Method for preparing terminally sterile hydrogel or colloidal suspensions derived from extracellular matrices and their uses
A thermoreversible mammalian acoustic ECM hydrogel addresses the challenges of managing anorectal fistulas by promoting wound healing and reducing recurrence, improving procedural outcomes and patient quality of life.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-04-30
- Publication Date
- 2026-03-04
AI Technical Summary
Current methods for managing anorectal fistulas, such as anal fistulas, result in poor procedural outcomes, significant patient morbidity and mortality, high recurrence rates, and increased healthcare costs due to controversial management approaches and surgical complications.
A thermoreversible mammalian acoustic ECM hydrogel composition is administered locally to the fistula, which is in a gel phase below 37°C and transitions to a liquid phase above 37°C, with a storage modulus to loss modulus ratio of 6:1 to 12:1, and includes solubilized ECM and trehalose, promoting wound healing and modulating macrophages to a pro-remodeling phenotype.
The composition effectively fills complex fistula tracts, reduces leakage, improves healing, alleviates surgical bleeding, and decreases recurrence, enhancing patient quality of life and reducing healthcare costs.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application No. 63 / 077,084, filed September 11, 2020, which is incorporated herein by reference.
[0002] Government support statement This invention was made with government support under Grant No. W81XWH-19-9-0012 awarded by the US Army Medical Research and Materiel Command (ARMY / MRMC). The government has certain rights in this invention.
[0003] Technical Field This application relates to the field of hydrogels, and in particular, but not exclusively, to the use of mammalian acoustic extracellular matrix (ECM) hydrogels to repair fistulas, such as anal fistulas.
[0004] Parties to the Joint Research Agreement This invention was made under a research agreement between the University of Pittsburgh Commonwealth System of Higher Education and ECM Therapeutics, Inc. executed prior to the filing date of this application. [Background technology]
[0005] background Anorectal fistulas are pathological connections between the epithelial surface of the anal canal and the skin of the perineum and perianal region. Anorectal fistulas pose a significant procedural burden for gastroenterology and colorectal surgery due to different approaches to management. Using current methods, procedural outcomes are often poor. Regardless of management, anorectal fistulas have a significant impact on patient morbidity and mortality as sequelae of the fistula can range from social embarrassment to outright infection and sepsis. Furthermore, high recurrence rates, surgical complication rates, and subsequent procedures to manage anorectal fistulas significantly reduce patients' quality of life and increase healthcare costs. Therefore, new compositions and methods for treating these and other fistulas are needed. Summary of the Invention [Means for solving the problem]
[0006] Summary of disclosure Methods of treating a fistula in a subject are disclosed. In some embodiments, the method comprises locally administering to a fistula in a subject an effective amount of a composition comprising a mammalian acoustic extracellular matrix (ECM) hydrogel, wherein a) the mammalian acoustic ECM hydrogel is thermoreversible, the mammalian acoustic ECM hydrogel being in a gel phase at a temperature below about 37°C and transitioning to a liquid phase at a temperature above about 37°C; b) the mammalian acoustic ECM hydrogel comprising solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml; and c) the composition has a storage modulus (G') to loss modulus (G") ratio at 37°C in the range of about 6:1 to about 12:1. In some non-limiting embodiments, the fistula is an anal fistula.
[0007] In some embodiments, a composition is disclosed that includes: i) a mammalian acoustic extracellular matrix (ECM) hydrogel; a) the mammalian acoustic ECM hydrogel is thermoreversible, wherein the mammalian acoustic ECM hydrogel is in a gel phase at a temperature below about 37°C and transitions to a liquid phase at a temperature above about 37°C; b) the mammalian acoustic ECM hydrogel includes solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml; and c) the composition has a storage modulus (G') to loss modulus (G") ratio of about 6:1 to about 12:1 at 37°C. The composition also includes ii) 0.1 mg / ml to about 700 mg / ml of trehalose; and iii) about 1% to about 30% (weight per volume) of ground ECM that is not solubilized in the hydrogel. In some non-limiting embodiments, the composition is used in a method of treating a fistula in a subject. In some non-limiting embodiments, the fistula is a fistula-in-ano.
[0008] In further embodiments, compositions are disclosed comprising a mammalian acoustic extracellular matrix (ECM) hydrogel for use in treating a fistula in a subject. In these compositions, a) the mammalian acoustic ECM hydrogel is thermoreversible, wherein the mammalian acoustic ECM hydrogel is in a gel phase at temperatures below about 37°C and transitions to a liquid phase at temperatures above about 37°C; b) the mammalian acoustic ECM hydrogel comprises solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml; and c) the composition has a storage modulus (G') to loss modulus (G") ratio of about 6:1 to about 12:1 at 37°C. In some non-limiting examples, the fistula is an anal fistula.
[0009] The foregoing and other features and advantages of the present invention will become more apparent from the following detailed description of several embodiments, which proceeds with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS [Brief explanation of the drawings]
[0010] [Figure 1]Figure 1: Trehalose prevents acoustic ECM hydrogel aggregation after E-beam sterilization. Using ultrasonic cavitation, 100 mg / ml dermal ECM (dECM) hydrogels containing 20 or 40 mg / ml trehalose were prepared. A 100 mg / ml dermal ECM hydrogel prepared without trehalose served as a control (left panel). The data show that the addition of trehalose at concentrations of 20–40 mg / ml (center and left panels) prevented the dermal ECM hydrogel from forming aggregates after sterilization with 35 kGy E-beam. The composition without trehalose was not adhesive and formed small aggregates or clumps, whereas the composition containing trehalose formed a uniform, adhesive composition with a generally smooth texture.
[0011] [Figure 2] Figure 2: Macroscopic gelation studies. 5% colloidal dECM hydrogels containing 40 or 66 mg / ml trehalose were subjected to E-beam sterilization at the indicated doses. After sterilization, the samples were cooled to 4 °C and injected into ring molds. Macroscopic evaluation showed that when injected at lower temperatures, the 5% colloidal dECM hydrogel containing 40 mg / ml trehalose formed more aggregates than the 5% colloidal dECM hydrogel containing 60 mg / ml trehalose at all E-beam doses tested.
[0012] [Figure 3] Figure 3: Macroscopic gelation test at 37°C. 5% colloidal hydrogels containing 40 or 66 mg / ml trehalose were subjected to E-beam sterilization at the indicated dosages. After sterilization, the samples were cooled to 4°C and poured into ring molds. The samples were then placed in a 37°C incubator for 1 hour. Macroscopic evaluation showed that dECM colloidal hydrogels containing trehalose as a radioprotectant and subjected to E-beam sterilization maintained their shape at 37°C for both trehalose concentrations.
[0013] [Figure 4]Figure 4: Macroscopic gelation test at 37 °C with gentle manipulation. 5% colloidal hydrogels containing 40 or 66 mg / ml trehalose were subjected to E-beam sterilization at the indicated dosages. After sterilization, the samples were cooled to 4 °C and poured into ring molds. The samples were then placed in a 37 °C incubator for 1 hour. After 1 hour, the gels were manipulated by pressing down on the center. Visual evaluation showed that the dECM colloidal hydrogel containing 40 mg / ml trehalose degraded more readily under gentle manipulation than the colloidal hydrogel containing 66 mg / ml trehalose.
[0014] [Figure 5A-5B] Figures 5A-5B: Viscoelastic characterization of skin ECM colloidal hydrogels containing trehalose. (A) 2, 5, or 10% colloidal hydrogels containing 20 or 40 mg / ml trehalose were subjected to E-beam sterilization using a 25 kGy dose. The graph shows the average storage modulus of the samples. The results show that samples containing 20 mg / ml trehalose were stiffer than the 40 mg / ml samples; increasing colloid concentration increases the stiffness of the material. (B) Average storage modulus of 5% colloidal hydrogels containing 66 mg / ml trehalose and sterilized by E-beam at five different doses.
[0015] [Figure 6] Figure 6: Trehalose does not induce iNOS or Resistin-like β ("RETNLB" or "Fizz1") expression in macrophages. Mouse bone marrow-derived macrophages were untreated (control) or treated with increasing concentrations of trehalose (8.5-68 mg / ml) for 24 hours, fixed, immunolabeled for a strong indicator of pro-inflammatory M1-like macrophage marker (iNOS) or pro-remodeling M2-like macrophage marker (Fizz1), and counterstained with DAPI. Treatment of cells with IFNγ and lipopolysaccharide (LPS) was used as a positive control for an M1-like phenotype, and IL-4 was used as a positive control for an M2-like phenotype. F4 / 80 staining was used as a positive control for macrophages. Cells were imaged at 200x magnification.
[0016] [Figure 7-1] Figures 7A-7E: Dermal acoustic hydrogel can be used to fill a fistula tract. A 4 cm transphincteric fistula tract was created in a pig. 100 mg / ml dermal acoustic gel was administered by inserting a catheter through the external opening of the tract (A) and directing it toward the internal opening (B). The catheter was then slowly retracted while injecting the gel into the tract (C, D). (E) Photograph of the fistula-filled dermal acoustic gel. The gel is a dark green spot located approximately above the anus at 11 o'clock. [Figure 7-2] Same as above. [Figure 7-3] Same as above. DETAILED DESCRIPTION OF THE INVENTION
[0017] Detailed Description of Some Embodiments An anorectal fistula is a pathological connection between the epithelial surface of the anal canal and the skin of the perineum and perianal region. Anorectal fistulas pose a significant procedural burden to gastroenterology and colorectal surgery due to substantial controversy over management approaches and poor procedural outcomes. Regardless of management, anorectal fistulas have a significant impact on patient morbidity and mortality as sequelae of the fistula can range from social embarrassment to outright infection and sepsis. Furthermore, high recurrence rates, surgical complication rates, and subsequent procedures to manage anorectal fistulas significantly reduce patients' quality of life and increase healthcare costs. A space-filling, remodeling-promoting colloidal hydrogel composition that can be used to treat anal fistulas is disclosed.
[0018] Disclosed herein is a composition comprising a mammalian acoustic ECM hydrogel that has demonstrated clinical efficacy for managing unregulated inflammation and promoting wound healing in anal fistulas. As disclosed in the Examples, the ECM was exposed to ultrasonic treatment and used to prepare a composition for use in treating anal fistulas. In vitro results demonstrate that the disclosed composition can be sterilized, fill complex fistula tracts at body temperature, modulate macrophages toward a pro-remodeling phenotype (Fizz+), and be used as a rigid biomaterial with hemostatic properties. The disclosed composition maintained its rigidity in ex vivo tracts and did not degrade or leak from the tract at body temperature.
[0019] In a postmortem ex vivo porcine fistula model, the compositions were able to fill the tract without leakage at body temperature. The combination of space-filling, anti-inflammatory, and hemostatic properties allowed these compositions to be utilized in the treatment of simple and complex anorectal fistulas. The ease of injection, sterility, and stability allow the disclosed compositions to be used "off the shelf" in both surgical and outpatient settings. The disclosed compositions improve healing, alleviate surgical bleeding, reduce complications, and reduce recurrence in the management of anorectal fistulas. term
[0020] Unless otherwise specified, technical terms are used according to conventional usage. Definitions of common terms in molecular biology can be found in Krebs et al. (Eds.), Lewin's Genes XII, published by Jones & Bartlett Publishers, 2017; and Meyers et al. (eds.), The Encyclopedia of Cell Biology and Molecular Medicine, published by Wiley-VCH in 16 volumes, 2008, and other similar reference works. In order to facilitate review of the various embodiments of the disclosure, the following explanations of specific terms are provided:
[0021] Acid protease: An enzyme that cleaves peptide bonds and has increased activity at acidic pH. For example, but not limited to, acid proteases can include pepsin and trypsin.
[0022] Fistula-in-ano: A small tunnel connecting the anal canal to the perianal skin. Most are associated with anorectal abscesses. Anal fistulas can result from infection of the anal glands (anal glad) that spreads to the skin. Symptoms include pain, swelling, and discharge of blood or pus from the anus. There are several types of anal fistulas, including intersphincteric (most common), transsphincteric, extrasphincteric, and suprasphincteric (least common).
[0023] Antibiotic: A compound or substance that kills or substantially slows the growth of bacteria, fungi, or any other microorganism. An "antibacterial" is a compound or substance that kills or substantially slows the growth of bacteria.
[0024] Antibacterial antibiotics are generally classified based on their mechanism of action, chemical structure, or spectrum of activity. Most target bacterial functions or growth processes. Those that target the bacterial cell wall (e.g., penicillins and cephalosporins) or cell membrane (e.g., polymyxins) or interfere with essential bacterial enzymes (e.g., quinolones and sulfonamides) are bactericidal. Those that target protein synthesis (e.g., aminoglycosides, macrolides, and tetracyclines) are generally bacteriostatic. Further classification is based on their target specificity.
[0025] "Narrow spectrum" antibacterial antibiotics target specific types of bacteria, such as gram-negative or gram-positive bacteria. "Broad spectrum" antibiotics affect many different types of bacteria. Antibacterial agents also include cyclic lipopeptides (such as daptomycin), glycylcyclines (such as tigecycline), and oxazolidinones (such as linezolid).
[0026] Topical antibiotics are antibiotics that are applied to a body surface, such as the skin or eyes. Topical antibiotics are often formulated into ointments or creams and contain active agents such as macrolide antibiotics (such as erythromycin), sulfa antibiotics (such as sulfacetamide), cyclic peptides (such as bacitracin or polymyxin), pseudomonic acids (such as mupirocin), aminoglycosides (such as neomycin), or quinolones (such as ciprofloxacin or ofloxacin), nitroimidazoles (such as metronidazole), or drug combinations (such as bacitracin / polymyxin or neomycin / polymyxin B / bacitracin).
[0027] Biocompatible: Any material that, when implanted into a mammalian subject, does not cause an adverse reaction in the subject. A biocompatible material, when introduced into an individual, is capable of performing its intended function, is not toxic or harmful to the individual, and does not induce immunological rejection of the material in the subject.
[0028] Centrifugation: A process in which centrifugal force is applied to a mixture, causing denser components of the mixture to move away from the axis of the centrifuge relative to other less dense components in the mixture. The force applied to the mixture is a function of the speed of the centrifuge rotor and the radius of the spin. In most applications, the force of the spin causes a precipitate (pellet) to collect at the bottom of the centrifuge tube, and the remaining solution is appropriately called the "supernatant" or "liquid." Other similar applications use density-based separation or "gradient centrifugation" techniques to isolate specific species from mixtures containing both denser and less dense components than the desired component.
