967 resultados para dental erosion


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O objetivo deste estudo in vitro foi avaliar por meio da fluorescência de Raios X, oefeito remineralizante de dois diferentes princípios bioativos contidos no Desensibilize Nano P (nanopartículas de hidroxiapatita de cálcio) e no GC Tooth Mousse (CPP-ACP,fosfopeptídios de caseína e fosfato de cálcio amorfo) assim como da saliva artificial e do fluoreto de sódio gel neutro no esmalte dental bovino submetido a desafio erosivo. Foram utilizados 20 incisivos bovinos, seccionados na linha amelo-cementária, fixados em resina epóxi e padronizados pela planificação da superfície. Foram obtidos 20 corpos de prova (CP) que foram divididos aleatoriamente em 4 grupos. Todos os dentes foram avaliadosinicialmente para a obtenção da contagem dos elementos fósforo (P), cálcio (Ca) e estrôncio (Sr) interpretados a partir de um espectro de Fluorescência de Raios X obtidos pelo Artax 800. Após uma semana da medição inicial, cada grupo de amostras foi imerso em uma solução de 10 ml de ácido cítrico a 2% (pH 2,6) por 90 minutos. Imediatamente após obtenção dos espectros dos dentes submetidos ao desafio erosivo, cada grupo recebeu seus tratamentos correspondentes. Grupo 1 (Saliva) - saliva; Grupo 2 (Flúor) - Flúor; Grupo 3 (Nano P) - Desensibilize Nano P; Grupo 4 (Recaldent) - GC Tooth Mousse. A leitura e os tratamentos eram realizados a cada sete dias sendo repetidos por de 3 semanas. Foi utilizado inicialmente o teste de Bonferroni para comparação das médias de P, Ca e Sr dentro de cada grupo, com um nível de significância de 0,05 (p=0,05), que demonstrou remineralização efetiva na terceira semana de tratamento no grupo Nano P. Posteriormente foi utilizado o teste T-Student para comparação das médias de P, Ca e Sr entre os diferentes grupos, também com um nível de significância de 0,05 (p=0,05). O grupo Nano P foi mais efetivo do que todos os outros grupos e o grupo Saliva menos efetivo que Fluor e Recaldent após três semanas de tratamento. Nestas condições expirimentais in vitro a pasta Desensibilize Nano P foi eficaz noprocesso de remineralização dental desde a primeira semana de tratamento e estável após 3 semanas de tratamento do que os tratamentos com Saliva, Flúor e GC Tooth Mousse.

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O objetivo deste estudo foi avaliar in vitro por meio da Fluorescência de Raios X por Dispersão de Energia (XRF), Microdureza Vickers (MV) e Microscopia Eletrônica de Varredura (MEV) o efeito remineralizante de diferentes princípios bioativos, tais quais, nanopartículas de hidroxiapatita de cálcio (nanoHAp) associadas ou não a fluoreto, fosfopeptídeos de caseína do leite e fosfato de cálcio amorfo (CPP-ACP) associados ou não a fluoreto, fluoreto de sódio e saliva no esmalte dental bovino submetido a ciclagem des-remineralizante simulando lesão erosiva por alto desafio ácido. Foram obtidos 58 corpos de prova (CP) a partir de 58 incisivos bovinos que foram divididos aleatoriamente em 8 grupos, com 7 CP cada um e 2 CP para obtenção de imagem em MEV do esmalte hígido. Cada grupo foi denominado conforme os respectivos tratamentos a serem utilizados. Grupo 1 (G1) Controle; Grupo 2 (G2) Desensibilize Nano P experimental (nanopartículas de hidroxiapatita de cálcio); Grupo 3 (G3) Desensibilize Nano P (nanopartículas de hidroxiapatita de cálcio e flúor); Grupo4 (G4) GC Tooth Mousse (CPP-ACP, fosfopeptídios de caseína e fosfato de cálcio amorfo Recaldent ); Grupo 5 (G5) GC Tooth Mousse Plus (CPP-ACP, fosfopeptídios de caseína e fosfato de cálcio amorfo Recaldent + 900 ppm de flúor); Grupo 6 (G6) solução aquosa de fluoreto de sódio (0,05%); Grupo 7 (G7) solução aquosa de nanopartículas de hidroxiapatita de cálcio (0,375%) e Grupo 8 (G8) solução aquosa de nanopartículas de hidroxiapatita de cálcio (0,375%) + flúor (0,05%). Foram obtidos os valores de XRF e MV antes e depois do tratamento. Durante um período experimental de 10 dias, os CPs foram submetidos a um processo cíclico de des-remineralização incluindo vários ataques diários com ácido cítrico 0,05M (pH 2,3), 6 vezes de 2 minutos ao dia, bem como as aplicações das soluções teste e períodos de remineralização em saliva artificial. O tempo entre os ciclos era de 1,5 h. Foram obtidas imagens em MEV para análise da superfície após o tratamento. Através da análise estatística pelo teste t student (p = 0,05), foram encontrados os seguintes resultados: o grupo controle teve uma desmineralização considerada severa; houve aumento na contagem de P em todos os grupos que receberam tratamento, exceto o G1, igualando ou até mesmo aumentando no caso do G5, em relação a contagem inicial; houve aumento na contagem de Ca em todos os grupos que receberam tratamento, exceto no G1, igualando ou até mesmo aumentando no caso do G4, em relação a contagem inicial; houve perda de microdureza superficial em todos os grupos; o G7 teve comportamento similar ao G1 e o G3 teve comportamento inferior ao G5 em relação ao P. E todos os outros grupos tiveram comportamento superior ao controle; o G4 e o G5 tiveram um comportamento superior ao G2 em relação ao Ca. O G5 teve comportamento superior ao G3 também em relação ao Ca e todos os grupos foram superiores ao controle; o G7 teve comportamento similar ao controle em relação a microdureza superficial e todos os outros grupos foram superiores ao controle.

