论文标题

基于铜取代的Diopside,高性能加性制造的骨支架

High performing additively manufactured bone scaffolds based on copper substituted diopside

论文作者

Pang, Shumin, Wu, Dongwei, Kamutzki, Franz, Kurreck, Jens, Gurlo, Aleksander, Hanaor, Dorian A. H.

论文摘要

据报道,少量铜的包括少量铜,以增强生物陶瓷对组织工程应用的机械和生物整合性能。在这项工作中,3D支架是通过降水衍生的铜掺杂的二方侧的机器人制造的。选择组合物,其中二极管中的镁位点被铜取代,最多为3%。研究了微观结构,机械性能,生物活性,生物降解性,药物释放,生物相容性,体外血管生成和抗菌活性。结果表明,铜掺入了二极管结构中,并改善了材料断裂韧性。孔隙率超过80%的脚手架表现出超过取消骨的抗压强度。所有组合物均显示生物活性和药物释放功能。然而,只有0至1个铜取代的样品显示成骨肉瘤细胞,人脐静脉内皮细胞和成纤维细胞的有利增殖,而大量的铜具有细胞毒性行为。低水平的铜显着增强了体外血管生成。含有铜的材料显示出抗大肠杆菌活性,随铜含量的增加而增加。我们表明,在多个指标中,组成CAMG0.99CU0.01SI2O6的铜取代的Diopside表现出高性能作为合成骨替代品,与已知的杀菌剂相比。这些发现为增强可打印生物陶瓷的生物活性和机械性能增强的途径。

The inclusion of small amounts of copper is often reported to enhance the mechanical and biointegrative performance of bioceramics towards tissue engineering applications. In this work, 3D scaffolds were additively manufactured by robocasting of precipitation derived copper doped diopside. Compositions were chosen in which magnesium sites in diopside were substituted by copper up to 3 at.%. Microstructure, mechanical performance, bioactivity, biodegradability, drug release, biocompatibility, in vitro angiogenesis and antibacterial activity were studied. Results indicate that copper is incorporated in the diopside structure and improves materials fracture toughness. Scaffolds with more than 80% porosity exhibited compressive strengths exceeding that of cancellous bone. All compositions showed bioactivity and drug release functionalities. However, only samples with 0 to 1 at.% copper substitution showed favorable proliferation of osteogenic sarcoma cells, human umbilical vein endothelial cells and fibroblasts, while larger amounts of copper had cytotoxic behavior. In vitro angiogenesis was significantly enhanced by low levels of copper. Copper containing materials showed anti Escherichia coli activity, increasing with copper content. We show that across multiple indicators, copper substituted diopside of the composition CaMg0.99Cu0.01Si2O6, exhibits high performance as a synthetic bone substitute, comparing favorably with known bioceramics. These findings present a pathway for the enhancement of bioactivity and mechanical performance in printable bioceramics.

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