Protease preparations for the treatment of microbial infections
A stable protease formulation addresses the limitations of antibiotics by preventing biofilm formation and enhancing microbial diversity, offering a resistance-free antimicrobial solution.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- ジーミキュー テクノロジー アクチエボラグ
- Filing Date
- 2021-05-12
- Publication Date
- 2026-05-01
AI Technical Summary
Current antimicrobial treatments, such as antibiotics, often disrupt the natural microbiome, lead to antibiotic resistance, and are not effective against biofilms, posing a risk to human and animal health.
A stable protease formulation comprising protease, glycerol, hyaluronic acid, and divalent cations is developed to prevent biofilm formation and increase microbial diversity without inducing resistance.
The formulation effectively reduces biofilms and enhances microbial diversity, providing a non-toxic alternative to antibiotics that maintains the natural microbiome balance.
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Abstract
Description
Technical Field
[0001] The present invention relates to a stable protease preparation for treating microbial infections.
Background Art
[0002] Bacterial infections, fungal infections, and viral infections range from non-aggressive and relatively mild short-term infections to highly pathogenic infections that threaten life. Adhesion of microorganisms to the host cell membrane is the most common mode of establishing infection in the host. Microbial surface proteins recognize cell surface proteins, thereby initiating microbial infection, causing adhesion, internalization, colonization, and secretion of toxic molecules, enabling the formation and growth of bacterial cells within host tissues (Meena et al., 2020). As a good strategy for treating and preventing microbial infections, it is conceivable to prevent or reduce the adhesion of microorganisms, which is the first stage of infection.
[0003] On the body surface of mammals exposed to the external environment, a microbial colony, i.e., microbiota, is formed. Some of the endogenous microorganisms can cause diseases under certain circumstances; furthermore, some of the exogenous pathogens inhabiting the external environment or other animal surfaces can overcome the body's antimicrobial defenses, and contact with such microorganisms can also be harmful. As a good strategy for converting pathogenic microbiota dysbiosis into a healthy commensal microbiota, it is to target the structure and adhesion mechanism of the biofilm so as to reduce the abnormal growth of pathogens and increase microbial diversity. Multiple studies have revealed the differences between the microorganisms present on diseased skin and those present on healthy skin (Rosenthal et al., 2011); moreover, such studies have shown that microbial imbalance (referred to as dysbiosis) exists in many lesions.
[0004] Traditional approaches to eliminating infections from animal skin have involved targeting the causative microorganisms and attacking them with nonspecific antimicrobial agents such as chlorhexidine. However, with more information now available about the commensal cutaneous microbiome, questions arise as to whether such nonspecific approaches are ideal (Rosenthal et al.). For example, chlorhexidine, commonly used to treat pyoderma, is effective against many core microbiome components; therefore, it is likely to suppress both pathogenic and beneficial microorganisms.
[0005] The unrestricted use of antibiotics is leading to increased antibiotic resistance, which is currently one of the most pressing health risks, as it can lead to the emergence of incurable human infections (WHO, 2019). Antibiotics are commonly used in veterinary animal treatment, and many of the drugs used are the same as those used to treat bacterial infections in humans. Antibiotic resistance is associated with treatment failure and subsequent poor animal health. Pet animals can also be infected with multidrug-resistant pathogens and may exchange these pathogens with humans, potentially acting as antimicrobial resistance reservoirs for contacts (Buckland et al., 2016).
[0006] Developing novel antimicrobial agents capable of counteracting the repertoire of bacterial resistance mechanisms is becoming increasingly important. Targeting bacterial pathogenicity characteristics such as adhesion and colonization, rather than bacterial survival, is considered another important strategy in antibiotic therapy (Asadi et al., 2019). Adhesion of pathogens to host cells or tissues is the first step in bacterial infection and also the first step in colonization (biofilm formation). Biofilm-forming bacteria are thought to account for up to 80 percent of all bacterial infections (Bryers, 2008). A biofilm is a community of microorganisms protected by an autosynthetic layer of complex polysaccharides, proteins, lipids, and extracellular DNA. When bacteria act as a biofilm, their resistance to both the immune system and antibiotics can increase by up to 1000 times (Gilbert et al., 1997). In the case of anti-adhesion therapy, the impact on the level of selective pressure in the bacterial population is low, so it is unlikely that this therapy will induce the emergence of resistance-causing mutations.
[0007] Antibiotics are typically used systemically to inhibit the growth of pathogenic bacteria, but during treatment, they act on various bacterial species of the commensal microbiome that are important for health. This can lead to a reorganization of the normal microbiome, which may include a decrease in bacterial diversity and a significant increase in bacteria that were previously only present in small numbers in the microbial populations of the gastrointestinal tract and skin. Human skin and mucous membranes are complex barrier organs that exist in a symbiotic relationship with the microbial normalbiome essential for healthy skin. For example, these microbiomes exist in constant interaction with and are well-regulated by the host's innate and adaptive immune systems, and this symbiotic relationship relies on maintaining a delicate balance. Changes in the healthy microbiome caused by antibiotics can persist for months or even years after treatment (Shaw et al., 2019).
[0008] Enzymes, particularly proteases, are highly suitable for inhibiting microbial adhesion, such as bacterial adhesion, and for dissolving biofilms without killing microorganisms. Proteases have been used in medicine for decades and are established as a type of drug that exhibits good tolerance (Craik et al., 2011).
