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新型纳米晶羟基磷灰石-聚羧基/磺基甜菜碱杂化材料:合成与表征

New Nano-Crystalline Hydroxyapatite-Polycarboxy/Sulfo Betaine Hybrid Materials: Synthesis and Characterization.

作者信息

Díaz-Cuenca Aránzazu, Sezanova Kostadinka, Gergulova Rumiana, Rabadjieva Diana, Ruseva Konstans

机构信息

Materials Science Institute of Seville (ICMS), Joint CSIC-University of Seville Center, 41092 Seville, Spain.

Institute of General and Inorganic Chemistry, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria.

出版信息

Molecules. 2024 Feb 21;29(5):930. doi: 10.3390/molecules29050930.

Abstract

Hybrid materials based on calcium phosphates and synthetic polymers can potentially be used for caries protection due to their similarity to hard tissues in terms of composition, structure and a number of properties. This study is focused on the biomimetic synthesis of hybrid materials consisting of hydroxiapatite and the zwitterionic polymers polysulfobetaine (PSB) and polycarboxybetaine (PCB) using controlled media conditions with a constant pH of 8.0-8.2 and Ca/P = 1.67. The results show that pH control is a dominant factor in the crystal phase formation, so nano-crystalline hydroxyapatite with a Ca/P ratio of 1.63-1.71 was observed as the mineral phase in all the materials prepared. The final polymer content measured for the synthesized hybrid materials was 48-52%. The polymer type affects the final microstructure, and the mineral particle size is thinner and smaller in the synthesis performed using PCB than using PSB. The final intermolecular interaction of the nano-crystallized hydroxyapatite was demonstrated to be stronger with PCB than with PSB as shown by our IR and Raman spectroscopy analyses. The higher remineralization potential of the PCB-containing synthesized material was demonstrated by in vitro testing using artificial saliva.

摘要

基于磷酸钙和合成聚合物的杂化材料,由于其在组成、结构和许多特性方面与硬组织相似,因而具有潜在的防龋用途。本研究聚焦于在pH值恒定为8.0 - 8.2且Ca/P = 1.67的可控介质条件下,仿生合成由羟基磷灰石与两性离子聚合物聚磺酸甜菜碱(PSB)和聚羧酸甜菜碱(PCB)组成的杂化材料。结果表明,pH控制是晶相形成的主导因素,因此在所有制备的材料中,均观察到Ca/P比为1.63 - 1.71的纳米晶羟基磷灰石作为矿物相。合成的杂化材料最终测得的聚合物含量为48 - 52%。聚合物类型会影响最终的微观结构,与使用PSB进行的合成相比,使用PCB进行的合成中矿物颗粒尺寸更薄更小。红外光谱和拉曼光谱分析表明,纳米晶化羟基磷灰石与PCB的最终分子间相互作用比与PSB的更强。使用人工唾液进行的体外测试表明,含PCB的合成材料具有更高的再矿化潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f2c0/10934327/57abf2c5cda0/molecules-29-00930-g001.jpg

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