of oral administration. This delay or substantial reduction in API release allows the taste of the API to be masked when the orally dispersible product is placed in the patient's mouth. Alternatively, the API may be released as the pharmaceutical composition is delivered to the gastrointestinal tract.

[0085] However, when functionally coated APIs are mixed into a matrix solution / suspension, the shear force required to mix the particles into the matrix solution / suspension can erode the functional coating of the API. Erosion of the coating can destroy or impair the properties of the functional coating. For example, erosion of the functional coating can destroy or impair the taste-masking properties of the functional coating and may cause the API to dissolve in the mouth.

[0086] Therefore, it has been found that hydrophobic fumed silica, which is also used as a flow aid for functionally coated APIs to assist in downstream processing, can also be used to provide a hydrophobic barrier layer that surrounds and / or is partially or completely embedded within the initial coating of the functionally coated API. Specifically, the hydrophobic barrier layer formed by hydrophobic fumed silica can protect the coatings beneath one or more of the functionally coated APIs during the preparation of the pharmaceutical suspension and other downstream processing of the functionally coated APIs. Thus, APIs according to some embodiments described herein may have a first functional coating and a second protective coating. In some embodiments, the first coating material and the second coating material can be mixed with the API (e.g., ibuprofen) simultaneously or sequentially, and then mechanical stress and / or thermal energy can be applied to form the coating layer. In some embodiments, the first coating material is mixed with the API, mechanical stress and / or thermal energy is applied, and then the second coating material is added while mechanical stress and / or thermal energy continues to be applied. In some embodiments, the coating layers may be stacked, a single layer containing both coating materials, or a combination thereof.

[0087] Some pharmaceutical compositions and methods for preparing them provided herein may include more than a first and second coating. For example, some pharmaceutical compositions and methods for preparing them may include three, four, five, six, or more coatings. Therefore, the terms “first coating” and “second coating” should not be interpreted narrowly when used herein. In some embodiments, the term “first coating” may refer to a functional coating of the API, and “second coating” may refer to a protective coating containing silica. In some embodiments, a functionally coated API may have one or more coating layers between the “first coating” and the “second coating.” In some embodiments, a functionally coated API may have one or more coating layers between the API and the “first coating.” In some embodiments, a functionally coated API may have one or more coating layers on top of the “second coating.”

[0088] Once functionally coated APIs are prepared, they can be mixed in a matrix / suspension solution to form a pharmaceutical suspension for fractional use. Mixing functionally coated APIs into a matrix solution / suspension can erode the functional coating of the functionally coated APIs. In some embodiments, to minimize this erosion, hydrophobic fumed silica can be used to form a second coating layer surrounding and / or partially embedded in the functionally coated layer of the coated API.

[0089] However, coating a functionally coated API (i.e., an API including at least the first coating as described above) with hydrophobic fumed silica, which is later mixed into a matrix solution / suspension, is not intuitively apparent. As stated above, to create an orally dispersible pharmaceutical composition according to the embodiments described herein, the functionally coated API is mixed into a matrix solution / suspension containing a matrix-forming agent, a structure-forming agent, and a solvent (often water) to form a pharmaceutical suspension. However, hydrophobic materials are naturally resistant to mixing into a matrix solution / suspension. Therefore, it might be inferred that hydrophobic fumed silica increases the interfacial tension between the functionally coated API and the matrix solution / suspension, increasing the difficulty of incorporating the functionally coated API into the matrix solution / suspension and potentially causing phase separation of the pharmaceutical suspension.

[0090] Interestingly, it has been confirmed that hydrophobic fumed silica can be used to coat functionally coated APIs, including preserving the first functional coating, without substantially hindering the incorporation of the functionally coated API into the matrix solution / suspension. As mentioned above, functionally coated APIs covered with hydrophobic materials in the matrix solution / suspension, such as the hydrophobic fumed silica in the matrix solution / suspension described above, exhibit relatively high surface tension between the hydrophobic material and the matrix solution / suspension. Therefore, it is likely that the surface tension between the hydrophobic functionally coated API and the matrix solution / suspension is also relatively high.

[0091] However, as will be discussed later, the matrix solution / suspension may contain matrix-forming agents such as gelatin. Some matrix-forming agents, including gelatin, are mild surfactants, meaning they can lower the surface tension between the two materials. Therefore, matrix-forming agents exhibiting surfactant-like activity can lower the surface tension between the functionally coated API and the matrix solution / suspension, which is thought to enable the incorporation of the functionally coated API into the matrix solution / suspension while simultaneously maintaining the protective properties of the hydrophobic fumed silica coating layer over the first functional coating of the functionally coated API. This second coating layer containing hydrophobic fumed silica can provide a hydrophobic barrier over the first coating of the functionally coated API beneath it, protecting the underlying first coating from the shear forces required to mix the functionally coated API into the pharmaceutical suspension. By coating the functionally coated API with a hydrophobic barrier containing hydrophobic fumed silica, the underlying (first) coating can be protected from erosion. Furthermore, using hydrophobic fumed silica according to the method described can prevent the matrix solution / suspension from reaching the API through the coating.

[0092] Under normal processing conditions, without a hydrophobic fumed silica coating layer, the coating of a functionally coated API can erode over time under the shear force required to mix the functionally coated API into the matrix solution / suspension. However, there may be a "processing window" of more than two hours from the time the functionally coated API is first mixed into the matrix solution / suspension, during which the coating can remain intact and its functionality unimpaired. The exact duration of this "processing window" varies considerably and can depend on the composition of the various components of the functionally coated API, the composition of the matrix solution / suspension, the amount of material used to prepare the coating of the functionally coated API, and / or the physicochemical properties of the API. However, if the functionally coated API has a second coating containing fumed silica, this "processing window" may be extended.

[0093] In some embodiments, the pharmaceutical composition or coated API may contain 0.5 to 35% w / w of hydrophobic fumed silica. In some embodiments, the pharmaceutical composition or coated API may contain 0.5 to 20% w / w, 0.5 to 10% w / w, or 0.5 to 5% w / w of hydrophobic fumed silica. In some embodiments, the pharmaceutical composition or coated API may contain more than 0.5% w / w, more than 1.0% w / w, more than 1.5% w / w, more than 2.0% w / w, more than 2.5% w / w, more than 3.0% w / w, more than 4.0% w / w, more than 5.0% w / w, more than 10% w / w, more than 15% w / w, more than 20% w / w, more than 25% w / w, or more than 30% w / w of hydrophobic fumed silica. In some embodiments, the pharmaceutical composition or coated API may contain hydrophobic fumed silica in amounts less than 35% w / w, less than 25% w / w, less than 15% w / w, less than 10% w / w, less than 5.0% w / w, less than 4.0% w / w, less than 3.5% w / w, less than 3.0% w / w, less than 2.5% w / w, less than 2.0% w / w, less than 1.5% w / w, or less than 1.0% w / w. The hydrophobic fumed silica may be any of the following: Aerosil R972 silica (Degussa), CAB-O-SIL EH-5 silica (Cabot), OX-50 silica (Degussa), COSM055 (Catalyst & Chemical Ind. Co. Ltd (Japan)), TS5 silica (Cabot), and / or other suitable types of silica.

[0094] The effectiveness of a protective layer containing hydrophobic fumed silica can be determined by measuring the particle size of the functionally coated API in a pharmaceutical suspension over time. The particle size of the coated API can be measured using a particle and shape analyzer. If the hydrophobic fumed silica is effective in preserving the coating, the particle size of the functionally coated API may remain constant or decrease only slightly over time. If it is ineffective, the particle size of the functionally coated API may decrease more substantially over time. The particle size of the functionally coated particles can be measured using laser diffraction, a particle analyzer such as a Malvern Mastersizer, or any other suitable means for analyzing fine particles.

[0095] The effectiveness of the protective layer containing hydrophobic fumed silica can also be determined by performing a dissolution test on the functionally coated API. When hydrophobic fumed silica is effective for coating preservation, the release amount (e.g., percentage of release) of the functionally coated API over time will be slower in the dissolution test. If it is not effective, the release amount of the functionally coated API over time will be more. The release amount of the functionally coated particles can be measured using a dissolution test, a spectrophotometer such as a Pion MicroDISS Profiler, or any other suitable means for performing a dissolution test. In such cases, the dissolution of the functionally coated API can be 70% or less after 15 minutes.

[0096] <Minimization of air entrainment in suspensions containing API> Embodiments provided herein may include adding a compound containing terpene and / or terpineol to a matrix solution / suspension. Specifically, embodiments of the pharmaceutical suspensions provided herein may include a liquid flavorant containing terpene and / or terpineol. In some embodiments, the liquid flavorant may include limonene, which is a terpene. The addition of a specific compound, specifically a liquid flavorant containing limonene, can minimize air entrainment in the suspension, enhance the homogeneity of the suspension, and improve the dosage mass accuracy when the suspension is injected into a mold. As used herein, "dosage mass accuracy" and related terms refer to the ability to accurately dispense a pharmaceutical suspension into a preformed mold. The dosage mass accuracy of the pharmaceutical suspension dispensed herein is influenced by many variables, including but not limited to homogeneity, viscosity, chemical composition, and dispensing injection equipment.