[0009] There is an urgent need to develop novel, highly stable topical antimicrobial compositions, such as antimicrobial compositions that target microbial / bacterial adhesion, based on non-toxic compounds that do not induce resistance and have little to no effect on the patient's natural microbiome. [Overview of the project]
[0010] The inventors of this invention have developed a novel formulation. This formulation is a stable protease formulation capable of preventing and reducing the formation of biofilms, and increasing the diversity of microorganisms present on or within the surface of a target surface or biological surface. Furthermore, since this formulation does not induce microbial resistance, it can be used as an alternative to antibiotics. In other words, the formulation described herein has high potential for clinical use and provides a solution to the challenge of reducing antibiotic use.
[0011] In other words, in one aspect, this disclosure relates to compositions including: (i) 0.01-0.2% w / w protease; (ii) 50-70% w / w glycerol; (iii) 0.0-0.1% w / w hyaluronic acid; and (iv) A salt containing divalent cations at a concentration of 0.01-0.2% w / w.
[0012] In another aspect, this disclosure relates to compositions for use in pharmaceuticals.
[0013] In yet another aspect, the present disclosure relates to a composition for use in the treatment of a condition selected from the group consisting of microbial infections, skin conditions and oral conditions on the internal and / or surface of the body of a mammal, comprising: (i) Protease; (ii) Glycerol; (iii) Hyaluronic acid; and (iv) Divalent cation.
[0014] In one aspect, this disclosure relates to compositions for cosmetic use in and / or on the surface of the body of a mammal, comprising: (i) Protease; (ii) Glycerol; (iii) Hyaluronic acid; and (iv) Calcium chloride.
[0015] In another aspect, the present disclosure relates to a method for preventing and / or reducing biofilm, wherein the method comprises administering one of the compositions described in any one of the above items.
[0016] In yet another aspect, the disclosure relates to a method for increasing microbial diversity, wherein the method includes administering the composition.
[0017] In one aspect, this disclosure relates to a method for producing the above-mentioned compositions herein, wherein the method comprises mixing the following components at 25°C in the following order: (i) Glycerol; (ii) buffer; (iii) Hyaluronic acid; and (iv) Protease. [Brief explanation of the drawing]
[0018] [Figure 1]Formulation optimization increases the stability of trypsin in solution. The plot shows the effect of various formulations on the residual activity of trypsin after storage at (40±2℃ / 100% RH). Formulation composition (N16) contains 60 w / w% glycerol, 0.1 w / w% CaCl2, 0.3 w / w% collagen, and 0.04 w / w% trypsin (pH 8.5). Formulation composition (N15) contains 50 w / w% glycerol, 0.1 w / w% CaCl2, 0 w / w% collagen, and 0.04 w / w% trypsin (pH 8.5). The buffer solution contained 0.04 w / w% trypsin (pH 7.5). Nonlinear regression was used to estimate the half-life. [Figure 2] Formulation A significantly reduces biofilm formation in vitro. Bar plots show the effect on pre-formed biofilms by (A) Pseudomonas aeruginosa, (B) Staphylococcus pseudintermedius, and (C) Malassezia pachydermatis after treatment with the negative control formulation (n=12) and the test formulation A (n=6). Formulation A significantly reduces the "colony-forming unit (CFU) / peg" value compared to the control formulation. Data are plotted as mean values with error bars (95% confidence interval). [Figure 3] The number of species increased after enzyme treatment. The plot shows the number of species detected in the enzyme-treated group (n=7) and in one dog infected with Proteus. The control group (n=6) received no treatment. At the end of the study, the enzyme-treated group had the highest number of detectable species. No significant changes were observed in the detectable species in the control group. Data were plotted as mean values with error bars (standard error). [Figure 4]There was a clear correlation between the abundance of clinically relevant pathogens and microbial diversity. When the abundance of clinically relevant pathogens was plotted against the microbial diversity score, i.e., the evenness index of bacteria (Shannon index), a clear correlation (r2 = 0.8) was observed between these two parameters; this index is a quantitative measure that reflects the number of different species present in the dataset. This indicates that a low abundance of clinically relevant pathogens correlates with a high score of microbial diversity. [Figure 5] In both treatment groups, the abundance of clinically relevant pathogens decreased significantly. Plots showing the change in the relative abundance of clinically relevant pathogens in all three affected animal groups from day 0 to day 28 of the test period. The control group showed an increase in clinically relevant pathogens, while both treatment groups showed a decrease. The enzyme treatment group showed a slightly greater decrease (p = 0.028) compared to the other treatment group that received chlorhexidine treatment (p = 0.048). Data were plotted as mean values with error bars (standard error). [Figure 6] Alpha diversity mainly increased in the enzyme group. Plots representing alpha diversity, i.e., the average species diversity of the treatment area, at (A) day 0 and (B) day 28. At day 28, the average alpha diversity increased from 197 to 404 (median; 53 - 479) in the enzyme treatment group, while in the chlorhexidine group, a small, non-significant increase from 359 to 392 (median; 345 - 388) was observed. No clear difference was observed in the control group (mean; 300 - 312, median; 300 - 192). Data were plotted as mean values with error bars (standard error). [Figure 7] In the treatment group (n = 5), the gingivitis score and the periodontal score / grade decreased. Plots showing the decrease in (A) the gingivitis score and (B) the periodontal score after treatment with formulation A. This suggests a reduction in gingivitis and generally an improvement in oral hygiene in dogs treated with formulation A. Data were plotted as mean values with error bars (standard error). [Figure 8]Dogs treated with formulation A showed favorable effects, and these effects persisted. When the gingivitis status test was continued after the end of the study, the scores remained low even after 60 days from the start. This effect appears to persist beyond 60 days, suggesting that the unhealthy microbiome was replaced by a healthier one. [Modes for carrying out the invention]
[0019] definition As used herein, the term "protease" refers to an enzyme that cleaves polypeptides of any length, short or long, at the peptide bond site, for example, by hydrolysis of the peptide bond. The substrate of a protease is a polypeptide. The substrate may be a naturally occurring polypeptide or a synthetic polypeptide.
