Human Gingival Fibroblast Adhesion and Proliferation on Hydroxyapatite-Coated Zirconia Abutment Surfaces.
Oskar BunzMarie-Christine SteegmannKorbinian BenzHolger TestrichAntje QuadeElla A NaumovaWolfgang H ArnoldKatja FrickeAndree PiwowarczykThomas DittmarPublished in: Materials (Basel, Switzerland) (2022)
Applying antibacterial coatings to dental implant materials seems reasonable but can have negative influences on desired cell adhesion and healing. In this study, zirconia abutment specimens interacting with gingival tissue were used. The aim was to compare the influence of machined or coated zirconia surfaces on the adhesion and proliferation of human gingival fibroblasts (HGF-1). Surface modifications were performed using atmospheric plasma coating with hydroxyapatite, zinc, and copper. Zirconia specimens were divided into four groups: hydroxyapatite, hydroxyapatite with zinc oxide (ZnO), hydroxyapatite with copper (Cu), and an untreated machined surface. After the characterization of the surface conditions, the morphology of adhered HGF-1 was determined by fluorescence staining and subjected to statistical evaluation. The visual analysis of cell morphology by SEM showed flat, polygonal, and largely adherent fibroblast cells in the untreated group, while round to partially flat cells were recorded in the groups with hydroxyapatite, hydroxyapatite + ZnO, and hydroxyapatite + Cu. The cell membranes in the hydroxyapatite + ZnO and hydroxyapatite + Cu groups appeared porous. The results show that HGF-1 adhere and proliferate well on machined zirconia, while plasma coating with hydroxyapatite or hydroxyapatite mixtures does not lead to increased adhesion or proliferation.
Keyphrases
- bone regeneration
- tissue engineering
- lactic acid
- cell adhesion
- induced apoptosis
- signaling pathway
- biofilm formation
- stem cells
- room temperature
- quantum dots
- escherichia coli
- cell proliferation
- cystic fibrosis
- cell death
- cell cycle arrest
- cell migration
- induced pluripotent stem cells
- endoplasmic reticulum stress
- ionic liquid
- metal organic framework
- cell therapy
- extracellular matrix
- staphylococcus aureus
- candida albicans
- visible light