دورية أكاديمية

The effect of various surface treatments on the repair bond strength of denture bases produced by digital and conventional methods.

التفاصيل البيبلوغرافية
العنوان: The effect of various surface treatments on the repair bond strength of denture bases produced by digital and conventional methods.
المؤلفون: Sahin Z; Department of Prosthodontics, Faculty of Dentistry, Lokman Hekim University, Söğütözü. 2179 St., Çankaya, 06510, Ankara, Turkey. dtsahinzeynep81@gmail.com., Ozer NE; Department of Prosthodontics, Faculty of Dentistry, Lokman Hekim University, Söğütözü. 2179 St., Çankaya, 06510, Ankara, Turkey., Akan T; Department of Physics, Eskisehir Osmangazi University, Eskisehir, Turkey., Kılıcarslan MA; Department of Prosthodontics, Faculty of Dentistry, Ankara University, Yenimahalle, Ankara, Turkey., Karaagaclıoglu L; Department of Prosthodontics, Faculty of Dentistry, Lokman Hekim University, Söğütözü. 2179 St., Çankaya, 06510, Ankara, Turkey.
المصدر: Odontology [Odontology] 2024 Jul; Vol. 112 (3), pp. 782-797. Date of Electronic Publication: 2023 Dec 29.
نوع المنشور: Journal Article
اللغة: English
بيانات الدورية: Publisher: Springer-Verlag Tokyo Country of Publication: Japan NLM ID: 101134822 Publication Model: Print-Electronic Cited Medium: Internet ISSN: 1618-1255 (Electronic) Linking ISSN: 16181247 NLM ISO Abbreviation: Odontology Subsets: MEDLINE
أسماء مطبوعة: Original Publication: Tokyo : Springer-Verlag Tokyo, c2001-
مواضيع طبية MeSH: Denture Bases* , Surface Properties* , Materials Testing* , Computer-Aided Design* , Flexural Strength* , Printing, Three-Dimensional* , Carbon Compounds, Inorganic*/chemistry , Microscopy, Electron, Scanning*, Dental Materials/chemistry ; Acrylic Resins/chemistry ; Lasers, Solid-State ; Dental Bonding/methods ; Dental Stress Analysis ; Silicon Compounds/chemistry ; Denture Repair ; Aluminum Oxide/chemistry ; Polymerization
مستخلص: There is limited information on the repairability of prostheses produced with digital technology. This study aims to evaluate various surface treatments on flexural bond strength of repaired dentured base resins produced by digital and conventional methods. A total of 360 samples were prepared from one heat-polymerized, one CAD/CAM milled and one 3D printed denture base materials. All of the test samples were subjected to thermocycling (5-55 °C, 5000 cycles) before and after repair with auto-polymerizing acrylic resin. The test samples were divided into five subgroups according to the surface treatment: grinding with silicon carbide (SC), sandblasting with Al 2 O 3 (SB), Er:YAG laser (L), plasma (P) and negative control (NC) group (no treatment). In addition, the positive control (PC) group consisted of intact samples for the flexural strength test. Surface roughness measurements were performed with a profilometer. After repairing the test samples, a universal test device determined the flexural strength values. Both the surface topography and the fractured surfaces of samples were examined by SEM analysis. The elemental composition of the tested samples was analyzed by EDS. Kruskal-Wallis and Mann-Whitney U tests were performed for statistical analysis of data. SB and L surface treatments statistically significantly increased the surface roughness values of all three materials compared to NC subgroups (p < 0.001). The flexural strength values of the PC groups in all three test materials were significantly higher than those of the other groups (p < 0.001). The repair flexural strength values were statistically different between the SC-SB, L-SB, and NC-SB subgroups for the CAD/CAM groups, and the L-SC and L-NC subgroups for the 3D groups (p < 0.001). The surface treatments applied to the CAD/CAM and heat-polymerized groups did not result in a statistically significant difference in the repair flexural strength values compared to the NC groups (p > 0.05). Laser surface treatment has been the most powerful repair method for 3D printing technique. Surface treatments led to similar repair flexural strengths to untreated groups for CAD/CAM milled and heat-polymerized test samples.
