Rufasto-Goche KS, Cerro-Olivares ES, San Martín-Hilario NF, Santander-Rengifo FM, Murillo-Carrasco AG, Lizarbe-Castro MV. Fluoride-Induced Microhardness Changes in Resin-Modified Glass Ionomer Cements: A Comparative Study. J Clin Exp Dent. 2025;17(1):e50-7.

 

doi:10.4317/jced.62349

https://doi.org/10.4317/jced.62349

____

 

References

1. Hamilton, I.R. Biochemical Effects of Fluoride on Oral Bacteria.

 

2. AlMatar, D.; AlSanousi, S.; Ahmed, J.; Saad Bin Qasim, S. The In-Vitro Effect of Silver and Zinc Oxide Nanoparticles on Fluoride Release and Microhardness of a Resin-Modified Glass Ionomer Cement. J Inorg Organomet Polym Mater 2023, 33, 1507-1516.
https://doi.org/10.1007/s10904-023-02551-w

 

3. Mariano Mundim, F.; Rodrigues Cruvinel, D.; da Fonseca Roberti Garcia, L.; de Carvalho Panzeri Pires-de-Souza, F. Effect of Fluoride Solutions on Color and Surface Roughness of Dental Composites. Revista da Faculdade de Odontologia - UPF 2014, 19, 77-82,
https://doi.org/10.5335/rfo.v19i1.3664

 

4. Forss, H. Release of Fluoride and Other Elements from Light-Cured Glass Ionomers in Neutral and Acidic Conditions. J Dent Res 1993, 72, 1257-1262,
https://doi.org/10.1177/00220345930720081601
PMid:8360372

 

5. Cabello Malagón, I.; Cánovas Hernández, B.; Martínez Hernández, E.; Serna-Muñoz, C.; Pérez-Silva, A.; Ortiz-Ruiz, A.J. Analysis of the Porosity and Microhardness of Glass Ionomer Cements. Medziagotyra 2022, 28, 113-119,
https://doi.org/10.5755/j02.ms.28198

 

6. Gunay, A.; Celenk, S.; Adiguzel, O.; Cangul, S.; Ozcan, N.; Cakmakoglu, E.E. Comparison of Antibacterial Activity, Cytotoxicity, and Fluoride Release of Glass Ionomer Restorative Dental Cements in Dentistry. Med Sci Monit 2023, 29,
https://doi.org/10.12659/MSM.939065
PMid:36683310 PMCid:PMC9878919

 

7. Adresi, Y.; Kam Hepdeniz, Ö.; Demirel Üniversitesi, S.; Hekimliği Fakültesi, D.; Diş Tedavisi Anabilim Dalı, R.; İyonomer İçerikli Dört Farklı Restoratif Materyalin Yüzey Pürüzlülüklerinin Değerlendirilmesi, C.; Seçkin Kelten, Ö.; Gürdal, O.; Demirel Üniversitesi Diş Hekimliği Fakültesi, S.; Diş Tedavisi Ana Bilim Dalı, R. Cam İyonomer İçerikli Dört Farklı Restoratif Materyalin Yüzey Pürüzlülüklerinin Değerlendirilmesi. Süleyman Demirel Üniversitesi Sağlık Bilimleri Dergisi 2019, 10, 13-17,
https://doi.org/10.22312/sdusbed.468329

 

8. Basting, R.T.; Serra, M.C.; Rodrigues, A.L. In Situ Microhardness Evaluation of Glass-Ionomer/Composite Resin Hybrid Materials at Different Post-Irradiation Times. J Oral Rehabil 2002, 29, 1187-1195,
https://doi.org/10.1046/j.1365-2842.2002.00906.x
PMid:12472856

 

9. Gill, N.C.; Pathak, A. Comparative Evaluation of the Effect of Topical Fluorides on the Microhardness of Various Restorative Materials: An in Vitro Study. J Indian Soc Pedod Prev Dent 2010, 28, 193-199,
https://doi.org/10.4103/0970-4388.73784
PMid:21157053

 

10. P, N.U.; Kishore, G. Glass Ionomer Cement - The Different Generations. Trends Biomater Artif Organs 2005, 18, 158-165.

 

11. Wiegand, A.; Buchalla, W.; Attin, T. Review on Fluoride-Releasing Restorative Materials--Fluoride Release and Uptake Characteristics, Antibacterial Activity and Influence on Caries Formation. Dent Mater 2007, 23, 343-362,
https://doi.org/10.1016/j.dental.2006.01.022
PMid:16616773

 

12. Moberg, M.; Brewster, J.; Nicholson, J.; Roberts, H. Physical Property Investigation of Contemporary Glass Ionomer and Resin-Modified Glass Ionomer Restorative Materials. Clin Oral Investig 2019, 23, 1295-1308,
https://doi.org/10.1007/s00784-018-2554-3
PMid:29998443

 

13. Wilde, M.G.K.; Delfino, C.S.; Sassi, J.F.; Garcia, P.P.N.S.; Palma-Dibb, R.G. Influence of 0.05% Sodium Fluoride Solutions on Microhardness of Resin-Modified Glass Ionomer Cements. J Mater Sci Mater Med 2006, 17, 869-873,
https://doi.org/10.1007/s10856-006-9847-9
PMid:16932870

