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Gelatin-biofermentative unsulfated glycosaminoglycans semi-interpenetrating hydrogels via microbial-transglutaminase crosslinking enhance osteogenic potential of dental pulp stem cells

Gelatin hydrogels by microbial-transglutaminase crosslinking are being increasingly exploited for tissue engineering, and proved high potential in bone regeneration. This study aimed to evaluate, for the first time, the combination of enzymatically crosslinked gelatin with hyaluronan and the newly d...

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Autores principales: La Gatta, Annalisa, Tirino, Virginia, Cammarota, Marcella, La Noce, Marcella, Stellavato, Antonietta, Pirozzi, Anna Virginia Adriana, Portaccio, Marianna, Diano, Nadia, Laino, Luigi, Papaccio, Gianpaolo, Schiraldi, Chiara
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8240633/
https://www.ncbi.nlm.nih.gov/pubmed/34211725
http://dx.doi.org/10.1093/rb/rbaa052
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author La Gatta, Annalisa
Tirino, Virginia
Cammarota, Marcella
La Noce, Marcella
Stellavato, Antonietta
Pirozzi, Anna Virginia Adriana
Portaccio, Marianna
Diano, Nadia
Laino, Luigi
Papaccio, Gianpaolo
Schiraldi, Chiara
author_facet La Gatta, Annalisa
Tirino, Virginia
Cammarota, Marcella
La Noce, Marcella
Stellavato, Antonietta
Pirozzi, Anna Virginia Adriana
Portaccio, Marianna
Diano, Nadia
Laino, Luigi
Papaccio, Gianpaolo
Schiraldi, Chiara
author_sort La Gatta, Annalisa
collection PubMed
description Gelatin hydrogels by microbial-transglutaminase crosslinking are being increasingly exploited for tissue engineering, and proved high potential in bone regeneration. This study aimed to evaluate, for the first time, the combination of enzymatically crosslinked gelatin with hyaluronan and the newly developed biotechnological chondroitin in enhancing osteogenic potential. Gelatin enzymatic crosslinking was carried out in the presence of hyaluronan or of a hyaluronan–chondroitin mixture, obtaining semi-interpenetrating gels. The latter proved lower swelling extent and improved stiffness compared to the gelatin matrix alone, whilst maintaining high stability. The heteropolysaccharides were retained for 30 days in the hydrogels, thus influencing cell response over this period. To evaluate the effect of hydrogel composition on bone regeneration, materials were seeded with human dental pulp stem cells and osteogenic differentiation was assessed. The expression of osteocalcin (OC) and osteopontin (OPN), both at gene and protein level, was evaluated at 7, 15 and 30 days of culture. Scanning electron microscopy (SEM) and two-photon microscope observations were performed to assess bone-like extracellular matrix (ECM) deposition and to observe the cell penetration depth. In the presence of the heteropolysaccharides, OC and OPN expression was upregulated and a higher degree of calcified matrix formation was observed. Combination with hyaluronan and chondroitin improved both the biophysical properties and the biological response of enzymatically crosslinked gelatin, fastening bone deposition.
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spelling pubmed-82406332021-06-30 Gelatin-biofermentative unsulfated glycosaminoglycans semi-interpenetrating hydrogels via microbial-transglutaminase crosslinking enhance osteogenic potential of dental pulp stem cells La Gatta, Annalisa Tirino, Virginia Cammarota, Marcella La Noce, Marcella Stellavato, Antonietta Pirozzi, Anna Virginia Adriana Portaccio, Marianna Diano, Nadia Laino, Luigi Papaccio, Gianpaolo Schiraldi, Chiara Regen Biomater Research Article Gelatin hydrogels by microbial-transglutaminase crosslinking are being increasingly exploited for tissue engineering, and proved high potential in bone regeneration. This study aimed to evaluate, for the first time, the combination of enzymatically crosslinked gelatin with hyaluronan and the newly developed biotechnological chondroitin in enhancing osteogenic potential. Gelatin enzymatic crosslinking was carried out in the presence of hyaluronan or of a hyaluronan–chondroitin mixture, obtaining semi-interpenetrating gels. The latter proved lower swelling extent and improved stiffness compared to the gelatin matrix alone, whilst maintaining high stability. The heteropolysaccharides were retained for 30 days in the hydrogels, thus influencing cell response over this period. To evaluate the effect of hydrogel composition on bone regeneration, materials were seeded with human dental pulp stem cells and osteogenic differentiation was assessed. The expression of osteocalcin (OC) and osteopontin (OPN), both at gene and protein level, was evaluated at 7, 15 and 30 days of culture. Scanning electron microscopy (SEM) and two-photon microscope observations were performed to assess bone-like extracellular matrix (ECM) deposition and to observe the cell penetration depth. In the presence of the heteropolysaccharides, OC and OPN expression was upregulated and a higher degree of calcified matrix formation was observed. Combination with hyaluronan and chondroitin improved both the biophysical properties and the biological response of enzymatically crosslinked gelatin, fastening bone deposition. Oxford University Press 2021-06-12 /pmc/articles/PMC8240633/ /pubmed/34211725 http://dx.doi.org/10.1093/rb/rbaa052 Text en © The Author(s) 2021. Published by Oxford University Press. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
La Gatta, Annalisa
Tirino, Virginia
Cammarota, Marcella
La Noce, Marcella
Stellavato, Antonietta
Pirozzi, Anna Virginia Adriana
Portaccio, Marianna
Diano, Nadia
Laino, Luigi
Papaccio, Gianpaolo
Schiraldi, Chiara
Gelatin-biofermentative unsulfated glycosaminoglycans semi-interpenetrating hydrogels via microbial-transglutaminase crosslinking enhance osteogenic potential of dental pulp stem cells
title Gelatin-biofermentative unsulfated glycosaminoglycans semi-interpenetrating hydrogels via microbial-transglutaminase crosslinking enhance osteogenic potential of dental pulp stem cells
title_full Gelatin-biofermentative unsulfated glycosaminoglycans semi-interpenetrating hydrogels via microbial-transglutaminase crosslinking enhance osteogenic potential of dental pulp stem cells
title_fullStr Gelatin-biofermentative unsulfated glycosaminoglycans semi-interpenetrating hydrogels via microbial-transglutaminase crosslinking enhance osteogenic potential of dental pulp stem cells
title_full_unstemmed Gelatin-biofermentative unsulfated glycosaminoglycans semi-interpenetrating hydrogels via microbial-transglutaminase crosslinking enhance osteogenic potential of dental pulp stem cells
title_short Gelatin-biofermentative unsulfated glycosaminoglycans semi-interpenetrating hydrogels via microbial-transglutaminase crosslinking enhance osteogenic potential of dental pulp stem cells
title_sort gelatin-biofermentative unsulfated glycosaminoglycans semi-interpenetrating hydrogels via microbial-transglutaminase crosslinking enhance osteogenic potential of dental pulp stem cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8240633/
https://www.ncbi.nlm.nih.gov/pubmed/34211725
http://dx.doi.org/10.1093/rb/rbaa052
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