Modified 3D printed objects and their uses

JP2024518423A5Pending Publication Date: 2025-05-14LUNG BIOTECH PBC
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Patent Information

Application Number
JP2023568452
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-05-06
Filing Date
2022-05-06
Publication Date
2025-05-14

AI Technical Summary

Technical Problem

Existing 3D printed objects lack the ability to effectively adjust biocompatibility and mechanical properties post-processing, limiting their suitability for applications requiring cell adhesion and tissue growth.

Method used

The use of chemical treatments involving hydrolytic enzymes and hydroxide salts like NaOH, or proteolysis with proteases to modify polymeric scaffolds, such as those containing polymerized poly(ethylene glycol) di(meth)acrylate and collagen, to enhance cell affinity and mechanical properties.

Benefits of technology

These treatments increase cell adhesion and modify mechanical properties of 3D printed objects, making them more suitable for tissue engineering applications by enhancing cell interaction and structural integrity.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided herein are methods for modifying the mechanical and biological properties of polymeric materials. Also provided are compositions comprising polymeric materials having said properties.
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Description

[Technical field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Application No. 63 / 185,302, filed May 6, 2021, the entire contents of which are incorporated herein by reference. [Background technology]

[0002] The present disclosure includes post-processing of 3D printed objects to tailor their biocompatibility and mechanical properties using both chemical means and hydrolytic enzymes. These treatments are based on the premise that accelerated hydrolysis (by bases such as hydroxide salts (NaOH or KOH), by esterase enzymes, or by proteolysis using proteases) results in the generation of chemical moieties that are favorable for cell adhesion. The effect of these treatments is also to change the crosslink density of the material. The ability to post-process 3D printed objects to modify their properties provides an alternative to 3D printing materials with starting materials that already have the desired properties, or to modifying the printing method itself to change the material's properties.

[0003] The materials can be used to provide a polymeric scaffold that can be treated and activated as described herein to attract cells to the scaffold and used to grow tissue from a population of cells around the scaffold. Summary of the Invention

[0004] One aspect is a method of modifying a polymeric scaffold comprising polymerized poly(ethylene glycol) di(meth)acrylate moieties, polymerized poly(ethylene glycol) di(meth)acrylamide moieties, polymerized poly(ethylene glycol) (meth)acrylate / (methacrylamide) moieties, and mixtures thereof, the method comprising providing the polymeric scaffold; and contacting the scaffold with a hydrolytic or proteolytic agent.

[0005] One aspect is a method of increasing affinity of a polymeric scaffold for cells, the polymeric scaffold comprising polymerized poly(ethylene glycol) di(meth)acrylate moieties, polymerized poly(ethylene glycol) di(meth)acrylamide moieties, polymerized poly(ethylene glycol) (meth)acrylate / (methacrylamide) moieties, and mixtures thereof, the method comprising: providing the polymeric scaffold; and contacting the polymeric scaffold with a hydrolytic or proteolytic agent.

[0006] In some embodiments, the polymeric scaffold comprises a polymerized poly(ethylene glycol) diacrylate moiety. In some embodiments, the polymerized poly(ethylene glycol) diacrylate moiety comprises PEGDA3400, PEGDA575, or a mixture thereof.

[0007] In some embodiments, the polymeric scaffold further comprises polymerized collagen. In some embodiments, the polymerized collagen comprises a collagen-methacrylamide (colMA) moiety. In some embodiments, the polymeric scaffold further comprises polymerized hydroxypropyl acrylate (HPA). In some embodiments, the polymeric scaffold further comprises a polymerized UV initiator.

[0008] In some embodiments, the contacting step contacts the scaffold with a hydrolyzing agent. In some embodiments, the hydrolyzing agent comprises hydroxide ions. In some embodiments, the concentration of the hydrolyzing agent is from about 1 mM to about 25 mM, from about 25 mM to about 50 mM, from about 50 mM to about 100 mM, from about 100 mM to about 150 mM, from about 150 mM to about 300 mM, from about 300 mM to about 500 mM, from about 500 mM to about 1 M, from about 1 M to about 5 M, or greater than about 5 M.

[0009] In some embodiments, the scaffold is contacted with the hydrolyzing agent for about 1 minute to about 30 minutes, about 30 minutes to about 1 hour, about 1 hour to about 2.5 hours, about 2.5 hours to about 5 hours, about 5 hours to about 7.5 hours, about 7.5 hours to about 10 hours, about 10 hours to about 24 hours, about 24 hours to about 2 days, about 2 days to about 4 days, about 4 days to about 8 days, about 8 days to about 12 days, about 12 days to about 30 days, or more than about 30 days.

[0010] In some embodiments, the contacting step contacts the scaffold with a proteolytic agent. In some embodiments, the proteolytic agent is selected from esterase, collagenase, stromelysin, gelatinase, or hydrolase. In some embodiments, the concentration of the proteolytic agent is about 0.1 U to about 1 U, about 1 U to about 2.5 U, about 2.5 U to about 5 U, about 5 U to about 7.5 U, about 7.5 U to about 10 U, about 10 U to about 15 U, or more than about 15 U.

[0011] In some embodiments, the scaffold is contacted with the proteolytic agent for about 1 hour, about 1 hour to about 2.5 hours, about 2.5 hours to about 5 hours, about 5 hours to about 7.5 hours, about 7.5 hours to about 10 hours, about 10 hours to about 24 hours, about 24 hours to about 2 days, about 2 days to about 4 days, about 4 days to about 8 days, about 8 days to about 12 days, about 12 days to about 30 days, or more than about 30 days.

[0012] In some embodiments, the scaffold is a 3D printed scaffold. In some embodiments, the scaffold is solid. In some embodiments, the scaffold has a channel and a wall. In some embodiments, the channel has a width of about 200 μm to about 500 μm. In some embodiments, the wall has a width of about 150 μm to about 400 μm.

[0013] In some embodiments, contacting the scaffold with a hydrolytic or proteolytic agent increases the affinity of the scaffold for cells, hi some embodiments, the cells are selected from fibroblasts, endothelial cells, epithelial cells, and mixtures thereof.

[0014] In one aspect, there is provided a polymeric scaffold produced by the method of any of the embodiments herein.

[0015] In one aspect, a composition is provided that includes a hydrolytic or proteolytic agent; and a polymeric scaffold that includes polymerized poly(ethylene glycol) di(meth)acrylate moieties, polymerized poly(ethylene glycol) di(meth)acrylamide moieties, polymerized poly(ethylene glycol) (meth)acrylate / (methacrylamide) moieties, and mixtures thereof.

[0016] In some embodiments, the polymeric scaffold or composition further comprises cells, hi some embodiments, the cells of the polymeric scaffold or composition comprise lung fibroblasts (LFN), porcine aortic endothelial cells (PAEC), small airway epithelial cells (SAEC), or a mixture thereof.

[0017] In one aspect, there is provided a method of increasing actin coverage of a cell, comprising contacting the cell with a polymeric scaffold or composition of any of the embodiments herein, in which, in some embodiments, the cell is selected from fibroblasts, endothelial cells, epithelial cells, and mixtures thereof. [Brief description of the drawings]