[0097] As mentioned above, traditional mechanical means for anti-air miscibility and / or minimizing air miscibility have not been considered successful due to the high viscosity of pharmaceutical suspensions. For example, applying a vacuum to a pharmaceutical suspension can cause an increase in the suspension height because viscous suspensions "hold on" to the accompanying air. Volatile formulation components may also be lost during vacuum processing. Furthermore, traditional anti-air miscibility agents such as ethanol or simethicone emulsions are similarly ineffective for anti-air miscibility of suspensions.

[0098] Therefore, it has been found that some compounds, particularly liquid fragrances containing terpenes such as limonene and / or terpinols, can minimize air miscibility in the pharmaceutical suspension when the hydrophobic coated API is mixed into the matrix solution / suspension. By minimizing air miscibility, the hydrophobic coated API disperses more efficiently and effectively throughout the pharmaceutical suspension. This enhanced dispersion can improve the homogeneity of the pharmaceutical suspension, the dose-to-mass accuracy, and the uniformity of the contents of the finished product.

[0099] As mentioned above, mixing hydrophobic coated APIs into a matrix solution / suspension can create entrained air or bubbles in the liquid. Because coated APIs are hydrophobic, they generally have a low affinity for matrix solutions / suspensions. Therefore, instead of readily combining with and dispersing within the matrix solution / suspension, hydrophobic coated APIs preferentially combine with entrained air. In many fluids, bubbles typically move to the surface of the fluid and disappear into the air above. However, because hydrophobic coated APIs have an affinity for entrained air, they "hold on" to the bubbles, preventing them from moving to the surface and being released into the air above the fluid. This causes air miscibility in the pharmaceutical suspension. Air miscibility in pharmaceutical suspensions can lead to phase separation, and therefore, a heterogeneous suspension. Phase separation can also be exacerbated by exposure to shear forces induced by dose-delivery pumps. Heterogeneous pharmaceutical suspensions can cause pump seizure when passing through the dose dispensing pump, leading to inaccurate doses, a lack of uniformity in the overall finished product, and insufficient production efficiency due to shutdowns.

[0100] In addition, pharmaceutical suspensions containing hydrophobic coated APIs may have high viscosity due to their high content of hydrophobic coated APIs (i.e., as much as 50 wt% hydrophobic coated APIs). As mentioned above, introducing air into the pharmaceutical suspension during in-line mixing of hydrophobic coated APIs can further increase the viscosity of the pharmaceutical suspension. Therefore, phase separation and heterogeneity of the suspension not only negatively affect the dose-mass accuracy and uniformity of the final product, but also negatively affect the increase in viscosity.

[0101] Interestingly, it has been discovered that certain compounds, when added to a matrix solution / suspension, can minimize air miscibility in pharmaceutical suspensions containing hydrophobic-coated APIs. In particular, according to some embodiments provided herein, compounds containing terpenes and / or terpinols can minimize the amount of entrained air in the pharmaceutical suspension resulting from in-line mixing of hydrophobic-coated APIs into the matrix solution / suspension. For example, a suspension containing a liquid flavoring containing terpenes and / or terpinols can minimize air miscibility in the pharmaceutical suspension, even at relatively low concentrations. Specifically, it has been found that a matrix solution / suspension containing one or more liquid flavorings containing limonene can minimize air miscibility in the pharmaceutical suspension during in-line mixing of hydrophobic-coated APIs. Other compounds containing terpenes and terpinols have also been shown to similarly succeed in minimizing air miscibility in pharmaceutical suspensions. For example, compounds containing terpenes such as limonene, carvone, humulene, taxadiene, and squalene may be suitable for minimizing air miscibility in pharmaceutical suspensions. Terpinol can also be a suitable anti-air miscible. In some embodiments, pure terpenes and / or pure terpinol may be used as an anti-air miscible. In some embodiments, a liquid flavoring containing terpenes and / or terpinol may be used as an anti-air miscible. In some embodiments, other suitable compounds containing terpenes and / or terpinol may be used as an anti-air miscible.

[0102] One challenge presented by some compounds containing terpenes and / or terpinols, such as some liquid flavorings, is their tendency to be relatively oily. Like conventional oils and water, these oily compounds may not disperse readily in matrix solutions / suspensions. However, as will be discussed later, the matrix solutions / suspensions according to the embodiments herein may contain gelatin as a matrix-forming agent. Gelatin is essentially a mild surfactant. Surfactants can reduce the surface tension between two materials. Therefore, in some embodiments, the gelatin in the matrix solution / suspension can reduce the surface tension between the oily compound and the matrix solution / suspension. This can allow for sufficient incorporation of oily compounds, such as liquid flavorings, into the matrix solution / suspension.

[0103] Under normal processing conditions, without the use of compounds containing terpenes and / or terpinols, the coating of hydrophobic coated APIs is eroded over time by the shear force required to mix the hydrophobic coated APIs into a matrix solution / suspension to form a pharmaceutical suspension. However, there is a "processing window" of more than two hours during which the coating retains significant functionality. The exact duration of this "processing window" varies for each product and may depend on the composition of the components of the hydrophobic coated API, the composition of the matrix solution / suspension, the amount of material used to prepare the hydrophobic coated API, the physicochemical properties of the API, and / or the mixing conditions. Unfortunately, in the presence of compounds containing terpenes and / or terpinols, this "processing window" can be significantly reduced due to the interaction between these compounds and the coating of the hydrophobic coated API. These interactions can impair the functional properties of the coating. For example, the interaction between liquid flavorings and the coating of the hydrophobic coated API can impair the taste-masking function of the coating. However, it was discovered that a threshold concentration of the compound (i.e., liquid flavoring) exists below which the compound does not significantly impair the coating, and furthermore, the "processing window" is not reduced to the extent that the coating of the hydrophobic coated API is significantly eroded. Therefore, this optimal amount of compound containing terpenes and / or terpinols results in a homogeneous pharmaceutical suspension that sufficiently minimizes air mixing of the pharmaceutical suspension, allowing for precise molding and obtaining a uniform final product.

[0104] In addition, compounds containing terpenes and / or terpinols, particularly liquid flavoring agents containing limonene, may lower the freezing point of the pharmaceutical suspension, which can lead to melting defects in the product further treated by freeze-drying. In particular, limonene has a freezing point of -74°C. However, no melting defects were observed during the preparation of the disclosed product, and therefore, at least some compounds containing terpenes and / or terpinols do not affect the pharmaceutical suspension to the extent that they adversely impact downstream freeze-drying processes. The absence of melting defects under these circumstances is thought to be due to the high solid content of the suspension, which helps maintain the structure of the product even in the presence of a freezing point lowering agent (i.e., limonene).

[0105] The matrix solution / suspension compositions according to the embodiments described herein may include a matrix-forming agent, a structure-forming agent, an air-miscible agent, a viscosity modifier, and / or a solvent.

[0106] In some embodiments, the amount of terpene and / or terpinol-containing compounds (i.e., anti-air miscibles) in the matrix solution / suspension, pharmaceutical suspension, or pharmaceutical composition may be 0.001 to 5.0% w / w. In some embodiments, the amount of terpene and / or terpinol-containing compounds (i.e., anti-air miscibles) in the matrix solution / suspension, pharmaceutical suspension, or pharmaceutical composition may be 1 to 5% w / w, 1 to 4% w / w, 1 to 3% w / w, 1 to 2% w / w, 0.05 to 3.0% w / w, 0.1 to 2.0% w / w, or 0.5 to 1.0% w / w. In some embodiments, a compound containing terpenes and / or terpinols in amounts greater than 0.001% w / w, greater than 0.01% w / w, greater than 0.05% w / w, greater than 0.1% w / w, greater than 0.3% w / w, greater than 0.5% w / w, greater than 0.8% w / w, greater than 1.0% w / w, greater than 1.5% w / w, greater than 2.0% w / w, greater than 2.5% w / w, greater than 3.0% w / w, greater than 3.5% w / w, greater than 4.0% w / w, or greater than 4.5% w / w (i.e., an anti-air miscible agent) is present in a matrix solution / suspension, pharmaceutical suspension, or pharmaceutical composition. In some embodiments, compounds containing terpenes and / or terpinols in amounts less than 5.0% w / w, less than 4.5% w / w, less than 4.0% w / w, less than 3.5% w / w, less than 3.0% w / w, less than 2.5% w / w, less than 2.0% w / w, less than 1.5% w / w, less than 1.0% w / w, less than 0.8% w / w, less than 0.6% w / w, less than 0.3% w / w, or less than 0.1% w / w (i.e., anti-air miscibles) are present in the matrix solution / suspension, pharmaceutical suspension, or pharmaceutical composition. In some embodiments, suitable anti-air admixtures may include orange flavoring, strawberry flavoring, mint flavoring, raspberry flavoring, licorice flavoring, orange flavoring, lemon flavoring, lime flavoring, grapefruit flavoring, caramel flavoring, vanilla flavoring, cherry flavoring, grape flavoring, mixed fruit flavoring, tutti-frutti flavoring, or any combination thereof.

