| Literature DB >> 35039516 |
Bianca Tozi Portaluppe Bergantin1, Camilla Cristina Lira Di Leone1, Thiago Cruvinel1, Linda Wang2, Marília Afonso Rabelo Buzalaf3, Alessandra Buhler Borges4, Heitor Marques Honório1, Daniela Rios5.
Abstract
This study evaluated Surface Pre-Reacted Glass-ionomer (S-PRG)-based-composites' surface resistance against erosive wear and their protective effect on surrounding enamel. Bovine enamel was randomized into 12 groups (n = 10/group) [erosion (e) or erosion + abrasion (a)]: nanohybrid-S-PRG-based composite (SPRGe/SPRGa), nanohybrid-S-PRG-based bulk-fill (SPRGBFe/SPRGBFa), nanoparticle-composite (RCe/RCa), nanohybrid-bulk-fill (BFe/BFa), Glass Hybrid Restorative System (GHRSe/GHRSa), and resin-modified glass-ionomer-cement (RMGICe/RMGICa). Cavities were prepared and restored. Initial profile assessment was performed on material and on adjacent enamel at distances of 100, 200, 300, 600, and 700 μm from margin. Specimens were immersed in citric acid (2 min; 6×/day for 5 days) for erosion. Erosion + abrasion groups were brushed for 1 min after erosion. Final profile assessment was performed. Two-way ANOVA and Tukey-test showed: for erosion, the GHRSe and RMGICe presented greater material wear compared to the other groups (p = 0.001); up to 300 μm away from restoration, GHRSe and SPRGBFe were able to prevent enamel loss compared to RMGICe and other composite groups (p = 0.001). For erosion + abrasion, none of the materials exhibited a significant protective effect and S-PRG-based groups showed lower wear than RMGICa and GHRSa, and higher wear than composites (p = 0.001). S-PRG-based-composites can diminish surrounding enamel loss only against erosion alone, similarly to GIC, with advantage of being a more resistant material.Entities:
Year: 2022 PMID: 35039516 PMCID: PMC8764067 DOI: 10.1038/s41598-021-03745-3
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Composition of each material and manufacturers’ instructions.
| Material/lot/color | Group | Composition | Application steps |
|---|---|---|---|
Beautifil II Lot 051829/Color A2 (Beautiful II; Shofu, Kyoto, Japan) | S-PRG-based composite resin (SPRG) | Bis-GMA, TEGDMA, multifunctional filler, S-PRG filler based on F-Br-Al-Si glass | 37% phosphoric acida (15 s), rinsing with water for 15 s and blot dry on tissue paper, Universal Adhesiveb (20 s), drying with air jet (5 s), light curingc, insertion of the material and light curing (40 s) |
Beautifil Bulk Restorative Lot 031828/Color Universal (Beautiful Bulk Restorative; Shofu, Kyoto, Japan) | S-PRG-based bulk-fill resin (SPRGBF) | Bis-GMA, UDMA, Bis-MPEPP, TEGDMA, S-PRG based on F-Br-Al-Si glass | |
Filtek One Bulk Fill Lot N963374/Color A2 (FIltek One Bulk Fill; 3M, Sumaré, Brazil) | Bulk-fill composite resin (BF) | AFM, DDDMA, UDMA, AUDMA, pocrylat resins, ytterbium trifluoride, zirconia/silica cluster | |
Filtek Z350 XT Lot 1710900734/Color A2 Dentin (FIltek Z350; 3M-ESPE, Sumaré, Brazil) | Composite resin (CR) | Bis-GMA, Bis-EMA, UDMA, TEGDMA, zirconia/silica cluster and silica nanoparticle | |
EQUIA Forte Lot 1709191 (Equia Forte; GC America, Costa Mesa, USA) | Glass hybrid restorative system (GHRS) | Powder: F–Al–Si glass, Polyacrylic acid powder, pigment. Liquid: polyacrylic acid, distilled water, polybasic carboxylic acid | 26% polyacrylic acide (10 s), rinsing with water for 10 s and blot dry on tissue paper, capsule agitation (10 s), material application, chemical polymerization (3 min), protector applicationd and light curing (20 s) |
| RIVA Light Cure Lot J1602181EG (RIVA; SDI, Victoria, Australia) | Resin-modified glass ionomer cement (RMGI) | Powder: F–Al–Si glass. Liquid: polyacrylic acid, HEMA and tartaric acid | 26% polyacrylic acide (10 s), rinsing with water for 10 s and blot dry on tissue paper, capsule agitation (10 s), material application, light curingc (20 s) |
Bis-GMA bisphenol A-glycidyl methacrylate, TEGDMA triethylene glycol dimethacrylate, F fluoride, Br boron, Al aluminium, Si silicate, UDMA Urethane Dimethacrylate, Bis-MPEPP Bisphenol-A polyethoxy-dimethacrylate, AFM addition-fragmentaion monomers, DDDMA 1,12-dodecanediol dimethacrylate, AUDMA Aromatic urethane dimethacrylate, HEMA 2-hydroxyethyl methacrylate.
aCondac 3; FGM, Joinville, Brazil/Lot 1301317.
bAdper Single Bond Universal; 3 M-ESPE, Sumaré, Brazil/Lot 643238.
cOptilight MAX; Dabi Atlante, Ribeirão Preto, Brazil/LED 1200 mW/cm 2.
dEquia Forte Coat Protector; GC America, Costa Mesa, USA/Lot 1702081.
eRIVA Conditioner; SDI, Victoria, Australia/Lot 170705.