[0018] [Figure 1] FIG. 1 shows, from left to right, printed disks of Ink A treated with 5 U / mL cholesterol esterase, PBS, or 50 mM NaOH. [Diagram 2]Figures 2A-2C show a printed fischer disc with vertical struts within the disc: Figure 2A is a computer-generated model, Figure 2B is a bright-field image, and Figure 2C is a micro-CT scan of the disc. [Diagram 3] Figures 3A-3C show human lung fibroblasts (after 1 day of culture) attached to printed discs made with Ink A treated with esterase, NaOH, or PBS, and to a glass control. Figure 3A is a quantification of cell coverage. Figure 3B is a quantification of cell spreading. Figure 3C is a quantification of cell density. [Figure 4] Figures 4A-4B show human lung fibroblasts adherent to printed discs made with Ink A treated with esterase, NaOH, and PBS, and to glass controls after 1 day (Figure 4A) and 4 days (Figure 4B) of culture. [Diagram 5] Figures 5A-5C show human lung fibroblast cells (after 4 days in culture) attached to printed targets made with Ink A treated with esterase, NaOH, or PBS, and to a glass control. Figure 5A is a quantification of cell coverage. Figure 5B is a quantification of cell spreading. Figure 5C is a quantification of cell density. [Figure 6] Figure 6. Human lung fibroblast cells (after 4 days in culture) attached to printed targets made with Ink A treated with NaOH (left) and PBS (right). [Figure 7] Figures 7A-7C show the compression tests of disks printed with Ink A that were treated with esterase, NaOH, or PBS. Figure 7A shows the Young's modulus, Figure 7B shows the ultimate strain, and Figure 7C shows the ultimate stress. [Figure 8] Figures 8A-8C show the results of tensile testing of dog bones printed with Ink A that were treated with esterase, NaOH, or PBS. Figure 8A shows Young's modulus, Figure 8B shows ultimate tensile strain, and Figure 8C shows ultimate tensile stress. [Figure 9]FIG. 9 shows the apparatus and test sample used in the tensile test of Example 1, and shows the state when the printed object ink A was treated with NaOH and stretched to obtain the results of FIGS. 8A to 8C. [Figure 10] FIG. 10 shows the apparatus and test samples used in the tensile testing of Example 1, where a PBS-treated sample of the object printed with Ink A was stretched to produce the results of FIGS. 8A-8c. [Figure 11] FIG. 11 shows human lung fibroblasts (after 1 day in culture) attached to printed discs made with Ink A or C treated with PBS or NaOH, and to glass controls. [Figure 12] Figures 12A-12C show human lung fibroblasts (after 1 day of culture) attached to printed dived made with Ink A and Ink C treated with esterase, NaOH, or PBS, and to a glass control. Figure 12A is a quantification of cell coverage. Figure 12B is a quantification of cell spreading. Figure 12C is a quantification of cell density. [Figure 13] FIG. 13 shows human lung fibroblast cells (after 4 days in culture) attached to printed objects made with Inks A and C treated with NaOH or PBS. [Figure 14] Figures 14A-14C show human lung fibroblasts (after 4 days in culture) attached to printed disks made with Ink A and Ink C treated with esterase, NaOH, or PBS, and to a glass control. Figure 14A is a quantification of cell coverage. Figure 14B is a quantification of cell spreading. Figure 14C is a quantification of cell density. [Figure 15] 15A-15D show plots of tensile stress versus tensile strain displacement for printed dogbones made with Ink A and treated with 0.1 M NaOH (n=6) (FIG. 15A), Ink A and treated with PBS (n=6) (FIG. 15B), Ink C and treated with 0.1 M NaOH (n=4) (FIG. 15C), and Ink C and treated with PBS (n=6) (FIG. 15D). The plots of tensile stress versus tensile strain displacement were obtained using the apparatus described in FIGS. 9 and 10. [Figure 16] Figure 16 shows the Young's modulus of printed dog-bones made with Ink A and Ink C when treated with NaOH or PBS. The Young's modulus was obtained using the plots of tensile stress versus tensile strain displacement obtained in Figures 15A, 15B, 15C, and 15D. [Figure 17] Figures 17A-17B show the change in tensile mechanical properties of Ink A and Ink C samples treated with NaOH or PBS. Figure 17A shows the ultimate tensile strain and Figure 17B shows the ultimate tensile stress. The tensile mechanical properties were obtained using the plots of tensile stress versus tensile strain displacement obtained in Figures 15A, 15B, 15C, and 15D. [Figure 18] FIG. 18 shows human pulmonary artery endothelial cell adhesion (after 4 days) to printed Ink A Fischer discs treated with NaOH, esterase, and PBS, and to glass controls. [Figure 19] Figures 19A-19C show human pulmonary artery endothelial cell attachment (after 4 days in culture) to Fisher discs printed with Ink A that were treated with esterase, NaOH, or PBS, or to glass controls. Figure 19A is a quantification of cell spreading. Figure 19B is a quantification of cell spreading. Figure 19C is a quantification of cell coverage. [Figure 20] FIG. 20 shows human small airway epithelial cell attachment (after 4 days in culture) to printed Fisher discs made with Ink A treated with NaOH, esterase, and PBS, and to glass controls. [Figure 21] Figures 21A-21C show human small airway epithelial cell attachment (after 4 days) to Fisher discs printed with Ink A treated with esterase, NaOH, or PBS, or to glass controls. Figure 21A is a quantification of cell spreading. Figure 21B is a quantification of cell density. Figure 21C is a quantification of cell coverage. [Figure 22]FIG. 22 shows human pulmonary artery endothelial cell adhesion (after 7 days in culture) to printed Fisher discs made with Ink A treated with NaOH, esterase, and PBS, and to glass controls. [Figure 23] Figures 23A-23C show human pulmonary artery endothelial cell adhesion (after 7 days in culture) to Fisher discs printed with Ink A that were treated with esterase, NaOH, or PBS, or to glass controls. Figure 23A is a quantification of cell spreading. Figure 23B is a quantification of cell density. Figure 23C is a quantification of cell coverage. [Figure 24] FIG. 24 shows human adhesion of small airway epithelial cells (after 7 days) to printed Fisher discs made with Ink A treated with NaOH, esterase, and PBS, and to glass control slides. [Diagram 25] Figures 25A-25C show human adhesion of small airway epithelial cells (after 7 days) to Fisher discs printed with Ink A treated with esterase, NaOH, or PBS, or to glass controls. Figure 25A is a quantification of cell spreading. Figure 25B is a quantification of cell density. Figure 25C is a quantification of cell coverage. [Figure 26] Figures 26A-26C show the compressive mechanical properties of printed Ink A Fischer disks of Example 4 without exposure to enzyme, with exposure to sodium hydroxide, and with exposure to cholesterol esterase. Figure 26A shows Young's modulus. Figure 26B shows ultimate strain. Figure 26C shows ultimate stress. [Figure 27] FIG. 27 shows an embodiment of human lung fibroblast cells seeded onto Fisher discs of printed Ink A in an example without exposure to enzyme and with exposure to NaOH. [Figure 28] FIG. 28 shows an embodiment of human lung fibroblast cells seeded onto Fisher disks of printed Ink A in an example without exposure to enzyme and with exposure to cholesterol esterase. [Figure 29]FIG. 29 shows an embodiment of human lung fibroblast cells seeded onto Fisher discs of printed Ink C in an example without exposure to enzyme and with exposure to NaOH. [Diagram 30] Figures 30A-30C show the compressive mechanical properties of printed objects of Inks A, C, and D in examples without exposure to enzyme and with exposure to cholesterol esterase. Figure 30A shows Young's modulus. Figure 30B shows ultimate strain. Figure 30C shows ultimate stress. [Diagram 31] FIG. 31 shows scanning electron microscope images of the surface network of Fischer disk Ink A with different channel thicknesses. [Diagram 32] 32A-32C show that sodium hydroxide increases adhesion of human lung fibroblasts onto Ink A Fischer discs more than cholesterol esterase. Cells were seeded following the same procedure as described in Example 2: procedure, steps 1-7, except that 2 mL of solution was used per disc instead of 2.5 mL / disc. [Diagram 33] 33A-33C show that when there are more cross-linked ink flow paths, the compressive mechanical properties are less upon hydrolysis by sodium hydroxide or cholesterol esterase. The properties were tested according to the mechanical evaluation procedures described in Example 2. [Diagram 34] Figure 34 shows Fischer scaffolds with various wall and channel thicknesses. The red boxes indicate the wall and channel thicknesses of the scaffolds investigated. [Diagram 35] Figures 35A-35D show bright field images of representative Ink-A Fischer disks of scaffolds of the present disclosure with 100 μm (Figure 35A), 300 μm (Figure 35B), 400 μm (Figure 35C), and 500 μm (Figure 35D) channels. 300 μm channels are required to print accurately with Ink-A Fischer disks. [Diagram 36]Figures 36A-36C show models (top) and micro-CT scan images (bottom) of disks made with Ink A with 300 μm channels and 200 μm walls (Figure 36A), 400 μm channels and 200 μm walls (Figure 36B), or 500 μm channels and 200 μm walls (Figure 36C). [Figure 37] Figures 37A-37C show the compressive mechanical properties of solid, 300 μm channel, 400 μm channel, and 500 μm channel printed Fischer discs. Figure 37A shows Young's modulus. Figure 37B shows ultimate strain. Figure 37C shows ultimate stress. [Figure 38] Figures 38A-38C show the compressive mechanical properties of printer Fischer discs of Ink A with walls of 100 μm, 200 μm, 300 μm, and 400 μm. Figure 38A shows Young's modulus. Figure 38B shows ultimate strain. Figure 38C shows ultimate stress. [Figure 39] 39A-39B show the swelling ratios of several printed ink composition disks treated with PBS (FIG. 39A) or NaOH (FIG. 39B). [Diagram 40] Figures 40A-40C show that sodium hydroxide reduces the compressive mechanical properties of the Fisher disc for several inks. Figure 40A shows Young's modulus. Figure 40B shows ultimate strain. Figure 40C shows ultimate stress. [Diagram 41] Figures 41A-41C show that sodium hydroxide reduces the tensile mechanical properties of Fisher Dogbone for several inks. Figure 41A shows Young's modulus. Figure 41B shows ultimate strain. Figure 41C shows ultimate stress. [Diagram 42] Figures 42A-42C show that cholesterol esterase reduces the compressive mechanical properties of Fisher disks for several inks. Figure 42A shows Young's modulus. Figure 42B shows ultimate strain. Figure 42C shows ultimate stress. [Diagram 43] Figures 43A-43C show that sodium hydroxide increases LFN cell adhesion relative to less cross-linked inks. Figure 43A shows actin area fraction. Figure 43B shows actin area. Figure 43C shows cell density. [Diagram 44] Figure 44 shows a table indicating whether the compressive mechanical properties (ultimate strain and ultimate stress), tensile mechanical properties (ultimate tensile strain and ultimate tensile stress), cell adhesion (LFN, PAEC, and SAEC), and swelling are above, meet, or below thresholds for various inks, treatments, and structures. Thresholds for each test parameter are outlined below. [Diagram 45] Figures 45A-45D show representative images of printed Ink A Fischer disks with 100 μm walls (Figure 45A), 200 μm walls (Figure 45B), 300 μm walls (Figure 45C), and 400 μm walls (Figure 45D). 200 μm walls are required to print accurately with the Ink A Fischer disk. [Diagram 46] Figures 46A-46C show that the vertical struts decreased the Young's modulus on the Ink A Fischer disk (Figure 46A), while increasing the ultimate stress (Figure 46C). The ultimate strain is shown in Figure 46B. Properties were tested according to the mechanical evaluation procedures described in Example 2. [Figure 47] 47A-47C show the effect of hydrolytic enzyme treatment of Fischer discs with various channel sizes on the compressive Young's modulus (FIG. 47A), compressive ultimate strain (FIG. 47B), and compressive ultimate stress (FIG. 47C) of hydrolyzed materials with various channel thicknesses. Properties were tested according to the mechanical evaluation procedures described in Example 2. [Figure 48] FIG. 48 shows a dog bone specimen for tensile testing according to an embodiment. [Figure 49] Figures 49A-49B show dog-bone specimens in a tensile strength test, where Figure 49A shows the specimen secured to the apparatus and Figure 49B shows the specimen breaking when force was applied by the apparatus. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0019] Applicants have found that printed objects, such as polymeric scaffolds made with ink compositions including polyethylene oxide diacrylate and protein-containing inks, exhibit enhanced cell adhesion and modified mechanical properties when exposed to sodium hydroxide or cholesterol esterase. Thus, the disclosed methods can be used for 3D printing of non-bioactive 3D objects, which may be rendered bioactive using specific chemicals to modulate their swelling and mechanical properties.

