Methods for producing enhanced anti-inflammatory / anti-catabolic agents from autologous physiological fluids

By incubating mammalian blood with sodium citrate to produce IL-1ra and TIMPs, then combining with PRP, the method addresses inefficiencies in recombinant protein production, achieving effective treatment of connective tissue and inflammatory disorders with reduced costs and immune responses.

JP7805945B2Active Publication Date: 2026-01-26ANTNOR
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
JP2022556532
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-17
Filing Date
2021-03-16
Publication Date
2026-01-26
Estimated Expiration
2041-03-16

AI Technical Summary

Technical Problem

Current methods for producing recombinant proteins for treating damaged connective tissue and inflammatory disorders involve lengthy incubation times and can lead to instability or immune responses, making them costly and inefficient.

Method used

A method involving mixing mammalian blood with sodium citrate and incubating it at 20°C to 40°C for 3.5 to 12 hours to produce IL-1ra and TIMPs, followed by centrifugation to separate a supernatant component, which is combined with autologous platelet-rich plasma (PRP) to create an autologous anti-inflammatory/anti-catabolic composition.

Benefits of technology

This method produces therapeutically effective levels of IL-1ra and TIMPs in shorter times, reducing costs and immune responses, and provides a potent, bioactive autologous therapeutic agent for treating conditions like osteoarthritis and inflammatory skin disorders.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007805945000001
    Figure 0007805945000001
  • Figure 0007805945000002
    Figure 0007805945000002
  • Figure 0007805945000003
    Figure 0007805945000003
Patent Text Reader

Abstract

A method for producing an autologous anti-inflammatory / anti-catabolic composition useful for treating mammals with damaged and / or injured connective tissue, chronic tendonosis, chronic muscle rupture, chronic degenerative joint disease, and / or inflammatory skin disorders is provided. The method includes the steps of: transferring blood collected from a mammal into a tube; storing the blood in the presence of sodium citrate at a temperature of about 20°C to about 40°C for at least about 3.5 hours; centrifuging the blood to separate it into a supernatant component and a cellular fraction; and recovering the supernatant component. TIFF2023518085000002.tif104128
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] This application is directed generally to medicine, and more particularly to methods and compositions that are particularly useful in the treatment of damaged and / or injured connective tissue, including chronic tendonosis, chronic muscle tears (tendinitis), cartilage tears, chronic degenerative joint diseases such as osteoarthritis, and chronic inflammatory skin conditions, including atopic dermatitis and chronic wounds, and that are particularly useful as cosmetics. [Background technology]

[0002] background Osteoarthritis ("OA") is a degenerative joint disease characterized by cartilage damage and synovial inflammation. Altered inflammatory molecular cascades lead to the destruction of cartilage macromolecules and irreversible morphological changes. IL-1, tumor necrosis factor alpha (TNFα), IL-6, IL-8, and metalloproteinases are key catabolic and proinflammatory molecules that play key roles in the pathogenesis of osteoarthritis. These cytokines are produced by activated synovial cells, mononuclear cells, or by the articular cartilage itself, but their catabolic effects can be successfully blocked by inhibitory cytokines, such as IL-4, IL-10, IL-13, and IL-1ra.

[0003] Similar inflammatory and catabolic pathways are involved in the pathogenesis of chronic tendonitis and the impaired healing of chronic muscle ruptures. Tendon cells are continuously damaged by producing elevated levels of IL-1, IL-6, metalloproteinases (MMPs), and other molecules involved in catabolism. The proinflammatory cytokines IL-1 and TNFα are also involved in the pathogenesis of chronic myositis. Atopic dermatitis (eczema) is considered the most common recurrent inflammatory skin disorder. Chronic wounds (including diabetic wounds) are wounds that do not heal within three months due to poor circulation, neuropathy, immune disorders, and complications of systemic diseases, age, and repeated trauma. All of these disorders are characterized by disrupted cytokine-mediated cellular signaling and loss of the extracellular matrix (ECM), which forms the largest component of the dermal layer of the skin. Targeting specific molecular pathways involved in inflammation and catabolism may have beneficial therapeutic effects on inflammatory conditions. This effect can be achieved by using therapeutically active proteins. Currently, the pharmaceutical industry employs costly molecular genetic techniques to produce recombinant proteins, such as insulin, interferon, blood clotting factors, etc. However, these methods of producing recombinant proteins involve expressing human genes in bacterial cells. The post-translational modification patterns of proteins, including glycosylation, may differ from those naturally occurring in humans. This may make the product unstable in the human environment, potentially reducing its biological function or eliciting an immune response. In addition, the cost of the final recombinant product is prohibitively high.

[0004] U.S. Patent No. 6,713,246 to Reinecke et al. discloses incubating blood at body temperature for 24 hours to produce an anti-inflammatory / anti-catabolic factor, IL-1ra, in sufficient amounts for therapeutic use in the incubated blood for the purpose of preparing an anti-inflammatory / anti-catabolic composition. Previous studies have shown that an incubation period of approximately 24 hours of blood is necessary to produce sufficient levels of IL-1ra and other anti-inflammatory / anti-catabolic factors to provide some therapeutic benefit in healthy individuals.

