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Bioactive Composite Methacrylated Gellan Gum for 3D-Printed Bone Tissue-Engineered Scaffolds

Articolo
Data di Pubblicazione:
2023
Abstract:
Gellan gum (GG) was chemically modified with methacrylic moieties to produce a photocrosslinkable biomaterial ink, hereinafter called methacrylated GG (GGMA), with improved physico-chemical properties, mechanical behavior and stability under physiological conditions. Afterwards, GGMA was functionalized by incorporating two different bioactive compounds, a naturally derived eumelanin extracted from the black soldier fly (BSF-Eumel), or hydroxyapatite nanoparticles (HAp), synthesized by the sol-gel method. Different ink formulations based on GGMA (2 and 4% (w/v)), BSF-Eumel, at a selected concentration (0.3125 mg/mL), or HAp (10 and 30% w(HAp)/w(GGMA)) were developed and processed by three-dimensional (3D) printing. All the functionalized GGMA-based ink formulations allowed obtaining 3D-printed GGMA-based scaffolds with a well-organized structure. For both bioactive signals, the scaffolds with the highest GGMA concentration (4% (w/v)) and the highest percentage of infill (45%) showed the best performances in terms of morphological and mechanical properties. Indeed, these scaffolds showed a good structural integrity over 28 days. Given the presence of negatively charged groups along the eumelanin backbone, scaffolds consisting of GGMA/BSF-Eumel demonstrated a higher stability. From a mechanical point of view, GGMA/BSF-Eumel scaffolds exhibited values of storage modulus similar to those of GGMA ones, while the inclusion of HAp at 30% (w(HAp)/w(GGMA)) led to a storage modulus of 32.5 kPa, 3.5-fold greater than neat GGMA. In vitro studies proved the capability of the bioactivated 3D-printed scaffolds to support 7F2 osteoblast cell growth and differentiation. BSF-Eumel and HAp triggered a different time-dependent physiological response in the osteoblasts. Specifically, while the ink with BSF-Eumel acted as a stimulus towards cell proliferation, reaching the highest value at 14 days, a higher expression of alkaline phosphatase activity was detected for scaffolds consisting of GGMA and HAp. The overall findings demonstrated the possible use of these biomaterial inks for 3D-printed bone tissue-engineered scaffolds.
Tipologia CRIS:
14.a.1 Articolo su rivista
Keywords:
3D printing; bone tissue engineering; eumelanin; gellan gum; hydroxyapatite; scaffolds
Elenco autori:
D'Amora, U.; Ronca, A.; Scialla, S.; Soriente, A.; Manini, P.; Phua, J. W.; Ottenheim, C.; Pezzella, A.; Calabrese, G.; Raucci, M. G.; Ambrosio, L.
Autori di Ateneo:
CALABRESE Giovanna
Link alla scheda completa:
https://iris.unime.it/handle/11570/3261668
Link al Full Text:
https://iris.unime.it//retrieve/handle/11570/3261668/560354/Bioactive%20Composite%20Methacrylated%20Gellan%20Gum%20for%203D-Printed%20Bone%20Tissue-Engineered%20Scaffolds.pdf
Pubblicato in:
NANOMATERIALS
Journal
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https://www.mdpi.com/2079-4991/13/4/772
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