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海藻酸钠-黄原胶-羟基磷灰石混合软骨再生支架的3D打印工艺研究及性能测试

3D Printing Process Research and Performance Tests on Sodium Alginate-Xanthan Gum-Hydroxyapatite Hybridcartilage Regenerative Scaffolds.

作者信息

Chen Honghao, Gong Youping, He Junlin, Qiao Zizhou, Hong Bo, Li Wenxin, Zhou Chuanping, Zhou Rougang, Shao Huifeng

机构信息

School of Mechanical Engineering, Hangzhou Dianzi University, Hangzhou, China.

State Key Laboratory of Fluid Power and Mechatronic Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou, China.

出版信息

3D Print Addit Manuf. 2024 Jun 18;11(3):e1271-e1286. doi: 10.1089/3dp.2022.0272. eCollection 2024 Jun.

Abstract

Cartilage injury is a common occurrence in the modern world. Compared with traditional treatment methods, bio-3D printing technology features better utility in the field of cartilage repair and regeneration, but still faces great challenges. For example, there is currently no means to generate blood vessels inside the scaffolds, and there remains the question of how to improve the biocompatibility of the generated scaffolds, all of which limit the application of bio-3D printing technology in this area. The main objective of this article was to prepare sodium alginate-xanthan gum-hydroxyapatite (SA-XG-HA) porous cartilage scaffolds that can naturally degrade in the human body and be used to promote cartilage damage repair by 3D printing technology. First, the viscosities of SA and XG were analyzed, and their optimal ratio was determined. Second, a mathematical model of the hybrid slurry was established based on the power-law fluid model, in which the printing pressure, needle movement speed, and fiber spacing were established as important parameters affecting the printing performance of the composite. Third, by performing a finite element simulation of the printing process and combining it with the actual printing process, suitable printing parameters were determined (air pressure of 1 bar, moving speed of 9 mm/s, line spacing of 1.6 mm, and adjacent layers of 0-90°). Fourth, composite scaffolds were prepared and tested for their compressive properties, degradation properties, cytotoxicity, and biocompatibility. The results showed that the novel composite scaffolds prepared in this study possessed good mechanical and biological properties. Young's modulus of the composite scaffolds reached 130 KPa and was able to maintain a low degradation rate in simulated body fluid solution for >1 month. The activity of the C5.18 chondrocytes in the scaffold leach solution exceeded 120%. The cells were also able to proliferate densely on the scaffold surface.

摘要

软骨损伤在现代社会中很常见。与传统治疗方法相比,生物3D打印技术在软骨修复和再生领域具有更好的实用性,但仍面临巨大挑战。例如,目前尚无在支架内部生成血管的方法,并且如何提高所生成支架的生物相容性仍是个问题,所有这些都限制了生物3D打印技术在该领域的应用。本文的主要目的是制备可在人体中自然降解的海藻酸钠-黄原胶-羟基磷灰石(SA-XG-HA)多孔软骨支架,并通过3D打印技术用于促进软骨损伤修复。首先,分析了SA和XG的粘度,并确定了它们的最佳比例。其次,基于幂律流体模型建立了混合浆料的数学模型,其中将打印压力、针头移动速度和纤维间距确定为影响复合材料打印性能的重要参数。第三,通过对打印过程进行有限元模拟并将其与实际打印过程相结合,确定了合适的打印参数(气压1 bar、移动速度9 mm/s、行距1.6 mm以及相邻层0-90°)。第四,制备了复合支架并测试了其压缩性能、降解性能、细胞毒性和生物相容性。结果表明,本研究制备的新型复合支架具有良好的力学和生物学性能。复合支架的杨氏模量达到130 KPa,并且在模拟体液溶液中能够保持>1个月的低降解率。支架浸出液中C5.18软骨细胞的活性超过120%。细胞也能够在支架表面密集增殖。

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