[0005] There is a need for methods for treating damaged and / or injured connective tissue, chronic tendonosis, chronic muscle tears, and / or chronic degenerative joint diseases such as osteoarthritis, as well as inflammatory disorders of the skin, and for cosmetic applications, which are capable of producing therapeutically useful anti-inflammatory / anti-catabolic components with shorter incubation or storage times of blood samples. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] U.S. Patent No. 6,713,246 Summary of the Invention

[0007] Summary of the Disclosure Anti-inflammatory / anti-catabolic compositions are described that are useful for treating damaged and / or injured connective tissue, chronic tendonosis, chronic muscle tears, and / or chronic degenerative joint diseases such as osteoarthritis, as well as inflammatory disorders of the skin. Also described are methods for making the anti-inflammatory / anti-catabolic compositions. The anti-inflammatory / anti-catabolic compositions are made by drawing blood from an individual, mixing the blood with sodium citrate to form a mixture, and incubating or storing the mixture of blood and sodium citrate for a period of at least about 3.5 hours at a temperature of about 20°C to about 40°C. For treating damaged and / or injured connective tissue, chronic tendonosis, chronic muscle tears, and / or chronic degenerative joint diseases such as osteoarthritis, as well as inflammatory disorders of the skin, as well as for cosmetic applications, the anti-inflammatory / anti-catabolic compositions may also be combined with regenerative compositions including autologous platelet-rich plasma (PRP). When an anti-inflammatory / anti-catabolic composition is combined with a regenerative composition comprising autologous platelet-rich plasma (PRP), the resulting composition is an autologous composition useful for treating mammals with damaged and / or injured connective tissue, chronic tendon disease, chronic muscle rupture, chronic degenerative joint disease, and / or inflammatory disorders of the skin, and useful for cosmetic applications. When an anti-inflammatory / anti-catabolic composition is combined with a regenerative composition comprising autologous platelet-rich plasma (PRP), the anti-inflammatory / anti-catabolic composition is the anti-inflammatory / anti-catabolic component of the resulting autologous composition, while the regenerative composition is the regenerative component of the resulting autologous composition.

[0008] When human or other mammalian blood is mixed with sodium citrate prior to incubation, the anti-inflammatory / anti-catabolic composition contains elevated levels of IL-1ra after incubation of the blood mixed with sodium citrate for at least about 3.5 hours at a temperature of about 20° C. to about 40° C. Additionally, the anti-inflammatory / anti-catabolic composition preferably contains elevated and / or therapeutically effective levels of tissue inhibitors of metalloproteinases (TIMPs) after incubation of the mixture for at least about 3.5 hours at a temperature of about 20° C. to about 40° C.

[0009] According to one aspect of the present disclosure, there is provided a method of making an autologous anti-inflammatory / anti-catabolic composition useful for treating a mammal having damaged and / or injured connective tissue, chronic tendinopathy, chronic muscle rupture, chronic degenerative joint disease, and / or inflammatory disorders of the skin, the method comprising the steps of: mixing blood from the mammal with an amount of sodium citrate to form a mixture; incubating the mixture at a temperature of about 20°C to about 40°C for at least about 3.5 hours to about 12 hours; centrifuging the incubated mixture to separate the blood into a supernatant component and a cellular fraction; and Recovering the supernatant.

[0010] According to another aspect, there is provided a method of treating a mammal having damaged and / or injured connective tissue, chronic tendinopathy, chronic muscle tears, and / or chronic degenerative joint disease, and inflammatory disorders of the skin with an autologous anti-inflammatory / anti-catabolic composition, said method comprising the steps of: mixing blood from the mammal with an amount of sodium citrate to form a mixture; incubating the mixture at a temperature of about 20°C to about 40°C for at least about 3.5 hours to about 12 hours; centrifuging the incubated mixture to separate the blood into a supernatant component and a cellular fraction; recovering the supernatant components to provide an autologous anti-inflammatory / anti-catabolic composition; and administering an autologous anti-inflammatory / anti-catabolic composition to said mammal.

[0011] According to another aspect, there is provided a method of making an autologous composition useful for treating a mammal having damaged and / or injured connective tissue, chronic tendinopathy, chronic muscle rupture, chronic degenerative joint disease, and / or an inflammatory disorder of the skin, said method comprising the steps of: Preparing an anti-inflammatory / anti-catabolic component of the autologous composition comprising IL-1ra and TIMP, said preparing the anti-inflammatory / anti-catabolic component comprising the steps of: mixing blood from the mammal with an amount of sodium citrate to form a mixture; incubating the mixture at a temperature of about 20°C to about 40°C for at least about 3.5 hours to about 12 hours; centrifuging the incubated mixture to separate the blood into a supernatant component and a cellular fraction; recovering the supernatant components, which are the anti-inflammatory / anti-catabolic components; Preparing the regenerative component of the autologous composition, comprising the steps of: mixing blood from the mammal with an amount of an anticoagulant, the anticoagulant preferably being about 4% by weight sodium citrate solution; centrifuging the blood to separate a platelet-rich plasma component from the blood; recovering the platelet-rich plasma component; and Combining the supernatant component, which is an anti-inflammatory / anti-catabolic component, with the platelet-rich plasma component to provide an autologous composition.

