Swellable gelatin composition
A crosslinked gelatin composition in multiparticulate form with a fractured amorphous shape addresses the limitations of existing gelatin delivery methods by offering stable, injectable, and easily administered particles with controlled swelling and mechanical properties, enhancing cell adhesion and proliferation.
Patent Information
- Application Number
- JP2022577470
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-06-19
- Filing Date
- 2021-06-21
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2041-06-21
AI Technical Summary
Current gelatin compositions for biomedical applications lack a minimally invasive, structurally stable delivery method that overcomes issues of viscosity, in vivo crosslinking, allergic reactions, rapid degradation, and limited control over mechanical properties and degradation time, while also providing controllable swelling and water absorption capacity.
A swellable composition comprising crosslinked gelatin in a multiparticulate form with a fractured amorphous shape, featuring specific sphericity and angularity, and containing crosslinkable functional groups, which is prepared by crosslinking, drying, and milling to achieve improved injectability and stability.
The composition provides stable, injectable gelatin particles with controlled swelling and mechanical properties, avoiding in vivo polymerization risks and enabling easy administration through small needles, with enhanced cell adhesion and proliferation, and improved storage stability.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to the field of gelatin hydrogels. More specifically, the present invention relates to swellable compositions comprising cross-linked gelatin in multiparticulate form that can be suitably used in a variety of applications, such as in the food industry, cosmetics, human and / or veterinary medicine, etc. [Background technology]
[0002] Gelatin is a naturally occurring biopolymer material with excellent cell interaction properties and the ability to form hydrogels. Due to its wide applicability and cost-effectiveness, it has been widely used in the food and pharmaceutical industries. As a result, this material has become one of the benchmarks in the fields of tissue engineering and biofabrication. However, because gelatin has an upper critical solution temperature below physiological temperature (plus or minus 30°C), natural gelatin hydrogels are unsuitable for biomedical applications such as tissue engineering. To be suitable for biomedical applications, it is necessary to enhance gelatin's stability and mechanical properties under physiological conditions. Therefore, several strategies have emerged to crosslink gelatin and improve its stability and mechanical properties. Current state-of-the-art crosslinking methods can be divided into three categories: physical, chemical, and enzymatic.
[0003] Physical cross-linking methods typically include high energy electron beam, gamma irradiation, plasma treatment, and / or thermal dehydration treatment.
[0004] Chemical methods include, for example, the use of EDC / NHS, formaldehyde, glutaraldehyde, genipin, and / or (meth)acrylamide. Enzymatic methods include, for example, the microbial transglutaminase method. Among these methods, chemical crosslinking provides for the formation of covalent bonds between gelatin polymer chains, resulting in more stable hydrogels and more controllable mechanical properties. In particular, the use of photocrosslinking strategies is of particular interest because these methods generally feature relatively mild conditions that enable cell encapsulation within the hydrogel. Furthermore, certain (high-resolution) additive manufacturing techniques, including stereolithography and two-photon polymerization (2PP), require photocrosslinking to structure materials. Known photocrosslinking strategies can generally be divided into two major categories depending on the crosslinking mechanism: chain-growth polymerization and step-growth polymerization.
[0005] Historically, the majority of photoinduced gelatin crosslinking strategies have been carried out using chain-growth polymerization (radical-mediated chain-growth photopolymerization). A frequently reported gelatin derivative in this regard is gelatin-methacrylamide (Gel-MOD or Gel-MA), in which the primary amine groups of gelatin are functionalized with methacryl anhydride to yield crosslinkable methacrylamides. Over the past decade, step-growth thiol-ene hydrogels, such as thiol-ene (photo)click hydrogels, have attracted increasing interest.
[0006] Although the general cross-linking of functionalized gelatin is advantageous in some applications as it increases in-vivo stability and improves mechanical properties, cross-linked gelatin is not suitable for injection due to the viscosity of the material obtained after swelling (it is not possible to administer cross-linked gelatin through a syringe needle).
[0007] Currently, some types of functionalized gelatin for tissue engineering applications are injected before crosslinking and then crosslinked in vivo, such as thiol-ene chemically modified gelatin. The possibility of in vivo crosslinking is usually provided by the presence of reactive species, such as photoinitiators, that cause polymerization and impart crosslinks. Furthermore, injectable, stable gelatin-based compositions contain free radicals in vivo, which leads to the presence of reactive oxygen species after implantation. These reactive species can be harmful to cells.
[0008] Other current injectables use thermoresponsive polymers with trigger materials that exhibit a LCST (lower critical solution temperature) near body temperature. In the case of these injectables, their synthesis offers less control over their mechanical properties and degradation time, and therefore cannot be easily tailored as needed.
[0009] Furthermore, current state-of-the-art injectables contain collagen-based fillers. These fillers have several drawbacks. First, collagen-based fillers degrade rapidly in vivo due to the fact that the physical crosslinks are easily broken. Second, cases of allergic reactions after injection have been reported. Gelatin, which is derived from collagen, is less immunogenic than collagen due to the harsh extraction process performed, resulting in significantly fewer adverse allergic effects for gelatin.
[0010] Peptides can be used for injections because they exhibit shear-thinning effects, however, these small chains have been shown to be rapidly degraded in vivo.
[0011] Furthermore, current state-of-the-art injectable fillers, such as hyaluronic acid-based fillers, such as Juvederm™ or Restylane™, are expensive and do not contain the RGD sequence, also known as the arginine, glycine, and aspartic acid tripeptide, which promotes cell viability by interacting with integrins on cell membranes.On the other hand, gelatin-based fillers contain the RGD sequence, but are not injectable without the above-mentioned disadvantages. Summary of the Invention [Problem to be solved by the invention]
[0012] Thus, although advances in this field have provided improved functionalized gelatin types and methods of synthesis and injection, the current state of the art lacks a gelatin composition that allows for a minimally invasive and structurally stable delivery method while also overcoming the disadvantages mentioned above. [Means for solving the problem]
[0013] It is an object of the present invention to provide a gelatin-containing composition that enables a less invasive, cost-effective, and structurally stable method for cell delivery. A further object of the present invention is to provide a modified gelatin that avoids the drawbacks of the prior art. A further object of the present invention is to provide a hydrogel with controllable swelling and / or water absorption capacity. A further object of the present invention is to provide a gelatin-based composition that is thermally and chemically stable. Furthermore, it is an object of the present invention to provide a gelatin composition with improved storage stability, especially at elevated temperatures.
[0014] According to a first aspect of the present invention there is provided a swellable composition comprising gelatin that is in a crosslinked state prior to swelling, the swellable composition being in multiparticulate form and comprising gelatin particles having a fractured amorphous shape.
[0015] According to one embodiment of the invention, the particles have a Wadell mean sphericity Φ of up to 0.80. According to a further embodiment of the invention, the particles have a Wadell mean sphericity Φ of 0.20 to 0.80, preferably about 0.30 to about 0.70, more preferably about 0.40 to about 0.60.
[0016] Furthermore, according to one embodiment of the invention, the multiparticulate form comprises particles having a mean sphericity S of from about 1.100. According to a further embodiment of the invention, the particles have a mean sphericity S of from about 1.100 to about 1.500, preferably from about 1.200 to about 1.400.
[0017] According to a further embodiment of the invention, the particles have an angularity of at least 140. According to a further embodiment of the invention, the particles have an angularity of 140 to 950. According to a further embodiment of the invention, the particles have an average angularity of 250 to 550, preferably 300 to 500.