 

14. Hadi, M.R. Effect of Increased Fluoride Contents on Fluoride Release from Glass Ionomer Cements. Systematic Review Pharmacy 2020, 11, 443,

 

15. Okada, K.; Tosaki, S.; Hirota, K.; Hume, W.R. Surface Hardness Change of Restorative Filling Materials Stored in Saliva. Dent Mater 2001, 17, 34-39,
https://doi.org/10.1016/S0109-5641(00)00053-1
PMid:11124411

 

16. Diaz-Arnold, A.; Dw, W.; Swift, E.J. Topical Fluoride and Glass Ionomer Microhardness. Am J Dent 1995.

 

17. Akwan, Y.E.; Paramita, A.L.; Rahmitasari, F. Shear Bond Strength Fissure Sealant Based on Glass Ionomer after Topical Fluor Application: A Comparison between Sodium Fluoride and Acidulated Phosphate Fluoride. Odonto : Dental Journal 2022, 9, 222,
https://doi.org/10.30659/odj.9.2.222-230

 

18. Hatibovic-Kofman, S.; Koch, G.; Ekstrand, J. Glass Ionomer Materials as a Rechargeable Fluoride-Release System. Int J Paediatr Dent 1997, 7, 65-73,
https://doi.org/10.1111/j.1365-263X.1997.tb00281.x
PMid:9524456

 

19. Suljak, J.P.; Hatibovic-Kofman, S. A Fluoride Release-Adsorption-Release System Applied to Fluoride-Releasing Restorative Materials. Quintessence Int (Berl) 1996.

 

20. García-Godoy, F.; García-Godoy, A.; García-Godoy, F. Effect of APF Minute-Foam on the Surface Roughness, Hardness, and Micromorphology of High-Viscosity Glass Ionomers.

 

21. Yip, H.K.; Lam, W.T.C.; Smales, R.J. Fluoride Release, Weight Loss and Erosive Wear of Modern Aesthetic Restoratives. Br Dent J 1999, 187, 265-270,
https://doi.org/10.1038/sj.bdj.4800256a
PMid:10520545

 

22. Yap, A.U.J.; Mok, B.Y.Y. Effects of Professionally Applied Topical Fluorides on Surface Hardness of Composite-Based Restoratives. Oper Dent 2002, 27, 576-581.

 

23. Bezerra Wanderley Lima, R.; Karina Maciel Andrade Fábia Danielle Sales da Cunha Medeiros Silva, A.; Marques Duarte, R. Revista Brasileira de Odontologia Influência Da Aplicação Tópica de Géis de Flúor Na Rugosidade Superficial de Cimentos de Ionômero.

 

24. Khosla, S.; Verma, V.; Markan, S. Comparison of Surface Roughness of Two Restorative Materials after the Application of Topical Fluorides. International Healthcare Research Journal 2018, 1, 339-342, doi:10.26440/IHRJ/01_11/143.
https://doi.org/10.26440/IHRJ/01_11/143

 

25. Krithikadatta, J.; Gopikrishna, V.; Datta, M. CRIS Guidelines (Checklist for Reporting In-Vitro Studies): A Concept Note on the Need for Standardized Guidelines for Improving Quality and Transparency in Reporting in-Vitro Studies in Experimental Dental Research. J Conserv Dent 2014, 17, 301-304,
https://doi.org/10.4103/0972-0707.136338
PMid:25125839 PMCid:PMC4127685

 

26. Thompson, S.O. Effect of Smokeless Tobacco on Surface Roughness of Dental Restorations. 2002.

 

27. Bayrak, S.; Sen Tunc, E.; Tuloglu, N.; Ceylan, G. Effects of Self-etch Adhesives Used as Surface Coating Agents on Microleakage of Conventional and Resin Modified Glass Ionomer Cements. Materials Research Innovations 2011, 15, 53-57,
https://doi.org/10.1179/143307511X12922272563860

 

28. Sungurtekin-Ekci, E.; Ozdemir-Ozenen, D.; Duman, S.; Acuner, I.C.; Sandalli, N. Antibacterial Surface Properties of Various Fluoride-Releasing Restorative Materials in Vitro. J Appl Biomater Funct Mater 2015, 13, e169-e173,
https://doi.org/10.5301/jabfm.5000212
PMid:25363077

 

29. Moharramkhani, F.; Omrani, L.R.; Abbasi, M.; Kharrazifard, M.J.; Ahmadi, E. Effect of Fluoride Varnish on Glass Ionomer Microhardness Changes in Endogenous Acid Erosion Challenge. Biomater Investig Dent 2021, 8, 18, doi:10.1080/26415275.2021.1880907.
https://doi.org/10.1080/26415275.2021.1880907
PMid:33629073 PMCid:PMC7889273

 

30. ÖZVEREN, N.; BALTACI, E.; BATUR KARA, S. Effect of Mouthrinses on Water Sorption and Solubility of Flouride-Releasing Restorative Materials. Bezmialem Science 2021, 9, 68-74,
https://doi.org/10.14235/bas.galenos.2020.3805