[0012] According to yet another aspect, there is provided a method of treating a mammal having damaged and / or injured connective tissue, chronic tendinopathy, chronic muscle tears, and / or chronic degenerative joint disease, and an inflammatory disorder of the skin, said method comprising the steps of: Preparing an anti-inflammatory / anti-catabolic component comprising an autologous composition, IL-1ra and a TIMP, said preparing the anti-inflammatory / anti-catabolic component comprising the steps of: mixing blood from the mammal with an amount of sodium citrate to form a mixture; incubating the mixture at a temperature of about 20°C to about 40°C for at least about 3.5 hours to about 12 hours; centrifuging the incubated mixture to separate the blood into a supernatant component and a cellular fraction; and recovering the supernatant components, which are the anti-inflammatory / anti-catabolic components; Preparing the regenerative component of the autologous composition, comprising the steps of: mixing blood from the mammal with an amount of an anticoagulant, the anticoagulant preferably being about 4% by weight sodium citrate solution; centrifuging the blood to separate a platelet-rich plasma component from the blood; recovering the platelet-rich plasma component; mixing the supernatant component with the platelet-rich plasma component to provide an autologous composition; and administering an autologous composition to said mammal. [The present invention 1001] 1. A method of making an autologous anti-inflammatory / anti-catabolic composition useful for treating a mammal having damaged and / or injured connective tissue, chronic tendinopathy, chronic muscle rupture, chronic degenerative joint disease, and / or inflammatory disorders of the skin, the method comprising the steps of: mixing blood from the mammal with an amount of sodium citrate to form a mixture; incubating the mixture at a temperature of about 20°C to about 40°C for at least about 3.5 hours to about 12 hours; centrifuging the incubated mixture to separate the blood into a supernatant component and a cellular fraction; and Recovering the supernatant components to provide the autologous anti-inflammatory / anti-catabolic composition. [The present invention 1002] 1001. The method of claim 1001, wherein said mixture is incubated for about 3.5 hours. [The present invention 1003] 1001. The method of claim 1001, wherein said mixture is incubated for about 6 hours. [The present invention 1004] 1001. The method of claim 1001, wherein the sodium citrate is a 4% by weight sodium citrate solution. [The present invention 1005] The method of claim 1004, wherein the step of mixing blood from the mammal with a quantity of sodium citrate to form a mixture comprises providing a ratio of 9.5 parts whole blood to 0.5 parts 4% by weight sodium citrate solution. [The present invention 1006] The method of claim 1005, wherein 9.5 cc of blood is mixed with 0.5 cc of a 4% by weight sodium citrate solution. [The present invention 1007] 1. A method of treating a mammal having damaged and / or injured connective tissue, chronic tendinopathy, chronic muscle tears, and / or chronic degenerative joint disease, and inflammatory disorders of the skin with an autologous anti-inflammatory / anti-catabolic composition, the method comprising the steps of: mixing blood from the mammal with an amount of sodium citrate to form a mixture; incubating the mixture at a temperature of about 20°C to about 40°C for at least about 3.5 hours to about 12 hours; centrifuging the incubated mixture to separate the blood into a supernatant component and a cellular fraction; recovering the supernatant components to provide an autologous anti-inflammatory / anti-catabolic composition; and administering an autologous anti-inflammatory / anti-catabolic composition to said mammal. [The present invention 1008] 1007. The method of claim 1007, wherein said mammal is a human. [The present invention 1009] The method of claim 1007, wherein said mixture is incubated for about 3.5 hours. [The present invention 1010] The method of claim 1007, wherein said mixture is incubated for about 6 hours. [The present invention 1011] 1007. The method of claim 10, wherein the sodium citrate is a 4% by weight sodium citrate solution. [The present invention 1012] The method of claim 10, wherein the step of mixing blood from the mammal with a quantity of sodium citrate to form a mixture comprises providing a ratio of 9.5 parts whole blood to 0.5 parts 4% by weight sodium citrate solution. [The present invention 1013] The method of claim 1011, wherein 9.5 cc of blood is mixed with 0.5 cc of a 4% by weight sodium citrate solution. [The present invention 1014] 1. A method of making an autologous composition useful for treating a mammal having damaged and / or injured connective tissue, chronic tendinopathy, chronic muscle tears, chronic degenerative joint disease, and / or inflammatory disorders of the skin, the method comprising the steps of: Preparing an anti-inflammatory / anti-catabolic component of the autologous composition comprising IL-1ra and TIMP, said preparing the anti-inflammatory / anti-catabolic component comprising the steps of: mixing blood from the mammal with an amount of sodium citrate to form a mixture; incubating the mixture at a temperature of about 20°C to about 40°C for at least about 3.5 hours to about 12 hours; centrifuging the incubated mixture to separate the blood into a supernatant component and a cellular fraction; recovering the supernatant components, which are the anti-inflammatory / anti-catabolic components; Preparing the regenerative component of the autologous composition, comprising the steps of: mixing blood from the mammal with an amount of an anticoagulant; centrifuging the blood to separate a platelet-rich plasma component from the blood; recovering the platelet-rich plasma component; and Combining the supernatant component, which is an anti-inflammatory / anti-catabolic component, with the platelet-rich plasma component to provide an autologous composition. [The present invention 1015] The method of claim 1014, wherein the mixture is incubated for about 3.5 hours. [The present invention 1016] The method of claim 1014, wherein the mixture is incubated for about 6 hours. [The present invention 1017] 1014. The method of claim 10, wherein the sodium citrate is a 4% by weight sodium citrate solution. [The present invention 1018] The method of claim 1017, wherein the step of mixing blood from the mammal with a quantity of sodium citrate to form a mixture comprises providing a ratio of 9.5 parts whole blood to 0.5 parts 4% by weight sodium citrate solution. [The present invention 1019] The method of claim 1017, wherein 9.5 cc of blood is mixed with 0.5 cc of a 4% by weight sodium citrate solution. [The present invention 1020] 1014. The method of claim 10, wherein the anticoagulant is about 4% by weight sodium citrate solution. [The present invention 1021] 1. A method of treating a mammal having damaged and / or injured connective tissue, chronic tendinopathy, chronic muscle tears, and / or chronic degenerative joint disease, and inflammatory disorders of the skin, comprising the steps of: Preparing an anti-inflammatory / anti-catabolic component comprising an autologous composition, IL-1ra and a TIMP, said preparing the anti-inflammatory / anti-catabolic component comprising the steps of: mixing blood from the mammal with an amount of sodium citrate to form a mixture; incubating the mixture at a temperature of about 20°C to about 40°C for at least about 3.5 hours to about 12 hours; centrifuging the incubated mixture to separate the blood into a supernatant component and a cellular fraction; and recovering the supernatant components, which are the anti-inflammatory / anti-catabolic components; Preparing the regenerative component of the autologous composition, comprising the steps of: mixing blood from the mammal with an amount of an anticoagulant; centrifuging the blood to separate a platelet-rich plasma component from the blood; recovering the platelet-rich plasma component; mixing the supernatant component with the platelet-rich plasma component to provide an autologous composition; and administering an autologous composition to said mammal. [The present invention 1022] The method of claim 1021, wherein the mixture is incubated for about 3.5 hours. [The present invention 1023] 1021. The method of claim 1021, wherein the mixture is incubated for about 6 hours. [The present invention 1024] 1021. The method of claim 1021, wherein the sodium citrate is a 4% by weight sodium citrate solution. [The present invention 1025] The method of claim 1024, wherein the step of mixing blood from the mammal with a quantity of sodium citrate to form a mixture comprises providing a ratio of 9.5 parts whole blood to 0.5 parts 4% by weight sodium citrate solution. [The present invention 1026] 1024. The method of claim 1024, wherein 9.5 cc of blood is mixed with 0.5 cc of a 4% by weight sodium citrate solution. [The present invention 1027] 1021. The method of claim 1021, wherein the anticoagulant is about 4% by weight sodium citrate solution. [Brief explanation of the drawings]

