The Mechanical and Biological Performance of Photopolymerized Gelatin‐Based Hydrogels as a Function of the Reaction Media

Author:

Pamplona Regina1ORCID,González‐Lana Sandra23ORCID,Romero Pilar1ORCID,Ochoa Ignacio345ORCID,Martín‐Rapún Rafael146ORCID,Sánchez‐Somolinos Carlos47ORCID

Affiliation:

1. Aragón Institute of Nanoscience and Materials (INMA), CSIC‐University of Zaragoza Department of Organic Chemistry C/ Pedro Cerbuna 12 Zaragoza 50009 Spain

2. BEONCHIP S.L., CEMINEM Campus Río Ebro. C/ Mariano Esquillor Gómez s/n Zaragoza 50018 Spain

3. Tissue Microenvironment (TME) Lab, Aragón Institute of Engineering Research (I3A) University of Zaragoza C/ Mariano Esquillor s/n Zaragoza 500018 Spain

4. CIBER in Bioengineering Biomaterials and Nanomedicine (CIBER‐BBN) Madrid Spain

5. Institute for Health Research Aragón (IIS Aragón) Paseo de Isabel La Católica 1–3 Zaragoza 50009 Spain

6. Departamento de Química Orgánica, Facultad de Ciencias University of Zaragoza C/ Pedro Cerbuna 12 Zaragoza 50009 Spain

7. Aragón Institute of Nanoscience and Materials (INMA), CSIC‐University of Zaragoza Department of Condensed Matter Physics (Faculty of Science) C/ Pedro Cerbuna 12 Zaragoza 50009 Spain

Abstract

AbstractFrom the first experiments with biomaterials to mimic tissue properties, the mechanical and biochemical characterization has evolved extensively. Several properties can be described, however, what should be essential is to conduct a proper and physiologically relevant characterization. Herein, the influence of the reaction media (RM) and swelling media (SM)–phosphate buffered saline (PBS) and Dulbecco's modified Eagle's medium (DMEM) with two different glucose concentrations–is described in gelatin methacrylamide (GelMA) hydrogel mechanics and in the biological behavior of two tumoral cell lines (Caco‐2 and HCT‐116). All scaffolds are UV‐photocrosslinked under identical conditions and evaluated for mass swelling ratio and stiffness. The results indicate that stiffness is highly susceptible to the RM, but not to the SM. Additionally, PBS‐prepared hydrogels exhibited a higher photopolymerization degree according to high resolution magic‐angle spinning (HR‐MAS) NMR. These findings correlate with the biological response of Caco‐2 and HCT‐116 cells seeded on the substrates, which demonstrated flatter morphologies on stiffer hydrogels. Overall, cell viability and proliferation are excellent for both cell lines, and Caco‐2 cells displayed a characteristic apical‐basal polarization based on F‐actin/Nuclei fluorescence images. These characterization experiments highlight the importance of conducting mechanical testing of biomaterials in the same medium as cell culture.

Funder

Gobierno de Aragón

Agencia Estatal de Investigación

European Social Fund

Centro de Investigación Biomédica en Red en Bioingeniería, Biomateriales y Nanomedicina

European Regional Development Fund

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Biomaterials,Bioengineering,Biotechnology

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