[0029] During the circular motion of a centrifuge rotor, the applied force is the product of the radius of spin and the angular velocity, and force is traditionally expressed as an acceleration relative to the standard acceleration due to gravity at the Earth's surface, "g." The applied centrifugal force is called the "relative centrifugal force" (RCF), and is expressed as a multiple of "g."
[0030] Comminution (pulverizing and grinding): A process that reduces larger particles to smaller particles, including, but not limited to, grinding, blending, shredding, slicing, milling, or cutting. ECM can be pulverized in any form, including, but not limited to, hydrated, frozen, air-dried, lyophilized, powdered, or sheet form. "Pulverized ECM" includes intact collagen. Pulverized ECM has not been exposed to ultrasound.
[0031] Contact: Placement in direct physical association, which may be in solid or liquid form.
[0032] Cytokine: The term "cytokine" is used as a collective term for a diverse group of soluble proteins and peptides that act as humoral regulators at nano- to picomolar concentrations, regulating the functional activity of individual cells and tissues under normal or pathological conditions. These proteins also directly mediate interactions between cells and regulate processes occurring in the extracellular environment. Examples of cytokines include, but are not limited to, tumor necrosis factor-α, interleukin (IL)-6, IL-10, IL-12, transforming growth factor, and interferon-γ.
[0033] Diagnosis: The process of identifying a disease through its signs, symptoms, and the results of various tests. The conclusion reached through this process is also called a "diagnosis." Common types of tests performed include blood tests, medical imaging, and biopsies.
[0034] Extracellular matrix (ECM): A natural acellular scaffold for cell growth. Natural ECM (ECM found in multicellular organisms, including but not limited to mammals and humans) is a complex mixture of structural and nonstructural biomolecules, including, but not limited to, collagen, elastin, laminin, glycosaminoglycans, proteoglycans, antimicrobials, chemoattractants, cytokines, and growth factors. In mammals, ECM often contains approximately 90% collagen in its various forms. The composition and structure of ECM vary depending on the tissue source. For example, small intestinal submucosa (SIS), urinary bladder matrix (UBM), esophageal (E), and liver interstitial ECM each differ in their overall structure and composition due to the unique cellular niches required for each tissue. An intact "extracellular matrix" and "intact ECM" is an extracellular matrix that retains the activity of its structural and non-structural biomolecules, including, but not limited to, collagen, elastin, laminin, glycosaminoglycans, proteoglycans, antimicrobials, chemoattractants, cytokines, and growth factors.
[0035] The structure and / or activity of biomolecules within the ECM can be altered or removed chemically or mechanically, for example, by crosslinking and / or dialysis of the ECM. Intact ECM means that it has essentially not been enzymatically digested, crosslinked, or dialyzed, meaning that the ECM has not been subjected to conditions other than the digestion, dialysis, and / or crosslinking processes, or processes that naturally occur during storage and handling of the ECM prior to solubilization. Thus, ECM that has been substantially crosslinked and / or dialyzed (other than by conventional methods that do not substantially affect the gelation and functional properties of the ECM in its uses described herein) is not considered "intact." "Acellular" refers to ECM produced from source tissue that has been treated to remove cells so that the ECM remains. Decellularized tissue is used to produce ECM hydrogels.
[0036] Fistula: An abnormal connection or passageway between organs or blood vessels that do not normally connect. Fistulas can occur in various parts of the body in association with diseases of the circulatory, respiratory, digestive, reproductive, musculoskeletal, and connective tissue systems, as well as congenital malformations, deformities, and chromosomal abnormalities. Types of fistulas can be blind, with only one open end; complete, with both external and internal openings; or incomplete, with an external skin opening that does not connect to any internal organs. The most common form of fistula is in the form of a tube, which may have multiple branches.
[0037] Gel: A state of matter between liquid and solid, generally defined as a crosslinked polymer network swollen in a liquid medium. Typically, a gel is a two-phase colloidal dispersion containing both solid and liquid, with the amount of solid being greater than that of a two-phase colloidal dispersion called a "sol." Thus, a "gel" possesses some of the properties of a liquid (i.e., elastic and deformable shape) and some of the properties of a solid (e.g., shape sufficiently discrete to maintain three dimensions on a two-dimensional surface). "Gelation time," also known as "gel time," refers to the time it takes for a composition to become non-flowable under moderate stress.
[0038] Gelation: The formation of a gel from a sol.
[0039] Hemostasis: The control or cessation of bleeding.
[0040] Hydrogel: A network of hydrophilic polymer chains, sometimes found as a colloidal gel in which water is the dispersion medium. Hydrogels are highly absorbent natural or synthetic polymer networks. Hydrogels also have a degree of flexibility similar to that of natural tissue. "Acoustic" hydrogels, such as acoustic ECM hydrogels, are produced using ultrasonic energy. The characteristics of these hydrogels are disclosed herein. For hydrogels, the G' (storage modulus) is typically about one order of magnitude greater than the G" (loss modulus). "Enzymatic" ECM hydrogels are produced by enzymatically digesting ECM. The viscosity of enzymatic hydrogels increases upon warming to physiological temperatures near about 37°C. For example, enzymatic hydrogels are formed from injectable solutions at temperatures below 37°C that form gels at the physiological temperature of 37°C.
[0041] Isolated: An "isolated" biological component (such as extracellular matrix) is one that has been substantially separated from, produced separately from, or purified from other biological components, the cell or organism in which the component naturally occurs, i.e., living cells, other chromosomal and extrachromosomal DNA and RNA, and proteins. Thus, "isolated" ECM includes ECM that has been removed from tissue by standard purification methods. Isolated ECM has been separated from the cells that produce it.
[0042] Isotonic buffered solution: a solution buffered to a pH between 7.2 and 7.8 and with an equilibrium concentration of salt to promote an isotonic environment.
[0043] Macrophages: A type of white blood cell that engulfs and degrades cellular debris, foreign particles, microorganisms, and cancer cells. In addition to their role in phagocytosis, these cells play important roles in development, tissue maintenance, and repair, as well as in both innate and adaptive immunity, by recruiting and influencing other cells, including immune cells such as lymphocytes. Macrophages can exist in many phenotypes, including M1 and M2 (also called "M1-like" and "M2-like") phenotypes. Macrophages that primarily perform pro-inflammatory functions are called M1 macrophages (CD86+ / CD68+), while macrophages that reduce inflammation and promote and regulate tissue repair are called M2 macrophages (CD206+ / CD68+). Markers identifying various macrophage phenotypes vary by species. Note that macrophage phenotypes are represented by a spectrum ranging between the extremes of M1 and M2. The marker Fizz-1 (see Raes et al., Dev. Immunol. 9:151-159, 2002, incorporated herein by reference) identifies macrophages that are thought to be remodeling, i.e., M2 macrophages.
[0044] Mammal: This term includes both human and non-human mammals. Similarly, the term "subject" includes both human and veterinary subjects.
[0045] Prevention or treatment of a disease: "Preventing" a disease refers to inhibiting the partial or complete onset of the disease, for example, in a person known to have a predisposition to the disease. "Treatment" refers to a therapeutic intervention that ameliorates the signs or symptoms of a disease or pathological condition after it has begun to develop. In some embodiments, treatment refers to a reduction in incontinence, at least a partial closure of a fistula, or a reduction in the symptoms of an anal fistula.
[0046] Solubilized ECM: ECM that has been treated with ultrasonic cavitation, thereby causing microstructural changes due to physical disruption of protein aggregates.
[0047] Therapeutic Agent: Used in a general sense, including treatment agents, prophylactic agents, and replacement agents. "Treatment" or "treating" means providing a substance, such as a disclosed composition, to a patient in an amount sufficient to measurably affect a biological parameter, such as increasing hemostasis or tissue growth.
[0048] Therapeutically effective amount: A "therapeutically effective amount" of a composition refers to an amount effective to provide a therapeutic benefit, such as symptomatic improvement, reduced progression, or disease regression, when administered to a patient. The amount of the composition is sufficient to achieve the desired effect in the subject being treated, e.g., a subject with an anal fistula. A therapeutically effective amount can be administered topically, e.g., to an anal fistula. Furthermore, an effective amount can be administered in a single dose or in several doses at different times. The effective amount depends on the preparation applied, the subject being treated, and the severity and type of the affliction, e.g., the type of fistula. The compositions used in the methods disclosed herein have equivalent applications in medical and veterinary settings. Thus, the general term "subject" or "patient" is understood to include all animals, including, but not limited to, humans or veterinary subjects, such as other primates, dogs, cats, horses, and cattle.
[0049] Thermoreversible hydrogel: A hydrogel formed by the entanglement of polymer chains that undergoes a change in viscosity at a characteristic temperature of gelation. The disclosed acoustic ECM hydrogel is a thermoreversible hydrogel that exhibits gelation (sol-to-gel transition) upon cooling.
[0050] Topical application: topical application agent is only applied to a specific area, not to the whole body.In a specific example, the composition is applied to the skin or eye in the area where hemostasis is desired.For example, the pharmaceutical composition can be applied in a topical preparation to wounds, such as epithelial wounds or defects, for example, traumatic or surgical wounds, such as abrasions or surgical incisions of the skin or cornea.
[0051] Sonication: The process of exposing to ultrasound waves at frequencies greater than 20 kHz.
[0052] Unless otherwise explained, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. The singular terms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Similarly, the word "or" is intended to include "and" unless the context clearly dictates otherwise. Furthermore, it should be understood that all base or amino acid sizes and all molecular weight or molecular mass values given for nucleic acids or polypeptides are approximate and are provided for illustrative purposes. "About" indicates within 5% of the recited value. Although methods and materials similar or equivalent to those described herein can be used in the practice or testing of this disclosure, suitable methods and materials are described below. The term "comprises" means "includes." All publications, patent applications, patents, and other references mentioned herein are incorporated by reference in their entirety. In case of conflict, the present specification, including explanations of terms, will control. In addition, the materials, methods, and examples are illustrative only and not intended to be limiting. Extracellular matrix (ECM)
[0053] Any type of extracellular matrix can be used to fabricate mammalian acoustic ECM hydrogels (see, for ECM, U.S. Patent Nos. 4,902,508; 4,956,178; 5,281,422; 5,352,463; 5,372,821; 5,554,389; 5,573,784; 5,645,860; 5,771,969; 5,753,267; 5,762,966; (Nos. 5,866,414; 6,099,567; 6,485,723; 6,576,265; 6,579,538; 6,696,270; 6,783,776; 6,793,939; 6,849,273; 6,852,339; 6,861,074; 6,887,495; 6,890,562; 6,890,563; 6,890,564; and 6,893,666). In certain embodiments, the ECM is isolated from a vertebrate, such as a mammal, including but not limited to a human, monkey, horse, pig, cow, and sheep. In a specific, non-limiting example, the ECM is porcine.
[0054] ECM can be derived from any organ or tissue, including, but not limited to, the bladder, intestine (such as the small or large intestine), heart, kidney, uterus, brain, blood vessels, lung, bone, muscle, pancreas, stomach, spleen, adipose tissue, muscle tissue, liver, esophagus, placenta, and dermis. ECM can be obtained from cell culture. In one embodiment, the ECM is isolated from the bladder. In another embodiment, the ECM is derived from the esophagus. In another embodiment, the ECM is derived from the dermis. In another embodiment, the ECM is derived from small intestinal submucosa (SIS). The ECM may or may not include the basement membrane portion of the ECM. In certain embodiments, the ECM comprises at least a portion of the basement membrane. Tissues can be decellularized to remove cells and cellular material from a source tissue or organ to produce ECM, for example, to remove cells and cellular material from the source tissue or organ. When the ECM is implanted in a subject, for example, as a component of a hydrogel disclosed herein, it is desirable to use decellularized material to prevent an immune response. Removal of cellular material, such as when ECM is used to form a hydrogel, prevents such an immune response.
[0055] U.S. Patent No. 8,361,503 (incorporated herein by reference) discloses the preparation of bladder ECM from porcine urinary bladders and other tissues. The ECM is prepared by abrading bladder tissue using a longitudinal wiping motion with a scalpel handle and moistened gauze to remove the outer layers, including both the serosal and muscularis layers. Following eversion of the tissue segment, the luminal portion of the mucosa is peeled away from the underlying tissue using the same wiping motion. In some embodiments, perforation of the submucosa is prevented. After these tissues are removed, the resulting ECM consists primarily of submucosa.
[0056] The production of hydrogels from skin ECM is disclosed in Wolf et al., Biomaterials 33:7028-7038, 2012, which is incorporated herein by reference. The production of ECM from esophageal tissue is described, for example, in Badylak et al., J Pediatr Surg. 35(7):1097-103, 2000 and Badylak et al., J Surg Res. 2005 September;128(1):87-97, 2005, both of which are incorporated herein by reference. U.S. Patent No. 6,893,666, which is incorporated herein by reference, discloses the production of ECM from the bladder, skin, esophagus, and small intestine. ECM can be produced from any of these tissues.
[0057] Commercially available ECM preparations can also be used. In one embodiment, the ECM is derived from small intestinal submucosa or SIS. Commercially available preparations include, but are not limited to, SURGISIS™, SURGISIS-ES™, STRATASIS™, and STRATASIS-ES™ (Cook Urological Inc., Indianapolis, IN), and GRAFTPATCH™ (Organogenesis Inc., Canton, MA). In another embodiment, the ECM is derived from the dermis. Commercially available preparations include, but are not limited to, PELVICOL™ (sold in Europe as PERMACOL™; Bard, Covington, GA), REPLIFORM™ (Microvasive; Boston, MA), and ALLODERM™ (LifeCell; Branchburg, NJ). In another embodiment, the ECM is derived from the urinary bladder. Commercially available preparations include, but are not limited to, UBM (Acell Corporation; Jesup, MD).