[0013] [Figure 1] 1 is a plot of IL-1ra concentration, expressed in pg / ml, against time showing a comparison of the levels of IL-1ra antagonist protein at different time points in human serum samples from patients with osteoarthritis. [Figure 2] 1 is a plot of TIMP concentration, expressed in pg / ml, against time showing a comparison of TIMP 1 and TIMP 2 levels at different time points in human serum samples from patients with osteoarthritis. [Figure 3] 1A and 1B are plots showing i) a statistical analysis of the visual analog scale (VAS) for pain for the first patient tested; ii) a plot showing the WOMAC index point values ​​for the level of pain for the first patient tested; iii) a plot showing the WOMAC index point values ​​for the level of stiffness for the first patient tested; and iv) a plot showing the WOMAC index point values ​​for the level of ability to perform daily activities for the first patient tested. Baseline values ​​and values ​​one month after injection are shown. [Figure 4] i) a plot showing a statistical analysis of the visual analog scale (VAS) for pain for the second patient tested; ii) a plot showing the WOMAC index point values ​​for the level of pain for the second patient tested; iii) a plot showing the WOMAC index point values ​​for the level of stiffness for the second patient tested; and iv) a plot showing the WOMAC index point values ​​for the level of ability to perform daily activities for the second patient tested. Baseline values ​​and values ​​one month after injection are shown. [Figure 5] 10A and 10B are plots showing i) a statistical analysis of the visual analog scale (VAS) for pain for the third patient tested; ii) a plot showing the WOMAC index point values ​​for the level of pain for the third patient tested; iii) a plot showing the WOMAC index point values ​​for the level of stiffness for the third patient tested; and iv) a plot showing the WOMAC index point values ​​for the level of ability to perform daily activities for the third patient tested. Baseline values ​​and values ​​one month after injection are shown. [Figure 6]10A and 10B are plots showing i) a statistical analysis of the visual analog scale (VAS) for pain for the fourth patient tested; ii) a plot showing the WOMAC index point values ​​for the level of pain for the fourth patient tested; iii) a plot showing the WOMAC index point values ​​for the level of stiffness for the fourth patient tested; and iv) a plot showing the WOMAC index point values ​​for the level of ability to perform daily activities for the fourth patient tested. Baseline values ​​and values ​​one month after injection are shown. [Figure 7] 1 is a plot of IL-1ra concentration, expressed in pg / ml, against time showing a comparison of the levels of IL-1ra antagonist protein at different time points in human serum samples of the 12 subjects tested. [Figure 8] 1 is a plot of MMP9 concentration, expressed in pg / ml, against time showing a comparison of MMP9 levels at different time points in human serum samples of the 12 subjects tested. [Figure 9] 1 is a plot of TNF-α concentration, expressed in pg / ml, against time showing a comparison of TNF-α levels at different time points in human serum samples of the 12 subjects tested. [Figure 10] 1 is a plot of IL-1b concentration, expressed in pg / ml, against time showing a comparison of IL-1b levels at different time points in human serum samples of the 12 subjects tested. [Figure 11]FIG. 11a is a plot showing a statistical analysis of the visual analog scale (VAS) for pain among the 22 patients studied. Baseline values ​​and values ​​one month after injection are shown. FIG. 11b is a plot showing the WOMAC index point values ​​for the average level of pain among the 22 patients studied. Baseline values ​​and values ​​one month after injection are shown. FIG. 11c is a plot showing the WOMAC index point values ​​for the average level of stiffness among the 22 patients studied. Baseline values ​​and values ​​one month after injection are shown. FIG. 11d is a plot showing the WOMAC index point values ​​for the average level of daily activity ability among the 22 patients studied. Baseline values ​​and values ​​one month after injection are shown. DETAILED DESCRIPTION OF THE INVENTION

[0014] Detailed Description The present disclosure relates to methods for making autologous anti-inflammatory / anti-catabolic compositions that produce sufficient amounts of IL-1ra, TIMP 1, and TIMP 2 for therapeutic use when stored at room temperature for at least about 3.5 hours to about 6 hours, or longer, at temperatures of about 20°C to about 40°C.