[0107] <Example of minimizing aggregation> Several tests were conducted to evaluate the effectiveness of removing excess coating material from coated APIs by sieving, as well as optimizing the coating ratio and dose ratio. The effect of sieving excess coating material was studied by measuring the disintegration times of pharmaceutical compositions containing various coated APIs under various conditions. It can be reasonably inferred that removing excess coating material can minimize the aggregation of the coating material. Optimizing the coating and dose ratio can also help minimize the aggregation of the coating material. Furthermore, minimizing the amount of aggregation can also help maintain the desired disintegration time and / or dissolution rate of the pharmaceutical composition and coated API. Therefore, disintegration time is used as a metric for evaluating the amount of aggregation in the following examples. In some embodiments, accelerated disintegration data at 50°C may indicate the presence of unsieved excess coating material.

[0108] In addition, information on the coating ratio and dosing ratio is provided for the following examples. The coating ratio refers to the amount of coating material relative to the amount of uncoated API. The dosing ratio refers to the amount of coated API relative to the matrix solution / suspension containing all inert components. [Examples]

[0109] Ibuprofen was coated with carnauba wax in a coating ratio of 26:74. Lyophilized tablets were prepared using a dose ratio of 40:60. Tablets from four separate batches were tested, with batches 1-3 tested over a period of 2 months and batch 4 over a period of 6 months. Tablets from these batches were tested under ICH (International Council for Harmonisation of Technical Requirements for Pharmaceuticals for Human Use) stability conditions of 25°C / 60%RH, 30°C / 65%RH, and 40°C / 75%RH, respectively, with samples taken at 1 month and 2 months for batches 1, 2, and 3. In addition, each batch was exposed to stress conditions at 50°C to obtain accelerated data at both 2 weeks and 4 weeks for each test. Table 1 below provides disintegration time data for batches 1-3 of coated ibuprofen over a 2-month test.

[0110] [Table 1]

[0111] The coated ibuprofen in Batch 2 was inadequately sieved after ibuprofen coating. Microscopic examination of the sieved coated ibuprofen (Figure 4B) showed the presence of an excess amount of unbound coating material. Microscopic examination of the sieved coated ibuprofen also showed that the ibuprofen was inadequately coated. As shown in the last column of Table 1, this batch showed a significantly longer decay time after 2 months under 40°C / 75%RH stability test conditions (initial decay time was less than 2 seconds, and decay time at 2 months was approximately 15 seconds). Therefore, this result supports the hypothesis that the presence of an excess amount of unbound coating material in the pharmaceutical product is responsible for the prolonged decay time over time (as the pharmaceutical product ages) due to aggregation of the unbound coating material during storage.

[0112] Conversely, the coated ibuprofen from batch 3 was sufficiently sieved after ibuprofen coating. Microscopic examination of the sieved coated ibuprofen (Figure 4C) showed that the ibuprofen was sufficiently coated, as no unbound coating material was present. The decay time of the samples from this batch remained largely unchanged over a two-month period under any of the ICH stability conditions. (The decay time throughout the two-month test varied between approximately 1 and 3 seconds). This supports the hypothesis that minimizing the presence of excess unbound coating material, for example by sieving, helps prevent aggregation of the coating material in pharmaceutical products, especially when stored for extended periods at higher temperatures.

[0113] Batch 1 of coated ibuprofen was sieved after ibuprofen coating. Batch 1 showed a similar decay time of less than 2 seconds compared to batches 2 and 3 for the initial time data point. However, after 2 months under 40°C / 75%RH stability test conditions, the decay time increased to approximately 7 seconds or less. After 4 weeks of storage at 50°C, the decay time increased to approximately 10 seconds or less. This suggests that the sieving process for this batch did not adequately remove excess coating material, and therefore, the presence of residual unbound coating material. Batch 2 showed even more unbound coating material and aggregation during storage, to a greater extent than batch 1. Microscopic examination of the sieved coated ibuprofen (Figure 4A) showed that the ibuprofen particles were moderately and sufficiently coated, and that residual amounts of unbound coating material were present.

[0114] Table 2 below shows the decay time data for a 6-month trial (i.e., batch 4) of coated ibuprofen.

[0115] [Table 2]

[0116] Coated ibuprofen for Batch 4 was sieved after ibuprofen coating. Batch 4 in Table 2 showed little change in disintegration time throughout the 6-month study period. The initial disintegration time for Batch 4 was approximately 5 seconds, the final disintegration time for the 25°C / 60%RH sample was approximately 2 seconds, for the 30°C / 65%RH sample it was approximately 2 seconds, and for the 40°C / 75%RH sample it was approximately 2 seconds. However, an increase was observed when stored at 50°C. Since no increase was observed in tablets stored at temperatures below 40°C, this suggests that sieving removed most of the excess unbound coating material, but there was still a sufficient amount remaining to cause aggregation when the tablets were placed at 50°C. Microscopic examination (Figure 4D) showed that the sieved coated ibuprofen was moderately well coated with ibuprofen and contained a residual amount of unbound coating material. [Examples]

[0117] Ibuprofen was coated with Saspol (synthetic) wax at a theoretical coating ratio of 26:74. The coated ibuprofen was sieved after coating. Lyophilized tablets were prepared using a 40:60 dose ratio and tested for two months. The ibuprofen strength was 200 mg. Each batch was tested under ICH stability conditions of 25°C / 60%RH, 30°C / 65%RH, and 40°C / 75%RH. In addition, samples were exposed to stress conditions at 50°C to obtain accelerated data at two and four weeks during the test. Table 3 below provides disintegration time data for the two-month test of ibuprofen coated at a 40:60 dose ratio. Microscopic examination of the sieved coated ibuprofen (Figure 4E) showed that the ibuprofen was moderately well coated with a small amount of unbound coating material.

[0118] [Table 3]

[0119] Batch 5 in Table 3 showed no substantial change in decay time, even under accelerated conditions at 50°C, during the two-month test. Specifically, the initial decay time for batch 5 was approximately 3 seconds, and the decay time after two months for all three ICH stability conditions (25°C / 60%RH, 30°C / 65%RH, and 40°C / 75%RH) was approximately 4 seconds. Under accelerated conditions at 50°C, the decay time was approximately 3 seconds after two weeks and approximately 4 seconds after four weeks. Based on the 50°C data, a small amount of unbonded excess coating material may remain. In that case, the decay time will not increase significantly, if at all, so this small amount of unbonded excess coating material will not cause a significant amount of aggregation during storage. This is well comparable to batch 3 in Example 1 using a different wax. These two examples demonstrate that aggregation of coating material in pharmaceutical products during storage can be minimized or prevented, especially at higher temperatures and over long storage periods, if unbonded excess coating material is efficiently removed by sieving. [Examples]

[0120] Ibuprofen was coated with sazole (synthetic) wax at a theoretical coating ratio of 26:74. The coated ibuprofen was then sieved after coating. Lyophilized tablets were prepared using a 50:50 dose ratio and tested for 3 months. The ibuprofen strength was 200 mg. Each batch was tested under ICH stability conditions of 25°C / 60%RH, 30°C / 65%RH, and 40°C / 75%RH, as in Examples 1 and 2 above. Samples were also exposed to stress conditions at 50°C to obtain accelerated data at 2 and 4 weeks during each test. Table 4 below provides data for the 3-month test of ibuprofen coated with 50:50 sazole wax. Microscopic examination of the sieved coated API from batch 6 (Figure 4F) shows that the ibuprofen was adequately coated and that some unbound coating material was present.

[0121] [Table 4]

[0122] Neither batch 6 nor batch 7 showed significant changes in decay time over the course of the 3-month test. Specifically, the initial decay time of the batch 6 sample was approximately 1 second, and the decay time at the end of the 3-month period for each of the three ICH stability conditions (25°C / 60%RH, 30°C / 65%RH, and 40°C / 75%RH) was approximately 2 seconds. The decay time for batch 6 was also approximately 2 seconds for both the 2-week and 4-week accelerated 50°C conditions.

[0123] The initial decay time for the Batch 7 samples was approximately 2 seconds, and the decay time at the final 3 months under 25°C / 60%RH and 30°C / 65%RH ICH stability conditions was approximately 2 seconds. The decay time at the final 3 months under 40°C / 75%RH ICH stability conditions was approximately 3 seconds. The decay time for both the 2-week and 4-week accelerated 50°C conditions was approximately 5 seconds. A high coating ratio of 50:50 can increase the amount of excess unbound coating material if left unsieved. Both batches used a higher dose ratio of 50:50, meaning a high usage of coated ibuprofen and excess unbound coating material, but these data suggested that the sieving process for coated ibuprofen was effective in removing excess unbound coating material and minimizing aggregation. [Examples]

[0124] Ibuprofen was coated with carnauba wax at theoretical coating ratios of 22.5:77.5 and 30:70. Lyophilized tablets were prepared using the 30:70 dose ratio and tested over a period of 2 months. The ibuprofen strength was 200 mg. The batches were stored in an oven at 40°C. The tablets were tested for disintegration time at initial, 25-day, and 2-month intervals. Table 5 below provides the disintegration times for this study. Microscopic examination of unsieved coated ibuprofen (Figures 4G and 4H) and sieved coated ibuprofen (Figures 4I and 4J). The ibuprofen was adequately coated. No unbound coating material was present in the sieved samples.

