Exploring the Reactions Induced by Bioactive Glass Air Abrasion of Titanium and Their Effects on Osteoblast Cellular Responses
- PMID: 40522065
- DOI: 10.1002/jbm.a.37949
Exploring the Reactions Induced by Bioactive Glass Air Abrasion of Titanium and Their Effects on Osteoblast Cellular Responses
Abstract
This study investigated the chemical events that occur when titanium (Ti) surfaces are treated with air particle abrasion (APA) using zinc-containing bioactive glass (ZnBG), followed by immersion in simulated body fluid (SBF) for up to 96 h. The impact of these changes on osteoblast cell viability, adhesion, and differentiation was evaluated. Sandblasted and acid-etched (SA) Ti disks were subjected to APA with ZnBG particles and then immersed in SBF from 8 to 96 h. Ion dissolution and characterization of ZnBG powder and Ti disks were conducted. Analyses of osteoblast viability, adhesion, and alkaline phosphatase (ALP) activity were performed on MC3T3-E1 cells cultured on control disks (SA-Ti), as well as on ZnBG abraded disks (APA-Ti) and disks immersed for 96 h in SBF (CaP-Ti). After SBF immersion, the ZnBG particle surfaces showed a rise in Si atomic (at.)% within the first 8 h, while Ca remained stable, and the P doubled over 96 h. The ZnBG covering the disks dissolved during the first 8 h, and then the Ca, P, and Si at.% increased as the immersion time extended. The glass particles exhibited amorphous calcium-phosphate (Ca-P) layer formation after 96 h. A significantly (p = 0.004) higher cell viability level was observed on day 7 on APA-Ti compared to SA-Ti disks, while no differences in osteoblast differentiation were observed across the different surfaces. Fluorescence images demonstrated that on day 3, cells adhered to valleys and peaks of CaP-Ti threads but only to valleys on SA-Ti and APA-Ti disks. By day 7, cells were also observed on APA-Ti peaks but not on SA-Ti. In summary, APA enhanced osteoblast proliferation, and a biocompatible Ca-P layer, which formed upon mineralization, supported osteoblast viability, adhesion, and spreading.
Keywords: bioactive glass; calcium phosphate; implant surface; mineralization; peri‐implantitis; zinc.
© 2025 The Author(s). Journal of Biomedical Materials Research Part A published by Wiley Periodicals LLC.
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References
-
- D. Herrera, T. Berglundh, F. Schwarz, et al., “Prevention and Treatment of Peri‐Implant Diseases—The <Scp>EFP S3</Scp> Level Clinical Practice Guideline,” Journal of Clinical Periodontology 50 (2023): 4–76, https://doi.org/10.1111/jcpe.13823.
-
- N. de Campos Kajimoto, Y. Paiva Buischi, M. Mohamadzadeh, and P. Loomer, “The Oral Microbiome of Peri‐Implant Health and Disease: A Narrative Review,” Dentistry Journal 12 (2024): 299, https://doi.org/10.3390/dj12100299.
-
- T. Berglundh, G. Armitage, M. G. Araujo, et al., “Peri‐Implant Diseases and Conditions: Consensus Report of Workgroup 4 of the 2017 World Workshop on the Classification of Periodontal and Peri‐Implant Diseases and Conditions,” Journal of Clinical Periodontology 45 (2018): S286‐S291, https://doi.org/10.1111/jcpe.12957.
-
- S. Kligman, Z. Ren, C.‐H. Chung, et al., “The Impact of Dental Implant Surface Modifications on Osseointegration and Biofilm Formation,” Journal of Clinical Medicine 10 (2021): 1641, https://doi.org/10.3390/jcm10081641.
-
- Y.‐M. Yu, Y.‐P. Lu, T. Zhang, Y.‐F. Zheng, Y.‐S. Liu, and D.‐D. Xia, “Biomaterials Science and Surface Engineering Strategies for Dental Peri‐Implantitis Management,” Military Medical Research 11 (2024): 29, https://doi.org/10.1186/s40779‐024‐00532‐9.
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