[0015] The present disclosure also relates to a method for producing an autologous composition comprising an autologous anti-inflammatory / anti-catabolic composition combined with a regenerative autologous platelet-rich plasma (PRP) composition, the autologous composition containing serum enriched with bioactive proteins having anti-inflammatory / anti-catabolic, proliferative, tissue repair, and regenerative activities. With respect to the autologous compositions referred to herein, the autologous anti-inflammatory / anti-catabolic composition is the anti-inflammatory / anti-catabolic component of the autologous composition, while the regenerative autologous platelet-rich plasma (PRP) composition is the regenerative component of the autologous composition.

[0016] Such compositions typically include the following therapeutically active proteins: IL-1ra, IL-4, IL-10, IL-13, PDGF, TGF-β, and VEGF.

[0017] IL-1ra is secreted by monocytes, adipocytes, and epithelial cells. It is known that therapeutically effective concentrations of this protein are achieved by incubating human monocytes from healthy human subjects at about 37°C for about 24 hours. It has now been found that therapeutically effective concentrations of IL-1ra and TIMPs in individuals with osteoarthritis are achieved by incubating or storing human blood mixed with sodium citrate for about 3.5 to about 6 hours, or longer, at a temperature of about 20°C to about 40°C.

[0018] IL-4, IL-10, IL-13, PDGF, and TGFβ are contained in platelets and granule contents and migrate into PRP components. IL-4, IL-10, and IL-13 are derived from leukocytes. PDGF is produced by platelets, and TGFβ is released by platelets and some T cells. Harnessing the regenerative effects of these proteins allows for the creation of potent, bioactive autologous products. Thus, the combination of freshly prepared PRP as a source of regenerative biological factors and anti-inflammatory cytokines and growth factors with anti-inflammatory components, including stored autologous serum as a source of IL-1 inhibitors, provides a potent and cost-effective autologous therapeutic agent for treating degenerative diseases such as osteoarthritis, chronic tendonopathy, and chronic muscle tears, as well as inflammatory skin disorders.

[0019] As used herein, "treatment" includes palliative treatment in which pain and / or inflammation is reduced in a subject.

[0020] Terms of degree, such as "substantially," "about," and "approximately," as used herein, refer to a reasonable amount of deviation from the modified term that does not significantly change the final result. These terms of degree should be interpreted as including a deviation of at least ±5% from the modified term, provided that the deviation would not negate the meaning of the word it modifies.

[0021] The described method, which is a method for making an autologous composition for treating osteoarthritis, chronic tendinopathy, and chronic muscle tears, as well as inflammatory skin disorders, preferably comprises the step of collecting an autologous mammalian physiological fluid, preferably blood, by aseptic technique. Preferably, the mammal is a human. However, the compositions and methods herein are also suitable for a wide range of veterinary applications, such as treating horses, dogs, and camels.

[0022] The venipuncture site and the surface of the collection tube may be disinfected with a tincture of 2 percent iodine solution. Before beginning any disinfection of the site, the patient may be questioned regarding any allergies to iodine. Alternatively, the venipuncture site and the surface of the collection tube may be disinfected with a solution containing 2% chlorhexidine gluconate in 70% isopropyl alcohol. To prevent possible contamination before blood collection, the tube cover is also disinfected with a 70% alcohol solution.

[0023] The autologous anti-inflammatory / anti-catabolic composition is preferably prepared by incubating or storing autologous physiological fluid, preferably mammalian blood, preferably human blood, mixed with sodium citrate at room temperature, preferably about 20° C. However, blood mixed with sodium citrate can be incubated or stored at temperatures between about 20° C. and about 40° C. with acceptable results.

[0024] Blood mixed with sodium citrate is preferably incubated or stored at about 20°C for about 3.5 to about 12 hours for extracellular enrichment of IL-1ra and preferably for production of TIMPs. Most preferably, blood mixed with sodium citrate is incubated or stored at about 20°C for about 3.5 to about 6 hours. However, blood mixed with sodium citrate can be stored for longer than 12 hours at temperatures between about 20°C and about 40°C, and, as noted above, still produce acceptable results.

[0025] A therapeutically effective amount of citrate, preferably in the form of sodium citrate, is added to the sterile glass or polystyrene tube into which the blood will be collected prior to incubation. The provided sodium citrate is preferably a 4% by weight sodium citrate solution. An acceptable example of a 4% by weight sodium citrate solution is Anticoagulant Sodium Citrate Solution USP, provided by Baxter Corporation under DIN 00060313 issued by Health Canada, which contains 4 g of sodium citrate dihydrate per 100 ml of solution. In a particularly preferred embodiment, incubation can be performed in a glass tube (Coviden) or a polystyrene vacutainer tube (BD), which is free of additives and sterile. In one embodiment, incubation of the autologous physiological fluid, preferably blood, on a shaking platform (24 rpm) or under static conditions is further provided. Preferably, the incubation is carried out under static conditions.