[0125] [Table 5]

[0126] Batches 8-11 show that the disintegration time of tablets stored at 40°C did not increase over time when using a 30:70 dose ratio for unsieved (batches 8 and 10) or sieved (batches 9 and 11) coated ibuprofen. This supports the hypothesis that reducing the dose ratio to 30:70, etc., sufficiently reduces the amount of excess unbound wax to a level that minimizes aggregation of excess unbound material when stored at higher temperatures for extended periods.

[0127] Table 6 summarizes the results of the above examples.

[0128] [Table 6A] [Table 6B]

[0129] <Example of storing functionally coated ibuprofen> [Examples]

[0130] Functionally coated ibuprofen was coated using hydrophobic fumed silica according to the embodiments described herein. Specifically, the hydrophobic fumed silica used was Aerosil R972 ("Aerosil"). Aerosil R972 at two different concentrations, 1.5% w / w and 1.0% w / w, was tested. The size of the functionally coated ibuprofen was evaluated over a 6-hour retention period, during which the functionally coated ibuprofen underwent low-shear mixing.

[0131] Figures 5, 6, and 7 show the evaluation of d10, d50, and d90 particle sizes over a 6-hour period, respectively. Generally speaking, the particle size represented by d10 means that 10 percent of the particles in a given amount of sample are smaller than the given particle size. Therefore, the particle size represented by d50 means that 50 percent of the particles in a given amount of sample are smaller than the given particle size, and the particle size represented by d90 means that 90 percent of the particles in a given amount of sample are smaller than the given particle size.

[0132] As shown in Figure 5, higher concentrations of silica (1.5% w / w) were more effective than lower concentrations of silica (1.0% w / w) in maintaining the original particle size and therefore the coating. Specifically, over a 6-hour period, functionally coated ibuprofen containing 1.5% w / w Aerosil lost approximately 30% of their original size, while functionally coated ibuprofen containing 1.0% w / w Aerosil lost approximately 80% of their original particle size.

[0133] Figure 6 also shows that higher concentrations of silica (1.5% w / w Aerosil) were more effective than lower concentrations of silica (1.0% w / w Aerosil) in maintaining the particle size of the original functional-coated ibuprofen and thus preserving the functional coating. Specifically, over a 6-hour period, functional-coated ibuprofen containing 1.5% w / w Aerosil lost nearly 20% of their original size, while functional-coated ibuprofen containing 1.0% w / w Aerosil lost approximately 45% of their original functional-coated API particle size.

[0134] Figure 7 also shows that higher concentrations of silica (1.5% w / w Aerosil) were more effective than lower concentrations of silica (1.0% w / w Aerosil) in maintaining the original functional coating of ibuprofen particles and thus preserving the functional coating of ibuprofen. Specifically, over a 6-hour period, functional coatings of ibuprofen containing 1.5% w / w Aerosil lost approximately 15% of their original size, while functional coatings of ibuprofen containing 1.0% w / w Aerosil lost approximately 35% of their original particle size.

[0135] In addition, as the particle size of the functionally coated ibuprofen decreased, another population of particles with particle sizes ranging from 5 μm to 20 μm appeared and increased over time. These particles are thought to be non-deformable coating material particles embedded within the deformed continuous coating material before the coating was eroded due to shear forces. Therefore, as the coating is eroded and the particle size of the functionally coated ibuprofen decreases, the population size of these smaller particles increases as the deformed coating material surrounding them is eroded, and these non-deformable particles are released from the functionally coated ibuprofen.

[0136] Overall, these tests suggest that 1.5% w / w Aerosil coating functionally coated ibuprofen can extend the "treatment window" to approximately 4 hours, compared to the 2-hour "treatment window" present without silica. During the first 4 hours of treatment in the suspension, functionally coated ibuprofen, including a second outer coating containing 1.5% w / w Aerosil, shows little to no erosion of the coating. [Examples]

[0137] The functionally coated ibuprofen according to the embodiments described herein was coated using hydrophobic fumed silica. Specifically, the hydrophobic fumed silica used was Aerosil R972 ("Aerosil"). Aerosil R972 was tested at five different concentrations: 0.0% w / w, 1.5% w / w, 2.5% w / w, 5.0% w / w, and 10.0% w / w. The release rate of the functionally coated ibuprofen was evaluated using a dissolution test (i.e., dissolution medium of 0.01% SDS in pH 7.2 phosphate buffer, medium temperature of 37°C, and medium volume of 10 ml (ibuprofen)).

[0138] Figures 8 and 9 show the evaluation of release rates performed with functionally coated ibuprofen over a period of either 5 or 30 minutes. Generally speaking, the low-volume dissolution result, expressed as a percentage release, means that "x" percent of the mass of the added material dissolved in the solution.

[0139] Figure 8 shows the release data for ibuprofen coated with carnauba wax and various amounts of hydrophobic silica. As shown in the figure, higher concentrations of silica (up to 10.0% w / w) resulted in slower release rates in the dissolution test than lower concentrations of silica, and were therefore effective in maintaining the coating. Specifically, during a 5-minute test period, functionally coated ibuprofen containing 10.0% w / w aerosil (i.e., ibuprofen coated with carnauba wax) showed a release of 1.5% after 5 minutes, while functionally coated ibuprofen containing 0.0% w / w aerosil showed a release of 24.9%. Functionally coated ibuprofen containing intermediate levels of aerosil (i.e., 1.5% w / w, 2.5% w / w, and 5.0% w / w) showed dissolution results of 12.1%, 7.4%, and 2.3% release after 5 minutes, respectively.

[0140] Figure 9 shows the release data for ibuprofen coated with sazole (synthetic) wax and various levels of hydrophobic silica. Figure 10 also shows that higher concentrations of silica (up to 10.0% w / w) resulted in slower release rates in the dissolution test than lower concentrations of silica, and were therefore effective in maintaining the coating. Specifically, during a 5-minute test period, functionally coated ibuprofen containing 10.0% w / w aerosil (i.e., ibuprofen coated with synthetic wax) showed a release of 2.8% after 5 minutes, while functionally coated ibuprofen containing 0.0% w / w aerosil showed a release of 8.5%. Functionally coated ibuprofen containing intermediate levels of aerosil (i.e., 1.5% w / w, 2.5% w / w, and 5.0% w / w) showed dissolution results of 4.3%, 3.6%, and 2.4% release after 5 minutes, respectively.

[0141] <Example of minimizing air mixing> The effectiveness of compounds containing terpenes and / or terpinols in minimizing air miscibility can be determined in part by measuring the particle size of hydrophobically coated ibuprofen in a pharmaceutical suspension over time. If the compound is effective, air miscibility in the suspension will be sufficiently low, and the particle size of hydrophobically coated ibuprofen will remain constant or hardly decrease over time. If it is not effective, air miscibility in the suspension will be higher than desired, and the particle size of hydrophobically coated ibuprofen may decrease more substantially over time. The degree of air miscibility in the suspension is determined by measuring the height of bubbles in a mixing vessel. The particle size of functionally coated particles can be measured using laser diffraction, particle analyzers such as Malvern Mastersizers, or any other suitable means for analyzing fine particles. [Examples]

[0142] A series of suspension mixtures were prepared by mixing ibuprofen coated in matrix solutions / suspensions containing various levels of limonene, orange flavoring, and strawberry flavoring. The foam heights from these suspensions are summarized in Tables 7, 8, and 9, respectively.

[0143] [Table 7]

[0144] [Table 8]

[0145] [Table 9]

[0146] The results in Tables 7 and 8 show that the addition of limonene and orange flavoring at levels of 0.15% w / w or higher minimizes air mixing. Strawberry (Table 9) also reduced air mixing, but not to the same extent. [Examples]

[0147] Figures 10, 11, and 12 show the decrease in particle size (d10, d50, and d90, respectively) of hydrophobic-coated ibuprofen in pharmaceutical suspensions containing liquid orange flavoring at various concentrations. The particle size represented by d10 means that 10 percent of the particles in a given volume of sample are less than the given particle size. Thus, a d50 particle size means that 50 percent of the particles in a given volume of sample are less than the given particle size, and a d90 particle size means that 90 percent of the particles in a given volume of sample are less than the given particle size. Specifically, Figures 10 to 12 show the test results of suspension formulations containing hydrophobic-coated ibuprofen and liquid orange flavoring at concentrations of 0.0%, 0.15%, 0.45%, and 0.60% w / w, held in low-shear mixing for a period of up to 6 hours.