[0018] In a particular embodiment, the gelatin of the present invention comprises at least a first polymer chain having a crosslinkable functional group in the crosslinked state.
[0019] In further particular embodiments, the multiparticulate form comprises particles having a size of from about 0.1 μm to 2 mm, preferably from 1 μm to 1.5 mm, more preferably from 5 μm to about 1 mm, as determined by light microscopy.
[0020] In further particular embodiments, the crosslinkable functional groups are selected from methacrylate, acrylate, methacrylamide, acrylamide, norbornene, maleimide, thiol, EDC, genipin, glutaraldehyde, maleimide, furfuryl, glycidyl methacrylate, preferably methacrylamide, norbornene, thiol, and combinations thereof.
[0021] In further particular embodiments, the gelatin further comprises a second polymer chain selected from a synthetic polymer (eg, PEG), a polysaccharide, a recombinant chain, a protein, a peptide, a growth factor, and combinations thereof.
[0022] In a further particular embodiment, the gelatin comprises a plurality of first and / or second polymer chains.
[0023] According to a particular embodiment of the present invention, the gelatin has a degree of substitution of about 10% to 100%.
[0024] According to a particular embodiment of the present invention, the gelatin has a degree of cross-linking of about 10% to 100%, preferably 25% to 100%, more preferably 40% to 100%.
[0025] According to a second aspect, the present invention provides a swelling composition comprising a swellable composition according to the invention and at least one swelling agent.
[0026] In certain embodiments, the swelling composition has a viscosity, as determined by rheology, of greater than about 0 Pa.s to 200 Pa.s, preferably 10 Pa.s to 150 Pa.s, and more preferably 20 Pa.s to 120 Pa.s.
[0027] According to a further embodiment of the present invention, the swelling composition has a storage modulus of about 1000 Pa to about 3000 Pa, preferably about 1500 Pa to about 2500 Pa.
[0028] According to a further aspect of the present invention, there is provided a method for preparing a swellable composition, comprising the steps of: (a) providing a cross-linked gelatin; (b) crosslinking the gelatin of step (a) to obtain crosslinked gelatin; (c) drying the cross-linked gelatin obtained in step (b); (d) milling the dried gelatin obtained in step (c) to obtain a multiparticulate form comprising gelatin particles having a fractured amorphous shape; Including, Thereby a method is provided for obtaining a swellable composition as defined in another embodiment according to the present invention.
[0029] In one embodiment of the present invention, the method further comprises a step (d) of grinding the dried gelatin, thereby obtaining particles having a Wadell's average sphericity Φ of 0.20 to 0.80, preferably about 0.30 to about 0.70, more preferably about 0.40 to about 0.60.
[0030] In certain embodiments, the method further comprises the step of: (f) adding to the swollen composition obtained in step (e) an ingredient selected from (stem) cells, a pharmaceutically active compound, or a growth factor, or a combination thereof.
[0031] In a further particular embodiment, in step (b), the gelatin is cross-linked in the form of a film or sheet, or the cross-linking can be carried out in bulk.
[0032] According to a further embodiment of the present invention, in step (c) the cross-linked gelatin is dried using a method selected from the non-exclusive list of techniques: air drying, vacuum drying, freeze drying, spray drying. In a preferred embodiment according to the present invention the cross-linked gelatin is freeze dried.
[0033] In a further particular embodiment, step (d) is carried out in the presence of liquid nitrogen.
[0034] In a further particular embodiment, in step (d), the cross-linked gelatin is ground to a particle size of about 0.1 μm to 2 mm, preferably 1 μm to 1.5 mm, more preferably 5 μm to 1 mm.
[0035] In a further aspect, the present invention provides a swellable composition as defined in accordance with other related embodiments, or a swelling composition as defined in accordance with other related embodiments, for use in human and / or veterinary medicine.
[0036] In a further aspect, the present invention provides a swellable composition as defined in accordance with the present invention, or the use of a swelling composition as defined in accordance with the present invention in the food industry, cosmetics.
[0037] In certain embodiments, the present invention provides a swellable composition as defined in accordance with the present invention, or the use of a swellable composition as defined in accordance with the present invention in drug delivery and / or cell delivery, and / or as a growth factor delivery.
[0038] In a further particular embodiment, the present invention provides the use of a swellable composition as defined in accordance with the present invention, or a swelling composition as defined in accordance with the present invention, as a cosmetic filler.
[0039] In a further particular embodiment, the present invention provides the use of a swellable composition as defined in accordance with the present invention, or a swellable composition as defined in accordance with the present invention, as a gelling or thickening agent in the preparation of a cream or ointment.
[0040] In a further particular embodiment, the present invention provides the use of a swellable composition as defined in accordance with the present invention, or a swellable composition as defined in accordance with the present invention, as an extracellular matrix mimetic.
[0041] In further particular embodiments, the present invention provides the use of a swellable composition as defined in accordance with the present invention or a swellable composition as defined in accordance with the present invention as a composition in tissue engineering applications such as, but not limited to, aesthetic treatments, large volume tissue reconstruction, small volume tissue reconstruction, fat grafting, lipofilling, burns, dental applications, cartilage and bone tissue engineering, soft tissue engineering, e.g., adipose, spinal, cardiac, etc. tissue engineering, muscle and tendon tissue engineering.
[0042] With specific reference now to the drawings, it is emphasized that the items shown are exemplary and are intended solely for the purpose of illustrative discussion of various embodiments of the invention. These drawings are presented to provide what is believed to be the most useful and simplest explanation of the principles and conceptual aspects of the invention. In this regard, no attempt has been made to show structural details of the invention in more detail than is necessary for a fundamental understanding of the invention. This description, taken together with the drawings, will make apparent to those skilled in the art how several forms of the invention may be practically embodied. [Brief explanation of the drawings]
[0043] [Figure 1] FIG. 1, also abbreviated as FIG. 1, shows measurements of the mechanical strength of swelling compositions according to the present invention and how they compare to Juvederm™. [Figure 2] FIG. 2, also abbreviated as FIG. 2, is a graph showing cell viability measurements of swelling compositions according to the present invention and how they compare to Juvederm™. [Figure 3] Figure 3, also abbreviated as Figure 3, shows two SEM images taken at 495x magnification of swellable gelatin particles according to the invention. [Figure 4] FIG. 4, also abbreviated as FIG. 4, shows optical microscope images of swellable gelatin particles (left) and swollen gelatin particles (right) according to the present invention. [Figure 5] Figure 5, also abbreviated as Figure 5, shows an optical microscope image of swellable gelatin particles not according to the invention, obtained using a water-in-oil emulsion followed by cross-linking. The particles obtained in Figure 5 have a characteristic spherical shape, in contrast to the shape of the particles of the invention, which are non-spherical. [Figure 6] Figure 6, also abbreviated as Figure 6, shows the results of viscosity measurements of swollen gelatin particles according to the invention at various time points, comparing viscosity at room temperature (RT) and refrigerated (6°C-8°C). [Figure 7]Figure 7A, also abbreviated as Figure 7A, shows the results of in vivo testing of a swollen composition combined with cells according to the present invention. Figure 7B, also abbreviated as Figure 7B, shows the results of in vivo testing of Juvederm™ combined with cells. [Figure 8] Figure 8, also abbreviated as Figure 8, shows the results of storage modulus measurements of swollen gelatin particles according to the invention (referred to in the legend as Particles (light grey)) compared to swellable gelatin particles (shown in Figure 5) which have a spherical shape (referred to in the legend as Spheres (black)). DETAILED DESCRIPTION OF THE INVENTION
[0044] The present invention will now be further described. In the following sections, different aspects of the present invention are defined in more detail. Each aspect thus defined can be combined with any other aspect(s) unless expressly indicated otherwise. In particular, any feature indicated as preferred or advantageous can be combined with any other feature(s) indicated as preferred or advantageous. When describing the compounds of the present invention, the terms used shall be interpreted according to the following definitions, unless the context dictates otherwise. As used herein, the term "about" or "approximately," when referring to a measurable value such as a parameter, amount, duration, etc., means to encompass a variation of no more than + / - 10% of the stated value, preferably no more than + / - 5%, more preferably no more than + / - 1%, and even more preferably no more than + / - 0.1%, as far as is appropriate for the practice of the disclosed invention. It should be understood that the value to which the modifier "about" or "approximately" refers is itself specifically, preferably disclosed. As used in the specification and the appended claims, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise. By way of example, "a compound" means one compound or more than one compound.