[0020] The term “biofilm” refers to the extracellular matrix on which microorganisms exist in a dispersed manner and / or form colonies. Biofilms are typically composed of polysaccharides and other macromolecules. Furthermore, in this disclosure, expressions such as “prevent biofilm,” “reduce biofilm,” or “decrease biofilm,” and similar expressions mean preventing biofilm proliferation, slowing the rate of biofilm proliferation, partially eradicating existing biofilm, and / or completely eradicating existing biofilm.
[0021] In this specification, the term "stability" refers to in vivo stability and storage stability (e.g., storage stability at room temperature).
[0022] As used herein, “pharmaceutically acceptable” means, within the bounds of proper medical judgment, a compound, material, composition, and / or dosage form that is suitable for use in contact with human and animal tissues, organs, and / or bodily fluids, free from excessive toxicity, irritation, allergic reactions, or other problems or complications, and commensurate with a reasonable benefit-to-risk ratio.
[0023] The term "microbial infection" refers to the undesirable proliferation or spread of pathogenic microorganisms in a host organism. This includes the overgrowth of microorganisms normally present in or on the bodies of mammals or other organisms. More generally, a microbial infection can be any situation in which the presence of a microbial population causes damage to the host mammal. That is, a microbial infection is present if an excess number of microbial populations are present in or on the body of a mammal, or if damage to the mammal's cells or other tissues occurs as an effect of the presence of the microbial population.
[0024] As used herein, the term "microbial diversity" refers to a measure that represents the number of different microbial species present in a specific environment, such as the mouth or skin surface of mammals, while also taking into account that each microbial species is representative of the whole compared to other microbial species.
[0025] In relation to this disclosure, the term "w / w" means "weight / weight". The expression "%w / w" is synonymous with "wt%" or "weight percent". For example, 10g of a composition containing 50% w / w of A contains 5g of A.
[0026] In connection with this disclosure, expressions such as "a composition containing X to Y% of A" mean a composition that contains A within the range of X to Y%, encompassing the two thresholds X and Y. That is, if X is less than Y, the composition will not contain A in less than X%, nor will it contain A in more than Y%.
[0027] Stabilizing preparations This disclosure relates to a stable protease formulation for treating microbial infections. The protease is highly suitable for treating microbial infections and biofilms, and as a therapeutic agent, it is non-toxic and well-tolerated. Another advantage is that it can be used as an alternative to antibiotics because it does not induce resistance.
[0028] In other words, in one embodiment, this disclosure relates to a composition comprising: (i) 0.01-0.2% w / w protease; (ii) 50-70% w / w glycerol; (iii) 0.0-0.1% w / w hyaluronic acid; and (iv) A salt containing divalent cations at a concentration of 0.01-0.2% w / w.
[0029] In one embodiment of the present disclosure, the divalent cation of the composition is calcium. In a particular embodiment of the present disclosure, the composition contains 0.01 to 0.2% of a calcium salt. In a particular embodiment of the present disclosure, the composition contains 0.01 to 0.2% of calcium chloride.
[0030] In another embodiment, the composition further comprises 0.1 to 0.4% w / w of a buffer, such as a pH buffer. In one embodiment of the present disclosure, the buffer may be a mixture of two or more buffer systems.
[0031] In yet another embodiment, the buffer for the composition is selected from the group consisting of tris(2-amino-2-(hydroxymethyl)propane-1,3-diol) and MOPS(3-morpholinopropane-1-sulfonic acid). Those skilled in the art will also understand the use of other pharmaceutically acceptable buffers.
[0032] In one embodiment, the composition further comprises a monosaccharide. For example, the monosaccharide may be a pentose or a hexose. The monosaccharide may exist in a cyclic form, a linear form, or a mixture of both forms. In one embodiment of the present disclosure, the composition comprises 0.0 to 0.2% w / w of monosaccharides, such as 0.01 to 0.2% w / w of monosaccharides. The composition may contain monosaccharides if it is advantageous for use on the skin, for example, in the use of a gel. That is, in one embodiment, the composition is a skin composition and contains monosaccharides, such as 0.01 to 0.2% w / w of monosaccharides. In another embodiment, the composition is essentially monosaccharide-free, such as 0.0% w / w of monosaccharides. In yet another embodiment, the monosaccharide in the composition is mannose. In a particular embodiment of the present disclosure, the composition comprises 0.0 to 0.2% w / w of mannose, such as 0.01 to 0.2% w / w of mannose.