[0026] Preferably, blood is stored in a concentration of 0.64 to 0.72 mM Ca to promote IL-1ra production. ++ In a particularly preferred embodiment, the cultured blood is treated with 0.64 to 0.72 mM Ca. ++It is possible and advantageous to dilute the blood with a sterile calcium chloride solution containing IL-1ra at a ratio of 9:1 by adding the solution directly to the tube containing blood using a sterile syringe and needle before incubation (1 cc of calcium chloride solution is added to 9 cc of whole blood). To expose the culture to the atmosphere in order to increase the production of IL-1ra, an equal volume of sterile air can be added to the sterile tube containing blood. In a particularly preferred embodiment, before incubation, air is passed through a 0.22 μm Millex GP filter using a sterile syringe and needle and directly into the tube containing blood.

[0027] Prior to incubation, a sodium citrate solution having a concentration of 4% sodium citrate by weight is mixed with the blood, preferably in a ratio of 9.5 parts whole blood (9.5 cc) to 0.5 parts 4% sodium citrate by weight (0.5 cc).

[0028] The incubated blood and sodium citrate mixture is then centrifuged to separate the supernatant component from the cellular fraction. The supernatant component is the resulting autologous anti-inflammatory / anti-catabolic composition. Centrifugation is performed by techniques known in the art. Preferably, centrifugation is performed at about 4000-10000 rpm for about 10-20 minutes. Most preferably, centrifugation is performed at 4000 rpm for 10 minutes.

[0029] Preferably, the supernatant is filtered through a 0.25 μm filter after centrifugation.

[0030] The supernatant may be immediately combined with the regenerative autologous platelet-rich plasma (PRP) composition, or optionally divided into aliquots using aseptic techniques for further processing. This procedure is performed in a sterile environment (laminar flow hood with HEPA filter). Preferably, about 3 cc of the supernatant containing the biologically active agent is carefully collected with a sterile syringe and needle. Long-term storage of the product containing IL-1ra can be achieved by freezing the aliquots at about -20°C and storing them at about -70°C for up to 18 months.

[0031] Preparation of the regenerative autologous platelet-rich plasma (PRP) composition involves collecting blood in a vacutainer tube. The blood is then mixed with an anticoagulant according to techniques known in the art. The preferred anticoagulant for the present disclosure is sodium citrate. Most preferably, the anticoagulant is a 4% by weight sodium citrate solution. Preferably, the anticoagulant is provided in the following ratio: 9.5 parts whole blood (9.5 cc): 0.5 parts 4% by weight sodium citrate (0.5 cc). Those skilled in the art will recognize that other anticoagulants, such as citrate dextrose solution and heparin, can be used as anticoagulants in the preparation of the regenerative autologous platelet-rich plasma (PRP) composition.

[0032] The blood is then centrifuged according to techniques known in the art to isolate a PRP fraction, preferably at about 7500 rpm for about 30 seconds. The PRP fraction obtained as the product of the centrifugation step is an autologous PRP composition. In a preferred embodiment, the centrifugation parameters are used to prepare PRP as part of the end product for the treatment of osteoarthritis and chronic tendonopathy, and for skin disorders. The autologous PRP composition is collected under aseptic conditions using a sterile syringe and needle. In a particularly preferred embodiment for treating chronic ruptures, a white blood cell buffy coat fraction is added to the autologous PRP composition as an additional source of VEGF to promote angiogenesis in the affected area. The buffy coat layer and plasma are collected manually after centrifugation of whole blood using a sterile syringe and needle, as described above, or using the commercially available Harvest SmartPrep system.

[0033] The autologous PRP composition is optionally activated by filtering the autologous PRP composition from the syringe through a filter having fine pores, preferably a 0.25 μm filter, and most preferably a 0.22 μm Millex GP filter.

[0034] The final product, consisting of a 50 / 50 combination of anti-inflammatory and regenerative (activated PRP) compositions, is prepared by mixing the anti-inflammatory / anti-catabolic composition with the platelet-rich plasma composition to provide an autologous composition.

[0035] The above disclosure generally describes the present application. A more complete understanding can be obtained by reference to the following specific examples. These examples are provided for illustrative purposes only and are not intended to limit the scope of the present application. Modifications in form and substitution of equivalents are intended wherever suggested or appropriate under the circumstances. Although specific terms have been employed herein, such terms are intended to be descriptive and not limiting.

[0036] The following non-limiting examples are illustrative of the present disclosure. [Example]

[0037] Example 1 Figure 1 demonstrates significant production of IL-1ra in the blood of three human patients diagnosed with bilateral knee osteoarthritis, where the blood was drawn from the patients and stored in the presence of sodium citrate for either 3.5 or 6 hours at room temperature of about 20° C. The data shown in Figure 1 are based on the average of the results from the three patients, who are described in more detail below.

[0038] Figure 2 demonstrates significant production of TIMP 1 and TIMP 2 in the blood of three patients diagnosed with bilateral knee osteoarthritis, where the blood was stored in the presence of sodium citrate for either 3.5 or 6 hours at room temperature of about 20° C. The data shown in Figure 2 are based on the average of the results from the three patients, who are described in more detail below.

[0039] The results demonstrate significant production of IL-1Ra, TIMP 1, and TIMP 2 in the blood of three human patients diagnosed with bilateral knee osteoarthritis, where the blood was stored in the presence of sodium citrate for either 3.5 or 6 hours at room temperature of about 20° C. This was an unexpected result, as blood stored in the absence of sodium citrate had not previously been shown to produce significant levels of IL-1Ra, TIMP 1, and TIMP 2 after 3.5 or 6 hours of incubation.