[0058] Tissues for ECM preparation can be harvested in a variety of ways, and various portions of the harvested tissue can be used. ECM can also be prepared from the esophagus and small intestine, as described, for example, in Keane et al., Tissue Eng. Part A, 21(17-18):2293-2300, 2015, incorporated herein by reference. Esophageal ECM can be prepared by mechanically separating the mucosa and submucosa from the muscularis layer, digesting the mucosa with a buffer containing trypsin, followed by exposure to sucrose, TRITON®-X100®, deoxycholic acid, peracetic acid, and DNAse. Small intestinal submucosa (SIS) can be prepared from intact small intestine by mechanically removing the mucosa, serosal layer, and superficial layer of the muscularis layer, leaving the submucosa, muscularis mucosa, and compact basal layer intact. The SIS is then treated with peracetic acid. An exemplary protocol is provided in Keane et al. Skin hydrogels can be prepared, for example, as disclosed in Wolf et al, J Biomed Mater Res A. 2013. 35(25):6838-49. PMID: 23873846. PMCID: 3808505, which is incorporated herein by reference.
[0059] In one embodiment, urinary bladder matrix (UBM) is prepared by isolating ECM from harvested porcine bladders. Excess connective tissue and residual urine are removed from the bladder. The serosa, muscularis externa, submucosa, and most of the muscularis mucosa can be removed by mechanical abrasion or a combination of enzymatic treatment, hydration, and abrasion. Mechanical removal of these tissues can be achieved by abrasion using a longitudinal wiping motion to remove the outer layer (particularly the abluminal smooth muscle layer) and even the luminal portion of the mucosa (epithelial layer). Mechanical removal of these tissues can be achieved, for example, by removing the mesenteric tissue using Adson-Brown forceps and Metzenbaum scissors, and wiping off the muscularis and submucosa using a longitudinal wiping motion with a scalpel handle or other rigid object wrapped in moist gauze. Mucosal epithelial cells can also be dissociated by immersing the tissue in a de-epithelialization solution, such as, but not limited to, hypertonic saline. The resulting UBM contains the mucosal basement membrane and adjacent lamina propria, which is further treated with peracetic acid, freeze-dried, and powdered; see U.S. Pat. No. 8,361,503, incorporated herein by reference.
[0060] Dermal slices can be used to prepare ECM hydrogels (see PCT Application No. 2015 / 15164728, incorporated herein by reference). In a specific, non-limiting example, the dermis can be decellularized using 0.25% trypsin / 1% TRITON®-X®-100 (i.e., no SDS) on a vortex shaker at 300 RPM at room temperature in the following solutions: 0.25% trypsin once for 6 hours; deionized water three times for 15 minutes; 70% ethanol once for 10-12 hours; 3% HO once for 15 minutes; deionized water twice for 15 minutes; 1% TRITON®-X®-100 in 0.26% EDTA / 0.69% Tris once for 6 hours, then overnight; deionized water three times for 15 minutes; 0.1% peracetic acid / 4% ethanol once for 2 hours; PBS twice for 15 minutes; and finally deionized water twice for 15 minutes. The dermal sheets were then freeze-dried and subsequently reduced to a particulate form using a Waring blender and a Wiley Mill equipped with a #20 mesh screen.
[0061] In some embodiments, epithelial cells can be stripped by first immersing the tissue in a de-epithelializing solution, such as, but not limited to, hypertonic saline, for a period ranging from 10 minutes to 4 hours. Exposure to hypertonic saline effectively removes the epithelial cells from the underlying basement membrane. The tissue remaining after the initial stripping treatment includes the epithelial basement membrane and the tissue layer abluminal to the epithelial basement membrane. This tissue is then subjected to further treatment to remove most of the abluminal tissue but not the epithelial basement membrane. The outer serosa, adventitia, smooth muscle tissue, submucosa, and most of the muscularis mucosa are removed from the remaining de-epithelialized tissue by a combination of mechanical abrasion or enzymatic treatment, hydration, and abrasion.
[0062] In some embodiments, the ECM itself can be sterilized by any number of standard techniques, including, but not limited to, exposure to peracetic acid, low-dose gamma irradiation, gas plasma sterilization, ethylene oxide treatment, or electron beam treatment. More typically, sterilization of the ECM is achieved by immersion in 0.1% (v / v) peracetic acid, 4% (v / v) ethanol, and 95.9% (v / v) sterile water for 2 hours. Peracetic acid residue is removed by washing twice for 15 minutes in PBS (pH = 7.4) and twice for 15 minutes in sterile water. ECM materials can also be sterilized by propylene oxide or ethylene oxide treatment, gamma irradiation (0.05-4 mRad), gas plasma sterilization, peracetic acid sterilization, or electron beam treatment. ECM can also be sterilized by treatment with glutaraldehyde, which causes crosslinking of the protein material; however, this treatment substantially alters the material, causing it to be resorbed slowly or not at all, and triggering a different type of host remodeling that more closely resembles scar tissue formation or encapsulation rather than structural remodeling. Crosslinking of protein materials can also be induced by carbodiimide or dehydrothermal or photooxidation methods. As disclosed in U.S. Patent No. 8,361,503, ECM is disinfected by immersion in 0.1% (v / v) peracetic acid (a), 4% (v / v) ethanol, and 96% (v / v) sterile water for 2 hours. The ECM material is then washed twice for 15 minutes with PBS (pH = 7.4) and twice for 15 minutes with deionized water.
[0063] Generally, after isolation of the tissue of interest, decellularization is performed by various methods, including, but not limited to, exposure to hypertonic saline, peracetic acid, TRITON®-X®, or other detergents. Sterilization and decellularization can be performed simultaneously. For example, but not limited to, sterilization with peracetic acid, as described above, can also be used for decellularization. The ECM can then be dried by either lyophilization (freeze-drying) or air-drying. The dried ECM can be pulverized by methods including, but not limited to, tearing, milling, cutting, scraping, and shearing. The pulverized ECM can also be further processed into a powder form by methods such as, but not limited to, scraping or milling in the frozen or lyophilized state.
[0064] Mammalian ECMs are also commercially available. These include AVITENE™, MICROMATRIX®, and XENMATRIX™. These commercially available products can also be used to fabricate mammalian acoustic ECM hydrogels. Acoustic ECM hydrogels and compositions for use
[0065] Disclosed herein is a composition that can be administered locally to a fistula, such as an anal fistula, and thus can be used for treatment. The composition includes a mammalian acoustic extracellular matrix (ECM) hydrogel that is thermoreversible, being in a gel phase at temperatures below about 37°C and transitioning to a liquid phase at temperatures above about 37°C. The mammalian acoustic ECM hydrogel includes solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml, and the composition has a storage modulus (G') to loss modulus (G") ratio at 37°C ranging from about 6:1 to about 12:1. The composition can also include a radioprotectant, such as trehalose, at a concentration of 0.1 mg / ml to 700 mg / ml. Mammalian acoustic ECM hydrogels are disclosed, for example, in PCT Publication No. WO 2020 / 186082, which is incorporated herein by reference.
[0066] These acoustic ECM hydrogels can be made from any mammalian ECM disclosed above. The source of the ECM can be, for example, porcine, bovine, human, or ovine. In a specific, non-limiting example, the ECM is porcine ECM. In other non-limiting examples, the ECM is urinary bladder ECM, small intestine submucosa ECM, esophageal ECM, tracheal ECM, liver ECM, or skin ECM. In one embodiment, the ECM is urinary bladder ECM. In another embodiment, the ECM is skin ECM. In yet another embodiment, the ECM is small intestine submucosa ECM.
[0067] In some embodiments, the mammalian acoustic ECM hydrogel contains solubilized ECM at a concentration greater than about 0.1 mg / ml. The mammalian acoustic ECM hydrogel can contain solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml. Suitable concentrations include about 1 mg / ml to about 1,000 mg / ml, about 1 mg / ml to about 100 mg / ml, about 10 mg / ml to 100 mg / ml, about 10 mg / ml to about 200 mg / ml, about 100 mg / ml to about 500 mg / ml, about 50 mg / ml to about 150 mg / ml, about 20 mg / ml to about 70 mg / ml, or about 40 mg / ml to about 66 mg / ml of solubilized ECM. In one embodiment, the ECM hydrogel can contain solubilized ECM at a concentration of about 20 mg / ml to about 100 mg / ml. Mammalian acoustic ECM hydrogels can contain solubilized ECM at concentrations of about 10 mg / ml to about 500 mg / ml in a liquid such as a buffer. Mammalian acoustic ECM hydrogels can contain solubilized ECM at concentrations of 10, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, 110, 115, 120, 125, 130, 135, 140, 150, 155, 160, 165, 170, 175, 180, 185, 190, 195, and 200 mg / ml. Exemplary concentrations include about 20 mg / ml, 40 mg / ml, 66 mg / ml, 70 mg / ml, and 150 mg / ml of solubilized ECM. In one non-limiting example, the mammalian acoustic ECM hydrogel comprises a solubilized ECM at a concentration of about 20 mg / ml to about 70 mg / ml. In one non-limiting example, the mammalian acoustic ECM hydrogel comprises a solubilized ECM at a concentration of about 40 mg / ml or about 66 mg / ml. In one non-limiting example, the mammalian acoustic ECM hydrogel comprises a solubilized ECM at a concentration of about 10 mg / ml to about 100 mg / ml. In one non-limiting example, the mammalian acoustic ECM hydrogel comprises a solubilized ECM at a concentration of about 50 mg / ml to about 150 mg / ml. In one non-limiting example, the mammalian acoustic ECM hydrogel comprises a solubilized ECM at a concentration of about 10 mg / ml to about 200 mg / ml. In one non-limiting example, the mammalian acoustic ECM hydrogel comprises a solubilized ECM at a concentration of about 10 mg / ml to about 500 mg / ml.
[0068] Exemplary concentrations include about 20 mg / ml, 40 mg / ml, 66 mg / ml, 70 mg / ml, and 150 mg / ml of solubilized ECM. In one non-limiting example, the mammalian acoustic ECM hydrogel contains about 20 mg / ml to about 70 mg / ml of solubilized ECM. In one non-limiting example, the mammalian acoustic ECM hydrogel contains about 40 mg / ml to about 66 mg / ml of solubilized ECM.
[0069] In some embodiments, the mammalian acoustic ECM hydrogel comprises solubilized ECM at a concentration of about 25 mg / ml to about 600 mg / ml. In further embodiments, the mammalian acoustic ECM hydrogel comprises solubilized ECM at a concentration of about 20 mg / ml to about 600 mg / ml, about 25 mg / ml to about 300 mg / ml, about 25 mg / ml to about 200 mg / ml, and about 25 mg / ml to about 150 mg / ml. In further embodiments, the mammalian acoustic ECM hydrogel comprises solubilized ECM at a concentration of about 50 mg / ml to about 600 mg / ml. The mammalian acoustic ECM hydrogel may also comprise solubilized ECM at a concentration of about 50 mg / ml to about 300 mg / ml, about 50 mg / ml to about 200 mg / ml, about 50 mg / ml to about 150 mg / ml, about 50-100 mg / ml, or about 100-150 mg / ml. In some non-limiting examples, the mammalian acoustic ECM hydrogel may be about 20-25, 25-30, 30-35, 35-40, 40-45, 45-50, 50-55, 55-60, 60-65, 65-70, 70-75, 75-80, 80-85, 85-90, 90-95, 95-100, 100-105, 105-110, 110-115, 115-120, 120-130, 130-140, 135-145, 140-150, 145-155, 150-160, 160-170, 165-175, 170-180, 175-185, 180-190, 185-200, 185-205, 185-210, 185-215, 185-220, 185-230, 185-240, 185-250, 185-260, 185-270, 185-280, 185-290, 190-295, 200-215, 200-225, 200-230, 200-245, 200-250, 200-265, 200-275, 200-285, 200-295, 200-295, 200-300, 300-310, 310-315, 310-320, Contain solubilized ECM at concentrations of 5–120, 120–125, 125–130, 130–135, 135–140, 140–145, 145–150, 150–155, 155–160, 160–165, 165–170, 170–175, 175–180, 180–185, 185–190, 190–195, and 195–200 mg / ml.
[0070] In some embodiments, to produce a mammalian acoustic ECM hydrogel, pulverized ECM, e.g., mammalian ECM, is diluted to a specific concentration in a liquid. The ECM may or may not be lyophilized prior to pulverization. The ECM can be pulverized, for example, by grinding, chopping, or cutting the ECM. The pulverized ECM should have particle sizes ranging from about 10 μm to about 5,000 μm, about 10 μm to about 4,000 μm, about 10 μm to about 3,000 μm, about 10 μm to about 2,000 μm, about 10 μm to about 1,000 μm, about 10 μm to about 500 μm, about 30 μm to about 300 μm, about 40 μm to about 400 μm, about 25 μm to about 500 μm, about 50 μm to about 500 μm, about 100 μm to about 300 μm, about 10 μm to about 50 μm, or about 10 μm to about 100 μm. In one embodiment, the ECM is provided in particle sizes ranging from about 10 μm to about 1,000 μm. In another embodiment, the ECM is provided in particle sizes ranging from about 10 μm to about 2,000 μm. In one non-limiting example, the particle size ranges from about 30 μm to about 300 μm.
[0071] The liquid can be a buffer solution with a neutral pH, such as about 7.0 to about 7.6, about 7.1 to about 7.5, about 7.2 to about 7.4, about 7.0 to 7.2, about 7.0 to 7.4, about 7.1, 7.2, 7.3, 7.4, 7.5, or 7.6. The ECM can be diluted with an isotonic buffered saline solution, such as, but not limited to, phosphate-buffered saline (PBS) or Tris-buffered saline. In some embodiments, the buffered saline solution has an osmolality of about 290 mOsm / L. The liquid can be water. In some embodiments, an isotonic buffer solution, including, but not limited to, phosphate-buffered saline (PBS), can be used to bring the solution to a target pH or to help maintain the pH and ionic strength of the gel to a target level, such as physiological pH and ionic conditions. This forms a liquid ECM solution.
[0072] Methods used to make mammalian acoustic ECM hydrogels generally do not include the use of acidic proteases, including pepsin, trypsin, or hyaluronidase, to solubilize the ECM. See PCT Application No. WO 2015 / 164728, incorporated herein by reference. Generally, the methods do not involve contacting the solubilized ECM in a liquid with an acidic protease. Thus, the mammalian acoustic ECM hydrogel does not include exogenous proteases or inactivated exogenous proteases. In some embodiments, the mammalian acoustic ECM hydrogel does not include exogenous pepsin, trypsin, and / or hyaluronidase, or inactivated forms of exogenous pepsin, trypsin, or hyaluronidase.
