机械强度强的多孔生物陶瓷管通过提供长期结构稳定性和促进成骨促进大节段骨缺损修复

Q1 Medicine
Lijun Xie , Jiahao Zhang , Hangxiang Sun , Zehao Chen , Wangsiyuan Teng , Xupeng Chai , Cong Wang , Xianyan Yang , Yifan Li , Sanzhong Xu , Zhongru Gou , Zhaoming Ye
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引用次数: 0

摘要

机械强度强的镁掺杂硅酸钙生物陶瓷支架在修复大块骨缺损方面具有许多优点。在此,我们将β-TCP与6mol%镁掺杂的硅酸钙(Mg6)以三种不同的比例(TCP、TCP+15%Mg6、TCP+85%Mg6)相结合,以找到一个合适的比例,该比例可以对骨再生产生相当大的影响。在本研究中,通过体外测试评估了生物陶瓷支架的机械强度、生物活性离子释放、生物相容性和成骨能力。此外,通过体内植入多孔管状支架研究了促进骨再生的潜力。结果表明,随着Mg6组分的增加,抗压强度增加。特别是TCP+85%Mg6组的抗压强度达到38.1±3.8MPa,是其他两组的三倍。此外,广泛的体内研究表明,TCP+85%Mg6生物陶瓷支架对临界尺寸股骨缺损(长度20mm)的成骨能力特别有益。总之,在生物陶瓷植入物中掺镁是一种很有前途的策略,可以提供更强的机械支撑,增强成骨能力,加速大缺陷的修复。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mechanically strong porous bioceramic tubes facilitate large segmental bone defect repair by providing long-term structurally stability and promoting osteogenesis

Mechanically strong porous bioceramic tubes facilitate large segmental bone defect repair by providing long-term structurally stability and promoting osteogenesis

Mechanically strong magnesium-doped Ca-silicate bioceramic scaffolds have many advantages in repairing large segmental bone defects. Herein we combine β-TCP with 6 mol% magnesium-doped calcium silicate (Mg6) at three different ratios (TCP, TCP+15 %Mg6, TCP+85 %Mg6) to find an appropriate ratio which can exert considerable influence on bone regeneration. In this study, the bioceramic scaffolds were assessed for mechanical strength, bioactive ion release, biocompatibility, and osteogenic capacity through in vitro testing. Additionally, the potential for promoting bone regeneration was investigated through in vivo implantation of porous tube-like scaffolds. The results showed that the compressive strength increased with the augmentation of Mg6 component. Especially the compressive strength of the TCP+85 %Mg6 group reached 38.1 ± 3.8 MPa, three times that of the other two groups. Furthermore, extensive in vivo investigations revealed that the TCP+85 %Mg6 bioceramic scaffolds were particularly beneficial for the osteogenic capacity of critical-sized femoral defects (20 mm in length). Altogether, magnesium doping in bioceramic implants is a promising strategy to provide stronger mechanical support and enhance osteogenesis to accelerate the repair of large defects.

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来源期刊
Engineered regeneration
Engineered regeneration Biomaterials, Medicine and Dentistry (General), Biotechnology, Biomedical Engineering
CiteScore
22.90
自引率
0.00%
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审稿时长
33 days
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