[0148] At orange flavoring concentrations up to 0.45% w / w (including 0.15% w / w), the decrease in d10, d50, and d90 particle sizes within the first two-hour "processing window" was very similar to that of a pharmaceutical suspension containing hydrophobic-coated ibuprofen without any liquid flavoring (0% liquid flavoring). However, at a liquid orange flavoring concentration of 0.6% w / w, the coating on the hydrophobic-coated ibuprofen was easily removed, and a rapid decrease in particle size was observed. Furthermore, at a liquid orange flavoring concentration of 0.3% w / w, the air mixing of the suspension was sufficiently low, and there was little, if any, damage to the coating on the coated ibuprofen, resulting in only a minimal decrease in the particle size of the hydrophobic-coated ibuprofen. [Examples]

[0149] Figures 13, 14, and 15 provide data on the reduction of the d10, d50, and d90 particle sizes of hydrophobic-coated ibuprofen, respectively, by limonene, a specific component present in some liquid flavorings. These tests were conducted to investigate the effect of limonene, a specific component of liquid flavorings, on hydrophobic-coated ibuprofen in suspension. Note that the limonene concentrations shown in the figures are significantly higher than the limonene concentrations that would be present when the liquid flavorings are used. In Figures 13-15, pure limonene was used at concentrations of 0.25% w / w, 0.45% w / w, and 0.75% w / w and tested over a 24-hour period. As shown across all three figures, a 0.25% w / w limonene concentration had far less harmful effects on the coating of hydrophobic-coated ibuprofen particles than 0.45% w / w and 0.75% w / w limonene concentrations. Furthermore, the pharmaceutical suspension tested with 0.25% w / w limonene contained a sufficiently low amount of air miscibility. Therefore, these tests confirm that the limonene in the liquid orange flavor tested in Figures 10–12 is at least partially responsible for minimizing air miscibility in the pharmaceutical suspension and subsequently eroding the coating of hydrophobic-coated ibuprofen in relatively large amounts and / or for relatively long exposure times. [Examples]

[0150] Figure 16 shows test data for two different liquid flavors, strawberry and orange. The d10, d50, and d90 particle sizes of hydrophobic coated ibuprofen were tested for both the strawberry and orange liquid flavors. Both the strawberry and orange liquid flavors contain limonene. As shown in the figure, both flavors behave similarly with respect to the hydrophobic coated ibuprofen particle size. The d10 particle sample showed a greater decrease in particle size than the d50 and d90 particle samples within the first two hours of testing. The d50 and d90 particle samples showed less decrease in particle size within the same two-hour period. However, this observation is consistent with the d10, d50, and d90 particle size data from previously examined examples.

[0151] In addition, in all tests, it was observed that as the particle size of the hydrophobic-coated API (ibuprofen) particles decreased, another population of particles with particle sizes of 5 μm to 20 μm appeared and increased over time. These particles are thought to be non-deformable coating material particles embedded within the deformed continuous coating material before the coating erosion caused by shear forces. Therefore, as the coating is eroded and the particle size of the hydrophobic-coated ibuprofen decreases, the population size of these smaller particles increases as the deformed coating material surrounding them is eroded, and these non-deformable particles are released from the hydrophobic-coated ibuprofen.

[0152] Overall, these tests demonstrate that optimizing the amount of limonene, a terpene, added to a pharmaceutical suspension containing hydrophobic-coated ibuprofen minimizes air accretion in the suspension, enabling downstream processing without adversely affecting the coating of the hydrophobic-coated ibuprofen (as determined by the particle size of the hydrophobic-coated ibuprofen).

[0153] Coatings with and without water-soluble excipients The applicants also tested whether coated APIs were better when coated with carnauba wax and hydroxypropyl cellulose (i.e., soluble excipients) than when coated with carnauba wax and hydroxypropyl cellulose (i.e., soluble excipients). These tests showed that good ibuprofen particles could be produced without the use of soluble coating excipients. Cellets 350 was used as a coating medium to assist the coating process during these tests.

[0154] Batches of coated ibuprofen were prepared in three steps using a LabRAM acoustic mixer as follows: (1) For the first mixing step, 14 g of pre-sieved 75-250 μm ibuprofen API, 1.82 g of carnauba wax (used as a coating polymer), and 10.36 g of Cellets 350 microcrystalline cellulose (used as a coating medium) were placed in a 125 ml plastic container. For batches Z3703 / 136 / 07 and 09, 0.5 g of micronized hydroxypropyl cellulose (HPC) SSL, a water-soluble excipient, was also added. Coating was then carried out at an acceleration of 88 G for 15 minutes. (2) After the completion of the first coating step, an additional 1.82 g of carnauba wax was added to the mixing container, and if applicable (for batches Z3703 / 136 / 07 and 09), another 0.5 g aliquot of micronized HPC SSL was added. Next, the coating was restarted at 88G for another 15 minutes (second coating stage). (3) After the completion of the second coating stage, 1 g of hydrophobic silica (Aerosil R972) was added to the mixture as a flow aid. Next, the coating was restarted at 88G for another minute. (4) After coating, the intermediate product was sieved to <250 μm, and the coated API after sieving was analyzed under a microscope to determine the level of coating achieved. Table 10 below shows the determination of the coating from the microscopic examination.

[0155] [Table 10]

[0156] In addition, Figures 19A-19B, 20A-20B, 21A-21B, and 22A-22B show SEM images of batches Z3703 / 136 / 07, Z3703 / 136 / 09, Z3703 / 136 / 10, and Z3703 / 136 / 12, respectively. Microscopic analysis of equivalent batches produced with and without the water-soluble excipient HPC demonstrated that the presence of water-soluble material does not result in improved coating performance. Conversely, batches produced without HPC were observed to have an improved level of coating, increased polymer deformation on the API surface, and a reduced level of unbonded coating material. Therefore, it was concluded that the coating process without water-soluble material is an improvement over batches produced with water-soluble excipients.

[0157] Coating with and without a coating medium The applicants also tested coating ibuprofen with and without a coating medium. The quality of the coating was determined by a dissolution test for the percentage release of ibuprofen from the coated particles over 5 minutes. The tests showed that the use of a coating medium did not provide any benefit to the coating. In addition, it resulted in a lower yield.

[0158] Batches of coated ibuprofen were manufactured in two stages using a RAM2 acoustic mixer as follows:

[0159] Batch Z4592 / 73 / 04 and 09For the first stage of coating (performed in a batch size of 201.81 g), 48% w / w pre-sieved >75 μm ibuprofen API, 35% w / w Cellets 350 microcrystalline cellulose (used as the coating medium), and 16% w / w coating polymer (carnauba wax in batch Z4592 / 73 / 04 and sazole wax in Z4592 / 73 / 09) were added to a 530 ml stainless steel jacketed inner container. The coating was then carried out at an acceleration of 85 G for 10 minutes at the specified mixing temperature setpoints (53°C for Z4592 / 73 / 04 and 47°C for Z4592 / 73 / 09) using water cooling for temperature control. After the completion of the first coating stage, 1% w / w hydrophobic silica (Aerosil R972) was added to the mixture as a flow aid. Next, the coating process was restarted at an acceleration of 80G for 30 seconds. After coating, the intermediate product was sieved to a thickness of 75-250 μm, and the sieved coated API was analyzed by dissolution testing to determine the level of coating achieved.

[0160] Batch Z4592 / 73 / 16 and 19: For the first coating step (batch sizes of 193.19 g and 140.67 g for batches Z4592 / 73 / 16 and Z4592 / 73 / 19, respectively), 77.87% w / w of pre-sieved >75 μm ibuprofen API and 21.13% w / w of coating polymer (sazole wax for batch Z4592 / 73 / 16 and carnauba wax for Z4592 / 73 / 19) were added to 530 ml stainless steel jacketed inner containers. Next, using water cooling for temperature control, the coating was carried out for 20 minutes at accelerations of 97G (Z4592 / 73 / 16) and 98G (Z4592 / 73 / 19) at the specified mixing temperature setpoints (47°C for Z4592 / 73 / 16 and 56°C for Z4592 / 73 / 19). After the completion of the first coating stage, 1% w / w hydrophobic silica (Aerosil R972) was added to the mixture as a flow aid. Mixing was then restarted for 30 seconds at an acceleration of 80G. After coating, the intermediate product was sieved to 75-250 μm, and the sieved coated API was analyzed by dissolution tests to determine the level of coating achieved. Table 11 below shows the results of these tests. In addition, Figure 23 shows the dissolution results of coated ibuprofen produced with and without the coating (i.e., grinding) medium.

[0161] [Table 11]

[0162] The dissolution results of coated ibuprofen prepared with and without a coating medium, and using two different coating polymers, showed similar release rates for all batches, and the results at all time points were within the limits of measurement technique variability. Therefore, it can be concluded that a similar level of coating was achieved for all batches, and the coating medium did not improve the coating process. The yield of coated APIs of 75–250 μm obtained after post-sieving of the coated APIs showed a significant increase in the batches prepared without a coating medium. Therefore, it was concluded that the coating process without a coating medium is an improvement over the batches prepared with a coating medium.