Average wear of material (μm) and standard deviation (± SD) of the studied groups.
| Material | Giomer beautifil II | Giomer—beautifil bulk restorative | Z350 XTResin | Bulk fill resin | EQUIA forte | RIVA LC |
|---|---|---|---|---|---|---|
| ERO | 1.7 (± 0.7)a | 1.3 (± 1.0)a | 0.6 (± 0.4)a | 1.1 (± 0.8)a | 7.5 (± 4.6)b,c | 11.3 (± 5.5)c |
| ERO + ABR | 7.2 (± 1.6)b,c | 6.7 (± 2.9)b | 0.9 (± 0.7)a | 1.5 (± 0.8)a | 19.9 (± 3.0)d | 17.9 (± 4.7)d |
Different letters indicate statistical difference among group and conditions (two-way ANOVA and Tukey test).
Material (p < 0.001), condition (p < 0.001) and significant interaction (p < 0.001).
ERO erosion condition, ERO + ABR erosion and abrasion condition.
Enamel wear (μm) and standard deviation (SD) of the studied groups at 100, 200, 300, 600, and 700 μm from the restoration margin.
| Material | Giomer—beautiful II | Giomer—beautiful bulk restorative | Z350 XT resin | Bulk fill resin | EQUIA forte | RIVA LC |
|---|---|---|---|---|---|---|
| 100 µm | ||||||
| ERO | 30.3 (± 3.4)b,d | 28.3 (± 2.5)b | 38.3 (± 4.0)c,e | 35.6 (± 2.8)d,e | 27.7 (± 1.2)b | 31.4 (± 2.9)b,d |
| ERO + ABR | 44.1 (± 5.2)a,c | 44.6 (± 5.0)a | 43.2 (± 4.4)a,c | 47.1 (± 4.6)a | 43.7 (± 3.0)a,c | 47.3 (± 6.7)a |
| 200 µm | ||||||
| ERO | 30.6 (± 3.3)b,c | 29.4 (± 3.6)b,c | 38.2 (± 4.1)d,e | 35.0 (± 2.6)c,e | 27.9 (± 1.4)b | 32.1 (± 3.0)b,c,e |
| ERO + ABR | 44.2 (± 5.1)a,d | 45.5 (± 6.5)a | 44.0 (± 3.2)a,d | 47.1 (± 5.0)a | 43.9 (± 2.3)a,d | 47.0 (± 6.9)a |
| 300 µm | ||||||
| ERO | 30.9 (± 3.5)b,c | 29.7 (± 4.5)b | 37.8 (± 4.0)c,d,e | 34.4 (± 2.6)b,c,e | 28.2 (± 1.4)b | 33.1 (± 2.2)b,c |
| ERO + ABR | 44.5 (± 4.7)a,d | 46.5 (± 11.3)a | 41.9 (± 4.6)a,d,e | 46.8 (± 4.7)a | 44.2 (± 2.0)a,d | 46.9 (± 8.1)a |
| 600 µm | ||||||
| ERO | 30.7 (± 3.2)b,c | 29.8 (± 4.1)b,c | 36.3 (± 3.7)c,d | 33.7 (± 2.6)b,c | 28.5 (± 1.4)b | 33.9 (± 2.4)b,c |
| ERO + ABR | 43.7 (± 4.8)a | 43.6 (± 7.3)a | 41.6 (± 4.5)a,d | 45.9 (± 4.3)a | 44.4 (± 2.3)a | 45.7 (± 7.5)a |
| 700 µm | ||||||
| ERO | 30.4 (± 2.8)b,c | 30.0 (± 3.6)b,c | 36.1 (± 3.5)c,d | 33.3 (± 2.2)b,c | 29.0 (± 1.6)b | 34.2 (± 2.4)b,c |
| ERO + ABR | 43.7 (± 4.2)a | 43.2 (± 8.2)a | 41.3 (± 3.9)a,d | 45.3 (± 5.0)a | 44.6 (± 2.4)a | 45.3 (± 6.9)a |
Different letters indicate statistically significant difference among material and condition at the same distance (two-way ANOVA and Tukey test).
At distance 100 µm: material (p < 0.001), condition (p < 0.001) and significant interaction (p < 0.001).
At distance 200 µm: material (p < 0.001), condition (p < 0.001) and significant interaction (p = 0.001).
At distance 300 µm: material (p = 0.070), condition (p < 0.001) and significant interaction (p = 0.003).
At distance 600 µm: material (p = 0.030), condition (p < 0.001) and significant interaction (p = 0.009).
At distance 700 µm: material (p = 0.080), condition (p < 0.001) and significant interaction (p = 0.008).
ERO erosion condition, ERO + ABRA erosion and abrasion condition.