[0020] For objects 3D printed with these inks, applicants found that sodium hydroxide treatment of the objects enhanced cell adhesion and significantly altered mechanical properties and swelling, while cholesterol esterase enhanced cell adhesion to the objects while minimally altering mechanical properties and swelling. The degree of crosslinking could also be used to tune the properties of the material. Solid discs with more crosslinked inks showed less decrease in mechanical properties when treated with NaOH and esterase. 3D printed samples with larger channels and smaller wall thicknesses showed increased ultimate strain and decreased Young's modulus and ultimate stress during treatment. NaOH treatment of 3D printed objects resulted in increased cell adhesion of lung fibroblasts (LFN), porcine aortic endothelial cells (PAEC), and small airway epithelial cells (SAEC), as further detailed in the Examples.

[0021] Polymeric scaffold composition Certain embodiments of the present disclosure include compounds of formula (I): [ka] [In the formula, Each R 1 is independently selected from H or CH3; each X is independently selected from O or NH; n is 1 to 500. The composition, 3D printed object, or polymeric scaffold comprises one or more polymerized moieties of

[0022] In some embodiments, one of the polymerizable moieties is R 1 are both H. In some embodiments, one of the polymerizable moieties is R 1 In some embodiments, both X's in one of the polymerized moieties are O. In some embodiments, both X's in one of the polymerized moieties are NH. In some embodiments, one X's in one of the polymerized moieties is O and the other X's is NH. In some embodiments, n in each polymerized moiety is independently 1 to 10, 10 to 25, 25 to 50, 50 to 75, 75 to 100, or 100 to 150.

[0023] In some embodiments, the scaffold comprises polymerized poly(ethylene glycol) di(meth)acrylate moieties, polymerized poly(ethylene glycol) di(meth)acrylamide moieties, polymerized poly(ethylene glycol) (meth)acrylate / (meth)acrylamide moieties, and mixtures thereof.

[0024] The various functional groups in these moieties include ethers, amides, and esters, which react differently. As shown in Scheme 1, ethers are susceptible to degradation by oxidation, esters are susceptible to hydrolysis, and amides are biostable. PEGDA is primarily degraded by hydrolysis of the terminal ester linkages, not by oxidation of the ether backbone. [ka]

[0025] In some embodiments, the scaffold, object, or composition further comprises collagen and / or polymerized (meth)acrylated collagen (ColMA (methacrylated collagen)). In some embodiments, the (meth)acrylated collagen comprises collagen containing (meth)acrylamides at sites corresponding to free amines, e.g., lysines. In some embodiments, the collagen comprises amines functionalized with (meth)acrylate moieties, with (meth)acrylamides at the functionalized amines. In some embodiments, the degree of functionalization, i.e., the percentage of amine groups of the functionalized collagen, is about 5%, about 10%, about 15%, about 20%, about 25%, about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, or about 100%.

[0026] In some embodiments, any one or more of the polymerized moieties may be present in an amount of about 0% to about 10%, about 10% to about 20%, about 20% to about 30%, about 30% to about 40%, about 40% to about 50%, about 50% to about 60%, about 60% to about 70%, about 70% to about 80%, about 80% to about 90%, or about 90% to about 100% by weight of the total weight of the scaffold, composition, or printed object.

[0027] In some embodiments, collagen and / or polymerized (meth)acrylated collagen may be present in an amount of about 0% to about 10%, about 10% to about 20%, about 20% to about 30%, about 30% to about 40%, about 40% to about 50%, about 50% to about 60%, about 60% to about 70%, about 70% to about 80%, about 80% to about 90%, or about 90% to about 100% by weight of the total weight of the scaffold, composition, or printed object.

[0028] In some embodiments, the scaffold is a 3D printed scaffold. Those skilled in the art will appreciate printing methods known in the art, including, but not limited to, selective laser sintering (SLS), fused deposition modeling (FDM), 3D inkjet printing, digital light processing (DLP), and stereolithography. In FDM, ink is deposited by an extrusion head following a tool path defined by a CAD file. The material is deposited in fine layers of 25 μm thickness, and parts are assembled one layer at a time from bottom to top. In some embodiments, the layers are 10 μm to about 50 μm thick. Some 3D printers based on fused deposition modeling have dual printing nozzle heads capable of extruding two different materials, one material being the building material and the other being the support material such as the struts. The support material can be washed with water.

[0029] 3D inkjet printing is effectively optimized for speed, cost, resolution, and ease of use, making it suitable for visualization from the concept stage of engineering design to early functional testing. In inkjet printing, complex 3D objects are produced from ink compositions using jetting followed by UV / Vis light. The light-curable ink in inkjet printing can be jetted from several nozzles onto a build platform in a pattern defined by a CAD file.

[0030] Among the most efficient 3D printing techniques are Digital Light Processing (DLP) and Stereolithography (SLA). In a 3D printer using DLP or SLA, ink material is layered on a vat or spread on a sheet, and a predefined area or surface of the ink is exposed to ultraviolet-visible (UV / Vis) light controlled by a digital micromirror device or a rotating mirror. In DLP, additional layers are repeatedly or successively layered and each layer is cured until the desired 3D object is formed. Unlike DLP, SLA solidifies the ink with a line of radiation beam. Other methods of 3D printing can be found in 3D Printing Techniques and Processes by Michael Degnan, Dec 2017, Cavendish Square Publishing, LLC, the disclosure of which is incorporated herein by reference.

