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一种通过堆积羟基磷灰石球体用于大骨组织工程的新型多孔生物陶瓷支架。III:多孔结构的表征。

A novel porous bioceramic scaffold by accumulating hydroxyapatite spheres for large bone tissue engineering. III: Characterization of porous structure.

机构信息

Key Laboratory of Advanced Technologies of Materials (MOE), School of Materials Science and Engineering, Southwest Jiaotong University, China; Dr. Li Dak Sum & Yip Yio Chin Center for Stem Cell and Regenerative Medicine, School of Medicine, Zhejiang University, China; Key Laboratory of Tissue Engineering and Regenerative Medicine of Zhejiang Province, School of Medicine, Zhejiang University, China.

Research Institute of Tissue Engineering and Stem Cells, Nanchong Central Hospital, the Second Clinical College of North Sichuan Medical College, China.

出版信息

Mater Sci Eng C Mater Biol Appl. 2018 Aug 1;89:223-229. doi: 10.1016/j.msec.2018.04.013. Epub 2018 Apr 12.

Abstract

Physical characteristics of bone tissue engineering scaffolds, including interconnectivity, microporosity, macroporosity, and pore geometry are known to play a crucial role in bone regeneration. In the present study, three-dimensional (3D) interconnected scaffolds were prepared by accumulating hydroxyapatite (HA) spheres in a titanium mesh tube (ф 1.5 × 3 cm). Three types of porous scaffolds were constructed using HA spheres with diameters of 1651-1981 μm, 830-1180 μm and a mixture of 1651-1981 μm and 830-1180 μm at a volumetric ratio of 1:1, respectively. The total porosity of the three scaffolds was 64.72%, 64.85% and 65.04%, while the macroporosity of the scaffolds was 37.56%, 38.86% and 38.01% by using images analysis of cross sections at various positions of the scaffolds. The variation curve of the macroporosity of the scaffolds along the axis perpendicular to the ground showed similarities to sinusoidal function curve. The macropore size was ranged from 0.73R to 2R (R means spheres radius). The average proportions of triangle macropores, quadrilateral macropores, as well as polygon macropores including pentagon, hexagon and irregular polygon macropores in the total macropore areas of each scaffold were 3.73 ± 0.96%, 10.03 ± 1.75% and 86.23 ± 2.71%, respectively. In addition, the macropore size, microporosity and total porosity could be controlled by modifying the diameter and microstructure of HA spheres when the macroporosity was the same. The study and analysis of macropore structure of the spheres accumulated scaffolds can not only guide the design and fabrication of 3D scaffolds for bone tissue engineering, but also benefit to further understand the impact of macropore structure in 3D scaffolds on osteogenesis.

摘要

骨组织工程支架的物理特性,包括连通性、微孔率、大孔率和孔径几何形状,已知对骨再生起着至关重要的作用。在本研究中,通过在钛网管(ф 1.5×3 cm)中堆积羟基磷灰石(HA)球制备了三维(3D)互连支架。使用直径为 1651-1981μm、830-1180μm 和 1651-1981μm 和 830-1180μm 的 HA 球以 1:1 的体积比分别构建了三种多孔支架。三种支架的总孔隙率分别为 64.72%、64.85%和 65.04%,而通过对支架不同位置的横截面进行图像分析,支架的大孔率分别为 37.56%、38.86%和 38.01%。支架大孔率沿垂直于地面的轴的变化曲线与正弦函数曲线相似。大孔孔径范围为 0.73R 至 2R(R 表示球半径)。每个支架总大孔面积中三角形大孔、四边形大孔和包括五边形、六边形和不规则多边形大孔在内的多边形大孔的平均比例分别为 3.73±0.96%、10.03±1.75%和 86.23±2.71%。此外,当大孔率相同时,可以通过改变 HA 球的直径和微观结构来控制大孔率、微孔率和总孔隙率。对球体堆积支架大孔结构的研究和分析不仅可以指导骨组织工程 3D 支架的设计和制造,而且有助于进一步了解 3D 支架中大孔结构对成骨的影响。

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