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研究聚甲基丙烯酸甲酯-矿化胶原/Mg-Ca 复合材料在体外的血管生成能力和体内的成骨效果。

Study on the angiogenesis ability of Polymethyl methacrylate-mineralized collagen/Mg-Ca composite material in vitro and the bone formation effect in vivo.

机构信息

Department of Prosthodontics, 207492The Second Affiliated Hospital of Jinzhou Medical University, Jinzhou, China.

Beijing Key Laboratory of Information Service Engineering, 70541Beijing Union University, Beijing, China.

出版信息

J Biomater Appl. 2022 Nov;37(5):814-828. doi: 10.1177/08853282221121851. Epub 2022 Aug 15.

Abstract

Magnesium (Mg) and its alloys show high degrees of biocompatibility and biodegradability, used as biodegrad able materials in biomedical applications. In this study, Polymethyl methacrylate (PMMA) - mineralized collagen (nano-Hydroxyapatite/collagen; nHAC)/Mg-Ca composite materials were prepared, to study the angiogenesis ability of its composite materials on Human umbilical vein endothelial cells (HUVECs) and its osteogenesis effect in vivo. The results showed that the PMMA-nHAC reinforcement materials can promote the proliferation and adhesion in HUVECs of Mg matrix significantly, it can enhance the migration motility and VEGF expression of HUVECs. In vivo, Micro-CT examination showed that with coated samples presenting the highest bone formation. Histologically, the materials and their corrosion products caused no systematic or local cytotoxicological effects. Therefore, the Mg matrix composites prepared in the present study has good biocompatibility and PMMA-nHAC/Mg-Ca composite may be an ideal orthopedic material to improve the bone formation, and biodegradable magnesium based implants with bioactivity have potential applications in bone tissue.

摘要

镁(Mg)及其合金具有高度的生物相容性和可生物降解性,可用作生物医学应用中的可生物降解材料。在这项研究中,制备了聚甲基丙烯酸甲酯(PMMA)-矿化胶原(纳米羟基磷灰石/胶原;nHAC)/Mg-Ca 复合材料,以研究其复合材料对人脐静脉内皮细胞(HUVECs)的血管生成能力及其体内成骨作用。结果表明,PMMA-nHAC 增强材料可显著促进 Mg 基体中 HUVECs 的增殖和黏附,增强 HUVECs 的迁移运动和 VEGF 表达。体内微 CT 检查表明,涂层样品的成骨效果最好。组织学检查表明,材料及其腐蚀产物未引起系统或局部细胞毒性作用。因此,本研究制备的 Mg 基复合材料具有良好的生物相容性,PMMA-nHAC/Mg-Ca 复合材料可能是一种理想的改善成骨的骨科材料,具有生物活性的可生物降解镁基植入物在骨组织中有潜在的应用。

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