[0031] In certain embodiments, the scaffold is substantially solid (e.g., does not include a flow channel or is printed without a special internal pattern). In other embodiments, the scaffold is not substantially solid. For example, when the scaffold is not substantially solid, the scaffold may have flow channels and walls that define the flow channels. In some embodiments, these flow channels and walls are formed by 3D printing of the particular flow channels and walls. In certain embodiments that include a flow channel, the flow channel has a width of about 200 to about 500 μm (e.g., about 200, 225, 250, 275, 300, 325, 350, 375, 400, 425, 450, 475, or 500 μm). It will be understood that in some embodiments, the flow channel has multiple widths. In some embodiments, at least 50, 60, 70, 80, 90, 95, 98, 99, or 100% of the flow channel has a width as discussed in the embodiments herein. In certain embodiments including walls, the walls have a width of about 150 to about 400 μm (e.g., about 150, 175, 200, 225, 250, 275, 300, 325, 350, 375, or 400 μm). It will be understood that in some embodiments, the walls have multiple widths. In some embodiments, at least 50, 60, 70, 80, 90, 95, 98, 99, or 100% of the walls have a width as discussed in the embodiments herein. In some embodiments, the scaffold comprises substantially solid portions and substantially non-solid portions. These embodiments include substantially non-solid portions, including channels and walls that define those channels, for example, as in the embodiments described above.

[0032] The polymeric scaffold of certain embodiments comprises polymerized poly(ethylene glycol) di(meth)acrylate moieties, poly(ethylene glycol) (meth)acrylamide moieties, polymerized poly(ethylene glycol) (meth)acrylate / (meth)acrylamide moieties, or mixtures thereof. In some embodiments, the polymeric scaffold comprises polymerized poly(ethylene glycol) diacrylate moieties. In some embodiments, the weight average molecular weight (M) of the poly(ethylene glycol) di(meth)acrylate, poly(ethylene glycol) (meth)acrylamide, or poly(ethylene glycol) (meth)acrylate / (meth)acrylamide is about 100%. w ) is about 400 Da to about 20,000 Da (e.g., about 500 Da to about 10,000 Da, or about 500 Da to about 5000). w Approximately 400Da, 500Da, 600Da, 700Da, 800Da, 900Da, 1000Da, 1100Da, 1200Da, 1300Da, 1400Da, 1500Da, 1600Da, 1700Da, 1800Da, 1900Da, 2000Da, 2100Da, 220 0Da, 2300Da, 2400Da, 2500Da, 2600Da, 2700Da, 2800Da, 2900Da, 3000Da, 3100Da, 3200Da, 3300Da, 3400Da, 3500Da, 3600Da, 3700Da, 3800Da, 3900Da, 400 0Da, 4100Da, 4200Da, 4300Da, 4400Da, 4500Da, 4600Da, 4700Da, 4800Da, 4900Da, 5000Da, 5100Da, 5200Da, 5300Da, 5400Da, 5500Da, 5600Da, 5700Da, 580 0 Da, 5900 Da, 6000 Da, 6100 Da, 6200 Da, 6300 Da, 6400 Da, 6500 Da, 7000 Da, 7500 Da, 8000 Da, 8500 Da, 9000 Da, 9500 Da, 10,000 Da, 15,000 Da, or 20,000 Da.

[0033] In some embodiments, the scaffold, object, or composition of the present disclosure comprises a crosslinked polymer. In some embodiments, the polymer is crosslinked at about 0% to about 10%, about 10% to about 20%, about 20% to about 30%, about 30% to about 40%, about 40% to about 50%, about 50% to about 60%, about 60% to about 70%, about 70% to about 80%, about 80% to about 90%, or about 90% to about 100% relative to the crosslinkable portion of the polymer. Examples of the crosslinkable portion include (meth)acrylate groups.

[0034] In some embodiments, the scaffold, object, or composition of the present disclosure has a plurality of substantially parallel struts passing therethrough. The struts may be produced by rolling and slicing Fischer foam. Several triple period minimal surfaces can be aligned to form straight-line solid tunnels, thereby allowing the formation of struts. The struts can increase the ultimate stress without affecting the ultimate strain or Young's modulus.

[0035] In some embodiments, the scaffold, ink, or composition may further comprise additional polymerized moieties or other additives selected from the group consisting of at least one water-compatible organic polymer, an alcohol-compatible organic polymer, other additives, and combinations thereof. The polymer may be a homopolymer or a heteropolymer (such as, but not limited to, a cross-polymer or a copolymer of any comonomer distribution), and may be a linear polymer, a branched polymer, a hyperbranched polymer, a dendrimer, or a polymer crosslinked to any degree. Examples of suitable polymers include, but are not limited to, poly(ethylene glycol)-block-poly(ε-caprolactone); polycaprolactone; polyvinyl alcohol; gelatin; methylcellulose; hydroxyethyl methylcellulose; hydroxypropyl methylcellulose; polyethylene oxide; polyacrylamide; polyacrylic acid; polymethacrylic acid; salts of polyacrylic acid; salts of polymethacrylic acid; poly(2-hydroxyethyl methacrylate); polylactic acid; polyglycolic acid; polyvinyl alcohol; polyanhydrides such as poly(methacrylic acid) anhydride, poly(acrylic acid) anhydride, and polysebacic acid anhydride; collagen; poly(hyaluronic acid); hyaluronic acid-containing polymers and copolymers; polypeptides; dextran; dextran sulfate; chitosan; chitin; agarose gel; fibrin gel; soybean-derived hydrogels, and alginate-based hydrogels such as poly(sodium alginate); and combinations thereof. In some embodiments, the composition further comprises polymerized hydroxypropyl acrylate (HPA), or lithium phenyl-2,4,6-trimethylbenzoylphosphinate (LAP).

[0036] In some embodiments, the additive includes a photoinitiator. The photoinitiator is not particularly limited. In some embodiments, the photoinitiator may be, for example, one that allows an initiation time of 0 to 60 seconds. In some embodiments, the photoinitiator includes lithium phenyl-2,4,6-trimethylbenzoylphosphinate (LAP), trimethylbenzoyl-based photoinitiators, diphenyl(2,4,6-trimethylbenzoyl)phosphine oxide (TPO nanoparticles) Irgacure class photoinitiators, ruthenium, and riboflavin, or mixtures thereof.

[0037] In some embodiments, the scaffold or composition further comprises one or more additional UV-visible dyes, such as UV381A, UV381B, UV382A, or UV386A. The three digits indicate the wavelength at which the dye is visible. The photoactive dye may be a UV dye with an absorbance spectrum between 300 nm and 420 nm. The photoactive dye may have a wavelength range of 300 nm to 400 nm. The photoactive dye may be non-cytotoxic. The photoactive dye may include a benzyne ring in its molecular structure. The photoactive dye may be quinolone yellow, a UV dye, or a dye with a similar molecular structure. The photoactive dye may be a UV386A dye.

[0038] In some embodiments, the scaffold or composition further comprises an additional immunosuppressant drug or biologic, such as prednisone, tacrolimus (Prograf), cyclosporine (Neoral), mycophenolate mofetil (Cellcept), Imuran (azathioprine), or Rapamune (rapamycin, sirolimus).

[0039] In some embodiments, any one or more of the additional polymerized moieties or additives, in each instance independently, may be present in an amount of from about 0% to about 10%, from about 10% to about 20%, from about 20% to about 30%, from about 30% to about 40%, from about 40% to about 50%, from about 50% to about 60%, from about 60% to about 70%, from about 70% to about 80%, from about 80% to about 90%, or from about 90% to about 100% by weight of the total weight of the scaffold, composition, or printed object.

[0040] In some embodiments, the composition or scaffold further comprises cells, which may be attached to the scaffold. The cells may be selected from fibroblasts, endothelial cells, epithelial cells, and mixtures thereof. In some embodiments, the scaffold is a 3D printed scaffold. In some embodiments, the polymeric scaffold is substantially in the shape of a disk, a sphere, a cylinder, a prism, a cube, a rectangular prism, a triangular pyramid, a tetrahedron, or a cone. In some embodiments, the polymeric scaffold may have substantially the same shape, size, and / or the same relative dimensions as an organ or a fragment of an organ, examples of which include kidney, heart, liver, lung, spleen, brain, blood vessel, gallbladder, stomach, pancreas, bladder, skeletal bone, cartilage, skin, hair follicle, intestine, muscle, larynx, or pharynx.

[0041] method In one aspect, a method of modifying a polymeric scaffold as disclosed herein is provided. The method may include contacting the scaffold with a hydrolytic or proteolytic agent. In some embodiments, modifying the scaffold increases the affinity of the scaffold for cells.