[0045] In the context of the present invention, as used herein, unless otherwise indicated, the term "swellable composition" is used to refer to a composition that can increase its volume by absorbing a swelling substance, e.g., a liquid such as water, plasma, etc.
[0046] In the context of the present invention, when the term "fractured amorphous shape" is used to refer to the shape of a particle or particles, it refers to a shape that does not have a clearly defined morphology, i.e., amorphous, which is characteristic of crushed or crushed materials. Crushed or crushed materials are characterized by the presence of faces and edges. In the context of the present invention, the term "fractured amorphous shape" should be understood to exclude spherical or ellipsoidal shapes that are not obtained by crushing or crushing.
[0047] In the context of the present invention, the term "sphericity" is used to refer to a property that describes how the shape of a particle, in this case a gelatin particle, compares to the shape of a perfect sphere. The sphericity of a particle can be calculated in various ways, such as the sphericity S and Wadell's sphericity Φ.
[0048] In the context of the present invention, as used herein, the term "sphericity (S)" is used to refer to a property that describes how the shape of a particle compares to that of a perfect sphere, where a perfect sphere has a sphericity (S) equal to 1. The sphericity (S) of a particle is defined as the ratio of abscissa / ordinate, where the abscissa is the maximum particle size and the abscissa is the diameter rotated 90 degrees from the abscissa. According to the present invention, the abscissa and the abscissa are measured based on SEM images of the particles.
[0049] In the context of the present invention, the term "Wadell's sphericity Φ" is used to refer to a property that describes how the shape of a particle compares to the shape of a perfect sphere, where a perfect sphere has a Wadell's sphericity Φ equal to 1. Wadell's sphericity is defined as follows:
number
[0050] In the context of the present invention, the term "angularity" is used to refer to a parameter that describes the variation in roundness at the corners of the particles under study.
[0051] In the context of the present invention, the term "comminute, grinding" is used to refer to reducing something to small particles or powder by crushing.
[0052] In the context of the present invention, as used herein, unless otherwise indicated, the term "swollen composition" is used to refer to a composition that has increased its volume as a result of absorbing a swelling substance, e.g., a liquid such as water, plasma, a buffer, etc.
[0053] In the context of the present invention, as used herein, unless otherwise indicated, the term "gelatin" is used to refer to a biomaterial typically obtained by hydrolysis of collagen, e.g., mammalian and fish collagen or recombinant gelatin.
[0054] In the context of the present invention, as used herein, unless otherwise indicated, the term "crosslinked state" is used to refer to a state characterized by the presence of (covalent) interactions between gelatin polymer chains, such as through chemical bonds. In other words, it refers to crosslinked gelatin.
[0055] In the context of the present invention, as used herein, unless otherwise indicated, the term "multiparticulate form" is used to refer to a form comprising a multiplicity of particles.
[0056] In the context of the present invention, as used herein, unless otherwise indicated, the term "particle size" is used to refer to the average size of the individual particles making up the composition according to the invention in multiparticulate form, the particle size being calculated by a sieving process or the like which then allows for a more precise identification of the crushed particles, which can also be quantified based on SEM imaging or μCT.
[0057] In the context of the present invention, unless otherwise specified, the term "crosslinkable functional group" is used herein to refer to the state of a functional group on a polymer chain that can provide interaction with another polymer chain.For example, the crosslinkable functional group according to the present invention is, but is not limited to, methacrylate, acrylate, methacrylamide, acrylamide, norbornene, maleimide, thiol, EDC, genipin, glutaraldehyde, maleimide, furfuryl, glycidyl methacrylate, preferably methacrylamide, norbornene, thiol and combinations thereof.
[0058] In the context of the present invention, as used herein, unless otherwise indicated, the term "moisture content" is used to refer to the water content expressed in % wt / vol, which means the weight of water relative to the total sample volume, expressed as a percentage.
[0059] In the context of the present invention, as used herein, unless otherwise indicated, the term "degree of substitution" is used to refer to the amount of crosslinkable moieties / functional groups on the gelatin backbone. H The amount of crosslinkable moieties / functional groups on the gelatin backbone can be calculated via NMR spectroscopy, OPA assay, or ninhydrin assay as described in J. Van Hoorick et al., 2018, AI Van Den Bulcke et al., 2000, or S. Van Vlierberghe et al., 2011.
[0060] In the context of the present invention, as used herein, unless otherwise indicated, the term "degree of cross-linking" is used to refer to the amount of cross-linked moieties on the gelatin backbone, which can be assessed via HRMAS NMR spectroscopy assay, as described in S. Van Vlierberghe et al., 2010.
[0061] In the context of the present invention, unless otherwise indicated, the term " swelling substance " used herein refers to the substance that can increase the volume of the swelling composition of the present invention by absorbing the substance.For example, the swelling substance of the present invention is but not limited to water, serum, lipid aspirate, intravenous fluid, NaCl solution, glucose solution, Hartmann's solution, stem cell solution, plasma, buffer solution (DMEM, HEPES, etc.), and combinations thereof.
[0062] The present invention provides a swellable composition comprising gelatin in a crosslinked state prior to swelling, the swellable composition being in a multiparticulate form and comprising gelatin particles having a fractured, amorphous shape, i.e., particles having an ill-defined shape or morphology. The gelatin particles according to the present invention have a shape suitable for crushed material, such as crushed glass or crushed stone, with edges, faces, and / or irregularities. Surprisingly, it has been found that the present invention provides swellable compositions with advantageous properties compared to the current state of the art, more specifically, stability and improved injectability after swelling. In particular, the swellable particles according to the present invention provide a more coherent gel (swollen composition) due to their shape. It is believed that the swellable particles according to the present invention provide higher external frictional forces compared to spherical / ellipsoidal particles, resulting in greater resistance to shear deformation and higher viscosity. Furthermore, the presence of rougher surfaces and / or edges improves cell adhesion and proliferation. This is in contrast to swellable and swelling particles of the current state of the art, which have a spherical shape and do not offer the advantages mentioned above. According to a preferred embodiment of the present invention, the gelatin particles in the swellable composition according to the present invention have a fractured amorphous shape and have a Wadell mean sphericity Φ of less than 1, preferably less than 0.95, preferably less than 0.90, preferably less than 0.85, preferably less than 0.80, preferably less than 0.75, preferably less than 0.70, preferably less than 0.60, preferably less than 0.55.