 

31. Schlafer, S.; Bornmann, T.; Paris, S.; Göstemeyer, G. The Impact of Glass Ionomer Cement and Composite Resin on Microscale PH in Cariogenic Biofilms and Demineralization of Dental Tissues. Dent Mater 2021, 37, 1576-1583,
https://doi.org/10.1016/j.dental.2021.08.007
PMid:34419256

 

32. Warren, D.P.; Colescott, T.D.; Henson, H.A.; Powers, J.M. Effects of Four Prophylaxis Pastes on Surface Roughness of a Composite, a Hybrid Ionomer, and a Compomer Restorative Material. J Esthet Restor Dent 2002, 14, 245-251,
https://doi.org/10.1111/j.1708-8240.2002.tb00170.x
PMid:12214949

 

33. Bilić-Prcić, M.; Šalinović, I.; Gurgan, S.; Vural, U.K.; Krmek, S.J.; Miletić, I. Effects of Incorporation of Marine Derived Hydroxyapatite on the Microhardness, Surface Roughness, and Fluoride Release of Two Glass-Ionomer Cements. Applied Sciences 2021, Vol. 11, Page 11027 2021, 11, 11027,
https://doi.org/10.3390/app112211027

 

34. Dionysopoulos, D.; Tolidis, K.; Sfeikos, T.; Karanasiou, C.; Parisi, X. Evaluation of Surface Microhardness and Abrasion Resistance of Two Dental Glass Ionomer Cement Materials after Radiant Heat Treatment. Advances in Materials Science and Engineering 2017, 2017, 5824562,
https://doi.org/10.1155/2017/5824562

 

35. Kula, K.; McKinney, J.E.; Kula, T.J. Effects of Daily Topical Fluoride Gels on Resin Composite Degradation and Wear. Dent Mater 1997, 13, 305-311,
https://doi.org/10.1016/S0109-5641(97)80100-5
PMid:9823090

 

36. A Guide to the Use of Fluorides for the Prevention of Dental Caries - PubMed Available online: https://pubmed.ncbi.nlm.nih.gov/3463620/ (accessed on 18 July 2024).

 

37. Anusavice, K.J. Dental Ceramics. In "Phillips" Science of Dental Materials'. 2003, 655-717.

 

38. Bethapudy, D.R.; Bhat, C.; Lakade, L.; Chaudhary, S.; Kunte, S.; Patil, S. Comparative Evaluation of Water Sorption, Solubility, and Microhardness of Zirconia-Reinforced Glass Ionomer, Resin-Modified Glass Ionomer, and Type IX Glass Ionomer Restorative Materials: An In Vitro Study. Int J Clin Pediatr Dent 2022, 15, 175,
https://doi.org/10.5005/jp-journals-10005-2364
PMid:37457201 PMCid:PMC10338945

 

39. Alshehri, T.D.; Kotha, S.B.; Abed, F.M.; Barry, M.J.; Alasmari, A.; Mallineni, S.K. Effect of the Addition of Varying Concentrations of Silver Nanoparticles on the Fluoride Uptake and Recharge of Glass Ionomer Cement. Nanomaterials (Basel) 2022, 12,
https://doi.org/10.3390/nano12121971
PMid:35745312 PMCid:PMC9228982

 

40. Abate, P.F.; Bertacchini, S.M.; Garcia-Godoy, F.; Macchi, R.L. Barcoll Hardness of Dental Materials Treated with an APF Foam. J Clin Pediatr Dent 2001, 25, 143-146,
https://doi.org/10.17796/jcpd.25.2.rw03351p32336r25
PMid:11314214

 

41. De Witte, A.M.J.C.; De Maeyer, E.A.P.; Verbeeck, R.M.H. Surface Roughening of Glass Ionomer Cements by Neutral NaF Solutions. Biomaterials 2003, 24, 1995-2000,
https://doi.org/10.1016/S0142-9612(02)00617-8
PMid:12615490

 

42. Diaz-Arnold, A.M.; Holmes, D.C.; Wistrom, D.W.; Swift, E.J. Short-Term Fluoride Release/Uptake of Glass Ionomer Restoratives. Dent Mater 1995, 11, 96-101,
https://doi.org/10.1016/0109-5641(95)80041-7
PMid:8621041

 

43. K, K.; EL, W.; TJ, K. Effect of 1- and 4-Minute Treatments of Topical Fluorides on a Composite Resin. Pediatr Dent 1996, 18, 24-28.

 

44. Comparison of the Effect of Topical Fluorides on the Commercially Available Conventional Glass Ionomers, Resin Modified Glass Ionomers and Polyacid Modified Composite Resins--an in Vitro Study - PubMed Available online: https://pubmed.ncbi.nlm.nih.gov/14700337/ (accessed on 18 July 2024).

 

45. El-Badrawy, W.; McComb, D. Effect of Home-Use Fluoride Gels on Resin-Modified Glass-Ionomer Cements. Oper Dent 1998.