[0040] The data shown in Figures 1 and 2 were obtained from patients Case 1, Case 2, and Case 3 in Example 2 below.

[0041] Example 2 Each patient had been diagnosed with bilateral knee osteoarthritis. Blood was collected from each patient into separate glass and plastic tubes containing sodium citrate. Each glass tube contained approximately 9.5 cc of whole blood and 0.5 cc of 4% sodium citrate solution by weight.

[0042] The glass tubes containing the patients' blood were stored at approximately 20°C for either 3.5 or 6 hours. The levels of IL-1ra, TIMP 1, and TIMP 2 in the patients' blood were then measured. The results for the three patients mentioned above are shown in Figures 1 and 2.

[0043] The glass tube was then centrifuged at 4,000 rpm for 10 minutes to isolate the anti-inflammatory component, which was then filtered through a 0.25 μm filter.

[0044] Blood collected in a plastic tube was used to prepare the regenerative PRP component. The plastic tube was quickly centrifuged at approximately 7500 rpm, and the regenerative component was collected into a sterile syringe. The regenerative component in the syringe was then filtered and thereby activated by passing it through a 0.25 μm filter. The regenerative component was then quickly combined with the anti-inflammatory component, which had been stored at approximately 20°C for either 3.5 or 6 hours.

[0045] The final autologous composition was obtained, containing a 50 / 50 combination of anti-inflammatory and regenerative (activated PRP) components. In each case, the autologous composition was administered to the patient.

[0046] Each patient was evaluated using the Western Ontario and McMaster Universities Arthritis Index (WOMAC) questionnaire, an index used to assess pain, stiffness, and physical function in patients with hip and / or knee osteoarthritis. As shown in Figures 3-6, preliminary analysis of the WOMAC questionnaire data one month after injection demonstrated statistically significant improvements in each patient's pain, stiffness, and daily activities. Statistical analysis of the pain visual analog scale (VAS) also revealed a significant reduction in pain in each patient, as shown in Figures 3-6.

[0047] Case 1: 31 years old Diagnosis: The patient presented with onset of right knee pain. MRI of the right knee showed osteoarthritic changes in the form of a combined tear of the body and posterior horn of the medial meniscus, inflamed synovial folds, moderate chondromalacia, and a 5-cm Baker's cyst.

[0048] Treatment: For the right knee, one injection of autologous composition into the knee. The blood was stored at room temperature for 6 hours.

[0049] Results: As shown in Figure 3, at the one-month follow-up after injection, the patient reported significant improvements in pain reduction, stiffness reduction, and daily activities, and VAS scores demonstrating significant pain reduction after one month. Results show a significant improvement in WOMAC scores. The patient was able to resume physical activity.

[0050] Case 2: 59 years old Diagnosis: The patient presented with left knee pain. MRI of the left knee showed osteoarthritic changes: associated horizontal tear and degeneration of the lateral meniscus.

[0051] Treatment: For the left knee, one injection of the autologous composition into the knee. The glass tube containing the patient's blood for preparing the anti-inflammatory component was kept at room temperature for 6 hours.

[0052] Results: As shown in Figure 4, at the follow-up visit one month after injection, the patient reported significant improvement, a significant reduction in pain, and significant improvements in WOMAC and VAS scores.

[0053] Case 3: 62 years old Diagnosis: The patient presented with left knee pain. MRI of the left knee revealed osteoarthritic changes: a complex tear involving the body and posterior horn of the medial meniscus with degeneration, and degenerative thinning of the articular hyaline cartilage covering the femoral condyle and medial tibial plateau.

[0054] Treatment: For the left knee, one injection of the autologous composition into the knee. The glass tube containing the subject's blood for preparing the anti-inflammatory component was stored at room temperature for 3.5 hours.

[0055] Results: As shown in Figure 5, at the follow-up visit one month after injection, the patient reported a significant therapeutic effect, a significant reduction in pain, and significant improvements in WOMAC and VAS scores.

[0056] Case 4: 70 years old Diagnosis: The patient presented with onset of right knee pain. MRI of the right knee revealed osteoarthritic changes: a 0.5 x 0.4 cm mixed partial and full-thickness cartilage defect with a 10 mm cluster of subchondral cysts on the weight-bearing surface of the lateral femoral condyle: moderate tricompartmental osteoarthritis.

[0057] Treatment: 1 injection of autologous composition into the right knee. The glass tube containing the subject's blood for preparing the anti-inflammatory component was stored at room temperature for 3.5 hours.

[0058] Results: As shown in the graph shown in Figure 6, at the follow-up visit one month after injection, the patient reported a significant therapeutic effect, a significant reduction in pain, and a significant improvement in WOMAC and VAS scores.

[0059] Example 3 Blood was collected from 12 healthy subjects and then mixed with a 4% by weight sodium citrate solution. The blood in the 4% by weight sodium citrate solution mixture was stored at approximately 20°C. The blood to sodium citrate ratio was 9.5 parts whole blood (9.5 cc): 0.5 parts 4% by weight sodium citrate solution (0.5 cc). IL-1ra, MMP9, TNFα, and ILβ levels were measured at 0 hours as a control, and at 6, 12, and 24 hours. The results are shown in Figures 7-10.

