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首页> 外文期刊>Materials science & engineering >Introducing an attractive method for total biomimetic creation of a synthetic biodegradable bioactive bone scaffold based on statistical experimental design
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Introducing an attractive method for total biomimetic creation of a synthetic biodegradable bioactive bone scaffold based on statistical experimental design

机译:介绍一种基于统计实验设计的全生物仿制合成可生物降解生物活性骨支架的有吸引力的方法

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A new total biomimetic technique based on both the water uptake and degradation processes is introduced in this study to provide an interesting procedure to fabricate a bioactive and biodegradable synthetic scaffold, which has a good mechanical and structural properties. The optimization of effective parameters to scaffold fabrication was done by response surface methodology/central composite design (CCD). With this method, a synthetic scaffold was fabricated which has a uniform and open-interconnected porous structure with the largest pore size of 100–200μm. The obtained compressive ultimate strength of ~35MPa and compression modulus of 58MPa are similar to some of the trabecular bone. The pore morphology, size, and distribution of the scaffold were characterized using a scanning electron microscope and mercury porosimeter. Fourier transform infrared spectroscopy, EDAX and X-ray diffraction analyses were used to determine the chemical composition, Ca/P element ratio of mineralized microparticles, and the crystal structure of the scaffolds, respectively. The optimum biodegradable synthetic scaffold based on its raw materials of polypropylene fumarate, hydroxyethyl methacrylate and nano bioactive glass (PPF/HEMAanoBG) as 70/30wt/wt%, 20wt%, and 1.5wt/wt% (PHB.732/1.5) with desired porosity, pore size, and geometry were created by 4weeks immersion in SBF. This scaffold showed considerable biocompatibility in the ranging from 86 to 101% for the indirect and direct contact tests and good osteoblast cell attachment when studied with the bone-like cells.
机译:在这项研究中引入了一种新的基于吸水和降解过程的总仿生技术,以提供有趣的程序来制造具有良好机械和结构特性的生物活性和可生物降解的合成支架。通过响应表面方法/中央复合材料设计(CCD)对用于脚手架制造的有效参数进行了优化。用这种方法,可以制造出具有均匀且开放互连的多孔结构的合成支架,其最大孔径为100-200μm。获得的〜35MPa的抗压极限强度和58MPa的压缩模量与一些小梁骨相似。使用扫描电子显微镜和水银孔隙率计表征支架的孔形态,大小和分布。使用傅立叶变换红外光谱,EDAX和X射线衍射分析分别确定矿化微粒的化学组成,Ca / P元素比和支架的晶体结构。基于富马酸聚丙烯酸酯,甲基丙烯酸羟乙酯和纳米生物活性玻璃(PPF / HEMA / nanoBG)的原料为70 / 30wt / wt%,20wt%和1.5wt / wt%(PHB.732 / 1.5)的最佳可生物降解合成支架通过在SBF中浸泡4周,获得具有所需孔隙率,孔径和几何形状的)。当与骨样细胞一起研究时,这种支架对于间接和直接接触测试显示出相当大的生物相容性,范围从86%到101%,并且具有良好的成骨细胞附着性。

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