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Comparison of the fluoride ion release from nanofluorapatite-modified orthodontic cement under different pH conditions – an in vitro study Cover

Comparison of the fluoride ion release from nanofluorapatite-modified orthodontic cement under different pH conditions – an in vitro study

Open Access
|May 2024

References

  1. Abudrya M., Splieth C.H., Mourad M.S., Santamaría R.M., Efficacy of Different Fluoride Therapies on Hypersensitive Carious Lesions in Primary Teeth, Medicina (Kaunas), 2023, 59 (11), 2042.
  2. Altschul S.F., Madden T.L., Schäffer A.A., Zhang J., Zhang Z., Miller W., Lipman D.J., Gapped BLAST and PSI-BLAST: a new generation of protein database search programs, Nucleic Acids Res., 1997, 25 (17), 3389–3402.
  3. Attiguppe P., Malik N., Ballal S., Naik S.V., CPP-ACP and Fluoride: A Synergism to Combat Caries, Int. J. Clin. Pediatr. Dent., 2019, 12 (2), 120–125.
  4. Barandehfard F., Kianpour R.M., Hosseinnia A., Khoshroo K., Tahriri M., Jazayeri H.E., Moharamzadeh K., Tayebi L., The addition of synthesized hydroxyapatite and fluorapatite nanoparticles to a glass-ionomer cement for dental restoration and its effects on mechanical properties, Ceram. Int., 2016, 42, 17866–17875.
  5. Behnaz M., Dalaie K., Mirmohammadsadeghi H., Salehi H., Rakhshan V., Aslani F., Shear bond strength and adhesive remnant index of orthodontic brackets bonded to enamel using adhesive systems mixed with TiO2 nanoparticles, Dental Press J. Orthod., 2018, 23 (4), 43, e1–43, e7.
  6. Carey C.M., Remineralization of Early Enamel Lesions with Apatite-Forming Salt, Dent. J. (Basel), 2023, 11 (8), 182.
  7. Chapman J.A., Roberts W.E., Eckert G.J., Kula K.S., González-Cabezas C., Risk factors for incidence and severity of white spot lesions during treatment with fixed orthodontic appliances, Am. J. Orthod. Dentofacial Orthop., 2010, 138 (2), 188–194.
  8. Chen M., Yi J., Zhao Z., Biocompatible orthodontic cement with antibacterial capability and protein repellency, BMC Oral Health, 2021, 21 (1), 412.
  9. Chen X., Wang M., Kenny C., Chen X., Karpukhina N., Hill R.G., Novel Fluoride- and Chloride-containing Bioactive Glasses for Use in Air Abrasion, J. Dent., 2022, 125, 104252.
  10. Coups-Smith K.S., Rossouw P.E., Titley K.C., Glass ionomer cements as luting agents for orthodontic brackets, Angle Orthod., 2003, 73 (4), 436–44.
  11. De Witte A.M., De Maeyer E.A., Verbeeck R.M., Martens L.C., Fluoride release profiles of mature restorative glass ionomer cements after fluoride application, Biomaterials, 2000, 21 (5), 475–482.
  12. Habuda-Stanić M., Ravančić M.E., Flanagan A., A Review on Adsorption of Fluoride from Aqueous Solution, Materials (Basel), 2014, 7 (9), 6317–6366.
  13. Hayashi M., Matsuura R., Yamamoto T., Effects of low concentration fluoride released from fluoride-sustained-releasing composite resin on the bioactivity of Streptococcus mutans, Dent. Mater. J., 2022, 41 (2), 309–316.
  14. Herman K., Wujczyk M., Dobrzyński M., Diakowska D., Wiglusz K., Wiglusz R.J., In Vitro Assessment of Long-Term Fluoride Ion Release from Nanofluorapatite, Materials, 2021, 14 (13), 3747.
  15. Heymann G.C., Grauer D., A contemporary review of white spot lesions in orthodontics, J. Esthet. Restor. Dent., 2013, 25 (2), 85–95.
  16. Jańczuk Z., Kaczmarek U., Lipski M., Stomatologia zachowawcza z endodoncją PZWL Wydawnictwo Lekarskie, Warszawa, Poland, 2014 (in Polish).
  17. Kaczmarek U., Fluoride Release from Dental Restorative Materials and Secondary Caries, Dent. Med. Probl., 2005, 42 (2), 333–340.
  18. Kosior P., Dobrzyński M., Korczyński M., Herman K., Czajczyńska-Waszkiewicz A., Kowalczyk-Zając M., Piesiak-Pańczyszyn D., Fita K., Janeczek M., Long-term release of fluoride from fissure sealants – In vitro study, J. Trace Elem. Med. Biol., 2017, 41, 107–110.
  19. Kosior P., Dobrzyński M., Zakrzewska A., Diakowska D., Nienartowicz J., Blicharski T., Nagel S., Sikora M., Wiglusz K., Watras A., Wiglusz R.J., Comparison of the Fluoride Ion Release from Composite and Compomer Materials under Varying pH Conditions – Preliminary in Vitro Study, Appl. Sci., 2022, 12, 12540.
