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Evaluation of zinc-doped mesoporous hydroxyapatite microspheres for the construction of a novel biomimetic scaffold optimized for bone augmentation

机译:评估锌掺杂的介孔羟基磷灰石微球用于新型仿生支架的构建以优化骨填充

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摘要

Biomaterials with high osteogenic activity are desirable for sufficient healing of bone defects resulting from trauma, tumor, infection, and congenital abnormalities. Synthetic materials mimicking the structure and composition of human trabecular bone are of considerable potential in bone augmentation. In the present study, a zinc (Zn)-doped mesoporous hydroxyapatite microspheres (Zn-MHMs)/collagen scaffold (Zn-MHMs/Coll) was developed through a lyophilization fabrication process and designed to mimic the trabecular bone. The Zn-MHMs were synthesized through a microwave-hydrothermal method by using creatine phosphate as an organic phosphorus source. Zn-MHMs that consist of hydroxyapatite nanosheets showed relatively uniform spherical morphology, mesoporous hollow structure, high specific surface area, and homogeneous Zn distribution. They were additionally investigated as a drug nanocarrier, which was efficient in drug delivery and presented a pH-responsive drug release behavior. Furthermore, they were incorporated into the collagen matrix to construct a biomimetic scaffold optimized for bone tissue regeneration. The Zn-MHMs/Coll scaffolds showed an interconnected pore structure in the range of 100–300 μm and a sustained release of Zn ions. More importantly, the Zn-MHMs/Coll scaffolds could enhance the osteogenic differentiation of rat bone marrow-derived mesenchymal stem cells. Finally, the bone defect repair results of critical-sized femoral condyle defect rat model demonstrated that the Zn-MHMs/Coll scaffolds could enhance bone regeneration compared with the Coll or MHMs/Coll scaffolds. The results suggest that the biomimetic Zn-MHMs/Coll scaffolds may be of enormous potential in bone repair and regeneration.
机译:具有高成骨活性的生物材料对于充分治愈由外伤,肿瘤,感染和先天性异常引起的骨缺损是理想的。模仿人类小梁骨的结构和组成的合成材料在骨增强方面具有巨大潜力。在本研究中,通过冻干制造工艺开发了掺杂锌(Zn)的中孔羟基磷灰石微球(Zn-MHMs)/胶原支架(Zn-MHMs / Coll),并设计为模拟小梁骨。以磷酸肌酸为有机磷源,通过微波水热法合成了Zn-MHMs。由羟基磷灰石纳米片组成的Zn-MHMs表现出相对均匀的球形形态,中孔空心结构,高比表面积和均匀的Zn分布。此外,还对它们作为药物纳米载体进行了研究,该载体在药物输送中非常有效,并且具有pH响应性药物释放行为。此外,将它们掺入胶原基质中以构建针对骨组织再生优化的仿生支架。 Zn-MHMs / Coll支架在100-300μm的范围内显示出相互连接的孔结构,并持续释放Zn离子。更重要的是,Zn-MHMs / Coll支架可以增强大鼠骨髓间充质干细胞的成骨分化。最后,关键尺寸的股骨dy缺损大鼠模型的骨缺损修复结果表明,与Coll或MHMs / Coll脚手架相比,Zn-MHMs / Coll脚手架可以增强骨骼再生。结果表明仿生Zn-MHMs / Coll支架可能在骨修复和再生中具有巨大潜力。

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