[0073] ECM in a liquid, such as buffered saline, is treated with ultrasonic frequencies to solubilize the ECM and produce a mammalian acoustic ECM hydrogel containing the solubilized ECM. In one embodiment, the ultrasound is at a frequency of about 20 kHz to about 100 kHz. The ECM in the liquid can be treated with ultrasound at frequencies of about 20 kHz to about 30 kHz, about 20 kHz to about 40 kHz, about 20 kHz to about 50 kHz, about 20 kHz to about 60 kHz, about 20 kHz to about 70 kHz, about 20 kHz to about 80 kHz, or about 20 kHz to about 90 kHz. The ECM in the liquid can be treated with ultrasound at frequencies of about 20 kHz, 30 kHz, 40 kHz, 50 kHz, 60 kHz, 70 kHz, 80 kHz, 90 kHz, or 100 kHz. In one non-limiting example, the ECM in the liquid can be treated with ultrasound at a frequency of about 20 kHz.
[0074] The ECM in a liquid, such as buffered saline, is treated with ultrasound for at least 20 seconds, e.g., at least 30 seconds. The ECM in a liquid, such as buffered saline, is treated with ultrasound for at least 60 seconds. In some embodiments, the ECM in a liquid is treated with ultrasound for at least 60 seconds to about 1 hour. In further embodiments, the ECM in a liquid is treated with ultrasound for at least 60 seconds to about 30 minutes. In further embodiments, the ECM in a liquid is treated with ultrasound for at least 30 seconds to about 30 minutes. In further embodiments, the ECM in a liquid is treated with ultrasound for at least 60 seconds to about 15 minutes. In further embodiments, the ECM in a liquid is treated with ultrasound for at least 30 seconds to about 15 minutes. In some embodiments, the ECM in a liquid is treated with ultrasound for at least 60 seconds to about 10 minutes. In some embodiments, the ECM in a liquid is treated with ultrasound for at least 30 seconds to about 10 minutes. In some embodiments, the ECM in a liquid is treated with ultrasound for at least 60 seconds to about 5 minutes. In some embodiments, the ECM in a liquid is treated with ultrasound for at least 30 seconds to about 5 minutes. The ECM in the liquid can be treated with ultrasound for about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, or 60 minutes. In some embodiments, the ECM in the liquid is treated with pulsed ultrasound for the total time periods listed herein. Thus, in some embodiments, the ECM in a liquid, such as buffered saline, is treated with pulses of at least about 30 seconds, e.g., about 30 seconds, about 40 seconds, or about 60 seconds in length. The ECM in a liquid, such as buffered saline, can be treated with ultrasound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10 times, resulting in a total treatment time of 60 seconds to 1 hour, or any of the total times listed.The ECM in a liquid, such as saline, can be treated for 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, or 60 seconds. The ECM in a liquid, such as saline, can be treated for at least 30 seconds. Generally, when multiple treatments are used, they are administered over a period of less than one hour. An exemplary method is a 30-second ultrasound pulse, followed by 30-45 seconds of no treatment, followed by another treatment. This treatment can be applied 2, 3, 4, 5, 6, 7, 8, 9, 10, or more times. One exemplary, non-limiting method is treatment with 6 pulses of ultrasound, such as at about 20 kHz, for 30 seconds, followed by 45 seconds off, repeated 6 times, for a total of 3 minutes of ultrasound.
[0075] The ultrasound waves can have an amplitude of about 20 μm to about 320 μm. Generally, the amplitude is measured from the center of the probe used to generate the ultrasound waves. The amplitude of the probe's vibration plane is the distance between the fully extended and fully retracted states of the probe and is measured in microns (μm). In some embodiments, the amplitude is about 30 μm to about 200 μm. In further embodiments, the amplitude is about 36 μm to about 180 μm. The amplitude can be about 30, 40, 50, 60, 70, 80, 90, 100, 110, 120, 130, 140, 150, 160, 70, 180, 190, 200, 210, 220, 230, 240, 250, 260, 270, 280, 290, or 300 μm. In some embodiments, the amplitude is about 30-40 μm, 40-50 μm, 50-60 μm, 60-70 μm, 70-80 μm, 80-90 μm, 90-100 μm, 100-110 μm, 110-120 μm, 120-130 μm, 130-140 μm, 140-150 μm, 150-160 μm, 160-170 μm, 170-180 μm, 180-190 μm, 190-200 μm, 200-210 μm, 210-220 μm, 220-230 μm, 230-240 μm, 240-250 μm, 250-260 μm, 260-270 μm, 270-280 μm, 280-290 μm, 290-300 μm, 300-310 μm, 310-320 μm, 320-330 μm, 330-340 μm, 340-350 μm, 350-360 μm, 360-370 μm, 370-380 μm, 380-390 μm, 390-400 μm, 410-420 μm, 420-430 μm, 430-440 μm, 440-450 μm, 450-460 μm, 460-470 μm, 470-480 μm, 480-490 μm, 490-500 μm, 500-510 μm The amplitude of the ultrasound can be 0 μm, 170-180 μm, 180-190 μm, 190-200 μm, 200-210 μm, 210-220 μm, 220-230 μm, 230-240 μm, 240-250 μm, 250-260 μm, 260-270 μm, 270-280 μm, 280-290 μm, or 290-300 μm. In one specific, non-limiting example, the ultrasound has a frequency of about 20 kHz and an amplitude of about 36 μm to about 180 μm. In a further non-limiting example, the ultrasound has a frequency of about 20 kHz and an amplitude of about 36 μm to about 180 μm, and the treatment lasts for a total of about 1, 2, 3, 4, or 5 minutes, e.g., about 3 minutes. Sonication can be for about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 minutes. Sonication can be for about 30 seconds to about 5 minutes. Sonication can be, for example, for about 1 to about 5 minutes. Sonication can be for about 1 to about 10 minutes. Sonication can be, for example, for 1 to about 20 minutes. In more embodiments, sonication can be for less than about 1 hour, less than about 30 minutes, less than about 20 minutes, or less than about 10 minutes. In some embodiments, sonication can be for at least 30 seconds.In other embodiments, sonication can be from about 10 minutes to about 24 hours, e.g., about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, or 24 hours. In some embodiments, sonication can be for up to 48 hours.
[0076] In some embodiments, the ECM in the liquid is treated with ultrasound at a temperature ranging from about 30°C to about 43°C. In one embodiment, the ECM in the liquid is treated with ultrasound at a temperature ranging from about 35°C to about 40°C. In one embodiment, the ECM in the liquid is treated with ultrasound at a temperature ranging from about 36°C to about 38°C. In another embodiment, the ECM in the liquid is treated with ultrasound at a temperature ranging from about 37°C or greater, e.g., from about 37°C to about 55°C, e.g., from about 37°C to about 50°C, e.g., from about 37°C to about 45°C, e.g., from about 37°C to about 40°C. The ECM in the liquid is treated with ultrasound at a temperature of about 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, or 55°C. In a further embodiment, the ECM in the liquid is treated with ultrasound at above about 38°C, such as between about 38°C and about 50°C, such as between about 38°C and about 45°C, for example between about 38°C and about 40°C.
[0077] Treatment with ultrasound produces a mammalian acoustic ECM hydrogel containing solubilized ECM. Acoustic ECM hydrogels generally undergo a sol-to-gel phase transition at about 37°C, transitioning to a liquid phase above 37°C and to a gel phase below 37°C. At 37°C, mammalian acoustic ECM hydrogels are sufficiently viscous to resemble a gel, but as the temperature increases above 37°C, the gel transitions to a sol. Mammalian acoustic ECM hydrogels form a gel (sol-to-gel transition) upon a temperature drop below 37°C. Thus, in some embodiments, after sonication, the mammalian acoustic ECM hydrogel is cooled to a temperature below 37°C, for example, between about 4°C and about 36°C. The acoustic ECM hydrogel can be cooled to room temperature, typically about 25°C. In some embodiments, the acoustic ECM hydrogel is cooled to between about 15°C and about 25°C. The acoustic ECM hydrogel can be cooled to between about 23°C and about 27°C. The acoustic ECM hydrogel can be cooled to approximately 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, or 30 °C.
[0078] In some embodiments, the mammalian acoustic ECM hydrogel is thermoreversible, such that the hydrogel is in a solid (gel) phase at temperatures below about 37° C. and in a liquid (sol) phase at temperatures above about 37° C. The acoustic hydrogel can be produced using any of the methods disclosed herein.
[0079] In some embodiments, the storage modulus (G') is about one order of magnitude greater than the loss modulus (G"). In further embodiments, the viscosity of the mammalian acoustic ECM hydrogel decreases with increasing stress at temperatures between about 15 and about 37°C, e.g., about 15, 15, 16, 17, 18, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, and / or 36°C. In further embodiments, the viscosity of the mammalian acoustic ECM hydrogel decreases with increasing stress at room temperature and / or between about 23°C and about 27°C and / or between about 15°C and about 25°C. In one embodiment, the gel-to-sol transition of the acoustic ECM hydrogel is about 37°C, thereby making the hydrogel sufficiently viscous at body temperature to allow its use, such as in anal fistulas. As discussed below, compositions comprising a mammalian acoustic ECM hydrogel and trehalose can be prepared.
[0080] In some embodiments, the composition has a storage modulus (G') to loss modulus (G") ratio at 37°C ranging from about 6:1 to about 12:1. Thus, in some embodiments, the composition has a storage modulus (G') to loss modulus (G") ratio at 37°C of 6:1, 7:1, 8:1, 9:1, 10:1, 11:1, or 12:1. In further embodiments, the composition has a storage modulus (G') to loss modulus (G") ratio at 37°C ranging from about 7:1 to about 11:1, e.g., from about 8:1 to about 10:1 at 37°C.
[0081] In further embodiments, the composition has a storage modulus (G') of about 5 to about 15,000 Pa. In more embodiments, the composition can have a G' of about 5 to about 10,000 Pa, about 5 to about 5,000 Pa, about 5 to about 500 Pa, or about 5 to about 50 Pa. In further embodiments, the composition can have a G' of about 10 to about 15,000 Pa, about 100 to about 15,000 Pa, about 1,000 to about 15,000 Pa, about 2,000 to about 15,000 Pa, about 3,000 to about 15,000 Pa, about 4,000 to about 15,000 Pa, about 5,000 to about 15,000 Pa, about 6,000 to about 15,000 Pa, or about 7,000 Pa. It can have a G' of 0 to about 15,000 Pa, about 8,000 to about 15,000 Pa, about 9,000 to about 15,000 Pa, about 10,000 to about 15,000 Pa, about 11,000 to about 15,000 Pa, about 12,000 to about 15,000 Pa, about 13,000 to about 15,000 Pa, or about 14,000 to about 15,000 Pa.
[0082] In some embodiments, the composition is about 0.1 to 1 s -1 The composition has a viscosity of about 0.1 to about 0.5 s -1 Or about 0.5 to about 1 second -1 The composition may have a viscosity of about 0.2 to about 0.9 s - 1, or approximately 0.3 to 0.8 seconds -1 , or approximately 0.4 to approximately 0.7 seconds -1 , or about 0.5 to about 0.6 seconds -1 In further embodiments, the composition may have a viscosity of about 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9 or 1.0 s -1 It has a viscosity of
[0083] In some embodiments, a composition is prepared comprising a mammalian acoustic ECM hydrogel and trehalose. In further embodiments, the composition comprises between about 0.1 mg / ml and about 700 mg / ml of trehalose. In some embodiments, the composition comprises between about 1 mg / ml and about 700 mg / ml of trehalose. In further embodiments, the composition comprises between 50 mg / ml and about 500 mg / ml of trehalose. In other embodiments, the composition comprises between about 10 mg / ml and about 600 mg / ml of trehalose, between about 10 mg / ml and about 500 mg / ml, between about 10 mg / ml and about 400 mg / ml, between about 10 mg / ml and about 300 mg / ml, between about 10 mg / ml and about 200 mg / ml, or between about 10 mg / ml and about 100 mg / ml of trehalose. In further embodiments, the composition can comprise about 0.1 to about 100 mg / ml of trehalose, about 0.1 to about 10 mg / ml of trehalose, or about 0.1 to about 1 mg / ml of trehalose. In more embodiments, the composition can comprise about 50 mg / ml to about 400 mg / ml of trehalose, about 50 mg / ml to about 300 mg / ml of trehalose, about 50 mg / ml to about 200 mg / ml of trehalose, or about 50 mg / ml to about 100 mg / ml of trehalose. In some embodiments, the composition comprises about 20 mg / ml to about 70 mg / ml of trehalose. In some embodiments, the composition comprises about 10 mg / ml to about 100 mg / ml of trehalose. In some embodiments, the composition comprises 15 to 30 mg / ml of trehalose. In some embodiments, the composition comprises 60 to 70 mg / ml of trehalose. In some embodiments, the composition comprises 20 mg / ml trehalose, in some embodiments, the composition comprises 66 mg / ml trehalose, in other embodiments, the composition can comprise about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 20, 30, 40, 50, 60, 66, 70, 80, 90, 100, 200, 300, 400, 500, or 600 mg / ml trehalose.In other embodiments, the composition contains about 100 mg / ml to about 700 mg / ml of trehalose, such as about 100, 150, 20, 250, 300, 350, 400, 450, 500, 550, or 600 mg.ml of trehalose. In further embodiments, the composition can contain about 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, or 1 mg / ml of trehalose.
[0084] In a further embodiment, the composition comprises a mammalian acoustic ECM hydrogel containing solubilized ECM, additional pulverized mammalian ECM, and optionally trehalose. The pulverized ECM is not treated with ultrasound and is not solubilized in the hydrogel. The pulverized ECM is a separate additive to the composition, which also contains the mammalian ECM hydrogel. The composition may comprise about 1 to about 30% (weight per volume (w / v)) of pulverized ECM that is not solubilized in the acoustic ECM hydrogel. Without being bound by theory, pulverized ECM generally has intact collagen particles, whereas acoustic ECM hydrogel has collagen disrupted by ultrasound, resulting in an increased soluble collagen content (Hussey et al., Ultrasonic cavitation to prepare ECM hydrogels Acta Biomater. 2020 May;108:77-86; incorporated herein by reference in its entirety, see, e.g., Figure 2). Thus, the acoustic ECM hydrogel composition containing additional disrupted mammalian ECM contains both intact and disrupted collagen.
