Gel composition, and method for preparing and using the same.
A biocompatible gel composition using gellan gum and salts addresses the issue of rapid fluid evaporation in tissue excision procedures by providing sustained lift and reducing the need for repeated injections, enhancing procedural efficiency.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- BOSTON SCIENTIFIC SCIMED INC
- Filing Date
- 2022-03-02
- Publication Date
- 2026-04-20
AI Technical Summary
Existing medical procedures for tissue excision, such as endoscopic mucosal resection and endoscopic submucosal dissection, face challenges with fluids used to lift target tissues evaporating quickly, necessitating repeated injections and posing difficulties in maintaining tissue lift during procedures.
A biocompatible gel composition formed from gellan gum, monovalent and divalent salts, and water, which forms a continuous three-dimensional network, providing sustained lift and reducing the need for repeated injections.
The gel composition maintains tissue lift effectively, ensuring continuous support during procedures and minimizing the burden on underlying biological structures.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This disclosure relates to compositions for injection into a patient's body, methods for preparing and using the same, and apparatus comprising such compositions. [Background technology]
[0002] Various medical devices are used for the diagnosis and treatment of tissues. For example, endoscopic procedures may be performed to collect tissue samples from the gastrointestinal (GI) tract or other organ systems for pathological evaluation and therapeutic purposes, such as the detection and removal of precancerous mucosal tissue or tumors. However, it remains difficult to remove selected tissue from within the patient's body while minimizing the burden on the underlying biological structures.
[0003] In medical procedures such as endoscopic mucosal resection (EMR) and endoscopic submucosal dissection (ESD), fluids are injected into the tissue to separate different tissue layers and aid in the removal of lesions. For example, fluids can be injected to separate the submucosa from the mucosal tissue. The injected fluid generally lifts the target tissue from the underlying tissue layer, making it easier for the physician to excise the target tissue. However, fluids used for this purpose, such as saline, tend to evaporate within minutes, requiring repeated injections to ensure that the target tissue remains lifted throughout the procedure. While high-viscosity injectable solutions are known, such alternatives are often costly, difficult to inject, and tend to evaporate / decompose quickly after injection. [Overview of the project]
[0004] The present invention relates to compositions useful for tissue excision procedures and methods for preparing such compositions. According to some embodiments of the present disclosure, the composition comprises a gel formed from a polysaccharide such as gellan gum, water, a first salt as a source of monovalent cations, and a second salt as a source of divalent cations. The gel is solidified undisturbed in a reservoir, for example, and forms a continuous three-dimensional network before being injected from the reservoir into the patient's body. The continuous three-dimensional network can provide a homogeneous structure for the gel.
[0005] This disclosure includes, for example, a method for preparing a gel for delivery to a target site in a patient, the method comprising the steps of: combining gellan gum and water to form a premixture; heating the premixture; adding a first salt containing a monovalent cation and a second salt containing a divalent cation to the premixture to form a mixture; introducing the mixture into a reservoir; and cooling the mixture to form a gel in the reservoir. The gel is biocompatible and can be injected into a target site from the reservoir via a needle. For example, the gel may be a continuous three-dimensional structure extending across the entire cross-sectional dimensions of the reservoir. In some cases, the method may further include the step of adding at least one colorant to the premixture or mixture.
[0006] In some embodiments, the gel contains 0.01% to 2.0% by weight of gellan gum relative to the total weight of the gel. Alternatively or additionally, the gel contains 0.01% to 0.1% by weight of a second salt relative to the total weight of the gel. In some examples, the molar ratio of monovalent cations to divalent cations in the mixture is 5 to 200. In some examples, the monovalent cation of the first salt is sodium or potassium, and the divalent cation of the second salt is calcium or magnesium. In at least one example, the first salt contains sodium chloride or its hydrate, and the second salt contains calcium chloride or its hydrate. In some examples, the endotoxin level of the gel is 20 endotoxin units (EU) or less.
[0007] Gel, 130s-1 At a shear rate, it can have a viscosity of 0.005 Pa·s to 0.050 Pa·s. Alternatively or additionally, the gel can be 768s -1 At a shear rate of 0.004 Pa·s to 0.010 Pa·s, the gel may have a viscosity of 0.004 Pa·s to 0.010 Pa·s. For example, the gel can be subjected to 130 s -1 At a shear rate of 0.015 Pa·s to 0.020 Pa·s, the viscosity is 768 s. -1 At a shear rate of 1 second, the mixture may have a viscosity of 0.004 Pa·s to 0.010 Pa·s. In some examples, the mixture has an osmotic pressure of 240 mOsmol / kg to 340 mOsmol / kg.
[0008] In some embodiments, the preliminary mixture may be heated to a temperature in the range of about 50°C to about 130°C. In some examples, the mixture may have a temperature of about 50°C to about 130°C when introduced into the reservoir. In at least one example, the mixture may be cooled to a temperature of about 50°C or less before being introduced into the reservoir, and the method may further include the step of heating the mixture in the reservoir to a temperature of about 50°C to 130°C. In at least one example, the reservoir may be the barrel of a syringe, or the reservoir may be connected to a needle via a flexible tube.
[0009] According to several embodiments, a method for preparing a composition for delivery to a target site in a patient includes the steps of: combining gellan gum and water to form a premixture; heating the premixture; adding a first salt containing a monovalent cation and a second salt containing a divalent cation to the premixture to form a mixture, wherein the molar ratio of the monovalent cation to the divalent cation in the mixture is 5 to 200; heating the mixture; and cooling the mixture to form a homogeneous gel having a continuous three-dimensional structure. The gel is biocompatible and can be injected into the target site via a needle from a reservoir.
[0010] In some examples, the preliminary mixture is heated to a temperature of approximately 50°C to 90°C, and the mixture is heated to a temperature higher than that of the preliminary mixture. In some examples, the gel is heated for 130 seconds. -1 Viscosity in the range of 0.005 Pa·s to 0.050 Pa·s at shear rates, and 768s -1 It has a viscosity of 0.004 Pa·s to 0.010 Pa·s at a shear rate.
[0011] This disclosure relates, for example, to a medical device comprising a needle and a reservoir connected to the needle, and a gel in the reservoir comprising gellan gum, a first salt containing a monovalent cation, a second salt containing a divalent cation, and water, which is biocompatible and can be injected via the needle, 130s -1 The solution further comprises a gel having a viscosity of 0.005 Pa·s to 0.050 Pa·s at a shear rate. In some examples, the gel may contain a second salt in an amount less than 0.1% of the total weight of the gel. In at least one example, the reservoir may be the barrel of a syringe, or the reservoir may be connected to a needle via a flexible tube.