[0033] In one embodiment of the present disclosure, the composition further comprises collagen. The collagen may be collagen extracted and purified from animal, fish, and crustacean tissues. There are no particular limitations on the extraction and degradation methods or the degree of modification of the resulting collagen. In one particular embodiment of the present disclosure, the collagen may be modified, such as chemically modified. In one particular embodiment, the collagen is gelatin. In one embodiment of the present disclosure, the composition comprises 0.0 to 0.3% w / w collagen, such as 0.01 to 0.3% w / w collagen. For cosmetic applications, the inclusion of collagen in the formulation may be advantageous. Collagen may improve the stability of skin compositions and may have further advantageous properties for skin application. Therefore, in one embodiment of the present disclosure, the composition comprises collagen, such as 0.01 to 0.3% collagen. In another embodiment of the present disclosure, the composition is essentially collagen-free, such as 0.0% w / w collagen.
[0034] In one embodiment, the protease in the composition is trypsin. Trypsin is a serine protease that almost selectively cleaves peptide chains at the carboxyl sides of the amino acids lysine and arginine. In one embodiment of the present disclosure, the composition contains 0.01 to 0.2% w / w of protease, such as 0.01 to 0.2% w / w of trypsin. In a further embodiment of the present disclosure, the composition contains 0.02 to 0.09% w / w of protease, such as 0.02 to 0.09 w / w of trypsin. In a particular embodiment of the present disclosure, the composition contains essentially 0.04% w / w of protease, such as 0.04% w / w of protease.
[0035] In one embodiment of the present disclosure, the composition comprises one or more diols, triols, or polyols, such as glycerol, propylene glycol, or sugar alcohols. In one embodiment, the composition comprises a diol. In a particular embodiment, the composition of the present disclosure comprises 50-80% w / w of diols, such as 50-75% w / w, 50-70% w / w, 50-62% w / w, etc. In a particular embodiment, the composition comprises 50-80% w / w of glycerol, such as 50-75% w / w, 50-70% w / w, 50-62% w / w, etc. In another particular embodiment of the present disclosure, the composition comprises essentially 60% diols (such as glycerol). The role of diols, triols, and / or polyols is, in part, to reduce the activity of water in the composition. Reducing the activity of water leads to the inactivation of proteases. The stability of the composition is improved by inactivating the protease in the composition.
[0036] In one embodiment of this disclosure, the composition comprises a glycosaminoglycan such as hyaluronic acid. “Hyaluronic acid” as used herein includes, but is not limited to, hyaluronic acid and its hyaluronate salts, such as sodium hyaluronate, potassium hyaluronate, magnesium hyaluronate, and calcium hyaluronate. In a particular embodiment, the composition comprises 0.0 to 0.1% w / w of glycosaminoglycan (such as hyaluronic acid). In another particular embodiment, the composition comprises 0.002 to 0.1% w / w of glycosaminoglycan (such as hyaluronic acid). In yet another particular embodiment, the composition comprises 0.002 to 0.04% w / w of glycosaminoglycan (such as hyaluronic acid). In yet another particular embodiment, the composition comprises 0.002 to 0.04% w / w of glycosaminoglycan (such as hyaluronic acid). In another specific embodiment, the composition comprises 0.02% w / w of glycosaminoglycan (such as hyaluronic acid). In one embodiment of the present disclosure, the composition comprises 0.0 to 0.1% w / w of hyaluronic acid, such as 0.002 to 0.1% w / w.
[0037] Another embodiment of the present disclosure includes, or essentially consists of: (i) 0.02-0.09% w / w protease; (ii) 50-62% w / w glycerol; (iii) 0.0-0.04% w / w hyaluronic acid; (iv) 0.01-0.1% w / w CaCl2; (v) Tris or MOPS at 0.1-0.4% w / w; (vi) 0.0-0.2% w / w mannose; and (vii) 0.0-0.3% w / w collagen.
[0038] Another embodiment of the present disclosure includes, or essentially consists of: (i) 0.04% w / w protease; (ii) 60% w / w glycerol; (iii) 0.2% w / w hyaluronic acid; (iv) 0.01% w / w calcium dichloride; and (v) 0.1% w / w Tris or MOPS.
[0039] Another embodiment of the present disclosure includes, or essentially consists of: (i) 0.04% w / w protease; (ii) 60% w / w glycerol; (iii) 0.02% w / w hyaluronic acid; (iv) 0.01% w / w calcium dichloride; and (v) 0.1% w / w Tris or MOPS.
[0040] In yet another embodiment of the present disclosure, the combination of components of the composition does not exceed 100%.
[0041] In another embodiment, the pH of the composition is 6.0 to 7.5 (e.g., 6.2 to 7.4). The pH of a solution can be evaluated in numerous ways. For example, the pH can be evaluated using a pH electrode or an H indicator.
[0042] In one embodiment, the composition further comprises water. In a particular embodiment of this disclosure, at least a portion of the water in the composition is derived from a buffer. The presence of free water can activate and / or destabilize proteases. Water in the composition may also be inactivated by other components (e.g., glycerol and other alcohols described herein). Therefore, in one embodiment, the composition contains less than 50% w / w of water (e.g., 20-50% w / w of water). For the purpose of improving the stability of the protease, it is important that the activity of the water in the composition is low. When the composition is applied, for example, to a wound, skin, or oral cavity, water from the wound, skin, or oral cavity mixes with the composition and increases the activity of the water. This leads to the activation of the protease.
[0043] In another embodiment, the composition is in the form of a spray liquid, gel, cream, lotion, ointment, foam, or dental gum.
[0044] In one embodiment, the present disclosure relates to the composition for pharmaceutical use. Specifically, in one embodiment, the present disclosure provides the composition for pharmaceutical use.