  20. Kosior P., Klimas S., Nikodem A., Wolicka J., Diakowska D., Watras A., Wiglusz R.J., Dobrzyński M., An in vitro examination of fluoride ions release from selected materials – resin-modified glass-ionomer cement (Vitremer) and nanohybrid composite material (TetricEvoCeram), Acta Bioeng. Biomech., 2023, 25 (1), 101–115.
  21. Limeback H., Enax J., Meyer F., Improving Oral Health with Fluoride-Free Calcium-Phosphate-Based Biomimetic Toothpastes: An Update of the Clinical Evidence, Biomimetics (Basel), 2023, 8 (4), 331.
  22. Lin J., Zhu J., Gu X., Wen W., Li Q., Fischer-Brandies H., Wang H., Mehl C., Effects of incorporation of nano-fluorapatite or nano-fluorohydroxyapatite on a resin-modified glass ionomer cement, Acta Biomater., 2011, 7 (3), 1346–1353.
  23. Lin Y.C., Lai Y.L., Chen W.T., Lee S.Y., Kinetics of fluoride release from and reuptake by orthodontic cements, Am. J. Orthod. Dentofacial Orthop., 2008, 133 (3), 427–434.
  24. Lubojanski A., Piesiak-Panczyszyn D., Zakrzewski W., Dobrzyński W., Szymonowicz M., Rybak Z., Mielan B., Wiglusz R.J., Watras A., Dobrzyński M., The Safety of Fluoride Compounds and Their Effect on the Human Body-A Narrative Review. Materials (Basel), 2023, 16 (3), 1242.
  25. Mathias M.R., Rathi N., Bendgude V.D., Tirupathi S., Chauhan R.S., Borde A., Lath T., Shah S.S., Comparative Fluoride Ion Release Pre and Postrecharge Situations among Three Different Pediatric Dental Restorative Materials: An in Vitro Study, Int. J. Clin. Pediatr. Dent., 2022, 15 (6), 729–735.
  26. Moshaverinia A., Ansari S., Moshaverinia M., Roohpour N., Darr J.A., Rehman I., Effects of incorporation of hydroxyapatite and fluorapatite nanobioceramics into conventional glass ionomer cements (GIC), Acta Biomater., 2008, 4, 432–440.
  27. Nicholson J.W., Sidhu S.K., Czarnecka B., Fluoride exchange by glass-ionomer dental cements and its clinical effects: a review, Biomater. Investig. Dent., 2023, 10 (1), 2244982.
  28. Piszko A., Piszko P.J., Lubojański A., Grzebieluch W., Szymonowicz M., Dobrzyński M., Brief Narrative Review on Commercial Dental Sealants – Comparison with Respect to Their Composition and Potential Modifications, Materials (Basel), 2023, 16 (19), 6453.
  29. Pytko-Polończyk J., Jakubik J, Przeklasa-Bierowiec A., Muszyńska A., Artificial saliva and its use in biological experiments, J. Physiol. Pharmacol., 2017, 68 (6), 807–813.
  30. Sarul M., Mikulewicz M., Kozakiewicz M., Jurczyszyn K., Surface Evaluation of Orthodontic Brackets Using Texture and Fractal Dimension Analysis, Materials, 2022, 15 (6), 2071.
  31. Sidhu S.K., Nicholson J.W., A Review of Glass-Ionomer Cements for Clinical Dentistry, J. Funct. Biomater., 2016, 7 (3), 16.
  32. Takahashi N., Washio J., Metabolomic effects of xylitol and fluoride on plaque biofilm in vivo, J. Dent. Res., 2011, 90 (12), 1463–1468.
  33. Vogel G.L., Zhang Z., Carey C.M., Ly A., Chow L.C., Proskin H.M., Composition of plaque and saliva following a sucrose challenge and use of an alpha-tricalcium-phosphate-containing chewing gum, J. Dent. Res., 1998, 77 (3), 518–524.
  34. Zakrzewski W., Dobrzyński M., Dobrzyński W., Zawadzka-Knefel A., Janecki M., Kurek K., Lubojański A., Szymonowicz M., Rybak Z., Wiglusz R.J., Nanomaterials Application in Orthodontics, Nanomaterials (Basel), 2021, 28, 11 (2), 337.
DOI: https://doi.org/10.37190/abb-02321-2023-02 | Journal eISSN: 2450-6303 | Journal ISSN: 1509-409X
Language: English
Page range: 159 - 176
Submitted on: Sep 30, 2023
Accepted on: Jan 22, 2024
Published on: May 18, 2024
Published by: Wroclaw University of Science and Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Wojciech Dobrzyński, Anna Nikodem, Dorota Diakowska, Rafał Jakub Wiglusz, Adam Watras, Maciej Dobrzyński, Marcin Mikulewicz, published by Wroclaw University of Science and Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.