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Microhardness evaluation around composite restorations using fluoride-containing adhesive systems

机译:使用含氟化物的粘合剂体系评估复合材料修复体周围的显微硬度

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The purpose of this study was to evaluate the microhardness of dental enamel around composite restorations bonded with fluoride-containing adhesive systems (FCAS), after thermo- and pH-cycling protocols. Standardized cylindrical cavities were prepared on enamel surfaces of 175 dental fragments, which were randomly assigned into seven experimental groups (n=25). Four groups used FCAS: Optibond Solo (OS); Prime&Bond 2.1 (PB); Syntac Sprint (SS) and Tenure Quick (TC). Other groups consisted of "Sandwich" technique restoration (STR) (glass ionomer liner + hydrophobic adhesive resin /restorative composite) or used Single Bond with (SB) or without (SBWC) cycling protocols. Adhesive systems were applied according to manufacturers' instructions and cavities were restored with a microfilled composite (Durafill VS). After finishing and polishing, all groups were submitted to 1,000 thermal cycles (5 oC and 55 oC) and to demineralization (pH 4.3) and remineralization (pH 7.0) cycling protocols, except for SBWC group. The Knoop microhardness of enamel surfaces were measured around restorations. Indentations were recorded at 150, 300 and 450-mm from the cavity wall. Data were analyzed by two-way ANOVA and Duncan's Test (a=0.05%). Means ± SD of enamel microhardness for the groups were (Kg/mm2): SBWC: 314.50 ± 55.93a ; SB: 256.78 ± 62.66b; STR: 253.90 ± 83.6b; TQ: 243.93 ± 68.3b; OS: 227.97 ± 67.1c; PB: 213.30 ± 91.3d; SS: 208.73 ± 86.6d. Means ± SD of microhardness for the distances 150, 300, 450mm from the cavity wall were, respectively: 234.46 ± 77.81a; 240.24 ± 85.12a; 262.06 ± 79.46b. SBWC group, which was not submitted to thermo- and pH-cycling protocols, showed the highest enamel microhardness mean value and the FCAS resulted in lower microhardness values. At 450 mm from the cavity wall, the enamel microhardness increased significantly.
机译:这项研究的目的是在热循环和pH循环方案之后,评估用含氟粘合剂体系(FCAS)粘结的复合修复物周围牙釉质的显微硬度。在175个牙釉质的牙釉质表面上制备了标准的圆柱孔,这些牙釉质被随机分为七个实验组(n = 25)。使用FCAS的四个小组:Optibond Solo(OS); Prime&Bond 2.1(PB); Syntac Sprint(SS)和Tenure Quick(TC)。其他组包括“三明治”技术修复(STR)(玻璃离聚物衬里+疏水性粘合剂树脂/修复性复合材料)或使用具有(SB)或不具有(SBWC)循环方案的单键。根据制造商的说明使用粘合剂系统,并用微填充复合材料(Durafill VS)修复空腔。经过精加工和抛光后,除SBWC组外,所有组均经受了1,000个热循环(5 oC和55 oC)以及去矿化(pH 4.3)和再矿化(pH 7.0)循环程序。测量修复体周围的珐琅质表面努氏显微硬度。在距腔壁150、300和450毫米处记录压痕。数据通过双向方差分析和邓肯检验(a = 0.05%)进行分析。各组牙釉质显微硬度的平均值±SD为(Kg / mm 2):SBWC:314.50±55.93a; SB:256.78±62.66b; STR:253.90±83.6b; TQ:243.93±68.3b;操作系统:227.97±67.1c; PB:213.30±91.3d; SS:208.73±86.6d。距腔壁150、300、450mm的显微硬度的平均值±SD为:234.46±77.81a; 240.24±85.12a; 262.06±79.46b。未接受热循环和pH循环方案的SBWC组显示最高的牙釉质显微硬度平均值,而FCAS则导致较低的显微硬度值。在距腔壁450毫米处,瓷釉的显微硬度显着提高。

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