[0012] In some embodiments, the monovalent cation of the first salt is sodium or potassium, and the divalent cation of the second salt is calcium or magnesium. In some examples, the molar ratio of the first salt to the second salt in the gel may be in the range of 5 to 200.
[0013] In some cases, the gel has a continuous three-dimensional structure that extends across the entire cross-section of the reservoir. In some cases, the gel contains 0.01% to 2.0% by weight of gellan gum relative to the total weight of the gel, and the endotoxin level of the gel is less than 20 endotoxin units (EU).
[0014] In some embodiments, the gel may further contain at least one coloring agent, such as FD&C Blue 1. In some embodiments, the gel further contains at least one metal ion chelating agent, such as calcium citrate, sodium citrate, or calcium phosphate.
[0015] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate various exemplary aspects of the present disclosure and, together with the description, serve to explain the principles of the present disclosure.
Brief Description of the Drawings
[0016] [Figure 1A] A diagram showing an exemplary medical device according to a specific aspect of the present disclosure. [Figure 1B] A diagram showing an exemplary medical device according to a specific aspect of the present disclosure. [Figure 1C] A diagram showing an exemplary medical device according to a specific aspect of the present disclosure. [Figure 2A] A diagram showing an exemplary tissue resection method according to a specific aspect of the present disclosure. [Figure 2B] A diagram showing an exemplary tissue resection method according to a specific aspect of the present disclosure. [Figure 2C] A diagram showing an exemplary tissue resection method according to a specific aspect of the present disclosure. [Figure 2D] A diagram showing an exemplary tissue resection method according to a specific aspect of the present disclosure. [Figure 2E] A diagram showing an exemplary tissue resection method according to a specific aspect of the present disclosure.
Modes for Carrying Out the Invention
[0017] Specific aspects of the present disclosure will be described in more detail below. In the case of conflict between the terms and definitions used in this specification and the terms and definitions incorporated by reference, the terms and definitions of this specification shall prevail.
[0018] As used herein, “comprise,” “comprising,” or any other variation thereof are intended to cover non-exclusive inclusion where a process, method, composition, article, or apparatus containing a given element includes only those elements but may also include other elements not expressly listed, i.e., other elements specific to such a process, method, composition, article, or apparatus. The term “exemplary” is used in the sense of “example,” not “ideal.”
[0019] The singular forms "a," "an," and "the" refer to multiple objects unless the context indicates otherwise. The terms "about" and "approximately" indicate something that is nearly the same as the stated number or figure. As used herein, the terms "about" and "approximately" should be understood to encompass ±5% of the specified quantity or figure.
[0020] This specification provides compositions, such as gels, for injection into a patient. The compositions can be injected to excise the patient's tissue, for example, at least a portion of the tissue. According to some aspects of this disclosure, the compositions may contain at least one gelling agent, a plurality of salts, and water. In some examples, the compositions are or may contain a gel having a desired gel strength and viscosity, such as a biocompatible gel suitable for injection (e.g., via a needle). In at least one example, the compositions may be a pseudoplastic material having a lower viscosity under shear force and a higher viscosity at rest.
[0021] The gelling agents in the composition are derived from natural sources (such as plant gums or microbial gums) or synthetic sources, and may be anionic, cationic, or neutral. Non-exclusive examples of gelling agents include polysaccharides such as gellan gum, xanthan gum, gum arabic, guar gum, locust bean gum, alginates, and carrageenan.
[0022] In at least one example, the gelling agent may contain gellan gum. As used herein, the term “gellan gum” refers to a polysaccharide (e.g., produced by Sphingomonas bacteria) having a common structure formed by repeating units of four sugars: two D-galactose residues, one L-rhamnose residue, and one D-glucuronic acid residue. The gelling agent may include one or more types of gellan gum, e.g., natural gellan gum, deacylated gellan gum, or mixtures thereof. Natural gellan gum may contain two acyl groups (e.g., acetate and glycerate) bonded to glucose residues adjacent to glucuronic acid residues. The two acyl groups can be removed under alkaline conditions to produce deacylated gellan gum, which has different stability and plasticity compared to natural gellan gum. For example, natural gellan gum generally forms a soft, highly elastic gel with thermoreversibility, while deacylated gellan gum generally forms a hard, inelastic gel with high heat resistance. In at least one embodiment, the composition contains deacylated gellan gum.
[0023] Certain microbial extracts may contain endotoxins, such as bacterial lipopolysaccharides that bind to polysaccharide structures. In some embodiments, the gelling agent may be selected to minimize or eliminate the contamination of the composition with endotoxins. In some examples, the endotoxin level of the gelling agent is 20 endotoxin units (EU) or less, and may be, for example, 0 EU to about 20 EU, 0 EU to about 10 EU, 0 EU to about 5 EU, 1 EU to about 20 EU, about 1 EU to about 10 EU, or about 1 EU to about 5 EU. Therefore, for example, the endotoxin level of a composition containing a gelling agent is 20 EU or less, and may be, for example, 0 EU to about 20 EU, 0 EU to about 10 EU, 0 EU to about 5 EU, about 1 EU to about 20 EU, about 1 EU to about 10 EU, or about 1 EU to about 5 EU. When used, the composition, for example, the gel, can be delivered to the target site of the patient via a suitable medical device (e.g., a fluid reservoir connected to a syringe or injection needle). Therefore, for example, the endotoxin level of a medical device is 20 EU or less, and may be, for example, 0 EU to about 20 EU, 0 EU to about 10 EU, 0 EU to about 5 EU, about 1 EU to about 20 EU, about 1 EU to about 10 EU, or about 1 EU to about 5 EU. The endotoxin level of bacteria can be measured, for example, using the Limulus amoeba trisate (LAL) test. Alternatively or additionally, gelling agents may be treated for the purpose of reducing or removing the concentration of endotoxin before use in the compositions disclosed herein. For example, a composition may contain a bacterial polysaccharide such as xanthan gum and be treated to reduce the amount of endotoxin present so that the resulting composition is pharmaceutically acceptable and complies with applicable government regulatory standards.
[0024] The concentration of the gelling agent in the composition is in the range of approximately 0.01% to approximately 2.0% of the total weight of the composition, for example, by weight ratio of approximately 0.02% to approximately 1.5%, approximately 0.05% to approximately 1.0%, approximately 0.05% to approximately 0.50%, approximately 0.05% to approximately 0.15%, approximately 0.10% to approximately 0.20%, approximately 0.15% to approximately 0.25%, approximately 0.20% to approximately 0.30%, approximately 0.25% to approximately 0.35%, approximately 0.30% to approximately 0.40%, approximately 0.35% to approximately 0.45%, approximately 0.40% to approximately 0.50%, approximately 0.1% to approximately 0.5%, or approximately 0.1% to approximately 0.15%. In at least one example, the total concentration of the gelling agent in the composition may range from about 0.05% to about 0.5% relative to the total weight of the composition.