[0085] The composition can contain about 5% to about 30% w / v, about 10% to about 30%, about 15% to about 30%, about 20% to about 30%, about 25% to about 30%, about 1% to about 20%, about 5% to about 20%, about 10% to about 20%, about 15% to about 20%, or about 15% to about 20% ground ECM (w / v). The composition can contain about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, or 30% ground ECM (w / v). The composition can contain no more than 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, or 30% ground ECM (w / v). The composition can comprise at least about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, or 30% pulverized ECM (w / v).
[0086] The ground ECM can be derived from the same species as the mammalian acoustic ECM hydrogel. In one specific, non-limiting example, both the mammalian acoustic ECM hydrogel and the ground ECM are porcine. In another non-limiting example, both the mammalian acoustic ECM hydrogel and the ground ECM are human.
[0087] The ground ECM can be derived from the same or a different tissue as the mammalian acoustic ECM hydrogel. In one embodiment, the mammalian acoustic ECM hydrogel and the ground ECM are derived from the same tissue. In one embodiment, the mammalian acoustic ECM hydrogel and the ground ECM are dermal ECM. In one embodiment, the mammalian acoustic ECM hydrogel and the ground ECM are porcine dermal ECM.
[0088] In one specific, non-limiting example, a composition comprises: i) a mammalian acoustic extracellular matrix (ECM) hydrogel; a) the mammalian acoustic ECM hydrogel is thermoreversible, the mammalian acoustic ECM hydrogel being in a gel phase at temperatures below about 37°C and transitioning to a liquid phase at temperatures above about 37°C; and b) the mammalian acoustic ECM hydrogel comprising solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml. The composition also comprises: i) 0.1 mg / ml to about 700 mg / ml trehalose. The composition also comprises ii) about 1% to about 30% (weight per volume) of ground ECM that is not solubilized in the hydrogel. In some embodiments, the composition has a storage modulus (G') to loss modulus (G") ratio at 37°C of about 6:1 to about 12:1.
[0089] In one specific, non-limiting example, the composition comprises: i) a mammalian acoustic extracellular matrix (ECM) hydrogel; a) the mammalian acoustic ECM hydrogel is thermoreversible, wherein the mammalian acoustic ECM hydrogel is in a gel phase at temperatures below about 37°C and transitions to a liquid phase at temperatures above about 37°C; b) the mammalian acoustic ECM hydrogel comprises solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml; and c) the composition has a storage modulus (G') to loss modulus (G") ratio of about 6:1 to about 12:1 at 37°C. The composition also comprises: ii) 0.1 mg / ml to about 700 mg / ml trehalose. The composition also comprises iii) about 1 to about 30% (weight per volume) of crushed ECM that is not solubilized in the hydrogel. In some non-limiting examples, the mammalian acoustic ECM hydrogel is used to treat bladder EC The ECM may include ECM, small intestinal submucosal ECM, esophageal ECM, tracheal ECM, liver ECM, or skin ECM. In another non-limiting example, the ECM is porcine ECM. In another non-limiting example, the ECM is skin ECM. In another non-limiting example, the ECM is porcine skin ECM. In a further non-limiting example, the mammalian acoustic ECM hydrogel does not contain exogenous proteases or inactivated exogenous proteases, such as exogenous pepsin, trypsin, or hyaluronidase, or inactivated forms of exogenous pepsin, trypsin, or hyaluronidase. In a more non-limiting example, the composition contains about 50 to about 500 mg / ml of trehalose. In yet another non-limiting example, the composition has a storage modulus (G') of about 5 to about 15,000 Pa. In a further non-limiting example, the composition has a storage modulus (G') of about 0.1 to 1 s at a temperature of about 25°C. -1 and a storage modulus of 5 to 15,000 Pa. In other non-limiting examples, the concentration of solubilized mammalian ECM in the mammalian acoustic ECM hydrogel is about 20 mg / ml to about 70 mg / ml, e.g., about 40 to about 66 mg / ml. Other embodiments of the disclosed compositions are provided above.
[0090] The composition can be sterilized before application to a subject. The composition can be sterilized using any method known to those skilled in the art, including filtration and radiation. In some embodiments, the composition is sterilized with ionizing radiation, such as e-beam or gamma radiation. The composition can be sterilized using gamma radiation; for example, the composition is sterilized using 10-50 kGy of irradiation, such as 15-45 kGy, 20-40 kGy, or 10-30 kGy of irradiation. In some non-limiting examples, the composition is sterilized using 10, 15, 20, 25, 30, 35, 40, 45, or 50 kGy of irradiation. Generally, the composition is sterilized for a time sufficient to achieve the absence of detectable viable pathogens, such as, but not limited to, viruses and bacteria.
[0091] Antibiotics or antimicrobial agents can be added to the composition to reduce the likelihood of infection at the treatment site. A variety of antibiotics are known, including those that target bacterial cell walls (e.g., penicillins and cephalosporins) or cell membranes (e.g., polymyxins), or that interfere with essential bacterial enzymes (e.g., quinolones and sulfonamides). Antibiotics include, but are not limited to, clindamycin, erythromycin, tetracycline, minocycline, doxycycline, penicillin, ampicillin, carbenicillin, methicillin, cephalosporins, vancomycin and bacitracin, streptomycin, gentamicin, chloramphenicol, fusidic acid, ciprofloxacin and other quinolones, sulfonamides, trimethoprim, dapsone, isoniazid, teicoplanin, avoparcin, sinacid, virginiamycin, cefotaxime, ceftriaxone, piperacillin, ticarcillin, cefepime, cefpirome, rifampicin, pyrazinamide, ciprofloxacin, levofloxacin, enrofloxacin, amikacin, netilmicin, imipenem, meropenem, inezolid, pharmaceutically acceptable salts thereof, and prodrugs thereof. Antibacterial agents also include cyclic lipopeptides (such as daptomycin), glycylcyclines (such as tigecycline), and oxazolidinones (such as linezolid). Antibiotics can be narrow-spectrum or broad-spectrum antibiotics. Antibiotics can target gram-negative or gram-positive bacteria. Topical antibiotics can include active agents such as macrolide antibiotics (such as erythromycin), sulfa antibiotics (such as sulfacetamide), cyclic peptides (such as bacitracin and polymyxin), pseudomonic acids (such as mupirocin), aminoglycosides (such as neomycin), or quinolones (such as ciprofloxacin or ofloxacin), nitroimidazoles (such as metronidazole), or drug combinations (such as bacitracin / polymyxin or neomycin / polymyxin B / bacitracin).
[0092] Additionally, a local anesthetic may be added to the composition to minimize discomfort, such as lidocaine. Any suitable additive may be utilized, provided it is compatible with the composition and the particular patient and disease state being treated.
[0093] In some embodiments, the composition, such as a sterile composition, is injectable through a 5Fr / 16G catheter. In one embodiment, the composition is injectable through a 5Fr / 16G catheter at room temperature or at both room temperature and about 37° C.
[0094] Any useful agent can be mixed, co-delivered, co-applied, or otherwise combined with any of the compositions described herein. For example, but not limited to, useful agents include interferons, interleukins, chemokines, cytokines, hormones, coagulants, chemotherapeutic agents, and antibiotics. Enzymatic ECM hydrogels and compositions for use
[0095] Disclosed herein are compositions that can be administered locally to a fistula, e.g., an anal fistula, and thus can be used to treat the fistula, e.g., to close the fistula. The compositions include a mammalian enzymatic extracellular matrix (ECM) hydrogel that is thermoreversible, being in a gel phase at temperatures above 37°C and transitioning to a liquid phase at temperatures below about 37°C. Enzymatically produced ECM hydrogels are discussed, for example, in U.S. Patent No. 8,361,503, which is incorporated herein by reference in its entirety for all purposes. Preparation of terminally sterilized enzymatically produced ECM hydrogels is discussed, for example, in U.S. Patent No. 10,213,526, which is incorporated herein by reference in its entirety for all purposes.
[0096] An "enzymatic ECM hydrogel" refers to a hydrogel composed of an extracellular matrix in which the ECM is enzymatically digested. For example, the ECM can be digested by a protease, e.g., an acidic protease such as trypsin or pepsin.
[0097] Enzymatic ECM hydrogels can be made from any mammalian ECM-source tissue or organ, including, but not limited to, bladder, intestine (such as small or large intestine), heart, kidney, uterus, brain, blood vessels, lung, bone, muscle, pancreas, stomach, spleen, adipose tissue, muscle tissue, liver, esophagus, placenta, and dermis. The source of the ECM can be, for example, porcine, bovine, human, or ovine. In a specific, non-limiting example, the ECM is porcine ECM. In other non-limiting examples, the ECM is bladder ECM, small intestinal submucosa ECM, esophageal ECM, tracheal ECM, liver ECM, or skin ECM. In one embodiment, the ECM is bladder ECM. In another embodiment, the ECM is skin ECM. In yet another embodiment, the ECM is small intestinal submucosa ECM.
[0098] Enzymatic ECM hydrogels are produced by enzymatic digestion of extracellular matrix under specific conditions. For example, methods for preparing enzymatic extracellular matrix-derived gels are provided. In one embodiment, the method includes (i) disrupting the extracellular matrix, (ii) solubilizing the intact, undialyzed, or uncrosslinked extracellular matrix by digestion with an acidic protease in an acidic solution to produce a digestion solution, (iii) increasing the pH of the digestion solution to a pH of 7.2 to 7.8 to produce a neutralized digestion solution, and (iv) gelling the neutralized digestion solution at a temperature above approximately 25°C.
[0099] In one non-limiting embodiment, the ECM is lyophilized, pulverized, and then solubilized with an acidic protease. The acidic protease can be, but is not limited to, pepsin or trypsin, and in one embodiment, is pepsin. The ECM is typically solubilized in an acidic pH appropriate for or optimal for the protease, e.g., above about pH 2 or between pH 4, e.g., a 0.01 M HCl solution. The solution is typically solubilized for 12 to 48 hours with mixing (e.g., stirring, agitating, mixing, blending, rotating, inverting, etc.), depending on the tissue type.
[0100] Once the ECM is solubilized (typically substantially completely), the pH is raised to 7.2-7.8, and in one embodiment, to pH 7.4. A base, such as a hydroxyl ion-containing base, including NaOH, can be used to raise the pH of the solution. Similarly, a buffer, such as an isotonic buffer, including but not limited to phosphate-buffered saline (PBS), can be used to bring the solution to a target pH or to help maintain the pH and ionic strength of the gel at a target level, such as physiological pH and ionic conditions. The neutralized digestion solution can gel at any temperature near 37°C, typically above 25°C, but gelation proceeds much more rapidly at temperatures above 30°C and as the temperature approaches physiological temperature (i.e., 37°C). This method typically does not include a dialysis step prior to gelation and typically results in a more intact ECM-like matrix that gels more slowly at 37°C than comparable collagen or dialyzed ECM preparations.
[0101] In one embodiment, the enzymatic ECM hydrogel is terminally sterilized. "Terminal sterilization" of the enzymatic ECM hydrogel refers to essentially or substantially complete sterilization of the composition. Terminal sterilization does not include, for example, disinfection with peracetic acid as part of ECM decellularization or during preparation of the ECM product associated with ECM decellularization.
[0102] In one embodiment, the terminally sterilized enzymatic ECM hydrogel is prepared by (i) disrupting the extracellular matrix, (ii) solubilizing the intact, non-dialyzed, or non-crosslinked extracellular matrix by digestion with an acidic protease in an acidic solution to produce a digestion solution, (iii) drying the digestion solution to produce a dried digest, (iv) terminally sterilizing the dried digest to produce a sterile dried digest, (iv) hydrating the sterilized dried digest to produce a sterile digestion solution, and (v) increasing the pH of the sterile digestion solution to a pH of 7.2 to 7.8 to produce a neutralized, sterile digestion solution. The neutralized, sterilized digestion solution is sometimes referred to as a "pregel." The neutralized digestion solution or pregel can then be gelled by increasing the temperature of the neutralized digestion solution to greater than approximately 25°C.
[0103] Terminal sterilization of the dried digest may be achieved, for example, by exposure to electron beam or gamma radiation, ethylene oxide gas, or supercritical carbon dioxide.
[0104] Drying of the digestion solution can be accomplished, for example, by air-drying, freeze-drying, or heating. "Drying," "drying," or "dried" means drying or freeze-drying to the point where substantially all water has been removed from the composition, recognizing that it is not possible to literally remove all water molecules from any composition. Thus, "drying" or "dried" refers to, for example, but not limited to, a water content of less than 5.0, 1.0, 0.5, 0.1, 0.01, 0.001, or 0.0001% (by weight) of the composition. Materials can be dried by any process, for example, but not limited to, simple evaporation at any non-damaging temperature, such as room temperature, or by freeze-drying.
[0105] Hydration of the sterile dry digest can be achieved, for example, by solubilizing it in sterile water or an aqueous solution such as TRIS buffer or PBS, or a salt solution such as a sodium chloride solution such as (0.9%) saline to produce a sterile digest solution.
[0106] Neutralizing the hydrated digestion solution can be accomplished, for example, by mixing the solution with an isotonic buffer or a base, such as, but not limited to, NaOH. Thus, in one embodiment, the present invention provides a gelable extracellular matrix (ECM) composition comprising decellularized, enzymatically digested, dried, and terminally sterilized intact extracellular matrix, which can form a gel upon hydration, neutralization to a pH of 7.2-7.8, and warming to a temperature above 25°C for use in fistula repair. For example, the composition is used to fill a fistula tract, e.g., in a human. In one embodiment, the composition includes an inactivated protease, e.g., trypsin or pepsin. For example, the fistula is an anal fistula. In one embodiment, the composition forms a gel upon warming to 37°C.
