3D Printing of Hydrogel/BaTiO3 Composite Scaffolds with Highly Improved Mechanical, Electrical, and Degradable Properties

Yue Zhang, Jinhan He, Jin Su, Annan Chen, Yinjin Li, Yifei Li, C. Yan, Yusheng Shi
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Abstract

In clinical practice, the restoration of cartilage injury is a tough task. And manufacturing degradable cartilage scaffolds with strong mechanical properties and electrical activity remains a significant issue. In this study, the hydrogel/BaTiO3 composite scaffolds with greatly improved mechanical, electrical, and degradable properties were formed by digital light processing 3D printing. We found that the addition of BaTiO3 powders enabled the significant improvement of the compressive strength (212.8 kPa) and energy absorption (32.0 mJ/m3), which were as three and six times as those of pure hydrogel scaffolds, respectively. Besides, the composite scaffolds showed a voltage output of above 100 mV, which was two orders of magnitude higher than that of pure hydrogel scaffolds. This voltage output allows for the simulation of electrical microenvironment in native tissues that promote cartilage regeneration and remodeling. Finally, the degradation rate of the composite scaffolds reached 7.1% after 14 days of simulated body fluid (SBF) immersion, while that of the pure hydrogel scaffolds was only 2.8%. This study provides insight into the fabrication of high-performance functional scaffolds for treating cartilage defect.
水凝胶/BaTiO3 复合材料支架的三维打印,具有高度改进的机械、电气和可降解特性
在临床实践中,修复软骨损伤是一项艰巨的任务。而制造具有较强机械性能和电活性的可降解软骨支架仍是一个重要问题。在这项研究中,通过数字光处理三维打印技术形成了水凝胶/BaTiO3复合支架,其机械性能、电性能和可降解性能都得到了极大改善。我们发现,BaTiO3粉末的加入使得抗压强度(212.8 kPa)和能量吸收(32.0 mJ/m3)显著提高,分别是纯水凝胶支架的3倍和6倍。此外,复合支架的电压输出超过 100 mV,比纯水凝胶支架高出两个数量级。这种电压输出可以模拟原生组织中的电微环境,从而促进软骨的再生和重塑。最后,在模拟体液(SBF)浸泡 14 天后,复合支架的降解率达到 7.1%,而纯水凝胶支架的降解率仅为 2.8%。这项研究为制造治疗软骨缺损的高性能功能性支架提供了启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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