(© 2023. The Author(s), under exclusive licence to The Society of The Nippon Dental University.)
References: Li P, Kraemer-Fernandez P, Klink A, Xu Y, Spintzyk S. Repairability of a 3D printed denture base polymer: effects of surface treatment and artificial aging on the shear bond strength. J Mech Behav Biomed Mater. 2021;114: 104227. (PMID: 10.1016/j.jmbbm.2020.10422733279875)
Gupta A, Felton DA, Jemt T, Koka S. Rehabilitation of edentulism and mortality: a systematic review. J Prosthodont. 2019;28:526–35. (PMID: 10.1111/jopr.1279229573048)
Choi JJE, Uy CE, Plaksina P, Ramani RS, Ganjigatti R, Waddell JN. Bond strength of denture teeth to heat-cured, CAD/CAM and 3D printed denture acrylics. J Prosthodont. 2020;29:415–21. (PMID: 10.1111/jopr.1312531697004)
Han SY, Moon Y-H, Lee J. Shear bond strength between CAD/CAM denture base resin and denture artificial teeth when bonded with resin cement. J Adv Prosthodont. 2020;12:251–8. (PMID: 10.4047/jap.2020.12.5.251331498457604237)
Erbulak Z, Ergun G. The effects of different surface treatments applied to milled PMMA denture base material on repair bond strength. Odontology. 2023. https://doi.org/10.1007/s10266-023-00806-z . (PMID: 10.1007/s10266-023-00806-z37016128)
Asli HN, Rahimabadi S, Hemmati YB, Falahchai M. Effect of different surface treatments on surface roughness and flexural strength of repaired 3D-printed denture base: an in vitro study. J Prosthet Dent. 2021;126:595–603.
Zeidan AAEL, Sherif AF, Baraka Y, Abualsaud R, Abdelrahim RA, Gad MM, et al. Evaluation of the effect of different construction techniques of CAD-CAM Milled, 3D-Printed, and polyamide denture base resins on flexural strength: an in vitro comparative study. J Prosthodont. 2023;32:77–82. (PMID: 10.1111/jopr.1351435343012)
Fouda SM, Gad MM, Abualsaud R, Ellakany P, Al Rumaih HS, Khan SQ, et al. Flexural properties and hardness of CAD-CAM denture base materials. J Prosthodont. 2023;32:318–24. (PMID: 10.1111/jopr.1353535567362)
Gad MM, Albazroun Z, Aldajani F, Elakel AM, El Zayat M, Akhtar S, et al. Repair bond strength of conventionally and digitally fabricated denture base resins to auto-polymerized acrylic resin: surface treatment effects in vitro. Materials. 2022;15:9062. (PMID: 10.3390/ma15249062365568679785635)
Helal MA, Abdelrahim RA, Zeidan AAEL. Comparison of dimensional changes between cad-cam milled complete denture bases and 3D Printed complete denture bases: an in vitro study. J Prosthodont. 2023;32:11–9. (PMID: 10.1111/jopr.1353835524633)
Prpić V, Schauperl Z, Ćatić A, Dulčić N, Čimić S. Comparison of mechanical properties of 3D-printed, CAD/CAM, and conventional denture base materials. J Prosthodont. 2020;29:524–8. (PMID: 10.1111/jopr.1317532270904)
Chhabra M, Kumar MN, RaghavendraSwamy K, Thippeswamy H. Flexural strength and impact strength of heat-cured acrylic and 3D printed denture base resins—a comparative in vitro study. J Oral Biol Craniofac Res. 2022;12:1–3. (PMID: 10.1016/j.jobcr.2021.09.01834745858)
Gad MM, Fouda SM, Abualsaud R, Alshahrani FA, Al-Thobity AM, Khan SQ, et al. Strength and surface properties of a 3D-printed denture base polymer. J Prosthodont. 2022;31:412–8. (PMID: 10.1111/jopr.1341334347351)