[0042] In another aspect, a method of increasing actin coverage of a cell is provided, the method comprising contacting a cell with a polymeric scaffold as disclosed herein, the cell may be selected from a fibroblast, an endothelial cell, an epithelial cell, and mixtures thereof.

[0043] The hydrolyzing agent may be selected from a hydroxide or hydroxide source (e.g., LiOH, NaOH, Be(OH)2, Mg(OH)2, KOH, B(OH)3, Fe(OH)2, NH4OH, or Al(OH)3). In some embodiments, the concentration of the hydrolyzing agent in the solution contacted with the scaffold is from about 1 mM to about 25 mM, from about 25 mM to about 50 mM, from about 50 mM to about 100 mM, from about 100 mM to about 150 mM, from about 150 mM to about 300 mM, from about 300 mM to about 500 mM, from about 500 mM to about 1 M, from about 1 M to about 5 M, or greater than about 5 M.

[0044] In some embodiments, the hydrolysis agent may include a catalyst or metal additive. In some embodiments, the agent may be Ce(IV), Co(II), Co(III), Cu(II), Fe(III), Ln(III), Ni(II), Mo(IV), Pd(II), Zn(II), Zr(IV), Eu(III), Hf(IV), Ce(III), Eu(III), La(III), Tb(III), Y(III), Lu(III), Tb(III), Tm(III), Yb(III), Cerium(IV), K4Zn4[Fe(CN)6]3·H2O, NiMo / γ-Al2O3, Ni(NO3)2·6H2O, (NH4)6Mo7O 24 The complexes or compounds may include those containing 7H2O, Y(III) in PI liposomes, and La(III) in red blood cell membranes containing PI (PI-laden).

[0045] Proteolytic agents may include esterases, such as cholesterol esterase. In some embodiments, the agents include hydrolases, collagenases, stromelysins, proteinase K, peptidases (i.e., exopeptidases, endopeptidases, aminopeptidases, dipeptidases, carboxypeptidases, peptidyl dipeptidases, endopeptidases), proteases (i.e., aspartic acid proteases [i.e., pepsin and cathepsin D], cysteine ​​proteases [i.e., bromelain, papain, ficain, rhinovirus 3C, TEV proteases], and the like. , and TVMV protease], glutamic acid proteases, metalloproteases [i.e., endoproteinase, asp-n, thermolysin, collagenase, and dipase], aspartic acid proteases, and serine proteases [i.e., trypsin, chymotrypsin, enterokinase, WNV protease, endoproteinase, elastase, subtilisin, proteinase K, thrombin, and factor Xa], threonine proteases, proteinases, or gelatinases. In some embodiments, the proteolytic agent comprises an active esterase hydrolase, collagenase, stromelysin, or gelatinases fragment; an esterase hydrolase, collagenase, stromelysin, or gelatinases derivative; or a functional equivalent of an esterase hydrolase, collagenase, stromelysin, or gelatinases. In some embodiments, the proteolytic agent is present in a solution that is contacted with the scaffold, and the concentration of the proteolytic agent in the solution is from about 0.1 U to about 1 U, from about 1 U to about 2.5 U, from about 2.5 U to about 5 U, from about 5 U to about 7.5 U, from about 7.5 U to about 10 U, from about 10 U to about 15 U, or greater than about 15 U (U is U / mL).

[0046] In some embodiments, the contact is for about 1 hour to about 2.5 hours, about 2.5 hours to about 5 hours, about 5 hours to about 7.5 hours, about 7.5 hours to about 10 hours, about 10 hours to about 24 hours, about 24 hours to about 2 days, about 2 days to about 4 days, about 4 days to about 8 days, about 8 days to about 12 days, about 12 days to about 30 days, or more than about 30 days.

[0047] definition As used herein, the term "poly(ethylene glycol) (meth)acrylate / (meth)acrylamide" refers to a moiety that includes a poly(ethylene glycol) (PEG) moiety that is substituted at one end with a (meth)acrylate and at the other end with a (meth)acrylamide, such as a compound of the formula: [ka] In the formula, each R 1 are independently H or CH3.

[0048] As used herein, the term "polymerized collagen-methacrylamide" or "ColMA" refers to polymerized collagen protein in which the amines of the protein have been replaced with acryl groups, resulting in acrylamide moieties. For example, lysine and hydroxylysine residues of collagen may have their amine groups reacted with (meth)acrylic anhydride to generate (meth)acrylamide moieties on the collagen.

[0049] As used herein, the term "hydroxypropyl acrylate" (HPA) may refer to 1-hydroxypropyl acrylate, 2-hydroxypropyl acrylate, or 3-hydroxypropyl acrylate. When HPA is polymerized, it may refer to a polymer that includes a mixture of any of the foregoing hydroxypropyl acrylates.

[0050] As used herein, the term "LAP" refers to lithium phenyl-2,4,6-trimethylbenzoylphosphinate, which is a photoinitiator that enables polymerization of the bioink during 3D printing.

[0051] The term "degree of functionalization" is used herein with reference to (meth)acrylated collagen (ColMA).

[0052] As used in the specification and claims, the singular forms "a," "an," and "the" include plural references unless the context clearly indicates otherwise. Throughout this specification, unless otherwise indicated, "comprise," "comprises," and "comprising" are used inclusively rather than exclusively. The word "or" is inclusive unless modified by "either," etc. Thus, unless otherwise clearly indicated from the context or express description, the word "or" refers to any one element of a particular list and also includes any combination of elements of that list. Except within the examples and unless otherwise indicated, all numbers expressing quantities of ingredients or reaction conditions used herein should be understood to be modified in all instances by the word "about."

[0053] The term "about" will be understood by those of ordinary skill in the art. It may also vary to some extent depending on the context in which it is used. In cases where the context in which "about" is used is unclear to those of ordinary skill in the art, "about" means up to ±10% of the particular term. For example, in some embodiments, it means ±5% of the particular term. In this specification, a particular range is represented by a numerical value preceded by the term "about". In this specification, the term "about" is used to provide literal support for the exact number that follows the term, and also to provide support for a number that is close to or approximately the same as the number that follows the term. When determining whether a number is close to or approximately the same as a specifically stated number, in the context presented, the unstated, close or approximately the same number may be a number that provides a substantially equivalent amount to the specifically stated number.

[0054] Headings are provided for convenience only and should not be construed as limiting the invention in any manner. Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. The terms used herein are used only for the purpose of describing certain embodiments and are not intended to limit the scope of the invention, which is defined solely by the claims. In order that this disclosure may be more readily understood, certain terms are first defined. As further definitions, all numerical designations, such as pH, percentages, temperature, time, concentration, and molecular weight (including ranges), are approximations that vary by 1, 5, or 10% ((+) or (-)). It should be understood, even if not always explicitly stated, that all numerical designations are preceded by the word "about". It should also be understood, even if not always explicitly stated, that the reagents described herein are merely exemplary, and equivalents thereof are known in the art and are described throughout the detailed description.

[0055] Where a range of numerical values ​​is provided, unless the context makes clear otherwise, it is understood that each intermediate value between the upper and lower limits of that range, to one decimal place of the unit of the lower limit, and any other stated or intermediate value within that stated range, is encompassed within the invention. The upper and lower limits of these narrower ranges may independently be included within the narrower ranges, and are also encompassed within the invention, subject to any specifically excluded limit in the stated range. When the stated range includes one or both of the limits, ranges excluding either or both of those included limits are also included in the disclosure.

[0056] The term "treatment" or "treating" as used herein means treating a scaffold, ink, printed object, or composition with an agent that alters its physical or biological properties, e.g., a hydrolytic or proteolytic agent such as NaOH.

[0057] The words "comprising" or "comprises" as used herein are intended to mean that the compositions and methods include the recited elements, but do not exclude others. When the word "consisting essentially of" is used to define compositions and methods, it is meant to exclude any other elements that are essential to the combination for the described purpose. Thus, a composition consisting essentially of the elements defined herein does not exclude other materials or steps that do not materially affect the basic and novel characteristics of the claimed invention. The word "consisting of" means to exclude other ingredients beyond trace elements and more than substantial method steps. Embodiments defined by each of these transitional phrases are within the scope of the invention. When an embodiment is defined by any of these terms (e.g., "comprising"), it should be understood that the disclosure also includes alternative embodiments such as "consisting essentially of" and "consisting of" that embodiment.

[0058] The terms "substantially" or "essentially" mean "almost entirely" or "almost completely," e.g., 95%, 96%, 97%, 98%, 99%, or more of any particular amount.