[0107] Thus, in one embodiment, the present invention provides a terminally sterilized extracellular matrix (ECM) digestion solution comprising decellularized, enzymatically digested, and terminally sterilized intact extracellular matrix, the composition being capable of forming a gel upon neutralization to a pH of 7.2 to 7.8 and warming to a temperature above 25°C for use in fistula repair. For example, the composition is used to fill a fistula tract, e.g., in a human. In one embodiment, the composition comprises an inactivated protease, e.g., trypsin or pepsin. For example, the fistula is an anal fistula. In one embodiment, the composition comprises an inactivated protease, e.g., trypsin or pepsin. In one embodiment, the composition forms a gel upon warming to 37°C. In one embodiment, the solution is an acidic solution.
[0108] Thus, in one embodiment, the present invention provides a terminally sterilized extracellular matrix (ECM) digestion solution comprising hydrated, decellularized, enzymatically digested, dried, and terminally sterilized intact extracellular matrix, the digestion solution having a pH of 7.2 to 7.8 and capable of forming a gel upon warming to a temperature above 25°C for use in fistula repair. For example, the composition is used to fill a fistula tract, e.g., in a human. In one embodiment, the composition comprises an inactivated protease, e.g., trypsin or pepsin. For example, the fistula is an anal fistula. In one embodiment, the composition comprises an inactivated protease, e.g., trypsin or pepsin. In one embodiment, the composition forms a gel upon warming to 37°C. How to use
[0109] The composition of the present disclosure can be used to treat fistula in subject.For example, in a non-limiting embodiment, the fistula is anal fistula.Most anal fistula is primary, that is, it is the result of non-specific infection from anal gland after perianal abscess formation.
[0110] Anal fistulas are chronically infected tracts that communicate with the perianal skin and the rectum / anal canal, and consist of an internal opening, a fistula, and an external opening. Anal fistulas manifest clinically as recurrent perianal infections, ulceration, and purulent discharge, and perianal cancer may develop in patients whose condition has not been cured for a long time. Traditional treatment methods include fistula resection, fistula incision, suture therapy, fistula open drainage, and trans-anorectal mucosa flap internal orifice repair.
[0111] The examples described herein relate to repairing (e.g., closing) lumens in patients, such as fistula-in-ano and other types of fistulas. In particular, the examples described herein include the use of the compositions disclosed herein formulated for delivery to lumens, such as fistulas. The subject can be any subject, including veterinary subjects or human subjects. The human subject can be of any age, including adults and children.
[0112] In some embodiments, the compositions disclosed herein promote tissue growth across the fistula to provide permanent closure. Thus, in some embodiments, the disclosed compositions fill the lumen of any fistula.
[0113] Fistulas that follow a straight path from the primary opening to the secondary opening are known as simple fistulas. Fistulas that contain multiple tracts branching from the primary opening and have multiple secondary openings are known as complex fistulas. The disclosed methods can be used to treat both simple and complex fistulas.
[0114] In some embodiments, the subject with fistula is selected for treatment.The fistula is enterocutaneous fistula (intestine to skin), colonocutaneous (large intestine / colon to skin), enteroenteral fistula (intestine to intestine), vesicoenteric fistula (bladder to intestine), vesicocolonic fistula (bladder to colon), vesicorectal (bladder to rectum), rectovaginal fistula (vagina to rectum), vesicovaginal (vagina to bladder), rectouterine (uterus to intestine / rectum), vesicouterine (uterus to bladder), ureterovaginal (ureter to vagina), retroperitoneal (uterus to peritoneal cavity) or enterovaginal (intestine to vagina).In some examples, the disclosed compositions can be used to treat rectovaginal fistula. The fistula may be anorectal, recto-vaginal, enterocutaneous, tracheo-esophageal, biliary-intestinal, bladder-vaginal, bladder-intestinal, entero-enteral, pancreatic, cryptoglandular, Crohn's, dural sinus, colon-bladder, colon-intestinal, colon-vaginal, colon-intestinal, recto-urethral, or pharyngo-cutaneous.
[0115] The fistula may be a fistula-in-ano. The goal of surgical repair of a fistula-in-ano may be to close the fistula with minimal impact on the sphincter. In some situations, the compositions described herein can be delivered locally into the fistula, such as by intraluminal injection. In some embodiments, tissue growth is promoted across the lumen of the fistula-in-ano. The fistula-in-ano may be simple or complex.
[0116] The anatomical pathways taken by anorectal fistulas are classified according to their relationship to the anal sphincter. The anal sphincter comprises two concentric muscle bands: the internal or internal sphincter and the external or external sphincter. Fistulas that pass between the two concentric anal sphincters are known as intersphincteric fistulas. Fistulas that pass through both the internal and external sphincters are known as transsphincteric fistulas, while fistulas that pass above both sphincters are called suprasphincteric fistulas. Fistulas resulting from Crohn's disease typically ignore these anatomical pathways and are known as extrasphincteric fistulas. In one complex type of fistula, infection begins in the anal glands (primary opening), and two fistulas pass circumferentially around the anal canal, forming a characteristic horseshoe-shaped formation. The disclosed method can be used to treat all of these types of fistulas.
[0117] Methods have been developed to inject sclerosing agents or fibrin glue into the fistula tract. Any of these methods (see, e.g., U.S. Pat. No. 5,752,974, incorporated herein by reference) can be used with the compositions disclosed herein. The disclosed compositions can be applied by injection, using a syringe, using an endoscope, or via a catheter. In some embodiments, the disclosed compositions are applied to fill the fistula. An exemplary volume is 1 ml to 5 ml, but a skilled artisan, such as a clinician, can easily determine the appropriate volume based on clinical parameters, such as the diameter and length of the fistula, and / or the method of administration, such as via a catheter or endoscope.
[0118] In some embodiments, preliminary endoscopic visualization (fistuloscopy) and "irrigation" of the fistula tract is performed. This procedure can be performed with a very thin, flexible endoscope inserted into the secondary opening of the fistula tract and advanced through the fistula tract and out the primary opening under direct vision. By performing a preliminary fistuloscopy of the fistula tract, the primary opening is accurately identified, and the tract is "cleaned out" with irrigation fluid, thus removing any inflammatory or necrotic tissue within the tract. Following this procedure, an application device, such as a syringe, catheter, or endoscope, is inserted to allow for the application of the disclosed compositions. In some embodiments, the disclosed compositions are applied to fill the fistula tract. For example, a hydrogel composition is injected into the fistula tract, filling it from end to end. Because the hydrogel is in a gel state at body temperature, it remains in the fistula tract and is absorbed by the body as the fistula heals. Those skilled in the art, such as physicians, can easily determine how to administer the disclosed compositions and evaluate the outcome of the treatment.
[0119] In a specific, non-limiting example, the subject may receive antibiotics before using the disclosed compositions. Suitable antibiotics include, but are not limited to, cefuroxime and / or ornidazole. In one embodiment, the subject is anesthetized. Suitable anesthesia procedures include, but are not limited to, spinal anesthesia. Under spinal anesthesia in the prone jackknife position, the fistula is probed to determine the external and internal fistula tract openings. An anal retractor may be used.
[0120] In some embodiments, the tract is curettaged with polyester tape (e.g., white braided fiber, 1 / 8 inch wide). The tract can be cleaned, such as with a blunt or gauze strips. In some embodiments, the tract is excised, such as to remove granulation tissue, and then cleaned with a solution such as phosphate-buffered saline. The composition is injected into the fistula tract through the external opening, so that the tip of the injection device is visible exiting the internal opening into the anal canal. In some embodiments, a tube or other injection device is introduced into the base of the fistula-in-ano and then continuously withdrawn during injection to completely fill the fistula with the composition. After the composition has been introduced, any anal retractor can be removed. Postoperative analgesics can be used. In some embodiments, perioperative oral intake is restricted, for example, for about 24 hours. The patient can be placed on a liquid diet for about 1 to about 2 days after the procedure, and then gradually introduced to a normal diet. A physical examination can be performed.
[0121] Although the examples herein are discussed in the context of an anorectal fistula, it should be understood that the following exemplary devices and techniques can be readily applied to a variety of other types of fistulas, such as, but not limited to, enterocutaneous fistula (intestine to skin), colocutaneous fistula (large intestine / colon to skin), enteroenteral fistula (intestine to intestine), vesicoenteric fistula (bladder to intestine), vesicocoli fistula (bladder to colon), vesicorectal fistula (bladder to rectum), rectovaginal fistula (vagina to rectum), vesicovaginal fistula (vagina to bladder), rectouterine fistula (uterus to intestine / rectum), vesicovaginal fistula (uterus to bladder), uretero-vaginal fistula (ureter to vagina), retroperitoneal fistula (uterus to peritoneal cavity), or enterovaginal fistula (intestine to vagina), and tracheo-esophageal fistula.
[0122] In some embodiments, use of the disclosed compositions results in healing of the anal fistula. Thus, the fistula can be sealed immediately after application. In other embodiments, use of the disclosed compositions promotes tissue growth that seals the fistula, such as within days, weeks, or a month after use of the composition. In still other embodiments, use of the disclosed compositions can induce tissue growth within 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, or 14 days after use of the disclosed compositions. The disclosed compositions can also induce tissue growth within 1, 2, 3, or 4 weeks after use. In some embodiments, the compositions are absorbed by the body and replaced by tissue growth, such that the fistula is replaced by tissue and the composition is no longer present after a few days or weeks.
[0123] In further embodiments, use of the disclosed compositions modulates macrophages toward a pro-remodeling phenotype (Fizz-1+). Thus, in some embodiments, use of the disclosed compositions increases the number of Fizz-1+ macrophages at the site of anal fistula. [Example]
[0124] Disclosed herein is a space-filling, remodeling-promoting colloidal hydrogel derived from decellularized extracellular matrix (ECM) that can be used to treat fistulas, such as anorectal fistulas or any other fistulas disclosed herein. ECM derived from porcine dermis (dECM), for example, was exposed to sonication in the presence of a physiological buffer, supplemented with additional dECM powder ("colloid") and trehalose, and cooled to form an injectable hydrogel. In vitro results demonstrate that this type of ECM hydrogel is capable of filling complex fistula tracts at body temperature, modulating macrophages toward a pro-remodeling phenotype (Fizz+), and is a rigid biomaterial with hemostatic properties. The hydrogel maintained its rigidity in ex vivo tracts and did not degrade or leak from the tract at body temperature.
[0125] In a postmortem ex-vivo porcine fistula model, the biomaterial was able to fill the tract without leakage at body temperature. The space-filling, anti-inflammatory, and hemostatic abilities of colloidal ECM hydrogel make it effective in treating both simple and complex anorectal fistulas. The biomaterial's ease of injection, sterility, and stability at both room and body temperatures allow it to be used "off the shelf" by physicians in both surgical and outpatient settings. ECM colloidal hydrogel can improve healing, mitigate surgical bleeding, and reduce complications and recurrences in the management of anorectal fistulas. Example 1 Hydrogel stability
[0126] Widely accepted terminal sterilization methods (i.e., gamma irradiation, electron beam irradiation, and ethylene oxide (EtO) exposure) have previously been shown to inhibit the formation of ECM hydrogels prepared using the pepsin digestion method (White et al., Front. Bioeng. Biotechnol. Conference Abstract: 10th World Biomaterials Congress. doi:10.3389 / conf.FBIOE.2016.01.00032, and White et al., Journal of Immunology and Regenerative Medicine. 2018;2:11-20). Therefore, a study was conducted to determine whether terminal sterilization inhibits the gelation of ECM hydrogels prepared using the ultrasonic method. This example demonstrates that the addition of trehalose to acoustic hydrogel materials before sterilization helps preserve the hydrogel's properties after sterilization.
[0127] As shown in Figure 1 (left panel), when the acoustic gel was sterilized using 35 kGy E-beam, the sample formed a series of aggregates rather than a uniform consistency. However, the addition of either 20 or 40 mg / ml trehalose prevented the acoustic ECM hydrogel from forming aggregates after 35 kGy E-beam sterilization (Figure 1 right panel); rather, the consistency was uniform.
[0128] Next, we determined whether trehalose could prevent aggregate formation in colloidal acoustic hydrogels. After solubilizing 100 mg / ml of dermal ECM using ultrasonic cavitation, additional pulverized dermal ECM was added to the suspension as a thickener to produce colloidal ECM hydrogels ranging from 0.1 to 20% colloid (w / v). As shown in Figure 2, 5% (w / v) colloidal acoustic gels prepared with 40 or 66 mg / ml trehalose were sterilized using increasing doses of E-beam irradiation. After sterilization, the samples were cooled to 4 °C and poured into ring molds. Visual evaluation showed that, when poured into ring molds at 4 °C, 5% colloidal hydrogels containing 40 mg / ml trehalose formed more aggregates than dECM colloidal hydrogels containing 66 mg / ml trehalose.
[0129] In another set of experiments, the samples were cooled to 4 °C, poured into ring molds, and then placed in a 37 °C incubator for 1 h, and then the ring molds were carefully removed to determine whether the colloidal gels could retain their shape after E-beam sterilization (Figure 3).
[0130] The results showed that the samples containing 66 mg / ml trehalose retained their shape better than samples prepared with 40 mg / ml trehalose at all E-beam doses tested. Furthermore, gentle manipulation of the samples (by pressing down on the center gel) showed that the dECM colloidal hydrogel containing 40 mg / ml trehalose disintegrated more readily under gentle manipulation than the colloidal hydrogel containing 66 mg / ml trehalose (Figure 4).
[0131] Next, the viscoelastic properties of skin ECM colloidal hydrogels containing trehalose (Figures 5A-5B) were determined. 2, 5, or 10% colloidal hydrogels (w / v) containing 20 or 40 mg / ml trehalose were subjected to E-beam sterilization using a 25 kGy dose. The average storage modulus of the samples is shown in Figure 5A. The results showed that samples containing 20 mg / ml trehalose were stiffer than 40 mg / ml samples, and increasing the colloid concentration increased the stiffness of the material.
