Publication:
Hydroxyl Groups Induce Bioactivity in Silica/Chitosan Aerogels Designed for Bone Tissue Engineering. In Vitro Model for the Assessment of Osteoblasts Behavior

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2020-11-26

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Perez-Moreno, Antonio
Reyes-Peces, María de las Virtudes
de Los Santos, Deseada María
Pinaglia-Tobaruela, Gonzalo
de la Orden, Emilio
Vilches-Pérez, José Ignacio
Salido, Mercedes
Piñero, Manuel
de la Rosa-Fox, Nicolás

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MDPI
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Abstract

Silica (SiO2)/chitosan (CS) composite aerogels are bioactive when they are submerged in simulated body fluid (SBF), causing the formation of bone-like hydroxyapatite (HAp) layer. Silica-based hybrid aerogels improve the elastic behavior, and the combined CS modifies the network entanglement as a crosslinking biopolymer. Tetraethoxysilane (TEOS)/CS is used as network precursors by employing a sol-gel method assisted with high power ultrasound (600 W). Upon gelation and aging, gels are dried in supercritical CO2 to obtain monoliths. Thermograms provide information about the condensation of the remaining hydroxyl groups (400-700 °C). This step permits the evaluation of the hydroxyl group's content of 2 to 5 OH nm-2. The formed Si-OH groups act as the inductor of apatite crystal nucleation in SBF. The N2 physisorption isotherms show a hysteresis loop of type H3, characteristic to good interconnected porosity, which facilitates both the bioactivity and the adhesion of osteoblasts cells. After two weeks of immersion in SBF, a layer of HAp microcrystals develops on the surface with a stoichiometric Ca/P molar ratio of 1.67 with spherulite morphology and uniform sizes of 6 μm. This fact asserts the bioactive behavior of these hybrid aerogels. Osteoblasts are cultured on the selected samples and immunolabeled for cytoskeletal and focal adhesion expression related to scaffold nanostructure and composition. The initial osteoconductive response observes points to a great potential of tissue engineering for the designed composite aerogels.

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Medical Subject Headings::Chemicals and Drugs::Macromolecular Substances::Polymers::Biopolymers::Chitin::Chitosan
Medical Subject Headings::Chemicals and Drugs::Inorganic Chemicals::Minerals::Silicon Dioxide
Medical Subject Headings::Analytical, Diagnostic and Therapeutic Techniques and Equipment::Investigative Techniques::Culture Techniques::Cell Engineering::Tissue Engineering
Medical Subject Headings::Chemicals and Drugs::Inorganic Chemicals::Carbon Compounds, Inorganic::Carbon Dioxide
Medical Subject Headings::Phenomena and Processes::Physical Phenomena::Mechanical Phenomena::Porosity
Medical Subject Headings::Anatomy::Cells::Cellular Structures::Cell Membrane::Cell Membrane Structures::Cell-Matrix Junctions::Focal Adhesions
Medical Subject Headings::Analytical, Diagnostic and Therapeutic Techniques and Equipment::Investigative Techniques::Immersion
Medical Subject Headings::Chemicals and Drugs::Inorganic Chemicals::Acids::Acids, Noncarboxylic::Phosphorus Acids::Phosphoric Acids::Phosphates::Calcium Phosphates::Apatites::Hydroxyapatites
Medical Subject Headings::Chemicals and Drugs::Complex Mixtures::Colloids::Gels
Medical Subject Headings::Chemicals and Drugs::Inorganic Chemicals::Calcium Compounds::Calcium Phosphates::Apatites
Medical Subject Headings::Technology and Food and Beverages::Technology, Industry, and Agriculture::Manufactured Materials::Nanostructures
Medical Subject Headings::Anatomy::Fluids and Secretions::Body Fluids
Medical Subject Headings::Anatomy::Cells::Connective Tissue Cells::Osteoblasts

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Keywords

Aerogels, Biomaterials, Fracture toughness, Hydroxyapatite (HAp), Bone tissue engineering, Osteoinduction, Osteoblasts, Chitosan, Focal adhesions, Materiales biocompatibles, Osteoblastos, Quitosano

Citation

Perez-Moreno A, Reyes-Peces MV, de Los Santos DM, Pinaglia-Tobaruela G, de la Orden E, Vilches-Pérez JI, et al. Hydroxyl Groups Induce Bioactivity in Silica/Chitosan Aerogels Designed for Bone Tissue Engineering. In Vitro Model for the Assessment of Osteoblasts Behavior. Polymers. 2020 Nov 26;12(12):2802