[0059] The embodiments described herein are further illustrated by the following examples, which are not intended to be limiting in any way. EXAMPLES

[0060] Example 1: Biological and mechanical evaluation of post-treated scaffolds using accelerated hydrolysis and proteolysis The composition of the formula tested in this example was Ink A. The formulas of Inks A to D are as follows: Ink A: ColMA (functionalization degree 100), PEGDA3400, PEGDA575. Ink B: PEGDA3400, PEGDA575. Ink C: ColMA (functionalization degree 50), PEGDA3400, PEGDA575. Ink D: ColMA (functionalization degree 30), PEGDA3400, HPA.

[0061] procedure: 1.24 discs were printed under the above conditions and stored overnight at 37° C. in DPBS- / -. 2. Study samples were incubated against appropriate solutions in a rocker and stored at 37°C in a TC room DELI incubator for 8 hours. a. Solution ratio I. 2.5 mL of solution per disc (0.0142 mL / mm 2 ) II. 5 mL of solution per dogbone b.Rotational Rocker I. Speed=45rpm II. Rotation = 90° 3. After incubation, remove samples and place into 24-well plates with DPBS- / -. 4. Wash the samples with DPBS-- 3 times (10 min) at room temperature and store in 5X P / S (in PBS) solution for 1 hour. 5. Samples were transferred to 24-well plates for cell seeding. 6. Cells are seeded, fixed, and stained according to the attached protocol, and images are acquired using a confocal microscope according to the attached protocol. 7. Repeat the same procedure for the 72 hour sample.

[0062] Test procedure: 1. 24 discs and 12 dogbones were printed using the above conditions and stored overnight at room temperature in DPBS- / -. 2. Weigh the disk. If there is any resin remaining on the disk, wipe it off with a Kimwipe before weighing. 3. The study samples were incubated against the appropriate solutions in a rocker and stored at 37°C in a TC room DELI incubator for 8 hours. a. Solution ratio I. 2.5 mL of solution per disc (0.0142 mL / mm 2 ) II. 5 mL of solution per dogbone b. Rotating rocker I. Speed=45rpm II. Rotation = 90° 4. After incubation, remove the discs and place into a 24 well plate with DPBS- / -. Remove the dog bones and place into a petri dish. Make sure the discs and dog bones are completely covered with DPBS- / -. 5. Weigh the disk. If there is any resin remaining on the disk, wipe it off with a Kimwipe before weighing. 6. The disks are tested for compression rating using a DMA850 (Waters, TA Instruments, New Castle, Del.) mechanical analyzer. 7. Test the dog bones for tensile evaluation using the tensile testing protocol listed below.

[0063] DMA850 Protocol Mold preparation: All samples for compression and tensile testing were cast into PDMS molds. A laser cutting machine was used to cut negative molds of the desired size and shape. The polycarbonate negative molds were placed in bottom petri dishes, and PDMS solution, prepared with a 1:10 (W / W%) ratio of resin and hardener, was poured into the dishes. The dishes were placed in a desiccator for 1 hour to degas the PDMS. Then, the dishes were transferred to an oven to cure the PDMS at 80°C for 1 hour.

[0064] Sample preparation: The compounded solution should be gently added to each PDMS reservoir using a 1000 μL pipette. The volume of each reservoir for compression and tensile samples is 260 μL and 240 μL. The PDMS mold is placed in the center of a UV crosslinker at 365 nm wavelength for 2 minutes to cure the samples.

[0065] Curing: Place the PDMS mold in the center of a 365 nm wavelength UV crosslinker for 2 minutes to cure the sample.

[0066] Tensile Test Protocol (Tensile Test) The specimens are cut into a dog bone shape as shown in Figure 48 and tested according to ASTM D1708-13 "Standard Test Method for Tensile Properties of Plastics Using Microtensile Specimens". The specimens should be rinsed in DPBS (Mg-free, Ca-free): Option 1: Minimum 2 hours at 37°C Option 2: Preferable overnight soaking at 37°C

[0067] A very small portion of the tab should be visible from each grip, as shown in Figure 49A. If the sample is slightly bowed, this is most likely due to some of the material being pushed out of the grips. As the sample extension proceeds to the preload, the slack is removed. Minimal bowing is desirable, but it is not necessary to avoid bowing completely, as the grips are tight enough to prevent the sample from slipping out. The displacement should then be brought to zero. The residual force should remain. This is the actual force pushing or pulling the sample.

[0068] The specimen should be extended until the programmed preload is achieved. Once this load is reached, the strain values ​​are autobalanced and the data is plotted on a graph. Acceptable Failure Mode - The specimen should fail at the neck region and not at the grip contact area as shown in Figure 49B.

[0069] Results: In mechanical evaluation, both 5 U / mL cholesterol esterase and 50 mM NaOH decreased Young's modulus and ultimate stress in DMA compression tests. The dog bones fractured above the porous region, so the ultimate tensile stress and strain cannot be suggested. There was no significant difference in Young's modulus among all groups for tensile tests.

[0070] In the biological evaluation, the 50 mM NaOH treatment group was not significantly different from the glass control for all variables on day 4. The 5 U / mL cholesterol esterase treatment was not significantly different from the PBS control for all variables on day 4.

[0071] There is no difference in cell spreading between the 50 mM NaOH and glass controls, as both formed a dense network of overlapping actin filaments. At day 4, samples treated with 50 mM NaOH showed high variability, suggesting that cells had detached, resulting in minimal cell adhesion.

[0072] Example 2: Biological and mechanical evaluation of post-processing treatments of Ink C and Ink A The purpose of this example is to evaluate the biological and mechanical properties of Ink C under accelerated hydrolysis using alkaline conditions and compare it with Ink A described in Example 1.

[0073] Three test conditions were used. Control (DPBS- / -) 100mM NaOH (in deionized water) Glass cover slips (positive control)

[0074] procedure: 1. 16 discs per bioink were printed using the conditions above and washed 3 times with DPBS- / -. 2. The study samples were incubated against the appropriate solution in a rocker and stored at 37°C in a TC room DELI incubator for 4 hours. a. Solution ratio I. 2.5 mL of solution per disc (0.0142 mL / mm 2 ) b. Rotating rocker I. Speed=45 II. Rotation=90 3. After incubation, remove the samples and place them in a 24-well plate or dish with DPBS- / -. Make sure the hydrogel is completely covered with DPBS- / -. 4. Wash the samples with DPBS-- 3 times (10 min) at room temperature and store in 5X P / S (in PBS) solution for 1 hour. 5. Transfer the assigned samples to a 24-well plate for cell seeding. Ensure that the hydrogel substratum is facing down in the well plate for proper cell seeding. 6. Cell Seeding, Fixation, and Staining a. The seeding density needs to be reduced to 10,000 cells / well. b. Due to swelling, the staining solution for the 3D printed discs needs to be increased to 1 mL c. Add 1 mL / well of cell suspension to the disks of a 24-well plate. 7. Acquire images as in Example 1.

[0075] Mechanical Evaluation Procedure: Two test conditions: Control (DPBS- / -) 100mM NaOH (in deionized water)

[0076] procedure: 1. Twelve dogbones per bioink were printed using the conditions above and stored in DPBS- / - at room temperature overnight. 2. The study samples were incubated against the appropriate solution in a rocker and stored at 37°C in a TC room DELI incubator for 4 hours. a. Solution ratio I. 18.725 mL of solution per dogbone (0.0142 mL / mm 2 ) b. Rotating rocker I. Speed=45 II. Rotation=90 3. After incubation, remove the dog bone and place it in a dish with DPBS- / -s. Ensure that the dog bone is intact. 4. Test the dog bones for tensile evaluation using the tensile testing protocol above.

[0077] Swelling rate Two test conditions: Control (DPBS- / -) 100mM NaOH (in deionized water)

[0078] procedure: 1. Eight discs per bioink were printed using the conditions above and washed three times with DPBS- / -. 2. The study samples were incubated against the appropriate solution in a rocker and stored at 37°C in a TC room DELI incubator for 4 hours. a. Solution ratio I. 2.5 mL of solution per disc (0.0142 mL / mm 2 ) b. Rotating rocker I. Speed=45 II. Rotation=90 3. Weigh the disc and, if necessary, wipe and dry to remove excess liquid. 4. Place the samples into a 24-well plate with DPBS- / -. Make sure the hydrogel is completely covered with DPBS- / -. 5. Store the plate at 37°C for 24 hours. 6. Weigh the disc and, if necessary, wipe and dry to remove excess liquid. 7. If swelling has not stabilized after 24 hours, continue to measure weight for more time points.