[0045] In another embodiment, the present disclosure provides a composition for use in the treatment of a condition selected from the group consisting of microbial infections, skin conditions and oral conditions, in and / or on the surface of the body of a mammal, or for cosmetic purposes, comprising: (i) Protease; (ii) Glycerol; (iii) Hyaluronic acid; and (iv) Divalent cation.
[0046] In one embodiment, the present disclosure relates to a composition for use in the treatment of a condition in a mammal selected from the group consisting of microbial infections, skin conditions and oral conditions, comprising the following: (i) Protease; (ii) Glycerol; (iii) Hyaluronic acid; and (iv) Divalent cation.
[0047] In one embodiment of the present disclosure, the microbial infection is selected from the group consisting of bacterial infections, fungal infections, yeast infections, and viral infections.
[0048] In another embodiment, the skin condition is a skin infection. In yet another embodiment, the skin condition is an inflammatory skin disease. In yet another embodiment, the inflammatory skin disease is selected from the group consisting of atopic dermatitis, psoriasis, rosacea, and acne.
[0049] In one embodiment, the oral condition is an oral infection. In another embodiment, the oral condition is a dental infection. In yet another embodiment, the mammal is a dog, a cat, a horse, or a human.
[0050] In one embodiment, the protease in the composition is trypsin.
[0051] In one embodiment of the present invention, the divalent cation of the composition is calcium.
[0052] In another embodiment, the composition further comprises 0.1 to 0.4% w / w of buffer.
[0053] In yet another embodiment, the buffer of the composition is selected from the group consisting of Tris and MOPS.
[0054] In one embodiment, the composition further comprises a monosaccharide.
[0055] In another embodiment, the monosaccharide in the composition is mannose.
[0056] In one embodiment of the present invention, the composition further comprises collagen.
[0057] In another embodiment, the pH of the composition is 6.0 to 7.5 (e.g., 6.2 to 7.4).
[0058] In one embodiment, the composition further comprises water.
[0059] In another embodiment, the composition is in the form of a spray liquid, gel, cream, lotion, ointment, foam, or dental gum.
[0060] In one embodiment of the present disclosure, the composition is used topically.
[0061] In another embodiment, the disclosure relates to a method for preventing and / or reducing biofilm, wherein the method comprises administering a composition described in any one of the preceding paragraphs.
[0062] In one embodiment, the biofilm is a biofilm inside or on the body of a mammal.
[0063] In another embodiment, the biofilm is a biofilm of a biological surface.
[0064] In one embodiment, the present disclosure relates to a method for increasing microbial diversity, wherein the method includes the administration of a composition.
[0065] It is well known in the art that the skin barrier and skin microbiome are essential for protecting the body from external attacks, and for protecting the body from factors that alter the composition of the skin microbiome and skin barrier function, causing dysbiosis (a state of imbalance) as demonstrated in some chronic inflammatory skin diseases (such as atopic dermatitis, psoriasis, rosacea, or acne) (Schommer et al., 2013). Therefore, compositions that stimulate the skin microbiome and microbial diversity are highly useful for the treatment and cosmetic purposes of such conditions.
[0066] Furthermore, the stable formulations of this disclosure have been shown to be as effective as chlorhexidine in reducing pathogens. However, it is known in the art that chlorhexidine can induce allergic reactions (particularly in patients with eczema), has been reported to be cross-resistant to antibiotics, and shows limited efficacy against fungi and Mycobacterium. In addition, chlorhexidine used in dentistry can cause side effects such as tooth discoloration, increased calculus formation, and undesirable effects on the oral (healthy) microbiome. Therefore, those skilled in the art will understand the potential advantages of using the formulations of this disclosure that outweigh chlorhexidine.
[0067] In another embodiment, the present disclosure relates to a method for producing a composition comprising the following components, the method comprising mixing the components in the following order at 25°C: (i) Glycerol (ii) buffer; (iii) Hyaluronic acid; and (iv) Protease.
[0068] One embodiment of the present disclosure provides a method for treating a condition selected from the group consisting of microbial infections, skin conditions, and oral conditions, which occurs in and / or on the body of a mammal, the method comprising administering a composition comprising the following to a subject in need: (i) Protease; (ii) Glycerol; (iii) Hyaluronic acid; and (iv) Divalent cation.
[0069] Examples Example 1: Stability experiment method A partial factorial design consisting of five parameters, along with their concentrations, was used to test the most important factors affecting trypsin stability (Table 1). [Table 1]
[0070] Various combinations were mixed, and the pH was adjusted using MOPS buffer. Two different formulations were tested: (1) Formulation composition N16 contains 60 w / w% glycerol, 0.1 w / w% CaCl2, 0.3 w / w% collagen, and 0.04 w / w% trypsin (pH 8.5); and (2) Formulation composition N15 contains 50 w / w% glycerol, 0.1 w / w% CaCl2, 0 w / w% collagen, and 0.04 w / w% trypsin (pH 8.5). A buffer solution containing 0.04 w / w% trypsin (pH 7.5) was used as a control. Formulation A, the test formulation, was also evaluated under the same conditions.
