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Microporous Fluorescent Poly(D,L-lactide) Acid-Carbon Nanodot Scaffolds for Bone Tissue Engineering Applications.
Mauro, Nicolò; Calabrese, Giovanna; Sciortino, Alice; Rizzo, Maria G; Messina, Fabrizio; Giammona, Gaetano; Cavallaro, Gennara.
Afiliação
  • Mauro N; Department of "Scienze e Tecnologie Biologiche Chimiche e Farmaceutiche" (STEBICEF), Università Degli Studi di Palermo, Via Archirafi 32, 90123 Palermo, Italy.
  • Calabrese G; Department of Chemical, Biological, Pharmaceutical and Environmental Sciences, University of Messina, Viale Ferdinando Stagno d'Alcontres 31, 98168 Messina, Italy.
  • Sciortino A; Department of Chimica e Fisica "E. Segrè", Università Degli Studi di Palermo, Via Archirafi 36, 90123 Palermo, Italy.
  • Rizzo MG; Department of Chemical, Biological, Pharmaceutical and Environmental Sciences, University of Messina, Viale Ferdinando Stagno d'Alcontres 31, 98168 Messina, Italy.
  • Messina F; Department of Chimica e Fisica "E. Segrè", Università Degli Studi di Palermo, Via Archirafi 36, 90123 Palermo, Italy.
  • Giammona G; Department of "Scienze e Tecnologie Biologiche Chimiche e Farmaceutiche" (STEBICEF), Università Degli Studi di Palermo, Via Archirafi 32, 90123 Palermo, Italy.
  • Cavallaro G; Department of "Scienze e Tecnologie Biologiche Chimiche e Farmaceutiche" (STEBICEF), Università Degli Studi di Palermo, Via Archirafi 32, 90123 Palermo, Italy.
Materials (Basel) ; 17(2)2024 Jan 17.
Article em En | MEDLINE | ID: mdl-38255617
ABSTRACT
In this study, we introduce novel microporous poly(D,L-lactide) acid-carbon nanodot (PLA-CD) nanocomposite scaffolds tailored for potential applications in image-guided bone regeneration. Our primary objective was to investigate concentration-dependent structural variations and their relevance to cell growth, crucial aspects in bone regeneration. The methods employed included comprehensive characterization techniques such as DSC/TGA, FTIR, rheological, and degradation assessments, providing insights into the scaffolds' thermoplastic behavior, microstructure, and stability over time. Notably, the PLA-CD scaffolds exhibited distinct self-fluorescence, which persisted after 21 days of incubation, allowing detailed visualization in various multicolor modalities. Biocompatibility assessments were conducted by analyzing human adipose-derived stem cell (hADSC) growth on PLA-CD scaffolds, with results substantiated through cell viability and morphological analyses. hADSCs reached a cell viability of 125% and penetrated throughout the scaffold after 21 days of incubation. These findings underscore the scaffolds' potential in bone regeneration and fluorescence imaging. The multifunctional nature of the PLA-CD nanocomposite, integrating diagnostic capabilities with tunable properties, positions it as a promising candidate for advancing bone tissue engineering. Our study not only highlights key aspects of the investigation but also underscores the scaffolds' specific application in bone regeneration, providing a foundation for further research and optimization in this critical biomedical field.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article