[0132] Finally, the bioactivity of trehalose on mouse bone marrow-derived macrophages was evaluated (Figure 6). The results of the assay showed that, compared to the control, trehalose was unable to induce the expression of iNOS or Fizz1. In summary, the data demonstrate that trehalose can be used as an excipient in the preparation of acoustic gels and colloidal acoustic gels due to its inert biological activity and its ability to reduce stiffness and prevent the formation of aggregates in colloidal acoustic ECM hydrogels after E-beam sterilization, resulting in a uniform consistency of the hydrogel. Example 2 material and method
[0133] Skin ECM preparation: Skin ECM was prepared as previously described (Reing JE, et al. Biomaterials. 2010;31(33):8626-33). Briefly, full-thickness skin was harvested from market-weight (approximately 110 kg) pigs (Tissue Source Inc.), and subcutaneous fat and epidermis were removed by mechanical delamination. The tissue was then treated with 0.25% trypsin (Thermo Fisher Scientific) for 6 hours, 70% ethanol for 10 hours, 3% H2O2 for 15 minutes, 1% Triton® X-100 in 0.26% EDTA / 0.69% tris (Sigma-Aldrich) for 6 hours, with the solution changed for an additional 16 hours, and 0.1% peracetic acid / 4% ethanol (Rochester Midland) for 2 hours. Water washes were performed between each chemical change, with alternating water and phosphate-buffered saline (PBS) washes after the final step. All chemical exposures were performed on an orbital shaker at 300 rpm with agitation. The skin ECM was then freeze-dried and milled into fine particles using a Wiley Mill equipped with a #60 mesh screen.
[0134] Preparation of colloidal ECM hydrogels: 100 mg of ECM powder was resuspended in phosphate-buffered saline (PBS) with or without trehalose in a 50 mL conical tube and sonicated for 5 minutes at 100% amplitude using a FISHERBRAND™ Model 120 Sonic Dismembrator equipped with a 1 / 8" probe. After sonication, the solubilized ECM solution was mixed with additional ECM powder to create 2, 5, or 10% (w / v) colloidal gel suspensions. After mixing the suspensions, samples were placed in 3 ml syringes and incubated at 4°C to induce gelation.
[0135] Macrophage activation: Mouse bone marrow was collected from 6-8 week-old B6 mice. Bone marrow cells were washed and diluted to 2 × 10 6The cells were seeded at 200 cells / mL and differentiated into macrophages in the presence of macrophage colony-stimulating factor (MCSF) for 7 days with complete medium changes every 48 hours. Macrophages were then activated for 24 hours with one of the following: 1) 20 ng / mL interferon-γ (IFNγ) and 100 ng / mL lipopolysaccharide (LPS) (Affymetrix eBioscience, Santa Clara, CA; Sigma Aldrich) to induce M IFNγ+LPS 2) 20 ng / mL interleukin (IL)-4 (Invitrogen) promoted the M phenotype. IL-4 3) increasing concentrations of trehalose (25, 50, 100, 200 mM), or 4) 5 mg / ml UBM acoustic gel. After a 24-hour incubation period at 37°C, the cells were washed with sterile PBS and fixed with 2% paraformaldehyde (PFA) for immunolabeling. To prevent nonspecific binding, the cells were incubated for 1 hour at room temperature in a blocking solution consisting of PBS, 0.1% Triton®-X, 0.1% Tween®-20, 4% goat serum, and 2% bovine serum albumin. The blocking buffer was then removed, and the cells were incubated in primary antibody. The cells were incubated for 16 hours at 4°C, the primary antibody was removed, and the cells were washed with PBS. A solution of fluorophore-conjugated secondary antibody was added to the wells for 1 hour at room temperature. The antibody was then removed, the cells were washed with PBS, and nuclei were counterstained with DAPI. Cytokine-activated macrophages were used to establish a standardized exposure time (positive control) that was then kept constant across groups. Example 3 Anal fistula repair
[0136] Current standard-of-care treatments for anal, rectal, and enterocutaneous fistulas remain ineffective, are associated with high complication rates, and present persistent clinical challenges. Surgical approaches to fistula treatment, such as advancement flaps, are associated with high rates of fecal incontinence and poor outcomes. Alternatively, sphincter-preserving methods, such as fistula plugs, are associated with widely variable clinical outcomes due to plug extrusion as the primary failure mechanism and are often incompatible with complex fistula anatomy, requiring multiple interventions and prolonged draining seton placement. Currently, there are no available treatment options that preserve sphincter musculature, reduce complication and failure rates, accommodate complex fistulas, and promote timely healing of the fistula tract. An extracellular matrix (ECM)-based shear-thinning hydrogel formulation may be a better solution to this unmet clinical need. ECM hydrogel and colloidal ECM hydrogel prepared using ultrasonic cavitation can be used to fill intersphincteric, transsphincteric, suprasphincteric, extrasphincteric, or submucosal fistula tracts, enhancing and promoting closure by allowing timely host tissue integration without fecal incontinence or extrusion, even in complex and multi-tract fistulas. ECM hydrogel can be injected into the fistula tract after tract debridement, and a drainage seton is used preoperatively. Rheological analysis demonstrated that ECM hydrogel and colloidal ECM hydrogel, when easily administered via catheter, can effectively and timely repair fistulas by remaining in situ and allowing host tissue integration and eventual closure. The ECM hydrogel is intended to degrade and be replaced with new host tissue within 7 to 120 days.
[0137] As shown in Figures 7A-D, a catheter can be used to introduce sterile acoustic ECM hydrogel into the anal fistula tract. In this case, the catheter is introduced through the external opening on the anal side of the fistula. The catheter is then inserted through the fistula to the internal opening and retracted to deposit the acoustic ECM hydrogel composition into the tract. Once the tract is filled, the catheter is removed. At body temperature, the acoustic ECM hydrogel remains as a gel in the tract and does not leak out. This is shown in Figure 7E, a photograph of a pig with an anorectal fistula filled with acoustic ECM hydrogel, shown as a dark circle at approximately 11 o'clock on the anus. Furthermore, due to its physical properties at body temperature, it retains sufficient rigidity to withstand the forces applied to the anorectal area during sitting and defecation.
[0138] For each surgery, the pig was placed in NPO. Intestinal contents were removed 12 hours before surgery. The pig was sedated with an intramuscular injection of ketamine / xylazine (20 mg / kg (K) and 2 mg / kg (XY)) and Telazol. Anesthesia was maintained throughout surgery with continuous isofluorane. The pig was placed supine in the dorsal lithotomy position. An incision was made in the ischioanal fossa using an 11-blade scalpel at the 2-, 5-, 8-, and 11-o'clock positions for a total of four fistulas. Blunt dissection was performed using a curved hemostat through the anal sphincter musculature to the dentate line of the anal mucosa. A 1-mm incision was made at the dentate line to connect the tract. A 14-piece French silicone drainage seton was passed through the fistula, tied, and sutured to the skin to prevent movement. The seton was maintained for 4 weeks postoperatively to establish a patent tract.
[0139] After 4 weeks, the animals were sedated and placed in the dorsal lithotomy position. The seton was removed, and the tract was washed with successive washes of 70% EtOH and iodine scrub. The tract was filled with dECM colloid gel, and the internal opening of the fistula tract was closed with a single 4-O figure-of-eight suture. The external opening was left open and visible for gel evacuation.
[0140] In the case of fistula repair, it may also be possible to close one end of the tract with one or more sutures before injecting the ECM acoustic hydrogel. For example, if there is an opening larger than the catheter, sutures can be placed to create a pocket that is filled with hydrogel, for example, at the end that will be filled first. Additionally, one or more sutures can be placed at each end of the fistula to close the tissue around the hydrogel. This may be appropriate in situations where the fistula is wide and not very long.
[0141] In view of the many possible embodiments to which the principles of the present invention may be applied, it is recognized that the illustrated embodiments are merely examples of the invention and should not be considered limitations on the scope of the invention. Rather, the scope of the invention is defined by the following claims. We therefore claim as our invention all that comes within the scope and spirit of these claims. The present invention provides, for example, the following items. (Item 1) 1. A method of treating a fistula in a subject, comprising: topically administering to the fistula in the subject an effective amount of a composition comprising a mammalian acoustic extracellular matrix (ECM) hydrogel; a) the mammalian acoustic ECM hydrogel is thermoreversible, wherein the mammalian acoustic ECM hydrogel is in a gel phase at a temperature below about 37°C and transitions to a liquid phase at a temperature above about 37°C; b) the mammalian acoustic ECM hydrogel comprises solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml; c) the composition has a storage modulus (G') to loss modulus (G") ratio at 37°C in the range of about 6:1 to about 12:1; thereby treating the fistula in the subject. (Item 2) 2. The method of claim 1, wherein the composition further comprises a radioprotectant, the radioprotectant comprising 0.1 mg / ml to about 700 mg / ml of trehalose. (Item 3) 3. The method of claim 1 or claim 2, further comprising sterilizing the composition with ionizing radiation. (Item 4) 4. The method of claim 3, wherein the ionizing radiation is e-beam or gamma irradiation. (Item 5) 5. The method according to any one of items 3 to 4, wherein the composition is sterilized using irradiation of 10 to 50 kGy. (Item 6) 6. The method according to any one of items 3 to 5, wherein the composition is gamma irradiated. (Item 7) 7. The method of any one of items 1 to 6, wherein the mammalian acoustic ECM hydrogel comprises bladder ECM, small intestinal submucosa (SIS) ECM, esophageal ECM, tracheal ECM, liver ECM, or skin ECM. (Item 8) 8. The method of any one of items 1 to 7, wherein the mammalian acoustic ECM hydrogel comprises porcine ECM. (Item 9) 9. The method of any one of items 1 to 8, wherein the mammalian acoustic ECM hydrogel does not contain exogenous proteases or inactivated exogenous proteases. (Item 10) 10. The method of any one of items 1 to 9, wherein the mammalian acoustic ECM hydrogel does not contain exogenous pepsin, trypsin, or hyaluronidase, or an inactivated form of exogenous pepsin, trypsin, or hyaluronidase. (Item 11) 11. The method according to any one of items 1 to 10, wherein the subject is a human. (Item 12) 12. The method of any one of items 1 to 11, wherein the composition is injectable through a 5Fr / 16G catheter. (Item 13) 13. The method according to any one of items 2 to 12, wherein the composition comprises about 50 to about 500 mg / ml of trehalose. (Item 14) 14. The method of any one of items 1 to 13, wherein the composition further comprises about 1 to about 30% (weight per volume) of pulverized ECM that is not solubilized in the hydrogel. (Item 15) 15. The method according to any one of items 1 to 14, wherein the composition has a storage modulus (G') of about 5 to about 15,000 Pa. (Item 16) The composition is heated to a temperature of about 25° C. for about 0.1 to 1 s. -1 and a storage modulus of 5 to 15,000 Pa. (Item 17) 17. The method according to any one of items 1 to 16, wherein the concentration of the solubilized ECM in the mammalian acoustic ECM hydrogel is from about 20 mg / ml to about 70 mg / ml. (Item 18) 18. The method according to any one of items 1 to 17, wherein the concentration of the solubilized ECM in the mammalian acoustic ECM hydrogel is about 40 to about 66 mg / ml. (Item 19) 19. The method according to any one of items 1 to 18, wherein the fistula is an anal fistula, and the anal fistula is an intersphincteric fistula, a transsphincteric fistula, a suprasphincteric fistula, an extrasphincteric fistula, or a submucosal fistula. (Item 20) 20. The method of any one of items 1 to 19, wherein the composition is administered to fill the fistula tract. (Item 21) 1. A composition comprising: i) a mammalian acoustic extracellular matrix (ECM) hydrogel, a) the mammalian acoustic ECM hydrogel is thermoreversible, wherein the mammalian acoustic ECM hydrogel is in a gel phase at a temperature below about 37°C and transitions to a liquid phase at a temperature above about 37°C; b) the mammalian acoustic ECM hydrogel comprises solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml; c) a mammalian acoustic ECM hydrogel, wherein the composition has a storage modulus (G') to loss modulus (G") ratio of about 6:1 to about 12:1 at 37°C; ii) 0.1 mg / ml to about 700 mg / ml of trehalose; iii) about 1 to about 30% (weight per volume) of pulverized ECM that is not solubilized in the hydrogel; A composition comprising: (Item 22) 22. The composition of claim 21, wherein the composition is gamma irradiated. (Item 23) 23. The composition of item 21 or 22, wherein the mammalian acoustic ECM hydrogel comprises bladder ECM, small intestinal submucosal ECM, esophageal ECM, tracheal ECM, liver ECM, or skin ECM. (Item 24) 24. The composition of any one of items 21 to 23, wherein the ECM comprises porcine ECM. (Item 25) 25. The composition of any one of items 21 to 24, wherein the mammalian acoustic ECM hydrogel does not contain exogenous proteases or inactivated exogenous proteases. (Item 26) 26. The composition of any one of items 21 to 25, wherein the mammalian acoustic ECM hydrogel does not contain exogenous pepsin, trypsin, or hyaluronidase, or an inactivated form of exogenous pepsin, trypsin, or hyaluronidase. (Item 27) 27. The composition according to any one of items 21 to 26, wherein the composition is injectable through a 5Fr / 16G catheter. (Item 28) 28. The composition according to any one of items 21 to 27, wherein the composition comprises about 50 to about 500 mg / ml of trehalose. (Item 29) 29. The composition according to any one of items 21 to 28, wherein the composition has a storage modulus (G') of about 5 to about 15,000 Pa. (Item 30) The composition is heated to a temperature of about 25° C. for about 0.1 to 1 s. -1 and a storage modulus of 5 to 15,000 Pa. (Item 31) 31. The composition according to any one of items 21 to 30, wherein the concentration of the solubilized mammalian ECM in the mammalian acoustic ECM hydrogel is about 20 mg / ml to about 70 mg / ml. (Item 32) 32. The composition according to any one of items 21 to 31, wherein the concentration of the solubilized ECM in the mammalian acoustic ECM hydrogel is about 40 to about 66 mg / ml. (Item 33) 33. The composition according to any one of items 21 to 32 for use in treating a fistula in said subject. (Item 34) 1. A composition comprising a mammalian acoustic extracellular matrix (ECM) hydrogel for use in treating a fistula in a subject, comprising: a) the mammalian acoustic ECM hydrogel is thermoreversible, wherein the mammalian acoustic ECM hydrogel is in a gel phase at a temperature below about 37°C and transitions to a liquid phase at a temperature above about 37°C; b) the mammalian acoustic ECM hydrogel comprises solubilized ECM at a concentration of about 0.1 mg / ml to about 1,000 mg / ml; c) The composition has a storage modulus (G') to loss modulus (G") ratio of about 6:1 to about 12:1 at 37°C. (Item 35) 34. The composition according to item 33, further comprising a radioprotectant, wherein the radioprotectant comprises 0.1 mg / ml to about 700 mg / ml of trehalose. (Item 36) 36. The composition according to item 34 or 35, wherein the composition is sterilized using irradiation of 10 to 50 kGy. (Item 37) 37. The composition of any one of items 33 to 36, wherein the mammalian ECM hydrogel is gamma irradiated. (Item 38) 38. The composition of any one of items 34 to 37, wherein the solubilized ECM comprises bladder ECM, small intestinal submucosa (SIS) ECM, esophageal ECM, tracheal ECM, liver ECM, or skin ECM. (Item 39) 39. The composition of any one of items 34 to 38, wherein the solubilized ECM comprises porcine ECM. (Item 40) 40. The composition of any one of items 34 to 39, wherein the mammalian acoustic ECM hydrogel does not contain exogenous proteases or inactivated exogenous proteases. (Item 41) 41. The composition of any one of items 33 to 40, wherein the mammalian acoustic ECM hydrogel does not contain exogenous pepsin, trypsin, or hyaluronidase, or an inactivated form of exogenous pepsin, trypsin, or hyaluronidase. (Item 42) 42. The composition according to any one of items 34 to 41, wherein the subject is a human. (Item 43) 43. The composition according to any one of items 34 to 42, wherein the composition is injectable through a 5Fr / 16G catheter. (Item 44) 44. The composition according to any one of items 34 to 43, comprising about 50 to about 500 mg / ml of trehalose. (Item 45) 45. The composition of any one of items 34 to 44, further comprising about 1 to about 30% (weight per volume) of pulverized ECM that is not solubilized in the hydrogel. (Item 46) 46. The composition according to any one of items 34 to 45, wherein the composition has a storage modulus (G') of about 5 to about 15,000 Pa. (Item 47) The composition is heated to a temperature of about 25° C. for about 0.1 to 1 s. -1 and a storage modulus of 5 to 15,000 Pa. (Item 48) 48. The composition according to any one of items 34 to 47, wherein the concentration of the solubilized ECM in the mammalian acoustic ECM hydrogel is from about 20 mg / ml to about 70 mg / ml. (Item 49) 48. The composition of any one of items 34 to 47, wherein the concentration of the solubilized ECM in the mammalian acoustic ECM hydrogel is about 40 to about 66 mg / ml. (Item 50) 50. The composition according to any one of items 34 to 49, wherein the fistula is an anal fistula, and the anal fistula is an intersphincteric fistula, a transsphincteric fistula, a suprasphincteric fistula, an extrasphincteric fistula, or a submucosal fistula. (Item 51) 50. The composition according to any one of items 33 to 49, wherein the composition is for use in the treatment of a fistula by filling the fistula tract. (Item 52) 52. The method of any one of items 1 to 19, or the composition of any one of items 33 to 51, wherein the fistula is an enterocutaneous fistula (intestine to skin), a colocutaneous fistula (large intestine / colon to skin), an enteroenteral fistula (intestine to intestine), a vesicoenteric fistula (bladder to intestine), a vesicocoli fistula (bladder to colon), a vesicorectal fistula (bladder to rectum), a rectovaginal fistula (vagina to rectum), a vesicovaginal fistula (vagina to bladder), a rectouterine fistula (uterus to intestine / rectum), a vesicouterine fistula (uterus to bladder), a uretero-vaginal fistula (ureter to vagina), a retroperitoneal fistula (uterus to peritoneal cavity), an enterovaginal fistula (intestine to vagina), a tracheo-esophageal fistula, or an anal fistula. (Item 53) 52. The method of any one of items 1 to 19, or the composition of any one of items 33 to 51, wherein the fistula is an anorectal, recto-vaginal, enterocutaneous, tracheo-esophageal, biliary-intestinal, bladder-vaginal, bladder-intestinal, pancreatic, cryptoglandular, Crohn's, dural sinus, colon-bladder, colon-intestinal, colon-vaginal, colon-intestinal, recto-urethral, or pharyngo-cutaneous fistula. (Item 54) The method according to any one of items 1 to 19, or the composition according to any one of items 33 to 53, wherein the fistula is an anal fistula.