[0025] According to some aspects of this disclosure, the compositions herein may contain one or more salts, for example, physiologically compatible salts. For example, the compositions herein may contain a plurality of different salts, for example, 2, 3, 4, 5 or more. In at least one example, the composition may contain two salts.
[0026] In some examples, the composition may contain at least one salt containing a monovalent cation. Examples of such salts, though not limited to them, include salts containing sodium or potassium cations, such as sodium chloride (NaCl), potassium chloride (KCl), sodium dihydrogen phosphate (NaH2PO4), potassium hydrogen phosphate (K2HPO4), and sodium gluconate (C6H 11 This may include sodium chloride (NaO7), sodium acetate trihydrate (C2H9NaO5·3H2O), their hydrates, and mixtures thereof. In at least one example, the salt containing a monovalent cation contains sodium chloride.
[0027] Alternatively or additionally, the composition may contain salts containing divalent cations. Non-limiting examples of such salts may include salts containing calcium or magnesium cations, such as calcium chloride (CaCl2), magnesium sulfate (MgSO4), magnesium chloride (MgCl2), their hydrates, and mixtures thereof. In at least one example, the salt having a divalent cation may be calcium chloride or its hydrate, such as calcium chloride dihydrate.
[0028] In some cases, a composition may contain at least one salt containing a monovalent cation and at least one salt containing a divalent cation. For example, a composition may contain at least one sodium or potassium salt and at least one calcium or magnesium salt, such as sodium chloride (NaCl) and calcium chloride (CaCl2), or sodium chloride (NaCl) and magnesium chloride (MgCl2), potassium chloride (KCl) and calcium chloride (CaCl2), or potassium chloride (KCl) and magnesium chloride (MgCl2). Furthermore, for example, a composition may contain a combination of at least one salt selected from sodium chloride, potassium chloride, sodium disodium phosphate, potassium hydrogen phosphate, sodium glucuronate, or sodium acetate trihydrate and at least one salt selected from calcium chloride, magnesium sulfide, or magnesium chloride.
[0029] While not intended to be bound by theory, salts containing divalent cations are generally considered to form stronger gels (e.g., gels with relatively high gel strength) compared to salts containing only monovalent cations. The concentration of each of the one or more salts in the composition is about 0.01% to about 2.0% by weight relative to the total weight of the composition, for example, about 0.01% to 0.50%, about 0.01% to about 0.20%, about 0.25% to about 1.0%, about 0.5% to about 1.5%, about 0.50% to about 1.0%, or about 1.0% to about 2.0% relative to the total weight of the composition. In some examples, the total amount of salt present in the composition may be in the range of about 0.1% to about 4.0% by weight relative to the total weight of the composition.
[0030] In some examples, the composition may contain a salt containing a monovalent cation in weight ratios of about 0.10% to about 2.0%, about 0.1% to about 0.5%, about 0.25% to about 0.75%, about 0.50% to about 1.0%, about 0.75% to about 1.25%, about 1.0% to about 1.5%, about 1.25% to about 1.75%, or about 1.5% to about 2.0%, for example, about 0.80%, about 0.85%, or about 0.90% relative to the total weight of the composition.
[0031] Alternatively or additionally, the composition may contain salts containing divalent cations in weight percentages of about 0.010% to about 0.200%, about 0.010% to about 0.050%, about 0.025% to about 0.075%, about 0.050% to about 0.100%, about 0.075% to about 0.125%, about 0.100% to about 0.150%, about 0.125% to about 0.175%, about 0.150% to about 0.200%, for example, about 0.035%, about 0.040%, about 0.045%, and about 0.050% relative to the total weight of the composition. In at least one example, the composition may contain about 0.85% sodium chloride and about 0.034% calcium chloride by weight percentages relative to the total weight of the composition.
[0032] The composition may contain two different salts in proportions that impart desired properties (e.g., viscosity, three-dimensional structure, and / or gel strength) to the composition. In some examples, the composition may contain a first salt (e.g., a salt containing a monovalent cation) and a second salt (e.g., a salt containing a divalent cation) in molar ratios of about 5 to about 200, about 50 to about 150, about 80 to about 120, about 5 to about 50, about 25 to about 75, about 50 to about 100, about 75 to about 125, about 100 to about 150, about 125 to about 175, and about 150 to about 200. In at least one example, the composition may contain sodium chloride and calcium chloride in molar ratios of about 5 to about 50, about 10 to about 20, or about 15 to about 35. For example, the composition may contain sodium chloride and calcium chloride in molar ratios of approximately 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, and 25 (sodium chloride to calcium chloride).
[0033] In some cases, the composition may contain a physiologically compatible saline solution, such as a sodium chloride solution. For example, the composition may contain a 0.9 wt% sodium chloride solution that can form sodium cations to aid in the formation of a three-dimensional solid gel network. In some cases, the composition is isotonic. For example, saline solution contains appropriate concentrations of monovalent and divalent cations, so the composition is isotonic with tissue fluid or blood. Another physiologically compatible solution with a suitable ion concentration may also be used to prepare an isotonic solution.
[0034] The compositions of this specification may further contain one or more additives. According to some aspects of this disclosure, the compositions may contain one or more biocompatible dyes or colorants. In some examples, the dyes or colorants make it possible to identify the submucosal tissue surface when injected into tissue. For example, it may be possible to determine the amount of tissue to be removed or to assess the risk of perforation. Examples of dyes or colorants include, but are not limited to, brilliant blue (e.g., Brilliant Blue FCF, also known as FD&C Blue 1), indigo carmine (also known as FD&C Blue 2), indigo carmine lake, FD&C Blue 1 lake, methylene blue (also known as methylthioninium chloride), or mixtures thereof. In particular, the use of FD&C Blue 1 as a colorant has been shown to maintain the color of the composition over a longer period compared to other colorants such as methylene blue. Maintaining the color of the composition may facilitate the identification of target tissue during medical procedures.
[0035] The concentration of the colorant in the composition may be approximately 0.0001% to approximately 0.0100%, approximately 0.0001% to approximately 0.0050%, approximately 0.0005% to approximately 0.0030%, approximately 0.0001% to approximately 0.0020%, approximately 0.0010% to approximately 0.0030%, approximately 0.0020% to approximately 0.0040%, approximately 0.0030% to approximately 0.0050%, approximately 0.0040% to approximately 0.0060%, approximately 0.0050% to approximately 0.0070%, approximately 0.0060% to approximately 0.0080%, approximately 0.0070% to approximately 0.0090%, or approximately 0.0080% to approximately 0.0100% by weight relative to the total weight of the composition. In some examples, the concentration of the colorant in the composition may be about 0.0005% to about 0.0030% by weight relative to the total weight of the composition. In at least one example, the concentration of the colorant in the composition may be about 0.001% by weight relative to the total weight of the composition.