[0063] According to a preferred embodiment of the present invention, the particles have a Wadell mean sphericity Φ of up to 0.80. Surprisingly, it has been found that by providing gelatin particles according to this embodiment, better injectability after swelling can be provided compared to the current state of the art. According to an embodiment of the present invention, the particles have a Wadell mean sphericity Φ of 0.20 to 0.80, preferably about 0.30 to about 0.70, more preferably about 0.40 to about 0.60. Surprisingly, it has been found that by providing gelatin particles according to this embodiment, better injectability after swelling can be provided.
[0064] Furthermore, according to an embodiment of the present invention, the multiparticulate form comprises particles having a mean sphericity S of about 1.100, preferably about 1.100 to about 1.500, preferably about 1.200 to about 1.400. Surprisingly, it has been found that providing gelatin particles according to this embodiment can provide better injectability after swelling.
[0065] According to a further embodiment of the invention, the particles have an angularity of about 140.
[0066] In other words, the present invention provides a multiparticulate swellable composition comprising cross-linked gelatin. Furthermore, the swellable composition according to the present invention may be completely dried, meaning that the final swellable composition has a water content of about 0% w / v. The advantage of the swellable composition according to the present invention is that it is stable, and when the swellable composition comes into contact with the swelling agent, it provides a swellable composition with a thickness and viscosity that facilitates withdrawal from a syringe; in other words, it provides a swellable composition that can pass through a needle so that an appropriate amount can be more easily injected. In other words, the swellable composition according to the present invention and the swellable composition provide improved injectability. For example, for needles with diameters of 21 G to 30 G, the swellable composition according to the present invention can be dissolved in water at anywhere from 5% w / v to 15% w / v to obtain the correct viscosity for easy injection. However, those skilled in the art can determine the ideal water content for a composition depending on the intended use and / or the expected viscosity.
[0067] Furthermore, the swellable compositions of the present invention are easily stored and used because they are in a dry, multiparticulate form and require only contact with a swelling agent, which can be selected to meet the needs of a particular application in the food industry, cosmetics, human and / or veterinary medicine. Therefore, the swellable compositions of the present invention are ready-to-use compositions that do not require labor-intensive use and / or administration. The swellable compositions of the present invention offer improved storage stability, especially at elevated temperatures. When the swellable compositions are injected after swelling, the swellable compositions of the present invention do not require an in-vivo polymerization step because the compositions are already crosslinked before injection. This limits safety concerns for the compositions, as highly reactive and / or radical species exist only in a controlled ex-vivo environment, not in vivo. For example, when crosslinking gelatin compositions in vivo using UV irradiation with a UV initiator, the crosslinked composition may contain free radicals (oxygen radicals) that are harmful to cells. Furthermore, the swellable compositions of the present invention are completely stable at 37°C, allowing for slower, more controlled degradation of the material over time. Furthermore, it has been observed that the crosslinked state is such that some crosslinked compositions according to the present invention are insoluble in water at temperatures between about 0°C and 70°C.
[0068] Additionally, the swellable composition according to the present invention includes gelatin, which acts as a backbone. Gelatin has a low-cost, natural backbone containing the RGD sequence, also known as the arginine, glycine, and aspartic acid tripeptide, which promotes cell viability by interacting with integrins on cell membranes.
[0069] A further advantage of the swellable compositions of the present invention is that the microparticles act as a hydrogel upon swelling, making them ideal in vivo supports for delivering all nutrients to cells. According to certain embodiments of the present invention, the multiparticulate form comprises particles having a particle size of about 0.1 μm to 2 mm, preferably 1 μm to 1.5 mm, and more preferably 5 μm to about 1 mm. This particle size has been found to be advantageous in providing a swellable composition that can be easily injected. Furthermore, the smaller the particle size, such as about 1 μm to 200 μm, the faster / easier the swelling. To facilitate the injection of the swellable composition through a small needle, such as a 30 G needle, the particle size of the swellable composition is preferably adjusted to at least 150 μm, preferably at least 100 μm.
[0070] The crosslinked state that provides the swellable composition can be obtained by various techniques that are part of the current state of the art, such as physical crosslinking, chemical crosslinking, and enzymatic crosslinking. Physical crosslinking methods include energetic electron beam, gamma irradiation, plasma treatment, and thermal dehydration treatment, while chemical crosslinking methods include EDC, formaldehyde, glutaraldehyde, genipin, and acrylamide. Enzymatic methods include the microbial transglutaminase method. Among these methods, the use of a photocrosslinking strategy is particularly preferred.
[0071] According to certain embodiments of the present invention, the gelatin has a degree of substitution, which can be calculated / measured, for example, via the methods described above, from about 10% to 100%.
[0072] According to a particular embodiment of the present invention, the gelatin has a degree of cross-linking, which can be calculated / measured, for example, via the methods described above, to about 10% to 100%, preferably 25% to 100%, more preferably 40% to 100%.
[0073] In a preferred embodiment of the present invention, the gelatin comprises at least a first polymer chain having a crosslinkable functional group in the crosslinked state. The at least a first polymer chain can enhance the mechanical stability of the swollen final composition. The use of crosslinkable functional groups such as methacrylate, acrylate, methacrylamide, acrylamide, norbornene, maleimide, thiol, EDC, genipin, glutaraldehyde, maleimide, furfuryl, glycidyl methacrylate, preferably those selected from methacrylamide, norbornene, thiol, and combinations thereof, can provide interaction between the polymer chains. The gelatin backbone of the composition according to the present invention slowly degrades over time, resulting in a more stable hydrogel and more controllable mechanical properties.
[0074] According to an embodiment of the present invention, the swelling composition and / or swellable composition comprises gelatin containing crosslinkable functional groups that are methacrylamide and norbornene.
[0075] Furthermore, according to a preferred embodiment of the present invention, the swelling composition and / or swellable composition comprises gelatin whose crosslinkable functional groups are methacrylamide and norbornene, and the gelatin has a degree of substitution of about 66% methacrylamide and 34% norbornene.
[0076] Furthermore, according to one embodiment of the present invention, the swelling composition and / or swellable composition comprises gelatin whose crosslinkable functional groups are methacrylamide and norbornene, and the gelatin has a degree of substitution of about 39% methacrylamide and 61% norbornene.
[0077] According to a further embodiment of the present invention, the gelatin further comprises at least a second polymer chain selected from a synthetic polymer (e.g., PEG), a polysaccharide, a protein, a peptide, a growth factor, and a combination thereof. In a further embodiment, the gelatin comprises multiple first and / or second polymer chains. This embodiment allows for further tuning of the mechanical properties of the swellable composition, allowing it to be designed to better suit specific applications. Furthermore, degradability, mechanical strength, and swelling properties can all be improved or tailored by adjusting the material of the composition as needed by selecting the most appropriate combination of polymer chain type and functional groups attached to the chain. For example, if particles are required to react in vivo, gelatin can be modified, for example, by adding norbornene groups so that the particles can react in vivo via thiolated compounds present in, for example, plasma. Furthermore, according to the present invention, the proposed material of the swellable composition can be provided so that the swellable composition is degradable in vivo via matrix metalloproteinases present in the extracellular matrix (ECM).
[0078] According to a further aspect, the present invention also relates to a swelling composition obtained by swelling the swelling composition according to any one of the preceding embodiments. Accordingly, the present invention provides a swelling composition comprising a swelling composition and a swelling agent. In particular, the swelling composition is suitable for injection. The swelling composition according to the present invention provides mechanical strength similar to that of Juvederm™. Furthermore, the swelling composition of the present invention can be adjusted to achieve even higher mechanical strength and improved viability of encapsulated cells, if necessary.
