用于骨再生的具有成骨特性的聚乳酸-磷酸三钙-纤维素三维打印生物可吸收复合支架

Q3 Biochemistry, Genetics and Molecular Biology Biomaterials and biosystems Pub Date : 2023-12-18 DOI:10.1016/j.bbiosy.2023.100086
Samarah V. Harb , Elayaraja Kolanthai , Abinaya S. Pugazhendhi , Cesar A.G. Beatrice , Leonardo A. Pinto , Craig J. Neal , Eduardo H. Backes , Ana C.C. Nunes , Heloisa S. Selistre-de-Araújo , Lidiane C. Costa , Melanie J. Coathup , Sudipta Seal , Luiz A. Pessan
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引用次数: 0

摘要

通过增材制造技术制造定制植入物使个性化医疗领域得以持续发展。在本文中,一种三维打印的生物可吸收聚乳酸(PLA)-β-磷酸三钙(TCP)(10 wt %)复合材料被二氧化硒纳米颗粒(CeNPs)(1、5 和 10 wt %)修饰,用于骨修复。长丝通过熔融挤压制备,并用于打印多孔支架。纳米复合材料支架具有精确的结构和精细的打印分辨率、TCP 和 CeNP 成分的均匀分布以及适合骨组织工程应用的机械性能。使用成骨细胞进行的细胞增殖试验证实了复合材料的细胞相容性。此外,CeNPs 的存在增强了间充质干细胞的增殖和分化,从而提高了碱性磷酸酶 (ALP) 活性、钙沉积和骨相关基因的表达。这项研究的结果表明,3D 打印聚乳酸-TCP-10%CeO2 复合支架可用作骨组织工程应用的替代聚合物植入物:避免额外/翻修手术,加速再生过程。
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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3D printed bioabsorbable composite scaffolds of poly (lactic acid)-tricalcium phosphate-ceria with osteogenic property for bone regeneration

The fabrication of customized implants by additive manufacturing has allowed continued development of the personalized medicine field. Herein, a 3D-printed bioabsorbable poly (lactic acid) (PLA)- β-tricalcium phosphate (TCP) (10 wt %) composite has been modified with CeO2 nanoparticles (CeNPs) (1, 5 and 10 wt %) for bone repair. The filaments were prepared by melt extrusion and used to print porous scaffolds. The nanocomposite scaffolds possessed precise structure with fine print resolution, a homogenous distribution of TCP and CeNP components, and mechanical properties appropriate for bone tissue engineering applications. Cell proliferation assays using osteoblast cultures confirmed the cytocompatibility of the composites. In addition, the presence of CeNPs enhanced the proliferation and differentiation of mesenchymal stem cells; thereby, increasing alkaline phosphatase (ALP) activity, calcium deposition and bone-related gene expression. Results from this study have shown that the 3D printed PLA-TCP-10%CeO2 composite scaffold could be used as an alternative polymeric implant for bone tissue engineering applications: avoiding additional/revision surgeries and accelerating the regenerative process.

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