牙釉质龋齿病变的发展对蔗糖和氟浓度以及生物膜形成时间的反应:一项人工口腔研究。

Rodrigo Alex Arthur, Eduardo Kazuo Kohara, Robert Aaron Waeiss, George J Eckert, Domenick Zero, Masatoshi Ando
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引用次数: 8

摘要

本研究的目的是评价蔗糖和氟化物浓度以及生物膜形成时间对体外人工口腔龋模型牙釉质龋损伤的影响。在研究1中,由链球菌和乳酸菌形成的生物膜在人牙釉质板表面生长,并暴露于含0.50或0.75 ppmF的人工唾液(22.5 h/d)和含3%或5%蔗糖的肉汤(30 min;在研究2中,生物膜在0.75 ppmF和3%蔗糖的存在下生长了3天和9天。在测试条件结束时,评估生物膜上的活细胞计数、损伤深度(LD)和牙釉质标本上的综合矿物质损失(IML)。总活细胞数和干酪乳杆菌数受蔗糖和氟浓度以及生物膜形成时间的影响。与0.50 ppmF相比,0.75 ppmF组牙釉质龋变浅,IML降低(P < 0.005)。蔗糖浓度对LD和IML无显著影响(P > 0.25)。生物膜形成9 d后病变更深,IML更高(P < 0.005)。不同的蔗糖浓度对牙釉质龋病的发展没有影响。较高的氟浓度降低了牙釉质脱矿的严重程度。此外,生物膜形成时间的增加会产生更大的脱矿作用。我们的结果也表明,该模型适用于研究龋病发展的相关方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enamel Carious Lesion Development in Response to Sucrose and Fluoride Concentrations and to Time of Biofilm Formation: An Artificial-Mouth Study.

The aim of this study was to evaluate both sucrose and fluoride concentrations and time of biofilm formation on enamel carious lesions induced by an in vitro artificial-mouth caries model. For Study 1, biofilms formed by streptococci and lactobacilli were grown on the surface of human enamel slabs and exposed to artificial saliva containing 0.50 or 0.75 ppmF (22.5 h/d) and broth containing 3 or 5% sucrose (30 min; 3x/d) over 5 d. In Study 2, biofilms were grown in the presence of 0.75 ppmF and 3% sucrose over 3 and 9 days. Counts of viable cells on biofilms, lesion depth (LD), and the integrated mineral loss (IML) on enamel specimens were assessed at the end of the tested conditions. Counts of total viable cells and L. casei were affected by sucrose and fluoride concentrations as well as by time of biofilm formation. Enamel carious lesions were shallower and IML was lower in the presence of 0.75 ppmF than in the presence of 0.50 ppmF (P < 0.005). No significant effect of sucrose concentrations was found with respect to LD and IML (P > 0.25). Additionally, deeper lesions and higher IML were found after 9 d of biofilm formation (P < 0.005). Distinct sucrose concentrations did not affect enamel carious lesion development. The severity of enamel demineralization was reduced by the presence of the higher fluoride concentration. Additionally, an increase in the time of biofilm formation produced greater demineralization. Our results also suggest that the present model is suitable for studying aspects related to caries lesion development.

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