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1.
Biomacromolecules ; 25(6): 3312-3324, 2024 06 10.
Article in English | MEDLINE | ID: mdl-38728671

ABSTRACT

3D-printed hydrogel scaffolds biomimicking the extracellular matrix (ECM) are key in cartilage tissue engineering as they can enhance the chondrogenic differentiation of mesenchymal stem cells (MSCs) through the presence of active nanoparticles such as graphene oxide (GO). Here, biomimetic hydrogels were developed by cross-linking alginate, gelatin, and chondroitin sulfate biopolymers in the presence of GO as a bioactive filler, with excellent processability for developing bioactive 3D printed scaffolds and for the bioprinting process. A novel bioink based on our hydrogel with embedded human MSCs presented a cell survival rate near 100% after the 3D bioprinting process. The effects of processing and filler concentration on cell differentiation were further quantitatively evaluated. The nanocomposited hydrogels render high MSC proliferation and viability, exhibiting intrinsic chondroinductive capacity without any exogenous factor when used to print scaffolds or bioprint constructs. The bioactivity depended on the GO concentration, with the best performance at 0.1 mg mL-1. These results were explained by the rational combination of the three biopolymers, with GO nanoparticles having carboxylate and sulfate groups in their structures, therefore, biomimicking the highly negatively charged ECM of cartilage. The bioactivity of this biomaterial and its good processability for 3D printing scaffolds and 3D bioprinting techniques open up a new approach to developing novel biomimetic materials for cartilage repair.


Subject(s)
Alginates , Bioprinting , Cell Differentiation , Chondrogenesis , Chondroitin Sulfates , Gelatin , Hydrogels , Mesenchymal Stem Cells , Nanocomposites , Printing, Three-Dimensional , Tissue Scaffolds , Humans , Mesenchymal Stem Cells/drug effects , Mesenchymal Stem Cells/cytology , Chondroitin Sulfates/chemistry , Chondroitin Sulfates/pharmacology , Alginates/chemistry , Alginates/pharmacology , Gelatin/chemistry , Bioprinting/methods , Cell Differentiation/drug effects , Chondrogenesis/drug effects , Nanocomposites/chemistry , Tissue Scaffolds/chemistry , Hydrogels/chemistry , Hydrogels/pharmacology , Tissue Engineering/methods , Biomimetic Materials/chemistry , Biomimetic Materials/pharmacology , Graphite/chemistry , Graphite/pharmacology , Cell Proliferation/drug effects , Cells, Cultured
2.
Sci Technol Adv Mater ; 23(1): 300-321, 2022.
Article in English | MEDLINE | ID: mdl-35557509

ABSTRACT

The rice leaf, combining the surface properties of lotus leaves and shark skin, presents outstanding superhydrophobic properties motivating its biomimesis. We created a novel biomimetic rice-leaf superhydrophobic surface by a three-level hierarchical structure, using for a first time stereolithographic (SLA) 3D printed channels (100µm width) with an intrinsic roughness from the printing filaments (10µm), and coated with TiO2 nanoparticles (22 and 100nm). This structure presents a maximum advancing contact angle of 165° characterized by lower both anisotropy and hysteresis contact angles than other 3D printed surfaces, due to the presence of air pockets at the surface/water interface (Cassie-Baxter state). Dynamic water-drop tests show that the biomimetic surface presents self-cleaning, which is reduced under UV-A irradiation. The biomimetic surface further renders an increased floatability to 3D printed objects meaning a drag-reduction due to reduced water/solid contact area. Numerical simulations of a channel with a biomimetic wall confirm that the presence of air is essential to understand our results since it increases the average velocity and decreases the friction factor due to the presence of a wall-slip velocity. Our findings show that SLA 3D printing is an appropriate approach to develop biomimetic superhydrophobic surfaces for future applications in anti-fouling and drag-reduction devices.

3.
ACS Appl Mater Interfaces ; 12(4): 4343-4357, 2020 Jan 29.
Article in English | MEDLINE | ID: mdl-31909967

ABSTRACT

Scaffolds based on bioconjugated hydrogels are attractive for tissue engineering because they can partly mimic human tissue characteristics. For example, they can further increase their bioactivity with cells. However, most of the hydrogels present problems related to their processability, consequently limiting their use in 3D printing to produce tailor-made scaffolds. The goal of this work is to develop bioconjugated hydrogel nanocomposite inks for 3D printed scaffold fabrication through a micro-extrusion process having improved both biocompatibility and processability. The hydrogel is based on a photocrosslinkable alginate bioconjugated with both gelatin and chondroitin sulfate in order to mimic the cartilage extracellular matrix, while the nanofiller is based on graphene oxide to enhance the printability and cell proliferation. Our results show that the incorporation of graphene oxide into the hydrogel inks considerably improved the shape fidelity and resolution of 3D printed scaffolds because of a faster viscosity recovery post extrusion of the ink. Moreover, the nanocomposite inks produce anisotropic threads after the 3D printing process because of the templating of the graphene oxide liquid crystal. The in vitro proliferation assay of human adipose tissue-derived mesenchymal stem cells (hADMSCs) shows that bioconjugated scaffolds present higher cell proliferation than pure alginate, with the nanocomposites presenting the highest values at long times. Live/Dead assay otherwise displays full viability of hADMSCs adhered on the different scaffolds at day 7. Notably, the scaffolds produced with nanocomposite hydrogel inks were able to guide the cell proliferation following the direction of the 3D printed threads. In addition, the bioconjugated alginate hydrogel matrix induced chondrogenic differentiation without exogenous pro-chondrogenesis factors as concluded from immunostaining after 28 days of culture. This high cytocompatibility and chondroinductive effect toward hADMSCs, together with the improved printability and anisotropic structures, makes these nanocomposite hydrogel inks a promising candidate for cartilage tissue engineering based on 3D printing.


Subject(s)
Alginates/chemistry , Bioprinting/instrumentation , Graphite/chemistry , Hydrogels/chemistry , Mesenchymal Stem Cells/cytology , Tissue Scaffolds/chemistry , Cell Adhesion , Cell Proliferation , Chondrogenesis , Humans , Printing, Three-Dimensional/instrumentation , Tissue Engineering/instrumentation
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