Tuning of Silver Content on the Antibacterial and Biological Properties of Poly(ɛ-caprolactone)/Biphasic Calcium Phosphate 3D-Scaffolds for Bone Tissue Engineering (Banche G. is the corresponding author; Palmero P. and Allizond V. are co-last authors)
Articolo
Data di Pubblicazione:
2023
Abstract:
There is a growing interest in tissue engineering, in which biomaterials play a pivotal
role in promoting bone regeneration. Furthermore, smart functionalization can provide biomaterials
with the additional role of preventing orthopedic infections. Due to the growing microbial
resistance to antimicrobials used to treat those infections, metal ions, such as silver, thanks to their
known wide range of bactericidal properties, are believed to be promising additives in developing
antibacterial biomaterials. In this work, novel poly("-caprolactone) (PCL)-based 3D scaffolds have
been designed and developed, where the polymer matrix was modified with both silver (Ag), to
supply antibacterial behavior, and calcium phosphates (biphasic calcium phosphate, BCP) particles
to impart bioactive/bioresorbable properties. The microstructural analysis showed that constructs
were characterized by square-shaped macropores, in line with the morphology and size of the templating
salts used as pore formers. Degradation tests demonstrated the important role of calcium
phosphates in improving PCL hydrophilicity, leading to a higher degradation degree for BCP/PCL
composites compared to the neat polymer after 18 days of soaking. The appearance of an inhibition
halo around the silver-functionalized PCL scaffolds for assayed microorganisms and a significant
(p < 0.05) decrease in both adherent and planktonic bacteria demonstrate the Ag+ release from the
3D constructs. Furthermore, the PCL scaffolds enriched with the lowest silver percentages did not
hamper the viability and proliferation of Saos-2 cells. A synergic combination of antimicrobial,
osteoproliferative and biodegradable features provided to 3D scaffolds the required potential for
bone tissue engineering, beside anti-microbial properties for reduction in prosthetic joints infections.
Tipologia CRIS:
03A-Articolo su Rivista
Keywords:
poly(e-caprolactone)-based biomaterial; calcium phosphates; silver; Staphylococcus aureus;
S. epidermidis; Escherichia coli; anti-adhesive/antibacterial properties; Saos-2 cells’ cell viability/proliferation
Elenco autori:
Menotti F.; Scutera S.; Coppola B.; Longo F.; Mandras N.; Cavallo L.; Comini S.; Sparti R.; Fiume E.; Cuffini A.M.; Banche G.; Palmero P.; Allizond V. (Banche G. is the corresponding author; Palmero P. and Allizond V. are co-last authors)
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