[0060] Figure 7 shows the average IL-1ra levels among the 12 subjects at time 0 as a control, and at 6, 12, and 24 hours. The results shown in Figure 7 show a statistically significant increase in IL-1ra levels after 6 hours of incubation and after 12 hours of incubation, which is statistically significant based on one-way analysis of variance.

[0061] Figure 8 shows the average levels of MMP9 among the 12 subjects at time 0 as a control, and at 6, 12, and 24 hours. The results shown in Figure 8 indicate that MMP9 levels do not increase after incubation.

[0062] Figure 9 shows the average TNFα levels among the 12 subjects at time 0 as a control, and at 6, 12, and 24 hours. The results shown in Figure 9 indicate that TNFα levels do not increase after incubation.

[0063] Figure 10 shows the average levels of ILβ among the 12 subjects at time 0 as a control, and at 6, 12, and 24 hours. The results shown in Figure 10 indicate that ILβ levels do not increase after incubation.

[0064] Example 4 Twenty-two patients underwent treatment with the autologous composition of the present disclosure. Each patient was diagnosed with bilateral knee osteoarthritis. For each patient, blood was collected into separate glass and plastic tubes containing sodium citrate. Each glass tube contained approximately 9.5 cc of whole blood and approximately 0.5 cc of a 4% by weight sodium citrate solution.

[0065] The glass tubes containing the patient's blood in a mixture with sodium citrate were stored at approximately 20°C for 6 hours. The glass tubes were then centrifuged at 4,000 rpm for 10 minutes to isolate the anti-inflammatory component. After centrifugation, the anti-inflammatory component was filtered through a 0.25 μm filter.

[0066] Blood collected in a plastic tube was used to prepare the regenerative PRP component. The plastic tube was quickly centrifuged at approximately 7500 rpm, and the regenerative component was collected into a sterile syringe. The regenerative component in the syringe was then filtered and thereby activated by passing it through a 0.25 μm filter. The regenerative component was then quickly combined with the anti-inflammatory component, which had been stored at approximately 20°C for 6 hours.

[0067] For each patient, a final autologous composition containing a 50 / 50 combination of anti-inflammatory and regenerative (activated PRP) components was obtained. In each case, the autologous composition was administered to the patient.

[0068] Twenty-two patients were evaluated using the Western Ontario and McMaster Universities Arthritis Index (WOMAC) questionnaire, an index used to assess pain, stiffness, and physical function in patients with hip and / or knee osteoarthritis. Preliminary analysis of the WOMAC questionnaire data one month after injection, as shown in Figures 11b, 11c, and 11d, respectively, demonstrated statistically significant improvements in patients' pain, stiffness, and daily activities for patients treated with the autologous composition. Statistical analysis of the visual analog scale (VAS) for pain revealed a significant reduction in patients' pain, as shown in Figure 11a.

[0069] Although the present invention has been described with reference to exemplary embodiments, it should be understood that the present invention is not limited to those exact embodiments. Numerous modifications, variations, and adaptations can be made to the specific embodiments of the present invention described above without departing from the scope of the present invention. The breadth of the claims should not be limited by the preferred embodiments described in the examples, but should be accorded the broadest interpretation generally consistent with the description herein.

Claims

1. 1. A method of making an autologous composition useful for treating a mammal having damaged and / or injured connective tissue, chronic tendinopathy, chronic muscle tears, chronic degenerative joint disease, and / or inflammatory disorders of the skin, comprising the steps of: Preparing an anti-inflammatory / anti-catabolic component of the autologous composition comprising IL-1ra and TIMP, said preparing the anti-inflammatory / anti-catabolic component comprising the steps of: mixing blood from the mammal with an amount of sodium citrate to form a mixture; incubating the mixture at a temperature of about 20°C to about 40°C for about 3.5 hours to about 12 hours; centrifuging the incubated mixture to separate the blood into a supernatant component and a cellular fraction; recovering the supernatant components, which are the anti-inflammatory / anti-catabolic components; Preparing the regenerative component of the autologous composition, comprising the steps of: mixing blood from the mammal with an amount of an anticoagulant; centrifuging the blood to separate a platelet-rich plasma component from the blood; recovering the platelet-rich plasma component; and Mixing the supernatant component, which is an anti-inflammatory / anti-catabolic component, with the platelet-rich plasma component to provide an autologous composition.

2. 10. The method of claim 1, wherein the mixture is incubated for about 3.5 hours.

3. The method of claim 1, wherein the mixture is incubated for about 6 hours.

4. 10. The method of claim 1, wherein the sodium citrate is a 4% by weight sodium citrate solution.

5. 5. The method of claim 4, wherein the step of mixing blood from the mammal with a quantity of sodium citrate to form a mixture comprises providing a ratio of 9.5 parts whole blood to 0.5 parts 4% by weight sodium citrate solution.

6. 5. The method of claim 4, wherein 9.5 cc of blood is mixed with 0.5 cc of a 4% by weight sodium citrate solution.

7. 10. The method of claim 1, wherein the anticoagulant is about 4% by weight sodium citrate solution.

Citation Information

Patent Citations

  • Methods for producing therapeutically effective proteins interleukin-1 receptor antagonists from body fluids

    JP2002540818A

  • Methods and compositions for producing enhanced anti-inflammatory / anti-catabolic and regenerative substances from autologous physiological fluids

    JP2017533896A

  • Method for preparation and long-term storage of growth factors and cytokines derived from platelet-rich plasma - Patent Application 20070122997

    JP2020500933A

  • Method of producing interleukin-1 receptor antagonist in a syringe filled with blood

    US6713246B1