[0163] Measurement of dissolution Low-Volume Dissolution (LVD) 5-Minute Profile The following describes an analytical method used to determine the low-volume dissolution of active pharmaceutical ingredient (API) raw materials and coated API materials. The method uses 0.01% w / v SDS in pH 7.2 phosphate buffer as the dissolution medium, with a 5 mm optical path length and 75 rpm, using a Pion Rainbow Dynamic Dissolution Monitor (RDDM) and Mini-Bath (MB8). The optical path length and dissolution medium vary depending on the characteristics of the API. The analysis is performed by fiber optic UV detection using a Pion μDISS Profiler, employing UV detection based on the second derivative, and varies within the software depending on the API's chromophore and spectral response. A UV detection range of 277-287 nm was set for ibuprofen. A 5-point calibration curve is constructed in Pion software. The amount of API reference standard weighed depends on the API. The following is an example for ibuprofen.

[0164] Accurately weigh a 15.0 mg (14.3-15.7 mg) ibuprofen reference standard into a 100 mL volumetric flask. Dissolve it in approximately 20 mL of dissolving medium and sonicate for at least 5 minutes to ensure complete dissolution. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 1 working standard solution (concentration: approximately 0.15 mg / mL).

[0165] Accurately weigh 20.0 mg (19.0-21.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 20 mL of dissolving medium and sonicate for at least 5 minutes to ensure complete dissolution. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 2 working standard solution (concentration: approximately 0.20 mg / mL).

[0166] Accurately weigh 30.0 mg (28.5-31.5 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 20 mL of dissolving medium and sonicate for at least 5 minutes to ensure complete dissolution. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 3 working standard solution (concentration: approximately 0.30 mg / mL).

[0167] Accurately weigh 40.0 mg (38.0-42.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 20 mL of dissolving medium and sonicate for at least 5 minutes to ensure complete dissolution. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 4 working standard solution (concentration: approximately 0.40 mg / mL).

[0168] Accurately weigh 60.0 mg (57.0-63.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 20 mL of dissolving medium and sonicate for at least 5 minutes to ensure complete dissolution. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 5 working standard solution (concentration: approximately 0.60 mg / mL).

[0169] <Sample Analysis> Ibuprofen raw material: Six samples will be analyzed. For each sample, 40 mg ± 1.0% ibuprofen raw material will be accurately weighed into a Pion low-volume dissolution container. The average sample mass of the six containers will be used to calculate the instrument's potency.

[0170] Coated ibuprofen material: Six samples were analyzed. 50 mg was used for each sample. * Accurately weigh the ibuprofen-coated material (±1.0%) into Pion's low-volume dissolution containers. The average sample mass from the six containers is used to calculate the instrument's potency. * (If necessary, 50 mg of coated material adjusted for the potency of the coated API.)

[0171] For each test, the alternating addition of 10 ml of dissolving medium and the initiation of the magnetic stirrer must be carried out while maintaining constant conditions in each dissolving container. The sample is automatically analyzed by fiber optic UV detection at specified time points and intervals that can be selected as needed. Six probes measure the absorbance of the API in the container, and the % drug dissolution is determined based on the calibration curve. 100% drug dissolution is equivalent to a final solution concentration of approximately 4 mg / mL.

[0172] <Low-Volume Dissolution (LVD) 60-Minute Profile> The following analytical method is used to determine the low-volume dissolution of API raw materials and coated API materials. This method uses 0.01% w / v SDS in pH 7.2 phosphate buffer as the dissolution medium, and is performed at 75 rpm using a Pion Rainbow Dynamic Dissolution Monitor (RDDM) and Mini-Bath (MB8). The analysis is performed by fiber optic UV detection using a Pion μDISS Profiler with a 2 mm optical path length and UV detection under the second derivative. The optical path length, dissolution medium, and wavelength range vary depending on the API characteristics. A UV detection range of 277-287 nm was set for ibuprofen. A 5-point calibration curve is set in Pion software. The amount of API reference standard weighed varies depending on the API. The following is an example for ibuprofen.

[0173] Accurately weigh a 40.0 mg (38.0-42.0 mg) ibuprofen reference standard into a 100 mL volumetric flask. Dissolve it in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 1 working standard solution (concentration: approximately 0.4 mg / mL).

[0174] Accurately weigh 100.0 mg (95.0-105.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 2 working standard solution (concentration: approximately 1.0 mg / mL).

[0175] Accurately weigh 300.0 mg (285.0-315.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 3 working standard solution (concentration: approximately 3.0 mg / mL).

[0176] Accurately weigh 400.0 mg (380.0-420.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 4 working standard solution (concentration: approximately 4.0 mg / mL).

[0177] Accurately weigh 440.0 mg (418.0-462.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved (this standard solution may require slight heating to dissolve all ibuprofen). If necessary, equilibrate the solution to room temperature, dilute to volume with dissolving medium, and mix thoroughly. This is the calibration point 5 working standard solution (concentration: approximately 4.4 mg / mL).

[0178] <Sample Analysis> Ibuprofen raw material: Six samples will be analyzed. For each sample, 40 mg ± 1.0% ibuprofen raw material will be accurately weighed into a Pion low-volume dissolution container. The average sample mass of the six containers will be used to calculate the potency of the instrument.

[0179] Six samples coated with ibuprofen were analyzed. 50 mg was administered to each sample. * The ibuprofen-coated material with a ±1.0% concentration is accurately weighed into Pion's low-volume dissolution containers. The average sample mass from the six containers is used to calculate the instrument's potency. * (If necessary, 50 mg of coated material adjusted for the potency of the coated API.)

[0180] This method allows for a complete profile of the material from 100% dissolution to complete release. For each test, alternating additions of 10 ml of dissolving medium and initiation of a magnetic stirrer must be performed to ensure consistent conditions in each dissolution container. Samples are automatically analyzed by fiber optic UV detection at specified time points and selectable intervals as needed. Six probes measure the absorbance of the API in the container, and the % drug dissolution is determined based on the calibration curve. 100% drug dissolution is equivalent to a final solution concentration of approximately 4 mg / mL.

[0181] <Medium Volume Dissolution (MVD) 60-Minute Profile> This analytical method is used to determine the mid-volume dissolution of the lyophilized finished product. The method utilizes Distek's small volume conversion kit. This method uses pH 7.2 phosphate buffer as the dissolution medium and a Pion Rainbow Dynamic Dissolution Monitor (RDDM) at 75 rpm. Analysis is performed using fiber optic UV detection with a 2 mm path length and second-derivative UV detection using a Pion μDISS Profiler. The path length, dissolution medium, and wavelength range vary depending on the API characteristics. A UV detection range of 275–285 nm was set for ibuprofen. A 5-point calibration curve is constructed using Pion software. The amount of API reference standard weighed depends on its API. The following is an example for ibuprofen.

[0182] Accurately weigh a 40.0 mg (38.0-42.0 mg) ibuprofen reference standard into a 100 mL volumetric flask. Dissolve it in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 1 working standard solution (concentration: approximately 0.4 mg / mL).

[0183] Accurately weigh 100.0 mg (95.0-105.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 2 working standard solution (concentration: approximately 1.0 mg / mL).

[0184] Accurately weigh 300.0 mg (285.0-315.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 3 working standard solution (concentration: approximately 3.0 mg / mL).

[0185] Accurately weigh 400.0 mg (380.0-420.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 4 working standard solution (concentration: approximately 4.0 mg / mL).

[0186] Accurately weigh 440.0 mg (418.0-462.0 mg) of ibuprofen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved (this standard solution may require slight heating to dissolve all ibuprofen). If necessary, equilibrate the solution to room temperature, dilute to volume with dissolving medium, and mix thoroughly. This is the calibration point 5 working standard solution (concentration: approximately 4.4 mg / mL).

[0187] <Sample Analysis> USP <711> As described above, small, loosely bound pieces of non-reactive material, such as a few turns or less on a helical wire, can be attached to the lyophilized tablet, which would otherwise float. One lyophilized tablet is placed in each of six dissolution containers. The six probes measure the absorbance of the API in the containers, and the % drug dissolution is determined based on the calibration curve.

[0188] <Dissolution Example 1: Comparison of ibuprofen raw material and coated ibuprofen raw material by low-volume 5-minute dissolution test> The effectiveness of the coating process for taste-masking ibuprofen in lyophilized tablets will be determined by comparing the percentage release of ibuprofen in coated and uncoated ibuprofen raw materials in a 5-minute low-volume dissolution test.

[0189] Before coating, uncoated ibuprofen was sieved. This API was then coated using a resonant acoustic mixing (RAM II scale) manufacturing process and sieved after coating. The USP (United States Purpose) had a release of over 85% in 60 minutes. <711> Sieved coated ibuprofen was used to manufacture lyophilized tablets of 200 mg, 100 mg, and 50 mg dose strength that possessed taste-masking properties while remaining compliant with the dissolution requirements of Ph.Eur.2.9.3. The compositions of the tested freeze-dried tablets are shown in Table 12 below.

[0190] [Table 12]

[0191] All ibuprofen dissolution data shown are based on a 200 mg dose strength composition.

[0192] Sample Analysis: Ibuprofen Raw Material: 40 mg of ibuprofen raw material was accurately weighed into each sample vial, and 0.01% w / v SDS in 10 ml of pH 7.2 phosphate buffer was added at 30-second intervals. Testing was performed using Pion's μDISS Profiler. Automatic calculation of % dissolution based on the calibration curve. Ibuprofen Coated Material: 50 mg of ibuprofen coated material was accurately weighed into each sample vial, and 0.01% w / v SDS in 10 ml of pH 7.2 phosphate buffer was added at 30-second intervals. Testing was performed using Pion's μDISS Profiler. Automatic calculation of % dissolution based on the calibration curve.