[0079] According to one embodiment of the present invention, the swelling composition has a viscosity of greater than about 0 Pa s to 200 Pa s, preferably 10 Pa s to 150 Pa s, more preferably 20 Pa s to 120 Pa s.
[0080] According to a further embodiment of the present invention, the swelling composition has a storage modulus of about 1000 Pa to about 3000 Pa, preferably about 1500 Pa to about 2500 Pa.
[0081] According to one embodiment of the present invention, the swelling composition can be contacted with a swelling agent to provide the swelling composition, and the swelling agent can be selected from water, serum, lipid aspirate, intravenous fluid, NaCl solution, glucose solution, Hartmann's solution, stem cell solution, plasma, buffer (DMEM, HEPES, etc.), and combinations thereof, preferably lipoaspirate.
[0082] In a further aspect, the present invention provides a method for preparing a swellable and / or swellable composition, comprising the step (a) of providing a crosslinkable gelatin. In this step, the gelatin may be modified to include, for example, crosslinkable functional groups, or may be provided already modified. In fact, the crosslinkable functional groups may be any functional groups that can be crosslinked by chemical, physical, or enzymatic crosslinking methods. Preferably, the gelatin is modified to obtain a chemically crosslinked film. To achieve better swelling capacity, in certain embodiments of the present invention, the gelatin in step (a) has a water content of about 1% to 40% w / v, preferably 2% to 30% w / v, and more preferably 5% to 25% w / v. It has been found that this water content provides better subsequent swelling capacity. Furthermore, it has been found that the higher the w / v %, the more difficult it is to completely dissolve the gelatin in water, and of course sufficient dissolution is required for efficient subsequent crosslinking.
[0083] A further step is (b) crosslinking the gelatin of step (a) to obtain crosslinked gelatin. In this step, the gelatin is crosslinked by the most appropriate method to achieve interaction between the gelatin chains. Chemical crosslinking is preferred. Preferably, both chain-growth and step-growth polymerization methodologies can be used, for example, with various types of starting materials having various crosslinkable functional groups and polymer chains. Alternatively, already crosslinked gelatin can be provided. In the case of chemical crosslinking using UV irradiation, it has been found preferable to prepare a 2D sheet of starting material for crosslinking containing a photoinitiator, and then irradiate the 2D sheet with UV light to crosslink the polymeric material, thus obtaining crosslinked gelatin. According to a further embodiment of the present invention, the above method further comprises that in step (b), the gelatin provided in step (a) is crosslinked, preferably in the form of a film or sheet. However, other shapes can also be used. For example, crosslinking can be performed in bulk, such as when the gelatin is in a flask. The composition of the starting material can be adjusted by using different polymerization techniques or by varying the degree of substitution of gelatin, so that the swellable and swelled compositions according to the invention have specific desired properties.
[0084] A further step is (c) drying the cross-linked gelatin obtained in step (b). According to a further embodiment of the present invention, in step (c) the cross-linked gelatin is dried using a method selected from the non-exclusive list of techniques: vacuum drying, air drying, freeze drying, spray drying. If the cross-linked gelatin is spray dried, a particle formation step is required. According to a preferred embodiment of the present invention, the cross-linked gelatin is freeze-dried.
[0085] The method according to the present invention further provides the step (d) of milling the dried gelatin obtained in step (c) to obtain a multiparticulate form having gelatin particles with a Wadell's mean sphericity Φ of up to 0.80, preferably between 0.20 and 0.80, more preferably between about 0.30 and about 0.70, more preferably between about 0.40 and about 0.60, thereby obtaining a swellable composition defined according to any one of the previous embodiments of the present invention.
[0086] The grinding is provided to be carried out until the desired particle size is achieved. In an advantageous embodiment, liquid nitrogen is poured onto the dried cross-linked gelatin to obtain a brittle material that can then be easily ground. The grinding step (d) can be carried out in the presence or absence of liquid nitrogen.
[0087] This method for preparing swellable and / or swelled compositions makes it possible to achieve multiparticulate forms characterized by non-spherical particles. In contrast to other methods of the current state of the art, the method according to the invention makes it possible to obtain crosslinked gelatin particles that improve their injectability after swelling.
[0088] According to one embodiment of the present invention, in step (d), the dried gelatin is ground to a particle size of about 0.1 μm to 2 mm, preferably 1 μm to 1.5 mm, more preferably 5 μm to 1 mm. This particle size is advantageous for facilitating administration of the swelling composition. According to a particular embodiment of the present invention, the method further comprises that the grinding step (d) is carried out in the presence of liquid nitrogen.
[0089] After the milling step, a swellable composition according to the present invention is obtained, which is in multiparticulate form and can be used immediately, with or without cells, or stored prior to use (e.g., in phosphate buffered saline, distilled H2O, autologous plasma, lipoaspirate, etc.).
[0090] According to an embodiment of the present invention, a method for producing a swelling composition is provided herein, and the method for obtaining a swelling composition according to the present invention further comprises the step of (e) adding a swelling agent to the swelling composition obtained in step (d), thereby obtaining a swelling composition. In certain embodiments, the swelling agent can be selected from the following list, including, but not limited to, water, serum, lipid aspirate, intravenous fluid, NaCl solution, glucose solution, Hartmann's solution, stem cell solution, plasma, buffer (DMEM, HEPES, etc.), and combinations thereof. Preferably, the swelling agent is lipoaspirate.
[0091] According to one embodiment of the present invention, the method further comprises step (f) of adding a component selected from, but not limited to, stem cells, a stromal vascular fraction, or a combination thereof, to the swelling composition obtained in step (e). Various components can be added to the swelling composition according to the present invention, for example, before injection, to perform specific functions. For example, most notably, components that must be added separately can be introduced into the swelling composition after the swelling agent. For example, the stromal vascular fraction can be added after swelling has occurred.
[0092] According to a further aspect of the present invention there is provided the use of a swellable composition as defined in any one of the preceding embodiments and / or a swellable composition obtained therefrom in, but not limited to, the food industry, the cosmetics industry, human and / or veterinary medicine, etc.
[0093] In certain embodiments, the use of the swellable compositions and / or compositions derived therefrom in human and / or veterinary medicine may be for drug delivery and / or cell delivery, but also as fillers, such as cosmetic fillers. In further specific embodiments of the present invention, the swellable compositions and / or compositions derived therefrom described herein may be used as gelling or thickening agents in the preparation of creams or ointments, for example, as alginate substitutes in the food industry, or in the preparation of creams or ointments in the cosmetics industry, without intending to exhaustively list the possible uses thereof.
[0094] According to a preferred embodiment of the present invention, the swellable composition and / or the swellable composition derived therefrom is used as an extracellular matrix mimic.
