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脱矿质原理:分离有机骨架的现代策略。第二部分。脱钙

Principles of demineralization: modern strategies for the isolation of organic frameworks. Part II. Decalcification.

作者信息

Ehrlich Hermann, Koutsoukos Petros G, Demadis Konstantinos D, Pokrovsky Oleg S

机构信息

Max Bergmann Center of Biomaterials, Institute of Materials Science, Dresden University of Technology, Budapester Str. 27, D-01069 Dresden, Germany.

出版信息

Micron. 2009 Feb;40(2):169-93. doi: 10.1016/j.micron.2008.06.004. Epub 2008 Jul 11.

Abstract

This is the second paper on principles of demineralization. The initial paper is dedicated to the common definitions and the history of demineralization. In present work we review the principles and mechanisms of decalcification, i.e., removing the mineral Ca-containing compounds (phosphates and carbonates) from the organic matrix in its two main aspects: natural and artificial. Natural chemical erosion of biominerals (cavitation of biogenic calcareous substrata by bacteria, fungi, algae, foraminifera, sponges, polychaetes, and mollusks) is driven by production of mineral and organic acids, acidic polysaccharides, and enzymes (cabonic anhydrase, alkaline and phosphoprotein phosphataes, and H(+)-ATPase). Examples of artifical decalcification includes demineralization of bone, dentin and enamel, and skeletal formations of corals and crustacean. The mechanism and kinetics of Ca-containing biomineral dissolution is analyzed within the framework of (i) diffusion-reaction theory; (ii) surface-reaction controlled, morphology-based theories, and (iii) phenomenological surface coordination models. The application of surface complexation model for describing and predicting the effect of organic ligands on calcium and magnesium dissolution kinetics is also described. Use of the electron microscopy-based methods for observation and visualization of the decalcification phenomenon is discussed.

摘要

这是关于脱矿质原理的第二篇论文。第一篇论文致力于脱矿质的通用定义和历史。在当前工作中,我们回顾脱钙的原理和机制,即从有机基质中去除含矿物质的钙化合物(磷酸盐和碳酸盐),主要从自然和人工两个方面进行阐述。生物矿物的自然化学侵蚀(细菌、真菌、藻类、有孔虫、海绵、多毛纲动物和软体动物对生物成因钙质基质的空蚀作用)是由矿物酸、有机酸、酸性多糖和酶(碳酸酐酶、碱性磷酸酶和磷蛋白磷酸酶以及H(+) - ATP酶)的产生所驱动的。人工脱钙的例子包括骨骼、牙本质和牙釉质的脱矿质,以及珊瑚和甲壳类动物骨骼结构的脱矿质。在以下框架内分析了含钙生物矿物溶解的机制和动力学:(i)扩散 - 反应理论;(ii)基于表面反应控制和形态学的理论,以及(iii)现象学表面配位模型。还描述了表面络合模型在描述和预测有机配体对钙和镁溶解动力学影响方面的应用。讨论了基于电子显微镜的方法在观察和可视化脱钙现象中的应用。

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