O objetivo deste estudo foi avaliar a resistência de união à microtração (µTBS) de sistemas adesivos auto-condicionantes e convencionais comparados por entre diferentes regiões dentinárias (central-DC ou proximal-DP) em um preparo cavitário classe II. Um preparo cavitário classe II (mesio-ocluso-distal) foi simulado em 20 terceiros molares humanos (4 mm largura/3 mm profundidade). Adesivos convencionais (Scotchbond Multi Purpose, n=5, SBMP e Optibond FL, n=5, OPFL) e adesivos auto-condicionantes (Clearfil SE Bond, n=5, CSE e Optibond XTR, n=5, OPXTR foram aplicados. As restaurações classe II foram realizadas usando a técnica incremental e fotoativadas (Bluephase/G2). As amostras foram seccionadas em forma de palito (1 mm2 secção transversal), posicionadas no dispositivo de Geraldeli para o teste µTBS (velocidade transversal de 0,5 mm/min). O padrão de fratura foi analisado em estereoscópio e classificado em coesivo-resina, adesivo, misto/resina, misto/dentina. Amostras (n=4) foram preparadas para observação em microscópio eletrônico de varredura. Os dados foram submetidos a ANOVA um fator e teste de Turkey (α=0,05). Não houve diferença estatística significante entre SBMP, OPFL, CSE, e OPXTR em DC (p>0,05). Entretanto, para SBMP e OPFL em DP, valores µTBS foram significativamente menores comparados com CSE e OPXTR (p<0,05). Em todos os grupos, o padrão de fratura misto foi o mais frequentemente observado, exceto em SBMP/CD (adesivo). Em um preparo classe II, a localização da DP influenciou negativamente a resistência de união de sistemas adesivos convencionais. Oposto aos adesivos auto-condicionantes, que em DP apresentaram valores de resistência de união maiores comparados com adesivos convencionais.
Articlce • Braz. Dent. J. 28
(4)
• Jul-Aug 2017 • https://doi.org/10.1590/0103-6440201701541 linkcopiar
Microtensile Bond Strength of Adhesive Systems in Different Dentin Regions on a Class II Cavity Configuration
Autoria
person Mário Alexandre Coelho Sinhoreti
schoolDepartment of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, BrazilUniversidade de CampinasBrazilPiracicaba, SP, BrazilDepartment of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, Brazil
person Eveline Freitas Soares
schoolDepartment of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, BrazilUniversidade de CampinasBrazilPiracicaba, SP, BrazilDepartment of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, Brazil
person Gabriel Flores Abuna
schoolDepartment of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, BrazilUniversidade de CampinasBrazilPiracicaba, SP, BrazilDepartment of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, Brazil
person Lourenço Correr Sobrinho
schoolDepartment of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, BrazilUniversidade de CampinasBrazilPiracicaba, SP, BrazilDepartment of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, Brazil
person Jean-François Roulet
schoolDepartment of Restorative Dental Sciences, Division of Operative Dentistry, College of Dentistry, University of Florida, Gainesville, FL, USAUniversity of FloridaUSAGainesville, FL, USADepartment of Restorative Dental Sciences, Division of Operative Dentistry, College of Dentistry, University of Florida, Gainesville, FL, USA
person Saulo Geraldeli
schoolDepartment of Restorative Dental Sciences, Division of Operative Dentistry, College of Dentistry, University of Florida, Gainesville, FL, USAUniversity of FloridaUSAGainesville, FL, USADepartment of Restorative Dental Sciences, Division of Operative Dentistry, College of Dentistry, University of Florida, Gainesville, FL, USA
SCIMAGO INSTITUTIONS RANKINGS
Department of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, BrazilUniversidade de CampinasBrazilPiracicaba, SP, BrazilDepartment of Restorative Dentistry, Dental Materials Division, Piracicaba Dental School, UNICAMP - Universidade de Campinas, Piracicaba, SP, Brazil
Department of Restorative Dental Sciences, Division of Operative Dentistry, College of Dentistry, University of Florida, Gainesville, FL, USAUniversity of FloridaUSAGainesville, FL, USADepartment of Restorative Dental Sciences, Division of Operative Dentistry, College of Dentistry, University of Florida, Gainesville, FL, USA
Figuras | Tabelas
imageFigure 1 Schematic illustration of extracted tooth before enamel nd root removal (A); Sample fixation on PVC stub pre-filled with acrylic-resin (B); Class II (MOD) 4 mm wide x 3 mm deep cavity configuration (C); Composite restoration by incremental technique (D); Beam shape samples acquired from proxima l and central dentin location (E); Microtensile bond strength test, µTBS (F). open_in_new

