磷酸镁水泥功能化新型生物活性玻璃纤维促进骨和血管再生。

IF 2.6 3区 生物学 Q3 MATERIALS SCIENCE, BIOMATERIALS
Yuzheng Lu, Yanbo Shan, Yingjie Xiong, Jianting Ye, Yanbin Wu, Jipeng Song, Yao Zhang, Wancheng Lin, Haoye Meng, Wenjing Xu, Jiang Peng, Qiang Lu, Lixiang Ding
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引用次数: 0

摘要

磷酸镁骨水泥(MPC)在生物医学领域不断受到关注。然而,其机械强度不理想,生物活性较弱,阻碍了其广泛的临床应用。鉴于生物玻璃纤维(BGF)优异的生物学特性,本研究制备了含有不同浓度(0%、10%、20%)的生物玻璃纤维和生物玻璃纤维的磷酸镁骨水泥(BMPC)。分别称为(MPC, 10BMPC, 20BMPC)。通过物理和化学性能试验验证了bgf诱导的机械强化。体外实验表明,BMPC比MPC具有更好的成骨性能,并能增强人脐静脉内皮细胞的增殖和粘附能力。在体内实验中,20BMPC能显著促进骨再生和血管网络的形成,组织学分析进一步证实了20BMPC的成骨能力。转录组学分析证实,Notch通路和Hif1通路的活性在20BMPC组中上调,反映了成骨和血管生成之间的紧密联系。BGF含量最高的20BMPC在所有测试材料中表现出最好的性能。本研究表明BGF可提高骨水泥的机械强度,增强骨水泥的成骨和血管生成能力。因此,20BMPC可作为一种新型骨修复材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Novel Biologically Active Glass Fiber Functionalized Using Magnesium Phosphate Cement Promotes Bone and Vascular Regeneration

Novel Biologically Active Glass Fiber Functionalized Using Magnesium Phosphate Cement Promotes Bone and Vascular Regeneration

Novel Biologically Active Glass Fiber Functionalized Using Magnesium Phosphate Cement Promotes Bone and Vascular Regeneration

Novel Biologically Active Glass Fiber Functionalized Using Magnesium Phosphate Cement Promotes Bone and Vascular Regeneration

Novel Biologically Active Glass Fiber Functionalized Using Magnesium Phosphate Cement Promotes Bone and Vascular Regeneration

Magnesium phosphate cement (MPC) continues to gain attention in the field of biomedicine. However, its suboptimal mechanical strength and weak biological activity hinder its wider clinical application. Given the excellent biological characteristics of bioglass fiber (BGF), In this study, magnesium phosphate bone cement (BMPC) containing MPC and BGF with different concentrations (0%, 10%, 20%) are fabricated. Called (MPC, 10BMPC, 20BMPC) respectively. BGF-induced mechanical strengthening is verified through physical and chemical performance tests. In vitro experiments showed that BMPC have better osteogenic properties than MPC and can enhance the proliferation and adhesion capacity of human umbilical vein endothelial cells. In vivo experiment, 20BMPC can significantly promote bone regeneration and vascular network formation, and histological analysis further confirmed the osteogenic capacity of 20BMPC. Transcriptomic analyses confirmed that the activities of the Notch pathway and Hif1 pathway are upregulated in the 20BMPC group, reflecting the strong interconnection between osteogenesis and angiogenesis. 20BMPC, which have the highest BGF content, showed the best performance among all the tested materials. This study showed that BGF improved the mechanical strength of bone cement and enhanced its osteogenic and angiogenic abilities. Therefore, 20BMPC can be used as a new bone repair material.

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来源期刊
Advanced biology
Advanced biology Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
6.60
自引率
0.00%
发文量
130
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