[0079] Results: Treatment increased cell adhesion and decreased the mechanical properties of Ink C, similar results to those demonstrated for Ink A. A significant decrease in mechanical properties resulted in a loss of mechanical integrity for Ink C.

[0080] Example 3: PAEC and SAEC biological evaluation of Ink A subjected to accelerated hydrolysis The aim of this study was to evaluate the biocompatibility of Ink A, subjected to accelerated hydrolysis with sodium hydroxide and cholesterol esterase, on PAECs and SAECs.

[0081] Biological evaluation Five test conditions: Ink A PBS Ink A 0.1M NaOH Ink A 5U / mL cholesterol esterase

[0082] procedure: 1.48 discs were printed using the above conditions and washed 3 times with DPBS- / -. 2. Study samples were incubated against appropriate solutions in a rocker and stored at 37°C in a TC room DELI incubator. Incubation time I.4 hours = PBS, 0.1M NaOH II.6 hours = cholesterol esterase b. Solution ratio I. 2.0 mL of solution per disc (0.0114 mL / mm 2 ) b. Rotating rocker I. Speed=45 II. Rotation=90 3. After incubation, remove the samples and place them into a 24-well plate or dish. 4. Wash the samples with DPBS-- three times at room temperature and store in 5X P / S (in PBS) solution at 37° C. overnight. 5. Seed, fix and stain the cells according to the following protocol. a. Seeding densities up to 20,000 cells / well for PAEC and 40,000 cells / well for SAEC are required. b. Add 1 mL / well of cell suspension to the disk of a 24-well plate for thawing cryopreserved samples. 6. Acquire images as in Example 1. 7. Repeat the same procedure for the 7D sample. Seeding, fixation, and staining protocol [Table 1]

[0083] After crosslinking (or PBS wash if crosslinking is not required), the discs should be transferred to a 50mL conical (all 8 discs of a single print can fit in one dish) and washed with DPBS++. The discs should be washed twice for at least 30 minutes (can be longer than 20 minutes, but 2 washes are required regardless of wash time) on a rotator at 37°C, speed 60, revolutions 90.

[0084] The discs should be placed overnight in 5x antibiotic-antimycotic solution (100x antibiotic-antimycotic diluted in DPBS) in a 37°C incubator on a rotator (speed 60, rotation 90). To replace the 5x antibiotic-antimycotic solution, two PBS washes are performed for at least 30 min each (also on a rotator: speed 60, rotation 90).

[0085] Using an optical 96-well plate, place 200 μL of wash solution into each of three wells. Using a SpectraMax i3x (or equivalent), measure the average 384 nm absorbance of the wash solution from these three wells. If multiple prints are washed simultaneously, multiple wash solutions can be evaluated on the same plate. Wash solutions should not have an absorbance at 384 nm greater than 0.1. If any wash solution in any batch has an absorbance at 384 nm greater than 0.1, repeat the wash and retest.

[0086] Seeding LFN onto 3DP discs: Place trypsin-EDTA, trypsin neutralizing solution, and LFN GM in a 37°C bead bath. While the medium is warming, prepare control coverslips. Using sterile tweezers, transfer 4 glass 18 mm coverslips into a 24-well plate (prepare one plate for each time point). If a "leaching" study control is also used, place an additional 4 glass coverslips / columns for each ink, remove the well plate lid, close the biosafety cabinet, and turn on the UV light for 15 minutes to ensure the coverslips are sterile (the packaging provided is not technically sterile). Finish washing the 3D discs and combine them into a 48-well plate if not already done. Note 1: To reduce variability that can arise from differences in printers, wash cycles, etc., each time point should contain a roughly equal mix of discs from each print iteration. Note 2: Combine samples by fixation day. A minimum of 4 samples per day is recommended.

[0087] After a second DPBS wash to ensure no trace dye / PI remains at acceptable levels, add 500 μL of LFN GM to each well (3D disc and glass coverslip controls). For the leaching study control, cut two discs in half using a sterile scalpel and transfer them to the well along with the glass coverslip. Note: Do not transfer the discs to the well until seeding onto the coverslips is complete.

[0088] Transfer the flask of LFN from the 37°C incubator to a biosafety cabinet (or remove the required amount of LFN from the cryotank and thaw in a bead bath).

[0089] For flask cells: Aspirate the medium with a clean serum aspirator tip and add enough DPBS-- to wash the bottom of the flask. Aspirate the DPBS and add enough Trypsin-EDT to cover the cells. Cap the flask and return to the incubator for 2-4 minutes to detach the cells. While the cells are trypsinizing, prepare a 15 mL conical in the hood to transfer the cell suspension and prepare a 1.5 mL sterile microcentrifuge tube for cell counting. Add 10 μL of trypan blue to the microcentrifuge tube and check for cell detachment under a phase contrast microscope. If the cells have detached, place in a biosafety cabinet and proceed. Add an equal volume of Trypsin Neutralizing Solution to the flask as Trypsin-EDTA. Using a serological pipette, continue to "wash" (5-8 times) all cells remaining at the bottom of the flask and transfer to the 15 mL conical.

[0090] The cells may now be counted prior to centrifugation. If counting the cells prior to centrifugation, pipette the cell suspension up and down at least 5 times to ensure even distribution of the cells. If counting the cells after centrifugation, aspirate waste from the cell pellet, resuspend the cells in approximately 5 mL of medium, and pipette vigorously 10-20 times to disperse the cell pellet before counting.

[0091] Transfer 10 μL of the cell suspension to a 1.5 mL microcentrifuge tube with trypan blue and transfer 10 μL of the cell mixture with trypan blue to each side of a Luna cell counting slide.

[0092] For cryocells: Remove the required number of cells from the cryotank (assume 60-70% viability to calculate the number of vials needed). Thaw the cryotubes in a bead bath as quickly as possible, removing them as soon as the last ice is removed. Add 10 μL of trypan blue to the microcentrifuge tube. Resuspend the cryocells in at least the same volume of medium (in a 15 mL conical). Resuspend the thawed cells by pipetting up and down 10-20 times, then take 10 μL of the cell suspension and transfer it to a microcentrifuge tube with trypan blue, and transfer 10 μL of the cell mixture with trypan blue to each side of a Luna cell counting slide. Cap the 15 mL centrifuge tube with the cell suspension and place it in the swinging bucket holder of the centrifuge. Spin at 150G for 5 minutes.

[0093] Count the cells using a Luna slide counter while the cell suspension is in the centrifuge (alternatively, this can be done after centrifugation). Multiply the average viable cells / mL by the total volume of the cell suspension to get the total cell count. 10,500 / cm for biocompatibility screening. 2 Cells are seeded at 10,000 cells / well for discs in 48-well plates and 20,000 cells / well for controls in 24-well plates.

[0094] Cells may be resuspended as follows: 1x10 centrifuged cells 6 Resuspend to a density of 1x10 cells / mL. Transfer the amount of cells required for the experiment to a new tube and ensure that the cells are 1x10 5 Add medium to suspend cells at a density of 10,000 cells / mL. Add 100 μL / well to the 48-well plate discs and 200 μL / well to the 24-well plate controls, for a final seeding of 10,000 cells / well in the 48-well plates and 20,000 cells / well in the controls (10,500 cells / cm in all samples). 2). Be sure to add the cells from the top of the wells so that they sink onto the disk or coverslip. Mix the cell suspension regularly (approximately once every 15-20 samples) using a serological pipette to prevent cells from settling during plating. Swirl and swirl the well plate before transferring to the incubator. Refresh the medium (500 μL / well) every 2-3 days.

[0095] Fixation and staining: Prepare 10% formalin solution in a chemical fume hood. Prepare 300 μL / well for glass controls and 500 μL / well for 3D discs. Add 0.1% Triton X100 (1:1000) to the 10% formalin solution. Warm the conical of 10% formalin and the bottle of DPBS++ in a 37 °C bead bath for 15-20 min. NOTE: DPBS++ aids cell attachment as calcium and magnesium ions are required for cell attachment to the material.

[0096] After warming the fixative components, perform DPBS++ washes. Add 10% formalin + 0.1% Triton X100, 300 μL / well for controls and 500 μL / well for 3D discs. Incubate for 15 min at room temperature. Manually aspirate the fixative into a waste container and wash the samples with DPBS-- (3 x 5 min washes). After washing, the remaining steps can be performed outside of a chemical fume hood.

