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  1. Pubblicazioni

Zirconia Hybrid Dental Implants Influence the Biological Properties of Neural Crest-Derived Mesenchymal Stromal Cells

Articolo
Data di Pubblicazione:
2024
Citazione:
Zirconia Hybrid Dental Implants Influence the Biological Properties of Neural Crest-Derived Mesenchymal Stromal Cells / Tagliaferri, N.; Pisciotta, A.; Orlandi, G.; Bertani, G.; Di Tinco, R.; Bertoni, L.; Sena, P.; Lunghi, A.; Bianchi, M.; Veneri, F.; Bellini, P.; Bertacchini, J.; Conserva, E.; Consolo, U.; Carnevale, G.. - In: NANOMATERIALS. - ISSN 2079-4991. - 14:5(2024), pp. 392-392. [10.3390/nano14050392]
Abstract:
Dental implants are regularly employed in tooth replacement, the good clinical outcome of which is strictly correlated to the choice of an appropriate implant biomaterial. Titanium-based implants are considered the gold standard for rehabilitation of edentulous spaces. However, the insurgence of allergic reactions, cellular sensitization and low integration with dental and gingival tissues lead to poor osseointegration, affecting the implant stability in the bone and favoring infections and inflammatory processes in the peri-implant space. These failures pave the way to develop and improve new biocompatible implant materials. CERID dental implants are made of a titanium core embedded in a zirconium dioxide ceramic layer, ensuring absence of corrosion, a higher biological compatibility and a better bone deposition compared to titanium ones. We investigated hDPSCs' biological behavior, i.e., cell adhesion, proliferation, morphology and osteogenic potential, when seeded on both CERID and titanium implants, before and after cleansing with two different procedures. SEM and AFM analysis of the surfaces showed that while CERID disks were not significantly affected by the cleansing system, titanium ones exhibited well-visible modifications after brush treatment, altering cell morphology. The proliferation rate of DPSCs was increased for titanium, while it remained unaltered for CERID. Both materials hold an intrinsic potential to promote osteogenic commitment of neuro-ectomesenchymal stromal cells. Interestingly, the CERID surface mitigated the immune response by inducing an upregulation of anti-inflammatory cytokine IL-10 on activated PBMCs when a pro-inflammatory microenvironment was established. Our in vitro results pave the way to further investigations aiming to corroborate the potential of CERID implants as suitable biomaterials for dental implant applications.
Tipologia CRIS:
Articolo su rivista
Keywords:
dental implants; dental pulp stem/stromal cells; neural crest-derived MSCs; zirconia
Elenco autori:
Tagliaferri, N.; Pisciotta, A.; Orlandi, G.; Bertani, G.; Di Tinco, R.; Bertoni, L.; Sena, P.; Lunghi, A.; Bianchi, M.; Veneri, F.; Bellini, P.; Bertacchini, J.; Conserva, E.; Consolo, U.; Carnevale, G.
Autori di Ateneo:
BELLINI Pierantonio
BERTACCHINI Jessika
BERTONI Laura
BIANCHI MICHELE
CARNEVALE Gianluca
CONSERVA Enrico
CONSOLO Ugo
DI TINCO ROSANNA
LUNGHI ALICE
ORLANDI GIULIA
PISCIOTTA ALESSANDRA
SENA Paola
VENERI FEDERICA
Link alla scheda completa:
https://iris.unimore.it/handle/11380/1354986
Link al Full Text:
https://iris.unimore.it//retrieve/handle/11380/1354986/694492/2024_nanomaterials-14-00392.pdf
Pubblicato in:
NANOMATERIALS
Journal
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