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具有可控尺寸和形状的磷酸钙晶体合成进展。

Advances in synthesis of calcium phosphate crystals with controlled size and shape.

作者信息

Lin Kaili, Wu Chengtie, Chang Jiang

机构信息

State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, 1295 Dingxi Road, Shanghai 200050, China.

State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, 1295 Dingxi Road, Shanghai 200050, China.

出版信息

Acta Biomater. 2014 Oct;10(10):4071-102. doi: 10.1016/j.actbio.2014.06.017. Epub 2014 Jun 20.

Abstract

Calcium phosphate (CaP) materials have a wide range of applications, including biomaterials, adsorbents, chemical engineering materials, catalysts and catalyst supports and mechanical reinforcements. The size and shape of CaP crystals and aggregates play critical roles in their applications. The main inorganic building blocks of human bones and teeth are nanocrystalline CaPs; recently, much progress has been made in the application of CaP nanocrystals and their composites for clinical repair of damaged bone and tooth. For example, CaPs with special micro- and nanostructures can better imitate the biomimetic features of human bone and tooth, and this offers significantly enhanced biological performances. Therefore, the design of CaP nano-/microcrystals, and the shape and hierarchical structures of CaPs, have great potential to revolutionize the field of hard tissue engineering, starting from bone/tooth repair and augmentation to controlled drug delivery devices. Previously, a number of reviews have reported the synthesis and properties of CaP materials, especially for hydroxyapatite (HAp). However, most of them mainly focused on the characterizations and physicochemical and biological properties of HAp particles. There are few reviews about the control of particle size and size distribution of CaPs, and in particular the control of nano-/microstructures on bulk CaP ceramic surfaces, which is a big challenge technically and may have great potential in tissue engineering applications. This review summarizes the current state of the art for the synthesis of CaP crystals with controlled sizes from the nano- to the macroscale, and the diverse shapes including the zero-dimensional shapes of particles and spheres, the one-dimensional shapes of rods, fibers, wires and whiskers, the two-dimensional shapes of sheets, disks, plates, belts, ribbons and flakes and the three-dimensional (3-D) shapes of porous, hollow, and biomimetic structures similar to biological bone and tooth. In addition, this review will also summarize studies on the controlled formation of nano-/microstructures on the surface of bulk ceramics, and the preparation of macroscopical bone grafts with 3-D architecture nano-/microstructured surfaces. Moreover, the possible directions of future research and development in this field, such as the detailed mechanisms behind the size and shape control in various strategies, the importance of theoretical simulation, self-assembly, biomineralization and sacrificial precursor strategies in the fabrication of biomimetic bone-like and enamel-like CaP materials are proposed.

摘要

磷酸钙(CaP)材料有着广泛的应用,包括生物材料、吸附剂、化学工程材料、催化剂及催化剂载体以及机械增强材料。CaP晶体和聚集体的尺寸和形状在其应用中起着关键作用。人体骨骼和牙齿的主要无机组成部分是纳米晶CaP;近年来,CaP纳米晶体及其复合材料在临床修复受损骨骼和牙齿方面取得了很大进展。例如,具有特殊微观和纳米结构的CaP能够更好地模拟人体骨骼和牙齿的仿生特性,从而显著提高生物学性能。因此,CaP纳米/微晶的设计以及CaP的形状和层级结构,在从骨/牙修复与增强到可控药物递送装置等硬组织工程领域具有巨大的变革潜力。此前,已有多篇综述报道了CaP材料的合成与性能,尤其是羟基磷灰石(HAp)。然而,其中大多数主要关注HAp颗粒的表征以及物理化学和生物学性质。关于CaP粒径和粒径分布控制的综述较少,特别是关于块状CaP陶瓷表面纳米/微观结构的控制,这在技术上是一个巨大挑战,但在组织工程应用中可能具有巨大潜力。本综述总结了目前从纳米尺度到宏观尺度合成尺寸可控的CaP晶体的技术现状,以及包括颗粒和球体等零维形状、棒、纤维、线和晶须等一维形状、片、盘、板、带、条和薄片等二维形状以及类似于生物骨骼和牙齿的多孔、中空和仿生结构等三维形状在内的多种形状。此外,本综述还将总结关于在块状陶瓷表面可控形成纳米/微观结构以及制备具有三维结构纳米/微观结构表面的宏观骨移植材料的研究。此外,还提出了该领域未来可能的研发方向,如各种策略中尺寸和形状控制背后的详细机制、理论模拟、自组装、生物矿化和牺牲前驱体策略在制备仿生骨状和牙釉质状CaP材料中的重要性。

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