imageFigure 2 Failure modes analysis of debonded specimens (%) after µTBS test. open_in_new

imageFigure 3 SEM images of dentin samples regarding hybrid layer formation in different locations. c. Composite; ad. Adhesive; hl. hybrid layer; d. Dentin. (A) and (C) - central dentin location; (B) and (D) - proximal dentin location; (E) shows rich lateral diffusion of resin tags; (F) corresponds o occlusion view of dentin tubules from proximal dentin. Highlighting: “white arrows” point to dentin tubules filled with resin tags in different angulations; “black arrows” point to tilted dentin tubules lumen from an occlusal perspective; “Handpoint” showing lateral tags diffusion in proximal dentin. (*) Odontoblast processes. open_in_new

table_chartTable 1
Materials, manufacturers, abbreviations, compositions and application procedures
| Material | Adhesive system, manufacturer and abbreviation | Composition | Application procedure |
|---|---|---|---|
| Etch-and-rinse 3 steps adhesive systems | Scotchbond MP, 3M-ESPE; SBMP | Primer: HEMA, water, polyalkenoic acid copolymer, water; Bond: BisGMA, HEMA, CQ | Application of etchant (H3PO4) for 15 s, water rinse for 15 s, gently air dry. Application of primer for 15 s, gently air volatilization for 5 s. Application of adhesive, light cure for 10 s. |
| Optibond FL, Kerr; OPFL | Primer: HEMA, ethanol, GPDM, MMEP, water, CQ, BHT Bond: TEGDMA, UDMA, GDMA, HEMA, Bis-GMA, filler, CQ, approximately 48wt% filled | Application the etchant (H3PO4) for 15 s, water rinse for 15 s, gently air dry, application of primer actively for 15 s, gently air volatilization for 5 s. Application of adhesive, light cure for 10 s. | |
| Self-etching 2-step adhesive systems | Clearfil SE, Kuraray; CSE | Primer: 10-MDP, HEMA, hydrophilic dimetachylate, CQ, accelerators, water; Bond: 10-MDP, Bis-GMA, HEMA, hydrophilic dimethaclylate, colloidal silica, CQ, initiators, accelerators | Application of primer for 20 s, gently air volatilization for 5 s, application of adhesive and light cure for 10 s. |
| Optibond XTR, Kerr; OPXTR | Primer: GPDM, hydrophilic co-monomers, water, ethanol, acetone Bond: resin monomers, HEMA, inorganic fillers, ethanol | Application of primer actively for 20 s, gently air volatilization for 5 s, application of adhesive for 15 s, light-cure for 10 s. | |
| Microhybrid restorative filler | Filtek Z 250 (A2), 3M-ESPE | Bis-EMA, TEGDMA, UDMA, zirconium, silica | Composite placement through incremental technique with each layer light-cured for 20 s using a LED light curing unit (Bluephase G2, Ivoclar). |
| Etchant | H3PO4 | Amorphous silica-thickened 35% phosphoric acid gel | Dentin surface was acid etched using phosphoric acid 35% (3M ESPE) for 15 s, rinsed for 15 s and dried using absorbent pads. |
-
Abbreviations: 10-MDP, 10-methacryloyloxydecyl dihydrogen phosphate; BHT, butylhydroxytoluene; Bis-GMA, bisphenol A diglycidyl methacrylate; CQ, camphorquinone; GDMA, glycerol dimethacrylate; GPDM, glycerol phosphate dimethacrylate; HEMA, 2-hydroxyl methacrylate; MMEP, mono-2-methacryloyloxyethylphthalate; UDMA, diurethane dimethacrylate.
table_chartTable 2
Microtensile bond strength mean (±SD) values (MPa) for self-etching and etch-and-rinse adhesives in central and proximal dentin locations (p>0.05).
| Adhesives | Central dentin | Proximal dentin |
|---|---|---|
| CSE | 29.1±(5.9) aA | 27.1±(6.3) aA |
| OPXTR | 29.6±(6.1) aA | 28.0±(4.8) aA |
| SBMP | 30.5±(4.7) aA | 23.2±(5.2) bB |
| OPFL | 29.3±(5.5) aA | 22.0±(6.2) bB |
-
Different uppercase letters in the row and lowercase letters in the columns mean statistical significance (α=0.05).
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