[0095] According to further embodiments of the present invention, there is provided herein the use of the swellable composition and / or swellable compositions derived therefrom as compositions in tissue engineering applications such as aesthetic treatments, large volume tissue reconstruction, small volume tissue reconstruction, fat grafting, lipofilling, burns, dental applications, cartilage and bone tissue engineering, soft tissue engineering (adipose, spinal, cardiac, etc.), muscle and tendon tissue engineering, etc. [Example]
[0096] Experimental part Materials and Methods Gelatin type B (Gel-B), isolated from bovine skin by alkaline treatment, was supplied by Rousselot (Ghent, Belgium). 1-Ethyl-3-(3-dimethylaminopropyl)carbodiimide (EDC), N-acetylhomocysteine thiolactone, ethylenediaminetetraacetic acid (EDTA), 5-norbornene-2-carboxylic acid, and methacrylic anhydride were purchased from Sigma-Aldrich (Diegem, Belgium). Dimethyl sulfoxide (DMSO) and N-hydroxysuccinimide (NHS) were obtained from Acros (Geel, Belgium). Spectrapor dialysis membranes MWCO 12,000–14,000 Da were purchased from Polylab (Antwerp, Belgium). Dulbecco's modified Eagle's medium (DMEM), Glutamax, fetal bovine serum (FBS), 1% penicillin / streptomycin, and TrypLE (consisting of 0.025 trypsin and 0.01 EDTA) were obtained from Gibco, Life Technologies (CA, USA). Calcein-acetoxymethyl ester (Calcein-AM), propidium iodide (PI), and Bodipy stains were supplied by Sigma-Aldrich.
[0097] Equipment: Freeze dryer: Christ freeze-dryer alpha I-5; NMR: A Bruker WH 500 MHz
[0098] Synthesis of GelMODNB According to this example, the synthesis of GELMODNB polymers with low and high degrees of substitution is described, in particular GELMODNB polymers with DS 39 / 61 and GELMODNB DS 66 / 34 (ratio methacrylamide / norbornene).
[0099] In the first step, gelatin is methacrylated according to the protocol originally reported by Van den Bulcke et al., 2000. [ka] gelatin 1 hour, pH 7.8
[0100] 100 g of gelatin B (38.5 mmol amine) was dissolved in 1 L of phosphate buffer at 40 °C under mechanical stirring. Next, either 1 (5.736 mL; 38.5 mmol) or 0.75 (4.302 mL; 28.875 mmol) equivalents of methacrylic anhydride relative to the primary amines of the gelatin were added, and the solution was then vigorously stirred for 1 h. After 1 h, 1 L of Milli-Q was added to the reaction mixture. The solution was dialyzed (with five changes of water) using a Milli-RO (Spectrapor 4: 12 kDa to 14 kDa cutoff) at 40 °C for 24 h. The solution was then transferred to a Petri dish at room temperature, and the gelatin was allowed to gel. Once gelled, the Petri dish was frozen at -20 °C, and the ice could then be removed by lyophilization, yielding modified gelatin with a degree of substitution between 60% and 70%.
[0101] The dried GelMOD was then used in the next step, where norbornene functional groups were added to the remaining free amines. To this end, 1.2 equivalents (relative to the primary amines in gelatin type B) of 5-norbornene-2-carboxylic acid were dissolved in 50 ml of DMSO at room temperature (see J. Van Hoorick et al., 2018). After complete dissolution, 0.75 equivalents (relative to the amount of amines present in the gelatin) of 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (EDC) were added to the solution, followed by degassing. After 5 minutes, 1.125 equivalents of N-hydroxysuccinimide (NHS) were added to the solution. After 25 hours of reaction, the activation solution was added to the GelMOD solution (see below) and allowed to react overnight, thus obtaining GelMODNB. To obtain the GelMOD solution, 10 g of GelMOD was dissolved in 150 ml of dry DMSO at 50 °C under inert atmosphere and reflux conditions for 4 hours. After adding the activation solution to GelMOD, the setup was degassed three times and placed under an argon atmosphere. Upon completion of the reaction, GelMODNB was obtained. The material was precipitated in a 10-fold excess of acetone and filtered on a paper filter with 12 μm to 15 μm pore sizes. It was washed with acetone, redissolved in milliQ, and dialyzed (Spectrapor 4: 12 kDa to 14 kDa cutoff). The water was changed five times over 24 h. After dialysis, the pH of the solution was adjusted to 7.4 using 1 M NaOH solution, and the solution was clarified. The material was then frozen and lyophilized to remove the water (Christ Lyophilizer αI-5). The pressure and temperature in the lyophilizer were reduced to 0.37 mbar and -80 °C, respectively, to remove ice crystals inside the material by sublimation.
[0102] GelMODNB with different degrees of substitution can be obtained by applying the above procedure and changing the equivalents of methacrylic anhydride and / or 5-norbornene-2-carboxylic acid and other reagents as needed.
[0103] Characterization of GelMODNB The degree of primary amine substitution (DS) of gelatin with norbornene and methacrylamide functional groups was determined by 1H NMR spectroscopy according to the method described in J. Van Hoorick et al., 2018, and Van Den Bulcke et al., 2000. Deuterium oxide (DO) was used as the solvent at 40 °C on a Bruker WH 500 MHz.
[0104] GelMODNB powder First, a 10 wt / vol% solution of the above synthesized materials was dissolved in a vial in milliQ at 40°C. After complete dissolution, 0.6 mmol of photoinitiator (lithium phenyl-2,4,6-trimethylbenzoylphosphinate; Li-TPO) was added. The materials were then placed between two glass plates, separated by a 1 mm spacer, and exposed to UV-A (+ / - 9.5 mW / cm). 2 ) light for 30 minutes. Therefore, the total UV-A dose was 17.1 J / cm 2 After UV curing, the samples were frozen, subsequently freeze-dried, and then crushed to the desired particle size of 1 μm to 150 μm. The crushing process uses liquid nitrogen to make the material more brittle.
[0105] mechanical analysis The storage modulus (G'), which indicates the elastic properties of the material, was determined using a rheometer (Physica MCR-301; Anton Paar, Sint-Martens-Latem, Belgium). A 10% wt / vol solution of the powder was prepared in milliQ water. The material was benchmarked against Juvederm™. 300 μL of this solution was placed between the plates using a 0.3 mm gap setting. The edges were then trimmed and sealed with silicone grease (Mittelviskos) (Bayer, Sigma-Aldrich, Diegem, Belgium) to prevent the sample from drying out. To determine the mechanical strength, an oscillation frequency of 1 Hz and a strain of 0.1% were applied. The latter value is within the linear viscoelastic range, as determined by isothermal measurements (37 °C) of the storage modulus (G') and loss modulus (G'') as a function of deformation at a constant frequency (1 Hz) and varying strain (0.01% to 10%).
[0106] Cell encapsulation experiments Human adipose stromal cells (ASCs) isolated from lipoaspirates were used in cell encapsulation experiments. For this purpose, the material was swollen in sterile PBS at 10% w / v. Cell encapsulation was performed by mixing the swellable composition with ASCs at a density of 10,000 cells / 100 μL. Using a 96-well plate, 100 μL of the material was poured, to which an additional 100 μL of medium was added. This material was benchmarked against Juvederm™ and tissue culture plastic (TCP), where 10,000 cells were either incorporated into 100 μL of the material or directly seeded onto the well plate. The well plate was placed in a 37°C incubator in the presence of 5% CO2.
[0107] For differentiation assays, after 48 hours, the basal culture medium (DMEM, 10% FBS, 1% penicillin / streptomycin) was replaced with adipogenic differentiation medium (DMEM, 10% FBS, 1% penicillin / streptomycin, 1 μM dexamethasone, 200 μM indomethacin, 10 μg / mL insulin, 0.5 mM IBMX). The medium was refreshed every 2–3 days.
