Hydrogel Based on Nanoclay and Gelatin Methacrylate Polymeric Matrix as a Potential Osteogenic Application

Author:

Andrade Danielle B.1,Soares Leticya L. S.2,Cardoso Francisca L. A.2,Lima Idglan S.1,Silva Jhaemely G. V.1,Carvalho Maria A. M.2,Fonseca Maria G.3ORCID,Brito Guilherme de C.1,Santos Francisco Eroni P.1ORCID,Osajima Josy A.14ORCID,Lobo Anderson O.1ORCID,Silva-Filho Edson C.14ORCID

Affiliation:

1. Interdisciplinary Laboratory for Advanced Materials (LIMAV), Materials Science and Engineering Graduate Program (PPGCM), Technology Center, Federal University of Piauí (UFPI), Teresina 64049-550, PI, Brazil

2. NUPCELT, Animal Science Center, Federal University of Piauí, Teresina 64049-550, PI, Brazil

3. Research Center and Extension Laboratory of Fuels and Materials-NPE/LACOM, Department of Chemistry, Federal University of Paraíba, MGF, João Pessoa 58051-900, PB, Brazil

4. Chemistry Department, Natural Science Center, Federal University of Piauí, Teresina 64049-550, PI, Brazil

Abstract

A nanocomposite hydrogel has potentially applicability in the induction of osteogenesis. The hydrogel was synthesized using 1% gelatin methacrylate (GelMA), a biodegradable and bioactive polymer containing the structure of gelatin, denatured collagen derived from the extracellular bone matrix, and 6% laponite (Lap), a synthetic phyllosilicate of nanosized particles. Initially, 0.6 g of Lap was added to deionized water, and then a solution of GelMA/Igarcure was added under stirring and UV light for crosslinking. The spectra in the Fourier-transform infrared region showed bands that indicate the interaction between gelatin and methacrylate anhydride. X-ray diffraction patterns confirmed the presence of Lap and GelMA in the hydrogel. The thermogravimetric analysis suggested an increase in the thermal stability of the hydrogel with the presence of clay mineral. Rheological analysis showed that the hydrogel had a viscosity that allowed its injectability. The hydrogel did not show acute toxicity at any of the concentrations tested according to the Artemia salina lethality test. It showed cell viability more significant than 80% in the MTT test, which makes it suitable for in vivo osteogenic induction tests. The cell differentiation test showed the differentiation of stem cells into osteogenic cells. It indicates a material with the potential for osteogenic induction and possible application in bone tissue engineering.

Funder

CNPq

Publisher

MDPI AG

Subject

Biomedical Engineering,Biomaterials

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