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Purpose: This study evaluated and compared in vitro the microstructure and mineral composition of permanent and deciduous teeth`s dental enamel. Methods: Sound third molars (n = 12) and second primary molars (n = 12) were selected and randomly assigned to the following groups, according to the analysis method performed (n = 4): Scanning electron microscopy (SEM), X-Ray diffraction (XRD) and Energy dispersive X-ray spectrometer (EDS). Qualitative and quantitative comparisons of the dental enamel were done. The microscopic findings were analyzed statistically by a nonparametric test (Kruskal-Wallis). The measurements of the prisms number and thickness were done in SEM photomicrographs. The relative amounts of calcium (Ca) and phosphorus (P) were determined by EDS investigation. Chemical phases present in both types of teeth were observed by the XRD analysis. Results: The mean thickness measurements observed in the deciduous teeth enamel was 1.14 mm and in the permanent teeth enamel was 2.58 mm. The mean rod head diameter in deciduous teeth was statistically similar to that of permanent teeth enamel, and a slightly decrease from the outer enamel surface to the region next to the enamel-dentine junction was assessed. The numerical density of enamel rods was higher in the deciduous teeth, mainly near EDJ, that showed statistically significant difference. The percentage of Ca and P was higher in the permanent teeth enamel. Conclusions: The primary enamel structure showed a lower level of Ca and P, thinner thickness and higher numerical density of rods. Microsc. Res. Tech. 73:572-577, 2010. (C) 2009 Wiley-Liss. Inc.

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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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This in situ/ex vivo study evaluated whether saliva stimulated by chewing gum could prevent or reduce the wear and the percent change in microhardness (%SMH) of bovine and human enamel submitted to erosion followed by brushing abrasion immediately or after 1 h. During 2 experimental 7-day crossover phases, 9 previously selected volunteers wore intraoral palatal devices, with 12 enamel specimens (6 human and 6 bovine). In the first phase, the volunteers immersed the device for 5 min in 150 ml of cola drink, 4 times per day (at 8, 12, 16 and 20 h). Immediately after the immersions, no treatment was performed in 4 specimens, 4 other specimens were immediately brushed (0 min) using a fluoride dentifrice, and the device was replaced into the mouth. After 60 min, the remaining 4 specimens were brushed. In the second phase, the procedures were repeated, but after the immersions, the volunteers stimulated the salivary flow rate by chewing a sugar-free gum for 30 min. Changes in wear and %SMH were measured. ANOVA and Tukey's test showed statistical differences (p < 0.05) for the following comparisons. The chewing gum promoted less wear and %SMH. A decreasing %SMH and an increasing enamel wear were observed in the following conditions: erosion only, 60 min and 0 min. The human enamel presented greater %SMH and less wear compared to bovine enamel. The data suggest that the salivary stimulation after an erosive or erosive/abrasive attack can reduce the dental wear and the %SMH.

