Water-Insoluble, Thermostable, Crosslinked Gelatin Matrix for Soft Tissue Implant Development

Author:

Varga Viktória12,Smeller László3ORCID,Várdai Róbert45ORCID,Kocsis Bence2ORCID,Zsoldos Ibolya2ORCID,Cruciani Sara6,Pala Renzo6ORCID,Hornyák István12ORCID

Affiliation:

1. Institute of Translational Medicine, Semmelweis University, 1094 Budapest, Hungary

2. Department of Materials Science and Technology, University of Győr, 9026 Győr, Hungary

3. Department of Biophysics and Radiation Biology, Semmelweis University, 1094 Budapest, Hungary

4. Laboratory of Plastics and Rubber Technology, Department of Physical Chemistry and Materials Science, Faculty of Chemical Technology and Biotechnology, Budapest University of Technology and Economics, 1111 Budapest, Hungary

5. Research Centre for Natural Sciences, Institute of Materials and Environmental Chemistry, 1111 Budapest, Hungary

6. Department of Biomedical Sciences, University of Sassari, Viale San Pietro 43/B, 07100 Sassari, Italy

Abstract

In this present study, the material science background of crosslinked gelatin (GEL) was investigated. The aim was to assess the optimal reaction parameters for the production of a water-insoluble crosslinked gelatin matrix suitable for heat sterilization. Matrices were subjected to enzymatic degradation assessments, and their ability to withstand heat sterilization was evaluated. The impact of different crosslinkers on matrix properties was analyzed. It was found that matrices crosslinked with butanediol diglycidyl ether (BDDE) and poly(ethylene glycol) diglycidyl ether (PEGDE) were resistant to enzymatic degradation and heat sterilization. Additionally, at 1 v/v % crosslinker concentration, the crosslinked weight was lower than the starting weight, suggesting simultaneous degradation and crosslinking. The crosslinked weight and swelling ratio were optimal in the case of the matrices that were crosslinked with 3% and 5% v/v BDDE and PEGDE. FTIR analysis confirmed crosslinking, and the reduction of free primary amino groups indicated effective crosslinking even at a 1% v/v crosslinker concentration. Moreover, stress–strain and compression characteristics of the 5% v/v BDDE crosslinked matrix were comparable to native gelatin. Based on material science measurements, the crosslinked matrices may be promising candidates for scaffold development, including properties such as resistance to enzymatic degradation and heat sterilization.

Funder

Hungarian National Research, Development and Innovation Office

Ministry of Innovation and Technology of Hungary from the NRDI Fund

National Institute on Aging

National Institute of Neurological Disorders and Stroke

National Cancer Institute

Scientific and Innovation Office of Semmelweis University

European Union’s HORIZON 2020 MSCA-RISE Marie Skłodowska-Curie Research and Innovation Staff Exchange Research Programme

Central Library of Semmelweis University

Higher Education Institutional Excellence Programme of the Ministry of Human Capacities in Hungary within the framework of the Molecular Biology Thematic Programme of Semmelweis University

Publisher

MDPI AG

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