[0036] As used herein, the term “metal ion chelating agent” refers to a substance capable of forming a complex with at least one metal (e.g., alkali metal, alkaline earth metal, or transition metal) ion. While not intended to be theoretical, metal ion chelating agents can facilitate the formation of gels having desired properties (e.g., three-dimensional structure, gel strength, and / or viscosity). In some cases, for example, the addition of a metal ion chelating agent can enable gel formation at room temperature or near room temperature (approximately 20°C to 25°C) without a heating step. For example, a metal ion chelating agent may enable the hydration of a gelling agent at room temperature or near room temperature. Examples of metal ion chelating agents suitable for the compositions herein include, but are not limited to, calcium citrate, sodium citrate, calcium phosphate, and any combination thereof.
[0037] Any other suitable biocompatible agent is also contained in the composition, and for example, the pH and osmotic pressure of the composition are adjusted so as to be suitable for injection into tissues. For example, the composition may contain one or more stabilizers and preservatives. According to some aspects of the present disclosure, the composition may contain an additive such as epinephrine to suppress bleeding on the surface. The composition may include one or more additives that enhance the visibility of diseased tissue and one or more additives that have a therapeutic effect. For example, the additive is pharmacologically active and can effectively act on cancer cells, for example.
[0038] The composition may have a viscosity suitable for injection. As described above, in some examples, the composition may be pseudoplastic. Pseudoplasticity generally refers to the property that the viscosity decreases when a shear force is applied. Thus, for example, the composition has a higher viscosity at rest or under conditions of low shear force (for example, while being contained in a container) than under conditions of high shear force (for example, while being loaded into a needle or being injected through a needle). Examples of materials exhibiting pseudoplasticity include polysaccharides such as gellan gum and xanthan gum.
[0039] For example, the composition has a first viscosity at a first shear rate and a second viscosity at a second shear rate, and when the first shear rate is higher than the second shear force, the first viscosity is lower than the second viscosity. The viscosity of the composition can be measured with a viscometer, for example, a rheometer. In some examples, the composition has a viscosity of 0.001 Pa·s to 0.100 Pa·s at a shear force of 130 s -1 for example, about 0.005 Pa·s to about 0.050 Pa·s, about 0.010 Pa·s to about 0.050 Pa·s, about 0.010 Pa·s to about 0.030 Pa·s, or about 0.010 PA·s to 0.020 Pa·s, or about 0.020 Pa·s to about 0.030 Pa·s, or about 0.020 Pa·s to about 0.040 Pa·s at a shear force of 130 s -1 Thus, for example, the composition has a viscosity of 130 s -1The shear forces are approximately 0.005 Pa·s, 0.006 Pa·s, 0.008 Pa·s, 0.010 Pa·s, 0.011 Pa·s, 0.012 Pa·s, 0.013 Pa·s, 0.014 Pa·s, 0.015 Pa·s, 0.016 Pa·s, 0.017 Pa·s, 0.018 Pa·s, 0.019 Pa·s, 0.020 Pa·s, and 0.022 Pa·s. The viscosity may be 130s, approximately 0.024 Pa·s, approximately 0.026 Pa·s, approximately 0.028 Pa·s, approximately 0.030 Pa·s, approximately 0.032 Pa·s, approximately 0.034 Pa·s, approximately 0.036 Pa·s, approximately 0.038 Pa·s, approximately 0.040 Pa·s, approximately 0.042 Pa·s, approximately 0.044 Pa·s, approximately 0.046 Pa·s, approximately 0.048 Pa·s, or approximately 0.050 Pa·s. In at least one example, the composition may have a viscosity of 130s. -1 It has a viscosity greater than 0.0050 Pa·s at a shear force, for example, 130s -1 The viscosity may be approximately 0.0050 Pa·s to approximately 0.050 Pa·s under shear force. In at least one example, the composition is 130s -1 It has a viscosity greater than 0.010 Pa·s at a shear rate, for example, 130s -1 It can have a viscosity of approximately 0.010 Pa·s to approximately 0.030 Pa·s at a shear rate.
[0040] Alternatively or additionally, the composition may be 768s -1 It can have a viscosity of 0.001 Pa·s to 0.050 Pa·s at a shear force. For example, it can have a viscosity of about 0.002 Pa·s to about 0.030 Pa·s, about 0.003 Pa·s to about 0.020 Pa·s, about 0.004 Pa·s to about 0.010 Pa·s, about 0.004 Pa·s to about 0.006 Pa·s, about 0.005 Pa·s to about 0.007 Pa·s, about 0.006 Pa·s to about 0.008 Pa·s, about 0.007 Pa·s to about 0.009 Pa·s, or about 0.008 Pa·s to about 0.01 Pa·s. Therefore, for example, the composition may have a viscosity of 768s -1The composition is a gel having viscosities of approximately 0.003 Pa·s, approximately 0.004 Pa·s, approximately 0.005 Pa·s, approximately 0.006 Pa·s, approximately 0.007 Pa·s, approximately 0.008 Pa·s, approximately 0.009 Pa·s, and approximately 0.010 Pa·s under shear forces, or may contain such a gel. In at least one example, the composition is 768s ー1 Viscosity less than 0.010 Pa·s at a shear rate, for example, 768s ー1 The viscosity may be approximately 0.005 Pa·s to approximately 0.009 Pa·s at a shear rate. In at least one example, the composition is 768s -1 It can have a viscosity of approximately 0.004 Pa·s to 0.010 Pa·s under a shear force. Furthermore, for example, the composition may have a viscosity of 130s -1 With a shear force of approximately 0.010 Pa·s to approximately 0.030 Pa·s, for example, it has a viscosity of approximately 0.017 Pa·s and 768s -1 It can have a viscosity of approximately 0.004 Pa·s to approximately 0.010 Pa·s under a shear force, for example, 0.007 Pa·s.
[0041] This disclosure also provides a medical device comprising the compositions of this specification. The medical device is used to inject the compositions into a patient's tissue, for example, to excise at least a portion of the tissue. According to some aspects of this disclosure, the medical device comprises one or more reservoirs. The reservoirs may function as containers for the compositions of this specification. Suitable reservoirs may include, for example, syringes (e.g., syringe barrels suitable for manual or automatic infusion systems), flexible pouches such as plastic bags, and other fluid containers configured for use with a suitable injection needle. Examples of suitable materials for reservoirs include, but are not limited to, cyclic olefin copolymers, polypropylene, polycarbonate, polyvinyl chloride, and glass.
