Fabrication and evaluation of 3D printed PLGA/nHA/GO scaffold for bone tissue engineering

被引:0
|
作者
Ling Tong [1 ]
Guopeng Shi [1 ]
Qinghua Liu [1 ]
Zhiyong Qian [1 ]
Jing Li [2 ]
Kai Zhang [3 ]
Yong Zhu [4 ]
Yuan Fang [1 ]
Lirong Sha [1 ]
Lin Bai [1 ]
Yumo Li [6 ]
Xing Wang [5 ]
Yuan Ma [5 ]
Enhe Jirigala [1 ]
Haiyan Wang [1 ]
Xiaohe Li [1 ]
机构
[1] Inner Mongolia Medical University,Department of Human Anatomy, School of Basic Medical Sciences
[2] Academy of Military Medical Sciences,State Key Laboratory of Pathogen and Biosecurity
[3] the Second Hospital of Ulanqab City,Department of Orthopaedics
[4] Peking University Cancer Hospital (Inner Mongolia Campus)/Affiliated Cancer Hospital of Inner Mongolia Medical University,Digital Medical Center, School of Basic Medical Sciences
[5] Inner Mongolia Cancer Center,School of Basic Medical Sciences
[6] Inner Mongolia Medical University,undefined
[7] Inner Mongolia Medical University,undefined
关键词
3D printing; Scaffold; Bone tissue engineering; Polylactic-co-glycolic acid; Nano-hydroxyapatite; Graphene oxide;
D O I
10.1038/s41598-025-96099-z
中图分类号
学科分类号
摘要
The study aimed to fabricate and evaluate a bone tissue engineering scaffold made from a composite of polylactic-co-glycolic acid (PLGA), nano-hydroxyapatite (nHA), and graphene oxide (GO) using low-temperature 3D printing and freeze-drying techniques. The scaffolds were produced with varying compositions: PLGA alone and in combination with nHA and GO. The macro and microstructure, pore size, porosity, mechanical properties, and in vitro biocompatibility were assessed. Bone marrow mesenchymal stem cells (BMSCs) were co-cultured with the scaffolds to evaluate cell adhesion, proliferation, and cytotoxicity. The PLGA/nHA/GO composite scaffolds exhibited optimal pore size and microtopography, enhanced mechanical properties, excellent water absorption, and appropriate degradability. The co-culture with BMSCs demonstrated improved cell adhesion and proliferation, indicating good biocompatibility. The PLGA/nHA/GO composite scaffolds show potential as a bone tissue engineering material due to their favorable properties and biocompatibility, suggesting their suitability for bone defect repair applications.
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