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首页> 外文期刊>Journal of Functional Biomaterials >Role of Aspartic and Polyaspartic Acid on the Synthesis and Hydrolysis of Brushite
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Role of Aspartic and Polyaspartic Acid on the Synthesis and Hydrolysis of Brushite

机译:天门冬氨酸和聚天冬氨酸在透钙磷矿合成和水解中的作用

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Dicalcium phosphate dihydrate (DCPD) is one of the mineral phases indicated as possible precursors of biological apatites and it is widely employed in the preparation of calcium phosphate bone cements. Herein, we investigated the possibility to functionalize DCPD with aspartic acid (ASP) and poly-aspartic acid (PASP), as models of the acidic macromolecules of biomineralized tissues, and studied their influence on DCPD hydrolysis. To this aim, the synthesis of DCPD was performed in aqueous solution in the presence of increasing concentrations of PASP and ASP, whereas the hydrolysis reaction was carried out in physiological solution up to three days. The results indicate that it is possible to prepare DCPD functionalized with PASP up to a polyelectrolyte content of about 2.3 wt%. The increase of PASP content induces crystal aggregation, reduction of the yield of the reaction and of the thermal stability of the synthesized DCPD. Moreover, DCPD samples functionalized with PASP display a slower hydrolysis than pure DCPD. On the other hand, in the explored range of concentrations (up to 10 mM) ASP is not incorporated into DCPD and does not influence its crystallization nor its hydrolysis. At variance, when present in the hydrolysis solution, ASP, and even more PASP, delays the conversion into the more stable phases, octacalcium phosphate and/or hydroxyapatite. The greater influence of PASP on the synthesis and hydrolysis of DCPD can be ascribed to the cooperative action of the carboxylate groups and to its good fit with DCPD structure.
机译:磷酸二氢钙二水合物(DCPD)是被指示为可能的生物磷灰石前体的矿物相之一,广泛用于制备磷酸钙骨水泥。在这里,我们研究了用天冬氨酸(ASP)和聚天冬氨酸(PASP)功能化DCPD作为生物矿化组织酸性大分子模型的可能性,并研究了它们对DCPD水解的影响。为了这个目的,DCPD的合成在浓度增加的PASP和ASP存在下在水溶液中进行,而水解反应在生理溶液中进行长达三天。结果表明可以制备用PASP官能化的DCPD,直至约2.3wt%的聚电解质含量。 PASP含量的增加引起晶体聚集,反应产率的降低和合成DCPD的热稳定性的降低。此外,用PASP功能化的DCPD样品的水解速度比纯DCPD慢。另一方面,在浓度范围内(最高10 mM),ASP不掺入DCPD中,不影响其结晶或水解。不一致的是,当存在于水解溶液中时,ASP甚至更多的PASP会延迟转化为更稳定的相,即磷酸八钙和/或羟基磷灰石。 PASP对DCPD的合成和水解的更大影响可以归因于羧酸酯基团的协同作用及其与DCPD结构的良好配合。

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