PHEMA Hydrogels Obtained by Infrared Radiation for Cartilage Tissue Engineering

Author:

Passos Marcele F.12ORCID,Carvalho Nayara M. S.23,Rodrigues Ana Amélia2,Bavaresco Vanessa P.24,Jardini André L.23,Maciel Maria Regina W.23,Maciel Filho Rubens23

Affiliation:

1. Federal University of Pará (UFPA), Biological Sciences Institute, School of Biotechnology, CEP 66075-110, Belém, PA, Brazil

2. National Institute of Biofabriation (INCT-BIOFABRIS), School of Chemical Engineering, CEP 13083-852, Campinas, SP, Brazil

3. State University of Campinas (UNICAMP), Laboratory of Optimization, Design and Advanced Process Control (LOPCA), School of Chemical Engineering, CEP 13083-852, Campinas, SP, Brazil

4. State University of Campinas (UNICAMP), CTC-Plastics Department, CEP 13087-261, Campinas, SP, Brazil

Abstract

Although the exposure of polymeric materials to radiation is a well-established process, little is known about the relationship between structure and property and the biological behavior of biomaterials obtained by thermal phenomena at 1070 nm wavelength. This study includes results concerning the use of a novel infrared radiation source (ytterbium laser fiber) for the synthesis of poly(2-hydroxyethyl methacrylate) (PHEMA) hydrogel in order to produce medical devices. The materials were obtained by means of free radical polymerization mechanism and evaluated regarding its cross-linking degree, polymer chain mobility, thermal, and mechanical properties. Their potential use as a biomaterial toward cartilage tissue was investigated through incubation with chondrocytes cells culture by dimethylmethylene blue (DMMB) dye and DNA quantification. Differential scanning calorimetry (DSC) results showed that glass transition temperature (Tg) was in the range 103°C–119°C, the maximum degree of swelling was 70.8%, and indentation fluency test presented a strain of 56%–85%. A significant increase of glycosaminoglycans (GAGs) concentration and DNA content in cells cultured with 40 wt% 2-hydroxyethyl methacrylate was observed. Our results showed the suitability of infrared laser fiber in the free radicals formation and in the rapid polymer chain growth, and further cross-linking. The porous material obtained showed improvements concerning cartilage tissue regeneration.

Funder

Fundação de Amparo à Pesquisa do Estado de São Paulo

Publisher

Hindawi Limited

Subject

General Chemical Engineering

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