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Objectives: This in situ/ex vivo study evaluated whether a rinse with an iron solution could reduce wear and the percentage of microhardness change of human enamel and dentine submitted to erosion followed by brushing after 1 or 30 min.Design: During 2 experimental 5-day crossover phases (wash-out period of 10 days), 10 volunteers wore intraoral palatal devices, with 12 specimens (6 of enamel and 6 of dentine) arranged in 3 horizontal rows (4 specimens each). In one phase, the volunteers immersed the device for 5 min in 150 mL of cola drink, 4 times a day. Immediately after immersion, no treatment was performed in one row. The other row was brushed after 1 min using a fluoride dentifrice and the device was replaced into mouth. After 30 min, the remaining row was brushed. In the other phase, the procedures were repeated, but after immersion the volunteers rinsed for 1 min with 10 mL of a 10 mM ferrous sulphate solution. Changes in surface microhardness (%SMH) and wear (profilometry) of enamel and dentine were measured. Data were tested using ANOVA and Tukey's tests (p < 0.05).Results: the enamel presented more wear than dentine, under all experimental conditions. The iron solution caused a significant reduction on the %SMH in enamel, and a significant reduction on the wear in dentine, regardless the other conditions.Conclusions: Rinsing with an iron solution after an erosive attack, followed or not by an abrasive episode, may be a viable alternative to reduce the loss of dental structure. (c) 2006 Elsevier Ltd. All rights reserved.

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The objective of this study was to assess the salivary residual effect of fluoride dentifrice on human enamel subjected to an erosive challenge. This crossover in situ study was performed in two phases (A and B), involving ten volunteers. In each phase, they wore acrylic palatal appliances, each containing 3 human enamel blocks, during 7 days. The blocks were subjected to erosion by immersion of the appliances in a cola drink for 5 minutes, 4 times a day. Dentifrice was used to brush the volunteers' teeth, 4 times a day, during 1 minute, before the appliance was replaced into the mouth. In phases A and B the dentifrices used had the same formulation, except for the absence (PD) or presence (FD) of fluoride, respectively. Enamel alterations were determined using profilometry, microhardness (%SMHC), acid- and alkali-soluble F analysis. The data were tested using ANOVA (p < 0.05). The concentrations (mean ± SD) of alkali- and acid-soluble F (μgF/cm 2) were, respectively, PD: 1.27 a ± 0.70/2.24∧ A ± 0.36 and FD: 1.49 a ± 0.44/2.24∧ ± 0.67 (p > 0.05). The mean wear values (± SD, μm) were PD: 3.63 a ± 1.54 and FD: 3.54 a ± 0.90 (p > 0.05). The mean %SMHC values (± SD) were PD: 89.63 a ± 4.73 and FD: 87.28 a ± 4.01 (p > 0.05). Thus, we concluded that the residual fluoride from the fluoride-containing dentifrice did not protect enamel against erosion.

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This in situ study investigated, using scanning electron microscopy, the effect of stimulated saliva on the enamel surface of bovine and human substrates submitted to erosion followed by brushing abrasion immediately or after one hour. During 2 experimental 7-day crossover phases, 9 previously selected volunteers wore intraoral palatal devices, with 12 enamel specimens (6 human and 6 bovine). In the first phase, the volunteers immersed the device for 5 minutes in 150 ml of a cola drink, 4 times a day (8h00, 12h00, 16h00 and 20h00). Immediately after the immersions, no treatment was performed in 4 specimens (ERO), 4 other specimens were immediately brushed (0 min) using a fluoride dentifrice and the device was replaced into the mouth. After 60 min, the other 4 specimens were brushed. In the second phase, the procedures were repeated but, after the immersions, the volunteers stimulated the salivary flow rate by chewing a sugar-free gum for 30 min. Enamel superficial alterations of all specimens were then evaluated using a scanning electron microscope. Enamel prism core dissolution was seen on the surfaces submitted to erosion, while on those submitted to erosion and to abrasion (both at 0 and 60 min) a more homogeneous enamel surface was observed, probably due to the removal of the altered superficial prism layer. For all the other variables - enamel substrate and salivary stimulation the microscopic pattern of the enamel specimens was similar.