[0097] Prepare staining solution: 1:20,000 SytoxOrange; 3:400 Phalloidin 488, 200 μL / well for 24-well plates and 500 μL / well for 3d discs. Add staining solution to wells after the 3rd DPBS wash. Cover specimens with aluminum foil to prevent photobleaching during staining. Place on rocker at 60 RPM for 45 min to 1 hr. After staining, perform 3 x 5 min DPBS washes. Specimens can be left in the last wash (protected from light with foil) for storage at 4 °C prior to image acquisition.

[0098] Results: Sodium hydroxide increases PAEC and SAEC cell adhesion to Ink A. Cholesterol esterase did not increase PAEC or SAEC cell adhesion compared to PBS. Sodium hydroxide, cholesterol esterase, and PBS did not increase SAEC cell adhesion from days 4 to 7. Sodium hydroxide and glass control increased PAEC cell adhesion from days 4 to 7.

[0099] Example 4: Inks tested for change in mechanical properties and cell adhesion after treatment with NaOH or esterase The following inks were used to produce embodiments of the present disclosure, each of which also contained a photoinitiator, an ultraviolet (UV) absorbing dye, and deionized water.

[0100] Figure 30 shows the compressive mechanical properties of printed objects of Inks A, C, and D in the examples without exposure to enzymes and with exposure to cholesterol esterase. Figure 30A shows Young's modulus. Figure 30B shows ultimate strain. Figure 30C shows ultimate stress. Obtained using a DMA850 tensile tester as described in the examples.

[0101] FIG. 31 shows scanning electron microscope images of the surface network of Fischer disk Ink A with different channel thicknesses.

[0102] Example 5: 3D printed object with supports 3D printed objects with struts were tested according to the procedure of Example 2. Evaluations of Young's modulus, ultimate stress, and ultimate strain were performed. Figure 46 shows that vertical struts decreased Young's modulus on the Ink-A Fischer disk (Figure 46A), while increasing the ultimate stress (Figure 46C). The ultimate strain is shown in Figure 46B.

[0103] No. 63 / 185,293, filed May 6, 2021, entitled “USE OF FUNCTIONALIZED AND NON-FUNCTIONALIZED ECMS, ECM FRAGMENTS, PEPTIDES AND BIOACTIVE COMPONENTS TO CREATE CELL ADHESIVE 3D PRINTED OBJECTS,” and U.S. non-provisional and / or PCT applications of the same title, filed May 6, 2022; (b) U.S. Provisional Application No. 63 / 185,293, filed May 6, 2021, entitled “CONTROLLING THE SIZE OF 3D PRINTING HYDROGEL OBJECTS USING HDROPHILIC MONOMERS, HYDROPHOBIC MONOMERS, AND No. 63 / 185,300, entitled “PHOTOCURABLE REINFORCEMENT OF 3D PRINTED HYDROGEL OBJECTS,” filed on May 6, 2021, and U.S. regular and / or PCT applications of the same title, filed on May 6, 2022; (c) U.S. Provisional Application No. 63 / 185,305, entitled “PHOTOCURABLE REINFORCEMENT OF 3D PRINTED HYDROGEL OBJECTS,” filed on May 6, 2021, and U.S. regular and / or PCT applications of the same title, filed on May 6, 2022; (d) U.S. Provisional Application No. 63 / 185,305, entitled “ADDITIVE MANUFACTURING OF HYDROGEL TUBE FOR BIOMEDICAL CROSSLINKERS,” filed on May 6, 2021, and U.S. regular and / or PCT applications of the same title, filed on May 6, 2022; No. 63 / 185,299, entitled "MICROPHYSIOLOGICAL 3-D PRINTING AND ITS APPLICATIONS," filed on May 6, 2022, and U.S. regular and / or PCT applications of the same title; and (e) U.S. Provisional Application No. 63 / 185,298, entitled "MICROPHYSIOLOGICAL 3-D PRINTING AND ITS APPLICATIONS," filed on May 6, 2021, and U.S. regular and / or PCT applications of the same title, filed on May 6, 2022.

[0104] Although certain preferred embodiments have been referred to above, it will be understood that the present invention is not limited thereto. Those skilled in the art will understand that various modifications may be made to the disclosed embodiments, and that such modifications are intended to be within the scope of the present invention.

[0105] All publications, patent applications, and patents cited herein are hereby incorporated by reference in their entirety. Further embodiments are set forth in the following claims.

Claims

1. 1. A method of modifying a polymeric scaffold comprising polymerized poly(ethylene glycol) di(meth)acrylate moieties, polymerized poly(ethylene glycol) di(meth)acrylamide moieties, polymerized poly(ethylene glycol) (meth)acrylate / (methacrylamide) moieties, or mixtures thereof, said method comprising: providing said polymeric scaffold; contacting the polymeric scaffold with a hydrolysis agent comprising NaOH and a proteolytic agent comprising cholesterol esterase; and contacting the polymeric scaffold with the hydrolytic agent and the proteolytic agent and then contacting the polymeric scaffold with lung cells; Including, The method, wherein contacting the polymeric scaffold with the hydrolytic agent and the proteolytic agent increases lung cell adhesion to the polymeric scaffold and decreases Young's modulus of the polymeric scaffold.

2. The method of claim 1 , wherein the polymeric scaffold comprises polymerized poly(ethylene glycol) diacrylate moieties.

3. 3. The method of claim 2, wherein the polymerized poly(ethylene glycol) diacrylate moiety comprises PEGDA3400, PEGDA575, or a mixture thereof.

4. The method of claim 1 , wherein the polymeric scaffold further comprises polymerized collagen.

5. The method of claim 1 , wherein the polymeric scaffold further comprises polymerized hydroxypropyl acrylate (HPA).

6. The method of claim 1 , wherein the polymeric scaffold further comprises a polymerization UV initiator.

7. 2. The method of claim 1, wherein the concentration of the hydrolysis agent is from about 1 mM to about 25 mM, from about 25 mM to about 50 mM, from about 50 mM to about 100 mM, from about 100 mM to about 150 mM, from about 150 mM to about 300 mM, from about 300 mM to about 500 mM, from about 500 mM to about 1 M, from about 1 M to about 5 M, or greater than about 5 M.

8. 13. The method of claim 1, wherein the scaffold is contacted with the hydrolyzing agent for about 1 minute to about 30 minutes, about 30 minutes to about 1 hour, about 1 hour to about 2.5 hours, about 2.5 hours to about 5 hours, about 5 hours to about 7.5 hours, about 7.5 hours to about 10 hours, about 10 hours to about 24 hours, about 24 hours to about 2 days, about 2 days to about 4 days, about 4 days to about 8 days, about 8 days to about 12 days, about 12 days to about 30 days, or more than about 30 days.

9. 2. The method of claim 1, wherein the concentration of the proteolytic agent is from about 0.1 U to about 1 U, from about 1 U to about 2.5 U, from about 2.5 U to about 5 U, from about 5 U to about 7.5 U, from about 7.5 U to about 10 U, from about 10 U to about 15 U, or greater than about 15 U.

10. 13. The method of claim 1, wherein the scaffold is contacted with the proteolytic agent for about 1 hour, about 1 hour to about 2.5 hours, about 2.5 hours to about 5 hours, about 5 hours to about 7.5 hours, about 7.5 hours to about 10 hours, about 10 hours to about 24 hours, about 24 hours to about 2 days, about 2 days to about 4 days, about 4 days to about 8 days, about 8 days to about 12 days, about 12 days to about 30 days, or more than about 30 days.

11. 10. The method of claim 1, wherein the scaffold is a 3D printed scaffold.

12. The method of claim 1 , wherein the scaffold comprises a channel and a wall.

13. The method of claim 12, wherein the channel has a width of about 200 μm to about 500 μm.

14. The method of claim 12, wherein the wall has a width of about 150 μm to about 400 μm.

15. 13. A polymeric scaffold produced by the method of claim 1. 。

16. 1. A method for increasing affinity of a polymeric scaffold for cells, the polymeric scaffold comprising polymerized poly(ethylene glycol) di(meth)acrylate moieties, polymerized poly(ethylene glycol) di(meth)acrylamide moieties, polymerized poly(ethylene glycol) (meth)acrylate / (methacrylamide) moieties, or mixtures thereof; The method includes providing the polymeric scaffold; contacting the polymeric scaffold with a hydrolysis agent comprising NaOH and a proteolytic agent comprising cholesterol esterase; and contacting the polymeric scaffold with the hydrolytic agent and the proteolytic agent and then contacting the polymeric scaffold with lung cells. Including, The method, wherein contacting the polymeric scaffold with the hydrolytic agent and the proteolytic agent increases lung cell adhesion to the polymeric scaffold and decreases Young's modulus of the polymeric scaffold.