Perea-Lowery L, Gibreel M, Vallittu PK, Lassila LV. 3D-printed vs. heat-polymerizing and autopolymerizing denture base acrylic resins. Materials. 2021;14:5781. (PMID: 10.3390/ma14195781346401788510326)
do Carmo-Viotto HE, Silva MDD, Nunes TSBS, Coelho SRG, Pero AC. Effect of repair methods and materials on the flexural strength of 3D-printed denture base resin. J Adv Prosthodont. 2022;14:305–14. (PMID: 10.4047/jap.2022.14.5.305)
Gundogdu M, Yanikoglu N, Bayindir F, Ciftci H. Effect of repair resin type and surface treatment on the repair strength of polyamide denture base resin. Dent Mater J. 2015;34:485–9. (PMID: 10.4012/dmj.2014-36226235713)
Ates SM, Caglar İ, Duymuş ZY. Flexural strength of acrylic denture base resin repaired with different pulse energy of Er:YAG laser. Selcuk Dent J. 2021;8:486–93.
Alkurt M, Duymuş ZY, Gundogdu M. Effect of repair resin type and surface treatment on the repair strength of heat-polymerized denture base resin. J Prosthet Dent. 2014;111:71–8. (PMID: 10.1016/j.prosdent.2013.09.00724161257)
Gad MM, Rahoma A, Abualsaud R, Al-Thobity AM, Akhtar S, Helal MA, et al. Impact of different surface treatments and repair material reinforcement on the flexural strength of repaired PMMA denture base material. Dent Mater J. 2020;39:471–82. (PMID: 10.4012/dmj.2018-43632092720)
Nishigawa G, Maruo Y, Oka M, Okamoto M, Minagi S, Irie M, et al. Effect of plasma treatment on adhesion of self-curing repair resin to acrylic denture base. Dent Mater J. 2004;23:545–9. (PMID: 10.4012/dmj.23.54515688718)
Nishigawa G, Maruo Y, Oka M, Oki K, Minagi S, Okamoto M. Plasma treatment increased shear bond strength between heat cured acrylic resin and self-curing acrylic resin. J Oral Rehabil. 2003;30:1081–4. (PMID: 10.1046/j.1365-2842.2003.01198.x14641672)
Seow J, Won G, Tawse-Smith A, Ma S. Comparison of 3-D printed complete denture repair methods to conventional and CAD-CAM complete dentures: a systematic review. Int J Prosthodont Endod. 2023;13:104–13.
Akin H, Tugut F, Mutaf B, Akin G, Ozdemir AK. Effect of different surface treatments on tensile bond strength of silicone-based soft denture liner. Lasers Med Sci. 2011;26:783–8. (PMID: 10.1007/s10103-010-0825-620730469)
Akin H, Tugut F, Guney U, Kirmali O, Akar T. Tensile bond strength of silicone-based soft denture liner to two chemically different denture base resins after various surface treatments. Lasers Med Sci. 2013;28:119–23. (PMID: 10.1007/s10103-012-1082-722447403)
Adımcı P, İbiş F, Ercan UK, Bagis B. Evaluation of effects of non-thermal plasma treatment on surface properties of CAD/CAM materials. J Adhes Sci Technol. 2019;33:35–49. (PMID: 10.1080/01694243.2018.1493834)
Shimizu H, Kakigi M, Fujii J, Tsue F, Takahashi Y. Effect of surface preparation using ethyl acetate on the shear bond strength of repair resin to denture base resin. J Prosthodont. 2008;17:451–5. (PMID: 10.1111/j.1532-849X.2008.00326.x18544132)
International Standards Organization (ISO). Dentistry-base polymers-Denture base polymers. ISO 20795–1. Geneva: International Standards Organization; 2013.