[0042] The medical devices described herein may comprise one or more needles. In some examples, the reservoir of the medical device may be connected directly to the needle, for example by a Luer adapter or another suitable coupling, or indirectly to the needle, for example via a flexible tube such as a catheter. A non-limiting example of a needle connected to a reservoir via a flexible tube is the Interject® sclerotherapy needle from Boston Scientific. In some examples, the needles are subcutaneous needles ranging from 7 gauge (4.57 mm outer diameter, 3.81 mm inner diameter) to 33 gauge (0.18 mm outer diameter, 0.08 mm inner diameter), e.g., 16 gauge (1.65 mm outer diameter, 1.19 mm inner diameter), 21 gauge (0.82 mm outer diameter, 0.51 mm inner diameter), 22 gauge (0.72 mm outer diameter, 0.41 mm inner diameter), 23 gauge (0.64 mm outer diameter, 0.33 mm inner diameter), and 24 gauge (0.57 mm outer diameter, 0.31 mm inner diameter). Examples of needle materials, but not limited to, may include metals and metal alloys such as stainless steel and Nitinol®, and polymers. The distal end of the needle may be sharpened or beveled. The proximal end of the needle may be equipped with a fitting / adapter (e.g., a Luer adapter) suitable for engagement with a syringe or another reservoir. In some examples, the needle may include a long tube or catheter between the needle tip and the proximal fitting / adapter.
[0043] Methods for forming compositions and apparatuses will be described further. Generally, the method may include the steps of: combining a gelling agent and water to form a preliminary mixture; heating the preliminary mixture; adding a salt to the preliminary mixture to form a mixture; and introducing the mixture into a reservoir. In some examples, the mixture may form a gel in the reservoir.
[0044] In at least one example, the method may include one or more steps of: hydrating one or more gelling agents (e.g., gellan gum) by combining the gelling agents with water (e.g., also referred to herein as a premixture); heating the hydrated gelling agents; adding at least two salts (e.g., a monovalent cation-containing salt and a divalent cation-containing salt) to the hydrated gelling agents to form a mixture; introducing the mixture of gelling agents, water and salts into a reservoir; and cooling the mixture to form a gel before or after introducing the mixture into the reservoir. In another example, the method may include one or more steps of: hydrating one or more gelling agents (e.g., gellan gum) by combining a gelling agent with water; heating the hydrated gelling agents; adding at least two different salts (e.g., a salt consisting of a monovalent cation and a salt consisting of a divalent cation) to the hydrated gelling agents to form a mixture, wherein the molar ratio of monovalent cations to divalent cations in the mixture is optionally in the range of 5 to 200; and cooling the mixture to form a homogeneous gel having a continuous three-dimensional structure. In such an example, the resulting gel is biocompatible and can be injected into the patient's target tissue through a needle from a reservoir, e.g., a syringe barrel, an IV bag, or another suitable reservoir for medical compositions.
[0045] According to some aspects of this disclosure, a preliminary mixture of a gelling agent and water (e.g., a hydrated gelling agent) is heated before the addition of salt. In some examples, the preliminary mixture is heated at temperatures between about 50°C and about 130°C, for example, about 70°C to about 130°C, about 80°C to about 125°C, about 90°C to about 115°C, about 95°C to about 105°C, or about 70°C to about 90°C, for example, about 50°C, about 55°C, about 60°C, about 65°C, about 70°C, about 75°C, about 80°C, about 85°C, about 90°C, about 95°C, about 100°C, about 105°C, about 110°C, about 115°C, about 120°C, about 125°C, or about 130°C. In some examples, temperatures below about 90°C are used, for example, about 50°C to about 60°C or about 70°C to about 85°C. In some cases, the premixture is heated to a temperature of, for example, 100°C or higher until it boils. The premixture is heated for a sufficient amount of time to hydrate the gelling agent. For example, the premixture of gelling agent and water is heated for about 1 minute to about 90 minutes, or about 5 minutes to about 60 minutes, or about 15 minutes to about 45 minutes, or about 20 minutes to about 30 minutes, or about 15 minutes to about 20 minutes, for example, about 15 minutes, about 20 minutes, about 30 minutes, or about 45 minutes.
[0046] When using metal ion chelating agents, the method includes the step of combining one or more gelling agents with at least one metal ion chelating agent and water to hydrate the gelling agents and form a premixture. In some examples, the premixture containing the gelling agents, metal ion chelating agents, and water is not heated.
[0047] The methods described herein may include the step of adding one or more salts to a hydrated gelling agent to form a mixture. For example, the salt is added after the preliminary mixture has been heated to at least 50°C. In at least one example, the salt is added after the preliminary mixture has been heated for about 10 minutes and / or when the preliminary mixture has reached at least 70°C. In some examples, the salt is added to the preliminary mixture during heating, and the resulting mixture is continued to be heated under the same conditions (e.g., at the same temperature, with stirring). Alternatively, the heated preliminary mixture may be cooled before the salt is added, or the preliminary mixture may be at a temperature below 50°C, for example, room temperature or close to room temperature, for example, the temperature at which the metal ion chelating agent is used as described above.
[0048] In some examples, the methods described herein may include the step of adding a first salt containing a monovalent cation, a second salt containing a divalent cation, or a combination thereof. When both the first and second salts are added, the two salts may first be mixed and then added to the premixture. Alternatively, the first and second salts may be added to the premixture in sequence. For example, the second salt may be added after the first salt, or vice versa.
[0049] According to some aspects of this disclosure, the process may further include adding one or more colorants, one or more metal ion chelating agents, and / or one or more additives to form a mixture. For example, the method may include adding one or more colorants after adding one or more salts to form a mixture. Alternatively or additionally, in another example, the method may include adding one or more colorants before adding one or more salts to form a mixture.
[0050] The resulting mixture may be physiologically compatible, and for example, if the mixture forms a gel, it may have electrolytes, osmotic pressure, and pH levels suitable for infusion into a patient's body. In some examples, the mixture may have an osmotic pressure of approximately 240 mOsmol / kg to approximately 340 mOsmol / kg (e.g., 290 mOsmol / kg ± 50 mOsmol / kg), for example, approximately 250 mOsmol / kg to approximately 320 mOsmol / kg, or approximately 280 mOsmol / kg to approximately 300 mOsmol / kg. In at least one example, the mixture may have an osmotic pressure of approximately 290 mOsmol / kg.
