无定形磷酸钙在高分子牙科复合材料中的生物活性填充

D. Bienek, A. Giuseppetti, D. Škrtić
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引用次数: 5

摘要

作为生物磷灰石形成的生物相容性和骨诱导前体,无定形磷酸钙(ACP)的吸收速度与新骨形成的速度密切相关,并且比其晶体对应物更具骨导电性。此外,在口腔环境中,ACP本质上提供持久的再矿化钙和磷酸盐离子供应,这些离子是蛀牙所损失的矿物质再生所必需的。这些特点使ACP复合材料成为龋病发作部位强有力的再矿化工具。二十多年来,我们一直走在生物活性、再矿化、高分子acp牙科材料研究的前沿。本条目描述了填料、聚合物和复合材料的制造方法,以及评估acp基修复体所涉及的一系列物理化学和生物测试。此外,我们还介绍了我们最新设计的ACP再矿化复合材料,该复合材料具有额外的抗菌能力,有望扩展牙科和潜在的更广泛的生物医学应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Amorphous Calcium Phosphate as Bioactive Filler in Polymeric Dental Composites
As biocompatible and osteo-inductive precursor to biological apatite formation, amorphous calcium phosphate (ACP) resorbs at the rate that closely coin-cides with the rate of new bone formation and is more osteo-conductive than its crystalline counterpart. In addition, in the oral environment, ACP intrinsically provides a protracted supply of the remineralizing calcium and phosphate ions needed for regeneration of mineral lost to tooth decay. These features make ACP composites a strong remineralizing tool at the site of caries attack. Our group has been on the forefront of the research on bioactive, remineralizing, polymeric ACP-based dental materials for over two decades. This entry describes methods for filler, polymer, and composite fabrication and a battery of physicochemical and biological tests involved in evaluation of ACP-based restoratives. Also presented is our most recent design of ACP remineralizing composites with added antimicrobial capability that shows promise for extended dental and, potentially, wider biomedical applications.
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