[0071] The formulation mixtures were placed in sealed polypropylene bottles. To investigate the product stability of each formulation composition, they were placed under conditions susceptible to degradation (40±2℃ / 100% RH) for up to 411 days. Samples were taken at predetermined time points and directly analyzed by measuring enzyme activity. Trypsin activity (30℃) was measured at 405 nm using a spectrophotometer with Z-Gly-Pro-Arg-pNA as the substrate. The decrease in absorbance per minute was used as the activity parameter. Half-life or residual activity was measured from zero and used as an indicator of stability. Nonlinear regression was used to estimate the half-life.
[0072] result The half-life of trypsin increased from 2 days in buffer to over 400 days in the most stable formulation. Since over 88% of the enzyme activity remained after 411 days, the exact half-life of the most stable formulation could not be determined. The residual activity after 411 days of storage at 40°C varied from 20% to 88% depending on the tested combination (Figure 1). Formulation A was also very stable, with residual activity exceeding 90% even after 119 days of storage at 40°C. The shelf life at room temperature (25-30°C) is estimated to be over 3 years.
[0073] conclusion Even under the degradable conditions of 40°C, it is possible to significantly improve the trypsin stability of the solution. The expected shelf life of the optimized formulation at room temperature is estimated to be more than 3 years.
[0074] Example 2: Antibiomembrane activity The purpose of this test was to evaluate Formulation A (the test formulation whose stability was tested in Example 1). This was a test of pre-formed biofilms and inhibition of biofilm formation using the MBEC® assay according to ASTM E2799-12 standard. ASTM E2799-12 is a standard test method for testing the efficacy of fungicides against the biofilms of Pseudomonas aeruginosa, Staphylococcus pseudointermedius, and Malassezia pachydermatis using the MBEC assay.
[0075] method Mature biofilms were formed on pegs under batch conditions that resulted in very low shear due to the gentle device rotation on a swirling shaker. After 24–48 hours of growth, the pegs containing the biofilms were rinsed to remove suspension cells, and the pegs were placed on a receiving plate. The wells of the receiving plate were filled according to the experimental design, which included appropriate sterile pairs, growth pairs, neutralizing control, and bactericide. In this test, the bactericide was the formulation listed in Table 2 and a negative control (a carrier solution without active substances (Table 3)). After the predetermined contact time, the peg caps were fitted onto the receiving plate containing the neutralizing agent, and the entire apparatus was placed in an ultrasonic shredder to detach the biofilms and disperse the clumps. The samples from each well were then diluted and placed on a plate, and the number of viable cells was counted. The log reduction of viable cells was calculated by subtracting the average log density of the treated biofilm from the average log density of the untreated control. The results were expressed as colony-forming units (CFU) / peg.
[0076] [Table 2]
[0077] [Table 3]
[0078] result In this study, CFU / PEG values were significantly reduced for all microorganisms analyzed; Pseudomonas aeruginosa, Staphylococcus pseudointermedius, and Malassezia pachydermatis after treatment with formulation A compared to the control formulation (Figure 2).
[0079] conclusion Formulation A effectively reduced the biofilm formed by the test microorganism.
[0080] Example 3: Microbial diversity in the nasal folds of French Bulldogs (clinical trial) The objective of this clinical trial was to compare two different solutions regarding the effects of the natural microbiome present in the folds of canine skin.
[0081] method This study was a randomized, single-blind, prospective trial involving 19 privately owned dogs (French Bulldogs). The two solutions tested were Formulation A (enzyme) with 0.002 w / w% denatonium benzoate and a 2% chlorhexidine solution. Denatonium benzoate is a bittering agent and was added to Formulation A to prevent the dogs from licking the wound or treatment area. The dogs in the study were randomized into three different groups: one control group received no treatment (n=6); and two treatment groups, one receiving enzyme treatment (n=7) and the other receiving chlorhexidine treatment (n=6).
[0082] The following criteria for diseased animals were used for the study: (i) Provisional diagnosis of rhinomaxillary fold dermatitis (intertrigo) based on medical history and clinical trials; (ii) If the patient's condition is not stable according to the research principal investigator's findings, there must be no co-existing systemic disease or metabolic condition; (iii) The dog is neither pregnant nor lactating; (iv) Informed consent (signature) of the animal owner.
[0083] The following exclusion criteria were used for the trial: (i) The clinical lesions are consistent with deep pyoderma of the nasal folds (e.g., fistula, cellulitis, and boils); (ii) Ulceration of the folds of the nose; (iii) If the dog dislikes being touched on the folds of its nose and is unable to be touched; (iv) If, within two weeks prior to or during the examination period, you have received any other form of topical treatment for nasal folds or any form of antibiotic treatment; (v) If there is any change in ongoing treatment with oral corticosteroids within two weeks prior to participation in the study or during the study period; (vi) If you received corticosteroid injections 90 days prior to participating in the study or during the study period.
[0084] On day 0, the dogs underwent a general clinical examination. Cytological samples were taken from both nasal maxillary folds. Swab samples were taken from the dogs' nasal maxillary folds and transported for next-generation DNA sequencing (MiDOG, CA, USA) according to the manufacturer's instructions. On day 0, the pet owners were also instructed on how to apply the test solution (enzyme-treated solution or chlorhexidine) to each nasal fold twice daily (morning and evening) until the dog's next visit to the outpatient clinic, excluding the day of the initial visit. Two bottles of the test material were given to the owners, who were instructed to store the test material at room temperature.
[0085] On day 14, the same tests and evaluations as on day 0 were performed. At this visit, any suspected adverse events were also recorded. The pet owner was instructed to continue treatment for another week as instructed at the start of treatment, not to perform any procedures on the next visit, and to return all spray bottles to the outpatient clinic on the next visit.