[0051] Alternatively or additionally, the method may include a step of adjusting the pH of the hydrated gelling agent (premixture) and / or the mixture. The pH of the premixture and / or the mixture may be adjusted using an acid (e.g., hydrochloric acid) or a base (e.g., sodium hydroxide), or using another substance that forms a biocompatible composition.
[0052] While not intending to be bound by theory, regarding gelling agents such as gellan gum, which are polysaccharides, it is thought that polysaccharide molecules may undergo a transition from a coil to a double helix as the temperature decreases, potentially forming a gel depending on the ionic strength and pH of the solution. For example, coil molecules of gellan gum may form a double helix as the temperature decreases, and this helix may aggregate to form junctions and gel. In water, at low ionic strength and neutral pH, the aggregation of the helix may be prevented by the electrostatic repulsion between the negatively charged carboxyl groups of the gellan gum molecules. Adding salt or adjusting the pH (e.g., lowering the pH) reduces the repulsion between helices, promoting junction formation and resulting in increased gel strength. Therefore, by adding salt, physical crosslinking may be promoted in a process similar to aggregation, forming a continuous three-dimensional gel network. This continuous three-dimensional network may form a solid or semi-solid gel that can maintain its three-dimensional shape even when inverted in an open container.
[0053] Alternatively or additionally, after adding salt, the resulting mixture is heated. The mixture may be heated under the same conditions as when the preliminary mixture was heated. Alternatively, the mixture may be heated under different conditions than the preliminary mixture (for example, when the preliminary mixture is not heated, such as when a metal ion chelating agent is used). For example, the mixture may be heated at a higher temperature than the preliminary mixture. In some examples, the mixture may be heated at temperatures ranging from approximately 50°C to approximately 130°C, for example, approximately 70°C to approximately 130°C, approximately 80°C to approximately 125°C, approximately 90°C to approximately 115°C, approximately 95°C to approximately 105°C, or approximately 70°C to approximately 90°C, for example, approximately 50°C, approximately 55°C, approximately 60°C, approximately 65°C, approximately 70°C, approximately 75°C, approximately 80°C, approximately 85°C, approximately 90°C, approximately 95°C, approximately 100°C, approximately 105°C, approximately 110°C, approximately 115°C, approximately 120°C, approximately 125°C, or approximately 130°C. In some examples, a minimum temperature of approximately 50°C to approximately 60°C is used. In some examples, a minimum temperature of approximately 70°C to approximately 85°C is used. In some examples, the mixture is heated to a boil, for example, above approximately 100°C. In some cases, the mixture is heated for approximately 5 to 90 minutes, 10 to 60 minutes, 15 to 45 minutes, or 20 to 30 minutes, for example, 15 minutes, 20 minutes, 30 minutes, or 45 minutes. The mixture or premixture may be heated with continuous or intermittent stirring using, for example, a magnetic stirrer or another suitable mixing device.
[0054] The methods described herein may further comprise a step of cooling the mixture. When heated above a certain temperature, the mixture may form a low-viscosity fluid. When cooled below a certain temperature or temperature range, the viscosity and / or gel strength of the mixture increases, resulting in a gel. In at least one example, the mixture may be cooled to form a homogeneous gel having a continuous three-dimensional structure. In some examples, the mixture is cooled to about 55°C or about 50°C or below, for example, room temperature (about 20°C to about 25°C). The cooling step may be carried out by letting the mixture stand for a predetermined time at room temperature (e.g., about 20°C to about 25°C) or below room temperature (e.g., about 4°C).
[0055] In some cases, the mixture may be cooled without stirring. In such cases, the mixture may form a substantially homogeneous gel, for example, a continuous solid. Thus, for example, the resulting gel may have a substantially continuous three-dimensional solid or semi-solid gel network, as opposed to aggregates of gel particles or colloidal mixtures. Alternatively or additionally, the mixture may be stirred during cooling, for example, by continuous or intermittent stirring. In such cases, stirring may at least partially destroy the gel structure, for example, by breaking up the three-dimensional network to form individual gel particles or gel fragments. Alternatively or additionally, the gel structure may be at least partially destroyed after the composition has cooled, for example, by stirring, shaking, or moving the composition between containers.
[0056] According to some aspects of this disclosure, the methods of this specification may include the step of introducing a mixture (e.g., the above mixture) into a reservoir of a medical device (e.g., an infusion device or a container for an infusion system). The mixture may be introduced into the reservoir after being heated to a temperature in the range of about 70°C to about 130°C, for example, in the range of about 90°C to about 110°C. For example, the mixture may be heated and cooled in an initial container such as a vial, and then moved from its interior into a suitable reservoir into which it will be injected into the patient's body. In such a case, the mixture may be agitated while cooling in the initial container to form aggregates or a gel-like fluid consisting of small gel particles.
[0057] Alternatively or additionally, the mixture may be heated after being introduced into the reservoir. For example, after cooling, the mixture may be stirred, sheared, extruded, or otherwise crushed and contained in the containment container. The aggregate of gel particles or gel-like fluid may then be mixed with an additional liquid component (e.g., another viscous agent such as gellan gum in a viscous form) after the gel has solidified. The mixture may then be transferred from the containment container to a suitable reservoir, heated, and cooled to form a homogeneous gel in the reservoir. The mixture may then be injected directly into the patient's target site via a needle from the reservoir. According to some embodiments, the gel may be subjected to minimal shearing or other forces before being injected into the patient's body. The viscosity of the mixture to gel in the reservoir before injection may depend on the properties of the gelling agent and the concentration of the gelling agent relative to other components of the mixture.
[0058] The mixture may then be cooled and its viscosity increased to form a homogeneous solid or semi-solid gel in the reservoir. In some cases, the mixture may be reheated and then cooled after being introduced into the reservoir to form a solid or semi-solid three-dimensional gel. For example, the mixture may undergo one or more heating / cooling cycles after being introduced into the reservoir. According to some embodiments, for example, the mixture may be heated twice by first heating a mixture consisting of a gelling agent, a salt, and water (for example, to ensure hydration), and then heating and cooling the mixture after it has been introduced into a reservoir from which the mixture is injected, to form a gel having a continuous three-dimensional structure. According to some embodiments of the present disclosure, the mixture is not moved from the reservoir to another container before being injected directly into the patient's target site from the reservoir.
[0059] The method of the present invention further includes a step of sterilizing the mixture. For example, the mixture may be autoclaved in a reservoir by heating the mixture to a temperature of about 121°C or close to it. Alternatively or additionally, the mixture may be sterilized by gamma irradiation or electron beam after being introduced into the reservoir.