Claims
1. 1. A composition comprising a mammalian extracellular matrix (ECM) hydrogel for use in a method of treating a fistula in a subject, said method comprising: topically administering the composition to the fistula in the subject; a) the mammalian ECM hydrogel is thermoreversible, wherein the mammalian ECM hydrogel is in a gel phase at a temperature below about 37°C and transitions to a liquid phase at a temperature above about 37°C; b) the mammalian ECM hydrogel comprises solubilized ECM at a concentration of about 10 mg / ml to about 600 mg / ml; c) the composition comprises 1 mg / ml to about 700 mg / ml trehalose; thereby treating the fistula in the subject; d) A composition wherein the mammalian ECM hydrogel is produced from mammalian extracellular matrix (ECM) using ultrasonic energy.
2. 10. The composition of claim 1, comprising 10 mg / ml to about 500 mg / ml of trehalose.
3. 3. The composition of claim 1 or claim 2, wherein the method further comprises sterilizing the composition with ionizing radiation.
4. The composition of claim 3 , wherein the ionizing radiation is e-beam or gamma radiation.
5. The composition of any one of claims 3 to 4, wherein the composition is sterilized using irradiation of 10 to 50 kGy.
6. The composition of any one of claims 3 to 5, wherein the composition is gamma irradiated.
7. 7. The composition of any one of claims 1 to 6, wherein the mammalian ECM hydrogel comprises bladder ECM, small intestinal submucosa (SIS) ECM, esophageal ECM, tracheal ECM, liver ECM, or skin ECM.
8. The composition of any one of claims 1 to 7, wherein the mammalian ECM hydrogel comprises porcine ECM.
9. The composition of any one of claims 1 to 8, wherein the mammalian ECM hydrogel does not contain exogenous proteases or inactivated exogenous proteases.
10. 10. The composition of any one of claims 1 to 9, wherein the mammalian ECM hydrogel does not contain exogenous pepsin, trypsin, or hyaluronidase, or an inactivated form of exogenous pepsin, trypsin, or hyaluronidase.
11. The composition of any one of claims 1 to 10, wherein the subject is a human.
12. The composition of any one of claims 1 to 11, wherein the composition is injectable through a 5 Fr / 16G catheter.
13. The composition of any one of claims 2 to 12, wherein the composition comprises from about 10 to about 500 mg / ml of trehalose.
14. 14. The composition of any one of claims 1 to 13, wherein the composition further comprises about 1 to about 30% (weight per volume) of pulverized ECM that is not solubilized in the hydrogel.
15. The composition of any one of claims 1 to 14, wherein the composition has a storage modulus (G') of about 5 to about 15,000 Pa.
16. 16. The composition of any one of claims 1 to 15, wherein the concentration of the solubilized ECM in the mammalian ECM hydrogel is from about 10 mg / ml to about 500 mg / ml.
17. 16. The composition of any one of claims 1 to 15, wherein the concentration of the solubilized ECM in the mammalian ECM hydrogel is from about 20 to about 600 mg / ml.
18. The composition according to any one of claims 1 to 17, wherein the fistula is an anal fistula, and the anal fistula is an intersphincteric fistula, a transsphincteric fistula, a suprasphincteric fistula, an extrasphincteric fistula, or a submucosal fistula.
19. The composition of any one of claims 1 to 18, wherein the composition is administered to fill the fistula tract.
20. 1. A composition comprising: i) a mammalian extracellular matrix (ECM) hydrogel, a) the mammalian ECM hydrogel is thermoreversible, wherein the mammalian ECM hydrogel is in a gel phase at a temperature below about 37°C and transitions to a liquid phase at a temperature above about 37°C; b) the mammalian ECM hydrogel comprises solubilized ECM at a concentration of about 10 mg / ml to about 600 mg / ml; c) a mammalian extracellular matrix (ECM) hydrogel, wherein the mammalian ECM hydrogel is produced from mammalian ECM using ultrasonic energy; and ii) 1 mg / ml to about 700 mg / ml trehalose; iii) about 1 to about 30% (weight per volume) of pulverized ECM that is not solubilized in the hydrogel; A composition comprising:
21. 21. The composition of claim 20, wherein the composition is gamma irradiated.
22. 22. The composition of claim 20 or 21, wherein the mammalian ECM hydrogel comprises bladder ECM, small intestinal submucosal ECM, esophageal ECM, tracheal ECM, liver ECM, or skin ECM.
23. The composition of any one of claims 20 to 22, wherein the ECM comprises porcine ECM.
24. The composition of any one of claims 20 to 23, wherein the mammalian ECM hydrogel does not contain exogenous proteases or inactivated exogenous proteases.
25. 25. The composition of any one of claims 20-24, wherein the mammalian ECM hydrogel does not contain exogenous pepsin, trypsin, or hyaluronidase, or an inactivated form of exogenous pepsin, trypsin, or hyaluronidase.
26. The composition of any one of claims 20 to 25, wherein the composition is injectable through a 5 Fr / 16G catheter.
27. 27. The composition of any one of claims 20 to 26, wherein the composition comprises from about 10 to about 500 mg / ml of trehalose.
28. 28. The composition of any one of claims 20 to 27, wherein the composition has a storage modulus (G') of about 5 to about 15,000 Pa.
29. The composition of any one of claims 20 to 28, wherein the concentration of the solubilized mammalian ECM in the mammalian ECM hydrogel is from about 10 mg / ml to about 500 mg / ml.
30. The composition of any one of claims 20 to 28, wherein the concentration of the solubilized ECM in the mammalian ECM hydrogel is from about 20 to about 600 mg / ml.
31. A composition according to any one of claims 20 to 30 for use in treating a fistula in a subject.
32. 1. A composition comprising a mammalian extracellular matrix (ECM) hydrogel for use in treating a fistula in a subject, comprising: a) the mammalian ECM hydrogel is thermoreversible, wherein the mammalian ECM hydrogel is in a gel phase at a temperature below about 37°C and transitions to a liquid phase at a temperature above about 37°C; b) the mammalian ECM hydrogel comprises solubilized ECM at a concentration of about 10 mg / ml to about 600 mg / ml; the composition comprises about 1 mg / ml to about 700 mg / ml trehalose; c) The composition, wherein the mammalian ECM hydrogel is produced from mammalian extracellular matrix (ECM) using ultrasonic energy.
33. 33. The composition of claim 32, comprising 10 mg / ml to about 500 mg / ml of trehalose.
34. 34. The composition of claim 32 or 33, wherein the composition is sterilized using irradiation of 10 to 50 kGy.
35. The composition of any one of claims 32 to 34, wherein the mammalian ECM hydrogel is gamma irradiated.
36. 36. The composition of any one of claims 32-35, wherein the solubilized ECM comprises bladder ECM, small intestinal submucosa (SIS) ECM, esophageal ECM, tracheal ECM, liver ECM, or skin ECM.
37. The composition of any one of claims 32 to 36, wherein the solubilized ECM comprises porcine ECM.
38. The composition of any one of claims 32 to 37, wherein the mammalian ECM hydrogel does not contain exogenous proteases or inactivated exogenous proteases.
39. 39. The composition of any one of claims 32-38, wherein the mammalian ECM hydrogel does not contain exogenous pepsin, trypsin, or hyaluronidase, or an inactivated form of exogenous pepsin, trypsin, or hyaluronidase.
40. The composition of any one of claims 32 to 39, wherein the subject is a human.
41. The composition of any one of claims 32 to 40, wherein the composition is injectable through a 5 Fr / 16G catheter.
42. 42. The composition of any one of claims 32 to 41, comprising about 10 to about 500 mg / ml trehalose.
43. 43. The composition of any one of claims 32-42, further comprising about 1 to about 30% (weight per volume) of pulverized ECM that is not solubilized in the hydrogel.
44. 44. The composition of any one of claims 32 to 43, wherein the composition has a storage modulus (G') of about 5 to about 15,000 Pa.
45. 45. The composition of any one of claims 32 to 44, wherein the concentration of the solubilized ECM in the mammalian ECM hydrogel is from about 10 mg / ml to about 500 mg / ml.
46. 45. The composition of any one of claims 32 to 44, wherein the concentration of the solubilized ECM in the mammalian ECM hydrogel is from about 20 to about 600 mg / ml.
47. 47. The composition of any one of claims 32 to 46, wherein the fistula is an anal fistula, and the anal fistula is an intersphincteric fistula, a transsphincteric fistula, a suprasphincteric fistula, an extrasphincteric fistula, or a submucosal fistula.
48. 48. The composition of any one of claims 32 to 47, wherein the composition is for use in the treatment of a fistula by filling the fistula tract.
49. 47. The composition of any one of claims 1-17 and 31-46, wherein the fistula is an enterocutaneous fistula (intestine to skin), a colocutaneous fistula (large intestine / colon to skin), an enteroenteral fistula (intestine to intestine), a vesicoenteric fistula (bladder to intestine), a vesicocolic fistula (bladder to colon), a vesicorectal fistula (bladder to rectum), a rectovaginal fistula (vagina to rectum), a vesicovaginal fistula (vagina to bladder), a rectouterine fistula (uterus to intestine / rectum), a vesicovaginal fistula (uterus to bladder), a uretero-vaginal fistula (ureter to vagina), a retroperitoneal fistula (uterus to peritoneal cavity), an enterovaginal fistula (intestine to vagina), a tracheo-esophageal fistula, or an anal fistula.
50. 47. The composition of any one of claims 1-17 and 31-46, wherein the fistula is an anorectal, recto-vaginal, enterocutaneous, tracheo-esophageal, biliary-intestinal, bladder-vaginal, bladder-intestinal, pancreatic, cryptoglandular, Crohn's, dural sinus, colon-bladder, colon-intestinal, colon-vaginal, recto-urethral, or pharynx-cutaneous fistula.
51. The composition of any one of claims 1 to 17 and 31 to 46, wherein the fistula is an anal fistula.
52. 52. The composition of any one of claims 1 to 51, comprising from about 10 mg / ml to about 300 mg / ml of trehalose.
53. 52. The composition of any one of claims 1 to 51, comprising about 10 mg / ml to about 100 mg / ml of trehalose.
54. 17. The composition of any one of claims 1 to 16, wherein the concentration of the solubilized ECM in the mammalian ECM hydrogel is about 50 to about 150 mg / ml.
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