[0108] Live / dead cell viability assay The cytocompatibility of the encapsulated material obtained above was tested by a live / dead viability assay using calcein acetoxymethyl ester (Calcein-AM) and propidium iodide (PI) staining. For every 1 mL of PBS, 2 μl of calcein-AM and 2 μl of PI were added. A 96-well plate was used, and 0.15 mL of the solution was added to each well. The wells were incubated in the dark for 10 minutes under aluminum foil at room temperature. A fluorescence microscope equipped with a calcein green fluorescent protein (GFP) filter was used to visualize live cells. A Texas Red (TxRed) filter was applied, and dead cells were visualized using PI. Quantification of the live / dead ratio was achieved using ImageJ software, allowing for cell counting of both live and dead cells. The graphed results obtained in connection with the cell viability assay are shown in Figure 2.
[0109] adipogenic differentiation First, a stock solution of Bodipy (493 / 503) dye at 0.5 mg / mL (1.9 mM) was prepared in 100% ethanol. After Bodipy was completely dissolved, the stock solution was stored in an Eppendorf tube, frozen, and protected from light. Fluorescent staining was performed by thawing the Eppendorf vial containing the stock solution and dissolving 12 mL in 1 mL of serum-free medium. This solution was mechanically emulsified by vigorous mixing. Bodipy staining of cells was achieved by adding 75 μL of Bodipy solution to 75 μL of fresh medium in a 96-well plate containing this material and incubating for 15 minutes. Imaging was performed using a fluorescent microscope with a GFP filter.
[0110] SEM imaging The morphology of gelatin particles was obtained using a Phenom FEI (tungsten hairpin electron gun, backscattered electron detector) scanning electron microscope. To avoid charging of the samples, the surfaces were gold-plated plasma magnetron sputter-coated (automatic Sputter Coater K550X with RV3 two-stage rotary vane pump) before the measurements.
[0111] Sphericity and angularity Sphericity calculations were performed on the obtained SEM images using ImageJ software. For this purpose, the sphericity (S) was calculated by measuring the maximum particle size and the particle size at a 90-degree rotation. The sphericity (S) of a particle is defined as the ratio of the vertical axis to the horizontal axis, where the vertical axis is less than or equal to the horizontal axis.
[0112] Wadell's sphericity Φ was measured by drawing the largest inscribed and smallest circumscribed circles in the software and measuring the diameters of these resulting circles. Wadell's sphericity is defined as:
number
number
[0113] Stability Data A rheometer (Physica MCR-301; Anton Paar, Sint-Martens-Latem, Belgium) was used to determine the storage modulus (G') and viscosity at a given time point. A 10% wt / vol solution of the powder was prepared in milliQ water. 300 μL of this solution was placed between the plates using a 0.3 mm gap setting. To determine the mechanical strength, an oscillation frequency of 1 Hz and a strain of 0.1% were applied. Viscosity was measured as a function of shear rate and was measured at 0.1 s. -1 ~1000 s -1 Stability measurements were performed in triplicate.
[0114] In vivo data Swiss nude mice were injected submammarially with a swollen composition in the presence of human lipoaspirate-derived stromal vascular fraction and adipocytes, compared with Juvederm™ in combination with cells. After 3 months, mice were sacrificed and ex vivo histology was performed. All samples were fixed overnight in 4% paraformaldehyde, dehydrated in a graded alcohol series, cleared in toluene, and embedded in paraffin. Samples were sectioned at 5 μm thickness using a microtome (Reichert-Jung 2040), followed by deparaffinization, rehydration, and staining. To assess overall morphology, hematoxylin / eosin (HE) (VWR, ThermoFisher) was performed according to standard protocols.
[0115] Comparative Data - Spherical vs. the Present Invention Furthermore, Figure 8 shows the comparative results of storage modulus measurements of swollen gelatin particles according to the present invention (referred to in the legend as particles (light gray)) compared to spherically shaped swellable gelatin particles obtained via water-in-oil emulsion (shown in Figure 5). A rheometer (Physica MCR-301; Anton Paar, Sint-Martens-Latem, Belgium) was used to determine the storage modulus (G'), which indicates the elastic properties of the material. A 10% w / v solution of this powder was prepared in milliQ water. This material was benchmarked against spherical particles obtained via a water-in-oil emulsion, the same starting material as the particles described in this invention. A vibration frequency of 1 Hz and a strain of 0.1% were applied to determine the mechanical strength.
[0116] result Mechanical analysis results When the resulting gels were compared to Juvederm™ in terms of mechanical properties, the inventors were able to confirm that the GelMODNB gels obtained had similar mechanical strength compared to the benchmark Juvederm™, meaning that GelMODNB DS39 / 61 (gelatin with 39% methacrylamide and 61% norbornene substitution), GelMODNB DS66 / 34 (gelatin with 66% methacrylamide and 34% norbornene substitution), and GelMODNB DS66 / 34 with serum had similar mechanical strength, with the GelMODNB DS66 / 34 variant performing the best (see Figure 1).
[0117] Figure 1 shows that the mechanical strength of GelMODNB gel is comparable to that of Juvederm™, a well-established commercial cosmetic filler. It can be seen that differences exist in mechanical properties (e.g., between the DS39 / 61 and DS66 / 34 variants) depending on the liquid in which the material is swollen and the crosslinkable moiety. These differences suggest that the number of crosslinkable moieties is important for obtaining a successful injectable filler system.
[0118] Cell viability assay results and adipogenic differentiation The cell viability of encapsulated adipose-derived stem cells was assessed for TCP, Juvederm™, GelMODNB DS66 / 34, and GelMODNB DS66 / 34 with serum based on live / dead staining with calcein-AM and propidium iodide at different time points (days 1, 3, and 7). Here, we observed better cell morphology on our materials, with cell proliferation and superior viability compared to the benchmark Juvederm™. See Figure 2 for a graph. Figure 2 graphically demonstrates a significant increase in cell viability compared to Juvederm™. The % cell viability shows a clear advantage for our materials on day 3, especially day 7.
[0119] Imaging of cell viability (not shown) associated with the assay provided in Figure 2 further demonstrates that GelMODNB DS66 / 34 and GelMODNB DS66 / 34 with serum provide better cell viability, particularly a visible increase in the number of cells present in the material compared to Juvederm. Better cell viability allows the material according to the present invention to be advantageously used, for example, for tissue engineering purposes. Furthermore, imaging demonstrates that the material acts as an ECM mimic, allowing cells to begin developing their own ECM.
[0120] Further imaging of adipogenic differentiation (not shown) showed that cells encapsulated in the material according to the present invention spread in their correct morphology and had good proliferation potential, which can be attributed to both the biocompatibility of the material and the presence of RGD sequences. Furthermore, differentiation imaging demonstrated differentiation of adipose-derived stem cells into the adipogenic lineage. Bodipy staining was used to assess intracellular lipid droplets present only in (pre)adipocytes. Here, we observed a higher number of differentiated cells in GelMODNB DS 66 / 34 compared to Juvederm, which is most likely related to the lower viability of cells encapsulated in Juvederm at day 7.
[0121] SEM Imaging and Sphericity As can be seen in the SEM imaging in Figure 3, irregularly shaped particles with edge surfaces and high angularity were obtained. To this end, Wadell's sphericity was calculated, yielding an average value of 0.46 ± 0.28 for the particles according to the present invention. Furthermore, their shapes were further determined to have an average sphericity S of 1.302 ± 0.2159. Finally, the average angularity Ai of the samples was calculated to be 406.6 ± 271.9. Furthermore, Figure 4 shows optical microscope images of swellable gelatin particles (left) and swollen gelatin particles (right) according to the present invention.