[0193] Table 13 details the % ibuprofen dissolution results for both experiments. This method has a detection limit of 25% drug dissolution due to the size of the probe tip used. Results exceeding 25% are reported as >25%. The ibuprofen raw material dissolves freely and reached the maximum quantifiable value (25%) of this method at 30 seconds. This then remains constant for the remainder of the time. The coated ibuprofen material has a slower profile because the coating prevents the immediate dissolution of the API. At 30 seconds, only 2.8% of ibuprofen is released compared to >25% of the ibuprofen raw material. This is a significant difference. At 2 minutes, the coated ibuprofen still dissolves significantly less, with 11% dissolution. By 5 minutes, the coated ibuprofen also reached the maximum quantifiable threshold of 25% of this method. This data is shown in Figure 24.

[0194] [Table 13]

[0195] Delayed release demonstrates the effectiveness of the coating process. The difference is significant and indicates the masking of the taste of ibuprofen API. The proposed specification is that the coated material will have a drug release of <25%. Results from low-volume dissolution tests clearly showed a <25% delayed release of the active pharmaceutical ingredient (API) from coated ibuprofen within the first 5 minutes. In contrast, uncoated ibuprofen showed a rapid release of the API within 30 seconds. The significant difference in the percentage release of the API demonstrates the effectiveness of the coating process in masking the taste of ibuprofen.

[0196] In some embodiments, the coated APIs disclosed herein have low-volume 5-minute dissolution test results showing drug release of approximately 35%, 30%, 25%, 20%, or 15% or less after 5 minutes.

[0197] <Dissolution Example 2: Comparison of ibuprofen raw material and coated ibuprofen raw material by low-volume 60-minute dissolution test> To determine coating efficiency in more detail, the coated ibuprofen batch from Dissolution Example 1 underwent additional evaluation using low-volume dissolution (LVD) over 60 minutes.

[0198] Sample Analysis: Coated Material: 50 mg of coated ibuprofen material was accurately weighed into each sample vial, and 0.01% w / v SDS in 10 ml of pH 7.2 phosphate buffer was added at 30-second intervals. Testing was performed using Pion's μDISS Profiler. % dissolution was automatically calculated based on the calibration curve. Table 14 details the experimental % drug dissolution results for coated ibuprofen API. This method is no longer limited by the 25% detection limit described for the 5-minute test. Instead, the profile can be accurately monitored over 60 minutes until approximately 100% dissolution is achieved. The software can record % drug dissolution at the same number of time points as specified for this experiment, but the following time points, 2, 5, 15, 30, 45, and 60 minutes, were considered most appropriate for reporting. Note: Raw ibuprofen reaches 100% dissolution by approximately 2 minutes. Coated ibuprofen material has a slower profile because the coating prevents immediate dissolution of the API. At 2 minutes, the coated API was still significantly less dissolved, at 6% dissolution. The profile then continued along a slow release trajectory, achieving 95% release at 60 minutes. The LVD of the coated material showed a slow release profile up to 15 minutes, indicating flavor masking. This data is shown in Figure 25 and Table 14 with ±5% error bars.

[0199] [Table 14]

[0200] The data shows a slow-release profile of the coated material, which is evidence of taste masking. Delayed release is a result of the effectiveness of the coating manufacturing process. The proposed specification is that the coated material releases less than 70% of the drug within 15 minutes.

[0201] In some embodiments, the coated APIs disclosed herein have low-volume 60-minute dissolution test results of approximately 85%, approximately 80%, approximately 75%, approximately 70%, approximately 65%, or approximately 60%, or approximately 55%, or approximately 50%, or approximately 45% or less after 15 minutes. In some embodiments, the coated APIs disclosed herein have low-volume 60-minute dissolution test results of approximately 95%, approximately 90%, approximately 85%, approximately 80%, approximately 75%, or approximately 70% or less after 30 minutes. In some embodiments, the coated APIs disclosed herein have low-volume 60-minute dissolution test results of approximately 95%, approximately 90%, approximately 85%, or approximately 80% or less after 45 minutes. In some embodiments, the coated APIs disclosed herein have low-volume 60-minute dissolution test results of approximately 99%, approximately 98%, approximately 95%, or approximately 90% or less after 60 minutes.

[0202] <Dissolution Example 3: Comparison of ibuprofen-coated ibuprofen material and finished product based on a 60-minute dissolution test of a medium volume> Next, the coated ibuprofen is removed from the dosage form manufacturing process that yields the finished product unit. Medium volume dissolution (MVD), an additional method based on the 60-minute profile of the coated API, was developed to allow a direct comparison of the dissolution profile of the coated API with that of the resulting finished product unit. This enables a direct comparison between the coated properties of the API and the coated properties within the finished product ODT.

[0203] Next, the MVD data for the 200 mg ibuprofen finished product from dissolution example 1 (Table 12) and the LVD data from each coated ibuprofen can be overlaid as shown in Figure 26. (Note: Uncoated material achieves approximately 80% complete release within approximately 5 minutes). As can be seen from these data, the finished ibuprofen product has a slow release profile that closely matches the preceding coated ibuprofen. The finished product has a % drug release value within ±5% of that of coated ibuprofen at each of the reported time points, i.e., 2, 5, 15, 30, 45, and 60 minutes. The slow release of the finished product is evidence that the coated ibuprofen maintains its integrity during the manufacturing process and produces a finished product unit with masked taste. Proposed specification: Less than 70% drug release at 15 minutes for both LVD and MVD indicates the achievement of taste masking.

[0204] [Table 15]

[0205] In some embodiments, the pharmaceutical compositions disclosed herein have mid-volume 60-minute dissolution test results of approximately 85%, approximately 80%, approximately 75%, approximately 70%, approximately 65%, approximately 60%, or approximately 55%, or approximately 50%, or approximately 50%, or approximately 45% or less after 15 minutes. In some embodiments, the pharmaceutical compositions disclosed herein have mid-volume 60-minute dissolution test results of approximately 95%, approximately 90%, approximately 85%, approximately 80%, approximately 75%, or approximately 70% or less after 30 minutes. In some embodiments, the pharmaceutical compositions disclosed herein have mid-volume 60-minute dissolution test results of approximately 95%, approximately 90%, approximately 85%, or approximately 80% or less after 45 minutes. In some embodiments, the pharmaceutical compositions disclosed herein have mid-volume 60-minute dissolution test results of approximately 99%, approximately 98%, approximately 95%, or approximately 90% or less after 60 minutes.

[0206] <Dissolution Example 4 (Acetaminophen (APAP) as an API)> This analytical method is used to determine the low-volume solubility of acetaminophen raw materials and coated acetaminophen materials. The method uses 0.01% w / v SDS in pH 7.2 phosphate buffer as the dissolution medium, and is performed at 50 rpm using a Pion Rainbow Dynamic Dissolution Monitor (RDDM) and Mini-Bath (MB8). The analysis is performed by fiber optic UV detection using a Pion μDISS Profiler with a 2 mm optical path length and a UV detection range of 320-330 nm, based on the second derivative.

[0207] The following describes the creation of a 5-point calibration curve for this example. Calibration point 1: Accurately weigh 50.0 mg of acetaminophen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 1 working standard solution (concentration: approximately 0.5 mg / mL). Calibration point 2: Accurately weigh 100.0 mg of acetaminophen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is the calibration point 2 working standard solution (concentration: approximately 1.0 mg / mL). Calibration point 3: Accurately weigh 200.0 mg of acetaminophen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is a calibration point 3 working standard solution (concentration: approximately 2.0 mg / mL). Calibration point 4: Accurately weigh 500.0 mg of acetaminophen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved. Dilute to volume with dissolving medium while mixing thoroughly. This is a calibration point 4 working standard solution (concentration: approximately 5.0 mg / mL). Calibration point 5: Accurately weigh 550.0 mg of acetaminophen reference standard into a 100 mL volumetric flask. Dissolve in approximately 80 mL of dissolving medium and sonicate until completely dissolved (this standard solution may require slight heating to dissolve all acetaminophen). If necessary, equilibrate the solution to room temperature, dilute to volume with dissolving medium, and mix thoroughly. This is a calibration point 5 working standard solution (concentration: approximately 5.5 mg / mL).

[0208] <Sample Analysis> Acetaminophen raw materials: Six samples will be analyzed. For each sample, 100 mg of acetaminophen raw material will be accurately weighed into a Pion low-volume dissolution container. The individual software potency for each container will be entered into the DissoPRO software at the start of the experiment.

[0209] Acetaminophen-coated material: Acetaminophen (APAP) was pre-sieved through 75 μm and 250 μm meshes to remove fine and large particles. It was then coated with carnauba wax and hydrophobic silica. The composition of the coated APAP material is as follows:

[0210] [Table 16]

[0211] Six samples will be analyzed. For each sample, 125 mg of coated acetaminophen material will be accurately weighed into a Pion low-volume dissolution container. The individual software potency of each container will be entered into the DissoPRO software at the start of the test.