Jeong K-W, Kim S-H. Influence of surface treatments and repair materials on the shear bond strength of CAD/CAM provisional restorations. J Adv Prosthodont. 2019;11:95–104. (PMID: 10.4047/jap.2019.11.2.95310805706491361)
Alaseef N, Albasarah S, Al Abdulghani H, Al-Harbi FA, Gad MM, Akhtar S, et al. CAD-CAM fabricated denture base resins. In vitro investigation of the minimum acceptable denture base thickness. J Prosthodont. 2022;31:799–805. (PMID: 10.1111/jopr.1348635102627)
Al-Dwairi ZN, Al Haj Ebrahim AA, Baba NZ. A comparison of the surface and mechanical properties of 3D printable denture-base resin material and conventional polymethylmethacrylate (PMMA). J Prosthodont. 2023;32:40–8. (PMID: 10.1111/jopr.1349135119168)
Pfeiffer P, An N, Schmage P. Repair strength of hypoallergenic denture base materials. J Prosthet Dent. 2008;100:292–301. (PMID: 10.1016/S0022-3913(08)60209-718922258)
Rached R, Del-Bel CA. Heat-cured acrylic resin repaired with microwave-cured one: bond strength and surface texture. J Oral Rehabil. 2001;28:370–5. (PMID: 10.1046/j.1365-2842.2001.00666.x11350591)
Usumez A, Inan O, Aykent F. Bond strength of a silicone lining material to alumina-abraded and lased denture resin. J Biomed Mater Res Part B. 2004;71:196–200. (PMID: 10.1002/jbm.b.30078)
Olvera N, de Rijk WG. Effect of surface treatments on the repair strength of a light-activated denture repair resin using censored data. Dent Mater. 1994;10:122–7. (PMID: 10.1016/0109-5641(94)90052-37758848)
Vallittu PK, Lassila VP, Lappalainen R. Wetting the repair surface with methyl methacrylate affects the transverse strength of repaired heat-polymerized resin. J Prosthet Dent. 1994;72:639–43. (PMID: 10.1016/0022-3913(94)90297-67853262)
Kim J-H, Lee M-A, Han G-J, Cho B-H. Plasma in dentistry: a review of basic concepts and applications in dentistry. Acta Odontol Scand. 2014;72:1–1232. (PMID: 10.3109/00016357.2013.79566024354926)
Silva NR, Coelho PG, Valverde GB, Becker K, Ihrke R, Quade A, et al. Surface characterization of Ti and Y-TZP following non-thermal plasma exposure. J Biomed Mater Res Part B. 2011;99:199–206. (PMID: 10.1002/jbm.b.31887)
Turkkal F, Culhaoglu AK, Sahin V. Composite-veneering of polyether-ether-ketone (PEEK): evaluating the effects of different surface modification methods on surface roughness, wettability, and bond strength. Lasers Med Sci. 2023;38:95. (PMID: 10.1007/s10103-023-03749-736995426)
معلومات مُعتمدة: Project No: 222S051 Türkiye Bilimsel ve Teknolojik Araştırma Kurumu
فهرسة مساهمة: Keywords: Bond strength; CAD/CAM; Denture repair; Laser; Plasma
المشرفين على المادة: WXQ6E537EW (silicon carbide)
0 (Carbon Compounds, Inorganic)
0 (Dental Materials)
0 (Acrylic Resins)
0 (Silicon Compounds)
LMI26O6933 (Aluminum Oxide)
تواريخ الأحداث: Date Created: 20231229 Date Completed: 20240724 Latest Revision: 20240724
رمز التحديث: 20240725
DOI: 10.1007/s10266-023-00881-2
PMID: 38157108
قاعدة البيانات: MEDLINE
الوصف
تدمد:1618-1255
DOI:10.1007/s10266-023-00881-2