[0060] While not intending to be bound by theory, it is conceivable that applying various forces (e.g., shear, compressive, stress, friction) could affect the continuity of the three-dimensional gel network, thereby influencing the properties of the gel before use in medical procedures such as tissue excision. For example, moving the composition between containers before injection may shear the three-dimensional structure of the gel when it is injected into the patient's body. In some cases, this may limit the effectiveness of the composition, for example, by reducing the gel's ability to separate tissue layers before it diffuses or is absorbed into the tissue, or by reducing the time the gel remains in the tissue (e.g., mucous membranes).
[0061] According to several aspects of this disclosure, the compositions of the present application, for example, compositions prepared by the methods of this disclosure, may have sufficient strength, e.g., gel strength, to withstand forces and minimize the effect of those forces on the continuity of the three-dimensional gel network. On the other hand, compositions with sufficient strength may have a viscosity suitable for injection, e.g., a viscosity that does not clog the reservoir or needle of a medical device. Alternatively or additionally, the compositions may be prepared to solidify into a continuous three-dimensional gel network in the reservoir of a medical device, e.g., an injection device. The compositions may form a substantially homogeneous gel solid or quasi-solid in the reservoir without the gel structure being destroyed by movement between containment vessels.
[0062] Therefore, the composition can maintain its three-dimensional structure until the gel penetrates the needle and is injected, at which point the structure forms fragments of the original continuous three-dimensional network. Since the gel fragments may have a diameter corresponding to the diameter of the injection needle, the fragments can be as large as possible in vivo and retain as much of the gel's three-dimensional structure as possible. It is thought that injecting these larger particles or fragments will increase the time the gel remains in the tissue.
[0063] A method for excising at least a portion of tissue from a subject (e.g., a human patient) will be further described. The method may include the steps of injecting the composition into the subject's tissue and excising at least a portion of the tissue from the patient's body. In some examples, the composition may be a submucosal exfoliant.
[0064] Figure 1A shows an exemplary syringe 10 forming a reservoir for the gel composition described above. The syringe 10 comprises a barrel 12, a plunger 14, and one or more stoppers 16. The composition 15 is prepared as described above and solidified into a solid gel having a continuous three-dimensional structure across the diameter of the barrel 12. The barrel 12 is equipped with a Luer adapter (or another suitable adapter / connector) at its distal end 18 for attachment to an injection needle 50 via a flexible catheter 29, for example. The proximal end of the catheter 29 has a suitable connector for receiving the barrel 12. In another example, the barrel 12 may be directly connected to the injection needle 50. The syringe barrel 12 functions as a reservoir and can contain the gel composition 15 for injection via the needle 50.
[0065] Figure 1B shows an exemplary syringe 30 for use with an automatic infusion system 45. Syringe 30 comprises any features of syringe 10 in Figure 1A, e.g., a barrel 32, a plunger 34, and a Luer adapter (or another suitable adapter / connector) at the distal end 38 of the barrel 32. Composition 15 is prepared as described above and solidified into a gel in the barrel 32, and syringe 30 is inserted into a channel 47 of the infusion system 45 for automatic control of the amount of gel injected. The distal end 38 of syringe 30 is connected to an injection needle (e.g., similar to the injection needle 50 in Figure 1A) via a catheter 39. According to some aspects of this disclosure, the plunger 34 forms part of the infusion system 45, and the barrel 32 may be a separate component connected to the infusion system 45, e.g., a replaceable cartridge. For example, composition 15 may be prepared in barrel 32 as a replaceable cartridge having a proximal attachment compatible with the plunger components of the injection system 45.
[0066] Figure 1C shows an exemplary reservoir 60 according to some aspects of the present disclosure. The reservoir 60 is provided by a flexible pouch or bag, for example, an IV bag. The composition 15 is prepared as described above and solidified into a gel within the reservoir 60. The reservoir 60 is sterilized and may consist of a plastic material such as polyvinyl chloride (PVC) (e.g., bis(2-ethylhexyl) phthalate (DEHP)) or a non-PVC plastic material. The pouch may be equipped with a Luer adapter 63 for attachment to a catheter 69 or needle (having any suitable gauge dimensions as described above) for injecting the composition 15 into the patient's body. The reservoir 60 may be compressible so that the composition can be delivered via the catheter 69 and / or needle by compressing the reservoir 60.
[0067] Other reservoirs and injection methods not shown in Figures 1A-1C may also be used in accordance with this disclosure. For example, the composition may be contained in a reservoir connected to a fluid channel or needle that forms part of an electrocautery apparatus or system. Thus, a physician may inject the composition through the fluid channel while simultaneously or subsequently operating another part of the apparatus or system, such as an electrocautery knife or snare.
[0068] The amount of force required to move the composition through the needle eye (generally described as the “peak load” force) may depend on the viscosity of the composition, the dimensions of the needle (inner diameter, outer diameter, and / or length), and the material from which the needle is formed. For example, injecting a composition using a 33-gauge needle requires a greater force than using a 7-gauge needle. Additional factors that may affect the amount of force applied to inject the composition may also include the dimensions (inner diameter, outer diameter, and / or length) of the catheter connecting the reservoir to the needle. Suitable peak loads for one-handed or two-handed injection are approximately 5 lbf (approximately 22 N) to approximately 25 lbf (approximately 111 N), for example, approximately 10 lbf (approximately 44 N) to approximately 20 lbf (approximately 89 N), for example, approximately 15 lbf (approximately 67 N). The load measured at a given gel concentration may vary depending on the needle and flow rate.
[0069] According to some aspects of this disclosure, the needle dimensions can be selected based on the viscosity and composition of the composition, or conversely, the viscosity and composition of the composition can be selected based on the needle dimensions. In addition, if a catheter tube is present, the dimensions of the catheter tube (inner diameter, outer diameter, and / or length) can affect the type and amount of force applied to the composition during injection. These parameters can be taken into consideration based on the properties of the composition and the needs of the patient. According to some aspects of this disclosure, the needle dimensions may be 23 gauge or 25 gauge. In some aspects, larger dimensions such as 20 gauge, 21 gauge, and 22 gauge may also be used to inject the compositions of this application.
[0070] The compositions of this application may be used in a variety of medical procedures, such as the resection of tissues of the gastrointestinal tract, respiratory system, and / or genitourinary system. The tissues resected in such medical procedures may include pathological or damaged tissue, non-pathological tissue, or a combination thereof. Exemplary tissue resection procedures include endoscopic mucosal resection (EMR) and endoscopic submucosal dissection (ESD). In these procedures, an endoscope is generally inserted into the patient's esophagus and advanced through the gastrointestinal tract to reach target tissue in the esophagus, stomach, or small intestine. EMR is generally used for the removal of tissues less than 2 cm in diameter, for example, for tissue biopsy, or for the removal of damaged or pathological tissue (e.g., cancerous lesions), while ESD is generally used for the removal of larger lesions.