[0212] APAP raw materials and coated APAP were evaluated over a 30-minute period. The APAP raw materials dissolved readily, reaching an equilibrium point of over 100% within the first two minutes. Coated APAP was coated in a bench-scale operation using a resonant acoustic mixing manufacturing process. The dissolution results of the coated APAP materials showed a significantly slower % drug release profile than the respective uncoated raw materials. This profile remained slow with less than 15% drug dissolution over 30 minutes, showing a slow release profile over this period. This slow release profile indicates the successful achievement of coating and the prevention of the API from dissolving readily, thus masking the taste of the API. Table 16 and Figure 27 below show the significantly reduced dissolution profiles achieved for coated APAP.

[0213] [Table 17]

[0214] Additional definitions Unless otherwise defined, all technical terms, annotations, and other technical and scientific or academic terms used herein are intended to have the same meaning as that generally understood by those skilled in the art to which the claimed subject matter pertains. In some cases, terms that have a generally understood meaning are defined herein for clarity and / or quick reference, and the inclusion of such definitions herein should not necessarily be construed as representing a substantial difference from that generally understood in the art.

[0215] References to values ​​or parameters “approximately” in this specification include (describe) variations directed toward the value or parameter itself. For example, a description referring to “approximately X” includes a description of “X.” In addition, references to phrases “less than,” “greater than,” “at most,” “at least,” “less than or equal to,” “greater than or equal to,” or other similar phrases following a set of values ​​or parameters are intended to apply the phrase to each value or parameter within the set of values ​​or parameters. For example, a description that the layer has a thickness of at least approximately 5 cm, at least approximately 10 cm, or at least approximately 15 cm is intended to mean that the layer has a thickness of at least approximately 5 cm, at least approximately 10 cm, or at least approximately 15 cm.

[0216] Where used herein, the singular forms “a,” “an,” and “the” are intended to include the plural form unless the context clearly indicates otherwise. Where used herein, the term “and / or” should be understood to mean and encompass any possible combination of one or more related enumerated items. Where used herein, the terms “includes,” “including,” “comprises,” and / or “comprising” indicate the presence of a described feature, integer, process, operation, element, component, and / or unit, but should be further understood not to exclude the presence or addition of one or more other features, integers, processes, operations, elements, components, units, and / or groups thereof.

[0217] This application discloses several numerical ranges in the text and figures. Since this disclosure can be implemented across the entire disclosed numerical range, the exact range limits are not verbatim described herein; however, the disclosed numerical ranges essentially support any range or value within the disclosed numerical range, including the endpoint.

[0218] The above description is presented so that a person skilled in the art can prepare and use this disclosure, and is provided in the context of a particular application and its requirements. Various modifications to preferred embodiments will be readily apparent to a person skilled in the art, and the general principles defined herein can be applied to other embodiments and applications without departing from the spirit and scope of this disclosure. Thus, this disclosure is not intended to be limited to the embodiments shown, but rather to encompass the broadest scope consistent with the principles and features disclosed herein.

Claims

1. APIs comprising at least one coating containing water-insoluble material and silica, with a concentration of 85-95% w / w. A matrix-forming agent in a concentration of 3-7% w / w, and 2-6% w / w structural agent Includes, A pharmaceutical composition which is an orally disintegrating agent, The matrix-forming agent comprises gelatin, hydrolyzed dextran, dextrin, alginate, polyvinyl alcohol, polyvinylpyrrolidone, and / or acacia gum. A pharmaceutical composition comprising mannitol, dextrose, lactose, galactose, glycine, cyclodextrin, or a combination thereof as a structure-forming agent.

2. The pharmaceutical composition according to claim 1, wherein the water-insoluble material constitutes 10 to 30% w / w of the API, which includes at least one coating.

3. The pharmaceutical composition according to claim 1 or 2, wherein silica constitutes 0.5 to 2% w / w of the API, which includes at least one coating.

4. A pharmaceutical composition according to any one of claims 1 to 3, wherein the water-insoluble material includes wax.

5. A pharmaceutical composition according to any one of claims 1 to 4, wherein the matrix-forming agent comprises gelatin.

6. A pharmaceutical composition according to any one of claims 1 to 5, wherein the structure-forming agent comprises mannitol.

7. The pharmaceutical composition according to any one of claims 1 to 6, wherein the amount of API containing at least one coating is 85 to 90% w / w, and further comprises 0.1 to 1% w / w of a viscosity modifier.

8. The pharmaceutical composition according to claim 7, wherein the viscosity modifier comprises xanthan gum.

9. The pharmaceutical composition according to any one of claims 1 to 8, wherein the amount of API including at least one coating is 85 to 90% w / w, and further comprises 0.1 to 2% w / w of a sweetener.

10. The pharmaceutical composition according to claim 9, wherein the sweetener is sucralose.

11. The pharmaceutical composition according to any one of claims 1 to 10, wherein the amount of API including at least one coating is 85 to 90% w / w, and further comprises 0.5 to 3% w / w of a flavoring agent and / or an air mismatching agent.

12. The pharmaceutical composition according to claim 11, wherein the flavoring agent and / or air-miscible agent comprises a terpene and / or terpinol.

13. A pharmaceutical composition according to any one of claims 1 to 12, having a medium-volume 60-minute dissolution test result of 70% or less after 15 minutes.

14. (i) A process for manufacturing a coated API, The process of filtering out unprocessed APIs; A step of mixing the sieved untreated API and water-insoluble materials in a container; A process of applying mechanical energy to a container and heating the container to a temperature of 50°C or higher; and A step of adding silica to a container while continuously applying mechanical energy and maintaining the temperature of the container to form a coated API including at least one coating containing a water-insoluble material and silica, A process that includes, (ii) A 30-50% w / w coated API comprising at least one coating containing a water-insoluble material and silica; 1-5% w / w matrix-forming agent; 1-3% w / w structure-forming agent; and solvent A step of forming a pharmaceutical suspension, including, (iii) The process of putting the pharmaceutical suspension into a mold, (iv) A step of freeze-drying the placed pharmaceutical suspension in a mold to form a pharmaceutical composition. Includes, The matrix-forming agent comprises gelatin, hydrolyzed dextran, dextrin, alginate, polyvinyl alcohol, polyvinylpyrrolidone, and / or acacia gum. The structural agent includes mannitol, dextrose, lactose, galactose, glycine, cyclodextrin, or a combination thereof. A method for producing a pharmaceutical composition that is an orally disintegrating agent.

15. The method according to claim 14, wherein the step of sieving the untreated API includes sieving the untreated API to an average particle size of 75 to 250 microns.

16. The method according to claim 14 or 15, further comprising sieving the coated API to an average particle size of 75 to 250 microns.

17. The method according to any one of claims 14 to 16, wherein the water-insoluble material includes wax.

18. The method according to any one of claims 14 to 17, wherein the ratio of at least one coating to the API is 15 to 40:60 to 85, wherein the API includes at least one coating.

19. A method for producing a pharmaceutical composition that is an orally disintegrating agent, APIs containing at least one coating of water-insoluble material and silica, with a concentration of 30-50% w / w; 1-5% w / w matrix-forming agent; 1-3% w / w structure-forming agent; and solvent A step of forming a pharmaceutical suspension, including, The process of putting the pharmaceutical suspension into a mold, The process involves freeze-drying the placed pharmaceutical suspension in a mold to form a pharmaceutical composition. Includes, The matrix-forming agent comprises gelatin, hydrolyzed dextran, dextrin, alginate, polyvinyl alcohol, polyvinylpyrrolidone, and / or acacia gum. The structural agent includes mannitol, dextrose, lactose, galactose, glycine, cyclodextrin, or a combination thereof. method.

20. The method according to claim 19, wherein the water-insoluble material constitutes 10 to 30% w / w of the API, which includes at least one coating.

21. The method according to claim 19 or 20, wherein silica constitutes 0.5 to 2% w / w of the API including at least one coating.

22. The method according to any one of claims 19 to 21, wherein the water-insoluble material includes wax.

23. The method according to any one of claims 19 to 22, wherein the matrix-forming agent comprises gelatin.

24. The method according to any one of claims 19 to 23, wherein the structure-forming agent comprises mannitol.

25. The method according to any one of claims 19 to 24, wherein the pharmaceutical suspension further comprises 0.01 to 0.1% w / w of a viscosity modifier.

26. The method according to claim 25, wherein the viscosity modifier comprises xanthan gum.

27. The method according to any one of claims 19 to 26, wherein the pharmaceutical suspension further comprises 0.1 to 1% w / w of a sweetener.

28. The method according to claim 27, wherein the sweetener is sucralose.

29. The method according to any one of claims 19 to 28, wherein the pharmaceutical suspension further comprises 0.1 to 1% w / w of a flavoring agent and / or an air-miscible agent.

30. The method according to claim 29, wherein the flavoring agent and / or air-adaptive agent comprises a terpene and / or terpinol.

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