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The aim of this in vitro study was to evaluate the erosive capacity of fermented milk beverages, as well as some of their properties that affect the demineralization of dental enamel (pH, buffering capacity, fluoride, calcium and phosphorus contents). Three different batches of 6 commercial brands of fermented milk beverages were analyzed. pH evaluation was accomplished using a potentiometer. The buffering capacity was measured by adding 1 mol L -1 NaOH. Fluoride concentration was assessed by an ion specific electrode after hexamethyldisiloxane-facilitated diffusion, and calcium and phosphorus concentrations were assessed by a colorimetric test using a spectrophotometer. Sixty specimens of bovine enamel were randomly assigned to 6 groups (n = 10). They were exposed to 4 cycles of demineralization in the fermented milk and remineralization in artificial saliva. Enamel mineral loss was determined by surface microhardness (%SMHC) and profilometric tests. The samples' pH ranged from 3.51 to 3.87; the buffering capacity ranged from 470.8 to 804.2 μl of 1 mol L -1 NaOH; the fluoride concentration ranged from 0.027 to 0.958 μgF/g; the calcium concentration ranged from 0.4788 to 0.8175 mgCa/g; and the phosphorus concentration ranged from 0.2662 to 0.5043 mgP/g. The %SMHC ranged from-41.0 to -29.4. The enamel wear ranged from 0.15 μm to 0.18 μm. In this in vitro study, the fermented milk beverages did not promote erosion of the dental enamel, but rather only a superficial mineral loss.

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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Purpose: To evaluate the ability of calcium-containing prescription-strength fluoride (F) toothpastes in preventing enamel erosion under low salivary flow simulating conditions. Methods: Enamel and dentin bovine specimens were assigned to the following groups: A - placebo; B - 1,100 ppm F/NaF (Aquafresh Advanced); C - 5,000 ppm F/NaF (Prevident 5000 Booster); D - 5000 ppm F/NaF+calcium sodium phosphosilicate (Topex Renew); and E - 5,000 ppm F/NaF+tri-calcium phosphate (Clinpro 5000). Specimens were positioned in custom-made devices, creating a sealed chamber on the surface, connected to peristaltic pumps. Citric acid was injected into the chamber for 2 minutes, followed by artificial saliva (0.05 ml/minute), for 60 minutes, 4x/day, for 3 days. Aquafresh was also tested under normal salivary flow (0.5 ml/minute), as reference (Group F). Specimens were exposed to the toothpastes for 2 minutes, 2x/day. After cycling, surface loss (SL) and concentration of loosely- and firmly-bound F were determined. Data were analyzed by ANOVA. Results: Group A (placebo) presented highest surface loss (SL), while Group F had the lowest, for both substrates. For enamel, none of the dentifrices differed from Group B or among each other. For dentin, none of the dentifrices differed from Group B, but Group E showed greater protection than Group C. Group E presented the highest F concentrations for both substrates, only matched by Group D for firmly-bound fluoride on enamel. All fluoridated dentifrices tested reduced SL, with no additional benefit from higher F concentrations. Some formulations, especially Clinpro 5000, increased F availability on the dental substrates, but no further erosion protection was observed.

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Objective: The present study analyzed xylitol concentrations in artificial saliva over time after application of varnishes containing 10% and 20% xylitol. Material and Methods: Fifteen bovine enamel specimens (8x4 mm) were randomly allocated to 3 groups (n=5/group), according to the type of varnish used: 10% xylitol, 20% xylitol and no xylitol (control). After varnish application (4 mg), specimens were immersed in vials containing 500 mu L of artificial saliva. Saliva samples were collected in different times (1, 8, 12, 16, 24, 48 and 72 h) and xylitol concentrations were analyzed. Data were assessed by two-way repeated-measures ANOVA (p<0.05). Results: Colorimetric analysis was not able to detect xylitol in saliva samples of the control group. Salivary xylitol concentrations were significantly higher up to 8 h after application of the 20% xylitol varnish. Thereafter, the 10% xylitol varnish released larger amounts of that polyol in artificial saliva. Conclusions: Despite the results in short-term, sustained xylitol releases could be obtained when the 10% xylitol varnish was used. These varnishes seem to be viable alternatives to increase salivary xylitol levels, and therefore, should be clinically tested to confirm their effectiveness.