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19F 磁共振波谱法及溶液化学法对氟化物与羟基磷灰石和粉末状牙釉质反应的表征

19F MAS-NMR and solution chemical characterization of the reactions of fluoride with hydroxyapatite and powdered enamel.

作者信息

White D J, Bowman W D, Faller R V, Mobley M J, Wolfgang R A, Yesinowski J P

机构信息

Sharon Woods Technical Center, Procter & Gamble Company, Cincinnati, Ohio 45241.

出版信息

Acta Odontol Scand. 1988 Dec;46(6):375-89. doi: 10.3109/00016358809004791.

Abstract

Solution chemical and 19F magic angle spinning-nuclear magnetic resonance (MAS-NMR) methods have been utilized to study the effects of fluoride dose, fluoridating pH, and mineral surface area on the dynamics of fluoride reactivity with hydroxyapatite and powdered human dental enamel in vitro. Both solution chemical fluoride uptake and NMR measurements demonstrated that the reaction products of ionic fluoride with apatite include mixtures of FAP, FHAP, and CaF2, with increased amounts of CaF2 promoted by increased F concentration or decreased pH. NMR analysis showed FAP or FHAP as a reaction product of fluoride uptake under all conditions, regardless of whether CaF2 was formed, unambiguously demonstrating fluorite as an additive rather than substitute form of F reactivity. pH stat measurements demonstrated the release of OH- during F reactivity with apatites corresponding to ion exchange formation of FAP/FHAP or dissolution/reprecipitation formation of CaF2. Phosphate release into solution accompanied fluoride uptake under all conditions, including regions where ion exchange predominated. Whereas powdered dental enamel demonstrated fluoride uptake behavior similar to that of synthetic apatite, the resulting reaction products differed as analyzed by 19F MAS-NMR.

摘要

溶液化学法和19F魔角旋转核磁共振(MAS-NMR)方法已被用于研究氟化物剂量、氟化pH值和矿物表面积对氟化物与羟基磷灰石及人牙釉质粉末在体外反应动力学的影响。溶液化学氟摄取和NMR测量均表明,离子氟与磷灰石的反应产物包括FAP、FHAP和CaF2的混合物,F浓度增加或pH值降低会促进CaF2含量增加。NMR分析表明,在所有条件下,无论是否形成CaF2,FAP或FHAP都是氟摄取的反应产物,明确证明萤石是氟反应性的一种添加形式而非替代形式。pH计测量表明,在氟与磷灰石反应过程中会释放OH-,这与FAP/FHAP的离子交换形成或CaF2的溶解/再沉淀形成相对应。在所有条件下,包括离子交换占主导的区域,氟摄取过程中都会有磷酸盐释放到溶液中。虽然粉末状牙釉质表现出与合成磷灰石相似的氟摄取行为,但通过19F MAS-NMR分析,其产生的反应产物有所不同。

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