[0086] On day 28, the same tests and evaluations as during the previous two outpatient visits were performed. Again, records were kept of any suspected adverse events. The weight of the test solution bottle was recorded. The pet owner was informed to discontinue all topical medication application and to re-evaluate the affected animal in two weeks.
[0087] On day 42 (14 days after discontinuation of treatment), the final sample was collected and evaluated.
[0088] result All dogs showed decreased diversity at both the bacterial and fungal levels, but at the species level, bacterial diversity was high and fungal diversity was low. The major cutaneous bacterial phyla inhabiting the skin folds of 19 dogs were Firmicutes, Actinomycetes, and Proteobacteria. The major cutaneous fungal phyla were Ascomycetes and Basidiomycetes. Local treatment increased the compositional diversity of bacteria and fungi over time, as indicated by an increase in the microbial diversity score (Figure 3). The enzyme-treated group (Formulation A) showed a 38% increase, the chlorhexidine group showed an 11% increase, and the control group showed less than a 5% increase. There was a clear correlation between the abundance of clinically relevant pathogens and microbial diversity (r 2 A score of 0.8 was observed, indicating that a low abundance of clinically relevant pathogens correlates with a high microbial diversity score; this biodiversity score is the Shannon index, a quantitative measure that reflects the number of different species present in the dataset (Figure 4). In both treatment groups, the abundance of clinically relevant pathogens was significantly reduced compared to the control group (enzyme-treated group; p=0.028, chlorhexidine group; p=0.048) (Figure 5). Alpha diversity, i.e., average species diversity at the treated site, increased mainly in the enzyme-treated group from day 0 (Figure 6A) to day 28 (Figure 6B).
[0089] conclusion Based on the results of this study, the inventors conclude that topical therapy with Formulation A resulted in two outcomes in the nasal folds of French Bulldogs: a reduction in the relative abundance of clinically relevant pathogens and an increase in microbial diversity. This indicates that Formulation A can be a viable alternative to chlorhexidine.
[0090] Example 4: Oral hygiene in dogs (clinical trial) The purpose of this study was to evaluate the therapeutic effect of formulation A on improving the dental condition of dogs.
[0091] method This clinical trial was an open-label, prospective study involving five privately owned dogs. The following criteria for inclusion of affected animals were used: (i) OraStrip® Dental Diagnostic Test Score (Gingivitis Score) ≥ 3 (meaning a 97% or higher risk of moderate to severe active periodontal disease); (ii) Good to excellent health; (iii) Free from disease and infection; (iv) Recent dental visit > 6-8 weeks ago (v) Informed consent (signature) of the animal owner.
[0092] The OraStrip® dental diagnostic test (CET OraStrip, Virbac, Ft.Worth, TX) is a test that can detect periodontal disease and assess the risk of moderate to severe periodontal disease, and can be performed in an outpatient clinic. This diagnostic test evaluates the level of thiols, which are organic sulfur compounds produced by bacteria associated with periodontal disease, and represents a measure of gingivitis level (0 indicates no thiols detected (no gingivitis), and 1-5 indicates active gingivitis with increasing severity).
[0093] This study used the following exclusion criteria: (i) When multiple teeth need to be extracted; (ii) In cases of major dental surgery; (iii) If there is routine medication prescribed; (iv) If any other form of oral hygiene treatment is performed during the examination period; (v) Failure to take medication in violation of the study protocol; (vi) If there are side effects from the treatment after data recording, the doctor took action if it was suspected to be a side effect.
[0094] On day 0, the dogs underwent relevant clinical tests at the outpatient clinic. These tests included an assessment of the tooth condition using the OraStrip® Dental Diagnostic Test (on saliva) as directed by the manufacturer. Periodontal scoring was also performed to assess the degree of gingivitis and periodontitis (Table 4). Photographs of the dogs' teeth and gums were taken. The pet owners were given instructions on how to administer Formulation A twice daily (morning and evening) until their next visit, and were provided with a prescription. Each owner was given one bottle of Formulation A and instructed to store it at room temperature.
[0095] [Table 4]
[0096] On day 14, periodontal grading and the OraStrip® dental diagnostic test were performed and recorded using the same method as on day 0. Again, photographs of the dog's teeth and gums were taken, and the owner was informed about continuing treatment according to previous instructions.
[0097] On the 28th day, the same examinations and periodontal grading were performed as during the previous two outpatient visits. During this visit, any suspected side effects were recorded, and the bottle weight was also recorded.
[0098] result In the OraStrip® test on day 28 of the treatment period, the gingivitis level decreased in the group treated with formulation A, suggesting a reduced risk of more severe periodontal disease (Figure 7A). The periodontal score also decreased in dogs treated with formulation A, suggesting improved oral hygiene in the treated dogs (Figure 7B). The level of gingivitis was also tested after the end of the treatment period, and the score remained consistently low even more than 60 days after the end of treatment (Figure 8).
