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从羟基磷灰石到次生骨矿物质白磷钙矿的相变。

Phase transformation from hydroxyapatite to the secondary bone mineral, whitlockite.

作者信息

Jang Hae Lin, Lee Hye Kyoung, Jin Kyoungsuk, Ahn Hyo-Yong, Lee Hye-Eun, Nam Ki Tae

机构信息

Biomolecular Nanomaterials Laboratory, Department of Materials Science and Engineering, Seoul National University, Seoul 151-744, Korea.

出版信息

J Mater Chem B. 2015 Feb 21;3(7):1342-1349. doi: 10.1039/c4tb01793e. Epub 2015 Jan 9.

Abstract

Whitlockite (WH: CaMg(HPO)(PO)) is the second most abundant mineral in hard tissues, but its precipitation mechanism or role in the body system is poorly understood. Here, using a newly discovered synthetic method for WH, we investigated the kinetic mechanism for the precipitation of WH under physiologically similar conditions, excluding any effects of toxic ions. Based on systematically classified stages in the precipitation process of WH, we monitored the transformation of calcium phosphate phases from neutral pH to acidic pH with the addition of HPO. The study revealed that at 70 °C, hydroxyapatite (HAP: Ca(PO)(OH)) transforms into dicalcium phosphate dihydrate (DCPD: CaHPO·2HO) and then into WH in the presence of Mg ions as the pH decreases. The transformation process involves multiple intermediates, the stability of which depends on the cation (Ca and Mg) activities and the solution pH. WH is the most stable calcium phosphate compound below pH 4.2, whereas HAP is the most stable around neutral pH. We also found that Mg ions, which are known to block the growth of HAP, can play a key role in WH formation. This study provides a new insight into the interplay of biologically important calcium phosphate compounds.

摘要

白磷钙矿(WH:CaMg(HPO₄)(PO₄))是硬组织中含量第二丰富的矿物质,但其沉淀机制或在人体系统中的作用仍知之甚少。在此,我们利用新发现的白磷钙矿合成方法,研究了在生理相似条件下白磷钙矿沉淀的动力学机制,排除了有毒离子的任何影响。基于白磷钙矿沉淀过程中系统分类的阶段,我们通过添加HPO₄²⁻监测了磷酸钙相从中性pH到酸性pH的转变。研究表明,在70°C下,随着pH值降低,在镁离子存在的情况下,羟基磷灰石(HAP:Ca₁₀(PO₄)₆(OH)₂)先转变为二水磷酸二钙(DCPD:CaHPO₄·2H₂O),然后再转变为白磷钙矿。转变过程涉及多个中间体,其稳定性取决于阳离子(Ca和Mg)活性以及溶液pH值。在pH值低于4.2时,白磷钙矿是最稳定的磷酸钙化合物,而在中性pH值附近,羟基磷灰石最稳定。我们还发现,已知会阻碍羟基磷灰石生长的镁离子,在白磷钙矿形成过程中可发挥关键作用。这项研究为具有生物学重要性的磷酸钙化合物之间的相互作用提供了新的见解。

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