[0071] In some embodiments, a continuous solid or semi-solid gel composition is prepared as described above and injected between two layers of tissue, for example, between the upper mucosal layer and the lower muscularis propria at the target treatment site. The composition is injected into the submucosal space (submucosa) beneath a portion of the tissue, and the injected gel can separate the mucosal tissue from the muscularis propria and lift the mucosal tissue layer. The portion of the tissue can then be removed using a suitable cutting device, such as an electrocautery device like a knife, a snare, scissors, or forceps. To remove a larger portion of tissue (e.g., using ESD), the composition is injected beneath the portion of tissue, and the gel lifts the upper layer of the tissue from the lower layer. The portion of tissue can then be removed by cutting around it using a cutting device. The composition can also be injected into the submucosa to assist in the removal of further portions of the tissue. In some embodiments, the composition can maintain the separation of tissue layers throughout the entire excision procedure. A portion of the gel composition may be removed by the excision process. After tissue excision, any remaining portion of the gel composition may be washed away from the site with water or saline solution, or it may diffuse naturally into the tissue.
[0072] Figures 2A–2E illustrate excision procedures according to several embodiments of the present disclosure, such as EMR or ESD described above, or other preferred medical procedures for excising tissue. Figure 2A shows a cross-section of two portions of tissue or tissue layers 80,82, which are separated by an intermediate layer 81 of the tissue (for example, the upper mucosa and lower muscularis propria are separated by an intermediate submucosal layer). One or both of the tissues 80,82 contain tissue 85 to be removed. For example, the portion of tissue 85 contains damaged or pathological tissue, or tissue to be biopsied and analyzed. In the example of Figure 2A, the portion of tissue 85 is located toward the tissue surface, but the tissue can be removed from the internal tissue layers using the apparatus and compositions of the present disclosure.
[0073] As shown in Figure 2B, an endoscope 100 forming one or more lumens (for example, three or more lumens as shown) is used to deliver the needle 70 to the target site. The needle 70 has a hollow lumen and a sharp, inclined needle tip 72 for puncturing the tissue surface, with the needle tip 72 located in an intermediate layer 81 between the upper and lower parts of the tissue 80,82. The lumen of the needle is in communication with a fluid reservoir, such as a syringe or another reservoir, containing a continuous solid gel composition 90 prepared as described above. The syringe is used, as shown in Figure 2B, to inject the composition 90 into the intermediate layer 81 between the parts of the tissue 80,82 to form a gel cushion or bleb. Once the composition 90 is injected, the volume of the gel 90 separates the upper and lower parts of the tissue 80,82, and the part of the tissue 85 is lifted from the tissue below it. As shown in Figures 2C and 2D, a portion of the tissue 85 is cut and removed using an electrocautery snare 74 or other cutting device 74 (for example, an electrocautery knife, scissors, or forceps, among other suitable cutting devices). As shown in Figure 2E, once the portion of tissue 85 is removed, the portion of the gel 90 naturally diffuses into one or more of the tissue layers 80, 81, and 82.
[0074] Other aspects and embodiments of this disclosure will be understood by those skilled in the art by carrying out embodiments of this disclosure in consideration of the specification. Although certain features of this disclosure are described in the context of illustrative tissue resection procedures, compositions, systems, and methods may also be used in other medical devices based on the general principles described above. (Examples) The following embodiments are intended to illustrate the disclosure, not to limit it. It is understood that the disclosure also includes additional aspects and embodiments consistent with the above description and the following embodiments.
[0075] (Example 1) This example describes an exemplary method for preparing a gel composition according to the embodiment of the present disclosure. A preliminary mixture was formed by adding 1.125 g of KelcogelCG-LA gellan gum and 0.01 g of FD&C Blue 1 to 899 g of water. The preliminary mixture was heated with stirring until it reached 75°C. Next, 8.1 g of sodium chloride and 0.132 g of calcium chloride dihydrate were added to the heated preliminary mixture and mixed to form a mixture. The mixture was then introduced into a 10 cc syringe barrel. The filled syringe was sterilized by autoclaving at approximately 122°C for approximately 30 minutes.
[0076] The viscosity in the syringe was tested using a cone-plate rheometer (DHR-1: TA-Instruments) with a 60 mm cone having a cone angle of 01:01:01 degrees:minutes:seconds and a truncation gap of 28 μm. Before testing, a minimum of 1.00379 mL of the test sample was injected into the Peltier plate through a 23-gauge orifice, and the plate was held at 37°C for a minimum of 60 seconds. Next, the cone was held at each shear rate for a minimum of 30 seconds, with viscosity data recorded once per second, and the average of the viscosity data values collected at each shear rate was used as the viscosity at that shear rate.
[0077] Shear rate 130s -1 The average viscosity obtained was 0.0205 Pa·s, and the shear rate was 768 s². -1 The average viscosity obtained was 0.0086 Pa·s. This specification and the examples are intended to be illustrative only, and the true scope and spirit of this disclosure are set forth by the following claims.
Claims
1. A medical device comprising a syringe barrel, a plunger, and an injectable viscous release agent loaded into the syringe barrel, wherein the injectable viscous release agent contains water, gellan gum, a first salt containing a monovalent cation, a second salt containing a divalent cation, and a coloring agent, the molar ratio of the monovalent cation to the divalent cation being 5 to 200, and the injectable viscous release agent being sterilized in the syringe barrel by a sterilization process.
2. The medical device according to claim 1, wherein the injectable viscous deconstrictor is injected between the upper and lower parts of the mucosal layer at a target treatment site to lift the upper part of the mucosal layer so that the upper part of the mucosal layer separates from the lower part of the mucosal layer.
3. The medical device according to claim 1 or 2, wherein the sterilization step is performed using an autoclave.
4. The medical device according to any one of claims 1 to 3, wherein the injectable viscous release agent has a first viscosity at a first shear rate and a second viscosity at a second shear rate, and when the first shear rate is greater than the second shear rate, the first viscosity is less than the second viscosity.
5. The medical device according to any one of claims 1 to 4, further comprising a needle through which the injectable viscous release agent is injected.
6. The medical device according to claim 5, wherein the needle is a 23-gauge needle.
7. The medical device according to any one of claims 1 to 6, wherein the injectable viscous peeling agent is a submucosal peeling agent.
8. The medical device according to any one of claims 1 to 6, wherein the injectable viscous dissecting agent is a submucosal dissecting agent used in endoscopic mucosal resection or endoscopic submucosal dissection.
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