[0122] Furthermore, Figure 5 shows an optical microscope image of swellable gelatin particles not according to the invention, obtained by using a water-in-oil emulsion and subsequent crosslinking. The Wadell sphericity of these spherical particles obtained by water-in-oil emulsion was also measured, and an average Wadell sphericity value of 0.93±0.04 was obtained. The difference in Wadell sphericity clearly shows that the gelatin particles obtained via water-in-oil emulsion have a shape similar to one of a sphere, in contrast to the gelatin particles according to the invention.
[0123] stability The dried particles were stored in a dry state for several months either at room temperature or in a refrigerator (6°C-8°C). The resulting storage modulus values can be seen in the table below.
[0124] [Table 1]
[0125] No significant difference was observed over time under either storage method. Therefore, it was concluded that the swelling composition was stable over time. Viscosity measurements of the swelling composition are shown in Figure 6.
[0126] In vivo data Due to its high resistance to shear deformation, the swollen composition remained localized, as shown in Figure 7A. Furthermore, compared to the benchmark Juvederm (Figure 7B), good vascularization can be observed alongside multiple adipocyte clusters.
[0127] Comparative Data - Spherical vs. the Invention Furthermore, Figure 8 shows the comparative results of storage modulus measurements of swollen gelatin particles according to the present invention (referred to in the legend as particles (light grey)) compared to swellable gelatin particles with a spherical shape (referred to in the legend as spheres (black)) obtained by water-in-oil emulsion (shown in Figure 5). The results demonstrate the positive effect of the fractured, amorphous shape of the gelatin particles on the swollen composition compared to swellable compositions containing spherical particles. The swollen composition from the present invention obtained higher mechanical strength compared to these spherical particles. Since the materials, water content, and degree of crosslinking are similar in both cases, the increase in storage modulus can be explained by higher external frictional forces, resulting in a more coherent gel. These higher frictional forces directly correlate with greater resistance to shear deformation.
[0128] References 1. J. Van Hoorick, P. Gruber, M. Markovic, M. Rollot, GJ Graulus, M. Vagenende, M. Tromayer, J. Van Erps, H. Thienpont, JC Martins, S. Baudis, A. Ovsianikov, P. Dubruel, S. Van Vlierberghe, Highly reactive thiol-norbornene photo-click hydrogels: toward improved processability, Macromol. Rapid Commun. 39 (2018) 1-7, https: / / doi.org / 10.1002 / marc.201800181 2. A.I. Van Den Bulcke, B. Bogdanov, N. De Rooze, E.H. Schacht, M. Cornelissen, H. Berghmans, Structural and rheological properties of methacrylamide modified gelatin hydrogels, Biomacromolecules 1 (2000) 31-38, https: / / doi.org / 10.1021 / bm990017d. 3. S. Van Vlierberghe, E. Schacht, P. Dubruel, Reversible gelatin-based hydrogels: Finetuning of material properties, Eur. Polym. J. 47 (2011) 1039-1047, https: / / doi.org / 10.1016 / j.eurpolymj.2011.02.015. 4. Van Vlierberghe, S., Fritzinger, B., Martins, J. C., & Dubruel, P. (2010). Hydrogel Network Formation Revised: High-Resolution Magic Angle Spinning Nuclear Magnetic Resonance as a Powerful Tool for Measuring Absolute Hydrogel Cross-Link Efficiencies. Applied Spectroscopy, 64(10), 1176-1180. https: / / doi.org / 10.1366 / 000370210792973550. 5. Wadell, H. (1935). Volume, Shape, and Roundness of Quartz Particles. The Journal of Geology, 43(3), 250-280. doi:10.1086 / 624298. 6. LEES, G. (1964), A new method for determining the angularity of particles. Sedimentology, 3: 2-21. https: / / doi.org / 10.1111 / j.1365-3091.1964.tb00271.x
[0129] Drawing translation Figure 1 Mechanical strength gels (Pa) bloodserum serum Figure 2 Cell viability (%) Cell viability (%) Day 1 serum serum Figure 6 Viscosity (Pa.s) Viscosity (Pa.s) Shear rate (1 / s) Month 1 Figure 7A Injected material Adipocytes fat cells Blood vessels with red blood cells Figure 7B Adipocyte cluster Small vasculature with red blood cells Figure 8 Storage Modulus (Pa) Spheres Particles
Claims
1. 1. A swellable composition comprising: It contains gelatin that is in a cross-linked state before swelling, A swellable composition, wherein the swellable composition is in multiparticulate form and comprises gelatin particles having faces and edges.
2. 10. The swellable composition of claim 1, wherein the particles have a Wadell mean sphericity Φ of up to 0.
80.
3. 3. The swellable composition of claim 2, wherein the particles have a Wadell mean sphericity Φ of 0.20 to 0.
80.
4. The swellable composition according to any one of claims 1 to 3, wherein the gelatin comprises at least one first polymer chain having a crosslinkable functional group in the crosslinked state.
5. 5. A swellable composition according to any one of claims 1 to 4, wherein the multiparticulate form comprises particles having a size of from 0.1 μm to 2 mm as determined by optical microscopy.
6. A swelling composition comprising the swelling composition according to any one of claims 1 to 5 and at least one swelling substance.
7. The swelling composition is -1 ~ 1000 s -1 7. The swelling composition of claim 6, having a viscosity of greater than 0 Pa s to 200 Pa s, as determined rheologically as a function of shear rate varying between 0 Pa s and 200 Pa s.
8. A method for preparing a swellable composition according to any one of claims 1 to 5, comprising the steps of: (a) providing a cross-linked gelatin; (b) cross-linking the gelatin of step (a) to obtain cross-linked gelatin; (c) drying the cross-linked gelatin obtained in step (b); (d) milling the dried gelatin obtained in step (c) to obtain a multiparticulate form comprising gelatin particles having faces and edges; thereby obtaining the swellable composition according to any one of claims 1 to 5.
9. 9. The method for preparing a swellable composition according to claim 8, wherein step (d) further comprises milling the dried gelatin, thereby obtaining particles having a Wadell average sphericity Φ of up to 0.
80.
10. Applying the method according to claim 8 or 9, and (e) adding a swelling agent to the swellable composition obtained in step (d), thereby obtaining a swollen composition.
11. 11. The method of claim 10, further comprising the step of: (f) adding to the swollen composition obtained in step (e) an ingredient selected from cells, stem cells, pharmaceutically active compounds, growth factors, or combinations thereof.
12. 12. The method according to any one of claims 8 to 11, wherein in step (b) the gelatin is crosslinked in the form of a film or sheet.
13. 13. The method according to any one of claims 8 to 12, wherein in step (c) the cross-linked gelatin is freeze-dried.
14. 6. The swellable composition according to any one of claims 1 to 5 for use in human and / or veterinary medicine, in the food industry, in cosmetics, in drug or cell delivery, or in growth factor delivery, or as a cosmetic filler, as a gelling or thickening agent in the preparation of creams or ointments, as an extracellular matrix mimetic, or as a composition in tissue engineering applications.
15. The swelling composition of claim 6 or 7 for use in human and / or veterinary medicine, the food industry, cosmetics, drug delivery or cell delivery, or growth factor delivery, or as a cosmetic filler, as a gelling or thickening agent in the preparation of creams or ointments, as an extracellular matrix mimetic, or as a composition in tissue engineering applications.
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