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Amorphous Calcium Phosphate-Based Bioactive Polymeric Composites for Mineralized Tissue Regeneration

机译:非晶态磷酸钙基生物活性聚合物复合材料的矿化组织再生。

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摘要

Amorphous calcium phosphate (ACP), a postulated precursor in the formation of biological hydroxyapatite, has been evaluated as a filler phase in bioactive polymeric composites that utilize dental monomers to form the matrix phase on polymerization. In addition to excellent biocompatibility, these composites provided sustained release of calcium and phosphate ions into simulated saliva milieus. In an effort to enhance the physicochemical and mechanical properties and extend the utility of remineralizing ACP composites to a greater variety of dental applications, we have focused on: a) hybridizing ACP by introducing silica and/or zirconia, b) assessing the efficacy of potential coupling agents, c) investigating the effects of chemical structure and compositional variation of the resin matrices on the mechanical strength and ion-releasing properties of the composites, and d) improving the intrinsic adhesiveness of composites by using bifunctional monomers with an affinity for tooth structure in resin formulations. Si- and Zr-modified ACPs along with several monomer systems are found useful in formulating composites with improved mechanical and remineralizing properties. Structure-property studies have proven helpful in advancing our understanding of the remineralizing behavior of these bioactive composites. It is expected that this knowledge base will direct future research and lead to clinically valuable products, especially therapeutic materials appropriate for the healing or even regeneration of defective teeth and bone structures.
机译:非晶态磷酸钙(ACP)是生物羟基磷灰石形成中的一种假定前体,已被评估为生物活性聚合物复合材料中的填充相,该复合材料利用牙科单体在聚合反应中形成基质相。除了出色的生物相容性外,这些复合材料还可以将钙离子和磷酸根离子持续释放到模拟唾液中。为了增强理化和机械性能并将再矿化ACP复合材料的用途扩展到更多种类的牙科应用中,我们致力于:a)通过引入二氧化硅和/或氧化锆来与ACP杂交,b)评估潜在的功效偶联剂; c)研究树脂基体的化学结构和组成变化对复合材料的机械强度和离子释放性能的影响; d)通过使用对牙齿结构具有亲和力的双官能单体来改善复合材料的固有粘合性在树脂配方中。发现Si和Zr改性的ACP以及几种单体体系可用于配制具有改善的机械和再矿化性能的复合材料。事实证明,结构性质研究有助于增进我们对这些生物活性复合材料再矿化行为的理解。预计该知识库将指导未来的研究,并产生具有临床价值的产品,尤其是适合于修复或什至再生有缺陷的牙齿和骨骼结构的治疗材料。

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