[0099] conclusion Formulation A appeared to improve oral hygiene in dogs, reducing gingivitis and lowering periodontal scores. Furthermore, this effect seems to persist even after more than 60 days. This suggests that the unhealthy microbiome was replaced by a healthier one. References Asadi, Arezoo, et al. “A review on anti-adhesion therapies of bacterial diseases.”Infection47.1 (2019): 13-23. Bryers, James D. “Medical biofilms.”Biotechnology and bioengineering100.1 (2008): 1-18. Buckland, Emma L., et al. “Characterization of antimicrobial usage in cats and dogs attending Uk primary care companion animal veterinary practices.”The Veterinary record179.19 (2016): 489-489. Craik CS, Page MJ, Madison EL. Proteases as therapeutics. Biochem J. 2011;435:1-16. Gilbert P, Das J, Foley I. Biofilm susceptibility to antimicrobials. Adv Dent Res. 1997;11(1):160-7. Meena, Himani, Asad Syed, and Busi Siddhardha. “A Review on Microbial Pathogenesis and Host Response.”Model Organisms for Microbial Pathogenesis, Biofilm Formation and Antimicrobial Drug Discovery. Springer, Singapore, 2020. 47-60. WHO. New Report Calls for Urgent Action to Avert Antimicrobial Resitance Crisis. 2019. Rosenthal, Mariana, et al. “Skin microbiota: microbial community structure and its potential association with health and disease.”Infection, Genetics and Evolution11.5 (2011): 839-848 Schommer, Nina N., and Richard L. Gallo. “Structure and function of the human skin microbiome.”Trends in microbiology21.12 (2013): 660-668. Shaw, Liam P., et al. “Modelling microbiome recovery after antibiotics using a stability landscape framework.” The ISME journal 13.7 (2019): 1845-1856.
Claims
1. A composition: (i) 0.02–0.09% w / w trypsin; (ii) 50-62% w / w glycerol; (iii) 0.002–0.04% w / w hyaluronic acid; and (iv) Salt containing divalent cations at 0.01-0.2% w / w A composition containing the following:
2. A composition according to claim 1, wherein the divalent cation is calcium.
3. A composition according to any one of claims 1 to 2, wherein the composition further comprises a 0.1 to 0.4% w / w buffer containing Tris and MOPS.
4. A composition according to any one of claims 1 to 3, wherein the composition further comprises a monosaccharide containing mannose, and / or the composition further comprises collagen.
5. A composition according to claim 1, wherein the composition is: (i) 0.02–0.09% w / w trypsin; (ii) 50-62% w / w glycerol (iii) 0.002–0.04% w / w hyaluronic acid; (iv) 0.01–0.1% w / w CaCl 2 ; (v) 0.1–0.4% w / w Tris or MOPS; (vi) 0.01–0.2% w / w mannose; and (vii) 0.01-0.3% w / w collagen, including, or essentially consisting of the above components (i) to (vii), composition.
6. A composition according to claim 1, wherein the composition is: (i) 0.04% w / w trypsin; (ii) 60% w / w glycerol; (iii) 0.02% w / w hyaluronic acid; (iv) 0.01% w / w calcium dichloride; and (v) 0.1% w / w Tris or MOPS, A composition containing, or essentially consisting of, the above components (i) to (v).
7. The composition according to claim 1, wherein the composition is: (i) 0.02–0.09% w / w trypsin; (ii) 50-62% w / w glycerol; (iii) 0.002–0.04% w / w hyaluronic acid; (iv) 0.01–0.2% w / w calcium dichloride dihydrate; (v) 0.1–0.4% w / w buffer solution; and (vi) water, A composition comprising the above components (i) to (vi).
8. The composition according to claim 1, wherein the composition is: (i) 0.02–0.09% w / w trypsin; (ii) 50-62% w / w glycerol; (iii) 0.002–0.04% w / w hyaluronic acid; (iv) 0.01% w / w calcium dichloride dihydrate; (v) 0.1–0.4% w / w buffer solution; and (vi) water, A composition comprising the above components (i) to (vi).
9. A composition according to any one of claims 1 to 8, wherein the pH of the composition is 6.0 to 7.
5.
10. A composition according to any one of claims 1 to 9, wherein the composition further comprises water.
11. A composition according to any one of claims 1 to 10, wherein the composition is in the form of a spray liquid, gel, cream, lotion, ointment, foam, or dental gum.
12. A pharmaceutical composition for pharmaceutical use comprising the composition described in any one of claims 1 to 11.
13. A pharmaceutical composition for the therapeutic use of a condition selected from the group consisting of microbial infections, skin conditions, and oral conditions in the internal and / or external surface of a mammal's body, comprising the composition described in any one of claims 1 to 11.
14. A pharmaceutical composition according to claim 13, wherein the microbial infection is selected from the group consisting of bacterial infection, fungal infection, yeast infection, and viral infection.
15. A pharmaceutical composition according to claim 13, wherein the skin condition is a skin infection or an inflammatory skin disease including atopic dermatitis, psoriasis, rosacea, and acne.
16. A pharmaceutical composition according to claim 13, wherein the oral condition is an oral infection or a dental infection.
17. A pharmaceutical composition according to claim 13, wherein the mammal is a dog, a cat, a horse, or a human.
18. A pharmaceutical composition according to any one of claims 12 to 17, wherein the composition is used topically.
19. A composition for cosmetic use, comprising the composition according to any one of claims 1 to 11, for use inside and / or on the body of a mammal, including a dog, cat, horse, or human.
20. A composition according to claim 19, wherein the composition is used topically.
21. A method for producing the composition according to any one of claims 3 to 11, wherein the method is performed at 25°C: (i) Glycerol; (ii) buffer; (iii) Hyaluronic acid; and (iv) Trypsin, A method comprising mixing the components in the order (i) to (iv).
Citation Information
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