Bioinspired Composite Matrix Containing Hydroxyapatite-Silica Core-Shell Nanorods for Bone Tissue Engineering

被引:55
作者
Anitha, A. [1 ]
Menon, Deepthy [1 ]
Sivanarayanan, T. B. [1 ]
Koyakutty, Manzoor [1 ]
Mohan, Chandini C. [1 ]
Nair, Shantikumar V. [1 ]
Nair, Manitha B. [1 ]
机构
[1] Amrita Univ, Ctr Nanosci & Mol Med, Kochi 682041, Kerala, India
关键词
core-shell nanorods; silica; hydroxyapatite; vascularization; bone tissue engineering; SUBSTITUTED HYDROXYAPATITE; TRANSCRIPTION FACTOR; SEGMENTAL DEFECTS; CALCIUM SILICATE; MINERAL DENSITY; REGENERATION; VASCULARIZATION; ANGIOGENESIS; CELLS; DIFFERENTIATION;
D O I
10.1021/acsami.7b07131
中图分类号
TB3 [工程材料学];
学科分类号
082905 [生物质能源与材料];
摘要
Development of multifiinctional bioinspired scaffolds that can stimulate vascularization and regeneration is necessary for the application in bone tissue engineering. Herein, we report a composite matrix containing hydroxyapatite (HA) silica core-shell nanorods with good biocompatibility, osteogenic differentiation, vascularization, and bone regeneration potential. The biomaterial consists of a crystalline, rod-shaped nanoHA core with uniform amorphous silica sheath (Si-nHA) that retains the Characteristic phases of the individual components, confirmed by high-resolution transmission electron microscopy, X-ray diffractometer, X-ray photoelectron spectroscopy, and Fourier transform infrared spectroscopy. The nanorods were blended with gelatinous matrix to develop as a porous, composite scaffold. The viability and functionality of osteogenically induced mesenchymal stem cells as well as endothelial cells have been significantly improved through the incorporation of Si-nHA within the matrix. Studies in the chicken chorioallantoic membrane and rat models demonstrated that the silica-containing scaffolds not only exhibit good biocompatibility, but also enhance vascularization in comparison to the matrix devoid of silica. Finally, when tested in a critical-sized femoral segmental defect in rats, the nanocomposite scaffolds enhanced new bone formation in par with the biomaterial degradation. In conclusion, the newly developed composite biomimetic scaffold may perform as a promising candidate for bone tissue engineering applications.
引用
收藏
页码:26707 / 26718
页数:12
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