A natural biomineral for enhancing the biomineralization and cell response of 3D printed polylactic acid bone scaffolds

聚乳酸 珍珠 生物矿化 材料科学 模拟体液 扫描电子显微镜 多孔性 极限抗拉强度 挤压 复合数 化学工程 磷灰石 复合材料 化学 矿物学 聚合物 工程类 哲学 神学
作者
Feng Guo,Enyu Wang,Yanjuan Yang,Yufeng Mao,Chao Liu,Wenlang Bu,Ping Li,Lei Zhao,Qingxin Jin,Bin Liu,Shan Wang,Hui You,Yu Long,Nuo Zhou,Wang Guo
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:242: 124728-124728 被引量:26
标识
DOI:10.1016/j.ijbiomac.2023.124728
摘要

Polylactic acid (PLA) has been extensively used as a bone scaffold material, but it still faces many problems including low biomineralization ability, weak cell response, low mechanical properties, etc. In this study, we proposed to utilize the distinctive physical, chemical and biological properties of a natural biomineral with organic matrix, pearl powder, to enhance the overall performance of PLA bone scaffolds. Porous PLA/pearl composite bone scaffolds were prepared using fused deposition modeling (FDM) 3D printing technology, and their comprehensive performance was investigated. Macro- and micro- morphological observation by the optical camera and scanning electron microscopy (SEM) showed the 3D printed scaffolds have interconnected and ordered periodic porous structures. Phase analysis by X-ray diffraction (XRD) indicated pearl powder was well composited with PLA without impurity formation during the melt extrusion process. The mechanical test results indicated the tensile and compressive strength of PLA/pearl composite scaffolds with 10 % pearl powder content yielded the highest values, which were 15.5 % and 21.8% greater than pure PLA, respectively. The water contact angle and water absorption tests indicated that PLA/pearl showed better hydrophilicity than PLA due to the presence of polar groups in the organic matrix of the pearl powder. The results of the simulated body fluid (SBF) soaking revealed that the addition of pearl powder effectively enhanced the formation and deposition of apatite, which was attributed to the release of Ca2+ from the dissolution of pearl powder. The cell culture of bone marrow mesenchymal stem cells (BMSCs) indicated that PLA/pearl scaffolds showed better cell proliferation and osteogenic differentiation than PLA due to the stimulation of the biological organic matrix in pearl powder. These outcomes signify the potential of pearl powder as a natural biomineral containing bio-signal factors to improve the mechanical and biological properties of polymers for better bone tissue engineering application.
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