首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >In vitro proliferation and differentiation of human bone marrow mesenchymal stem cells into osteoblasts on nanocomposite scaffolds based on bioactive glass (64SiO(2)-31CaO-5P(2)O(5))-poly-L-lactic acid nanofibers fabricated by electrospinning method
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In vitro proliferation and differentiation of human bone marrow mesenchymal stem cells into osteoblasts on nanocomposite scaffolds based on bioactive glass (64SiO(2)-31CaO-5P(2)O(5))-poly-L-lactic acid nanofibers fabricated by electrospinning method

机译:基于生物活性玻璃的纳米复合支架对纳米复合支架对骨髓细胞的体外增殖和分化

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摘要

Electrospinning method was employed for fabrication of SiO2-CaO-P2O5 bioactive glass (BG) nanofibers, poly-L-lactic acid (PLLA) nanofibers and nanocomposite scaffolds fabricated from as-prepared nanofibers. Characterization of the prepared nanofibers and scaffolds by XRD, FTIR, and SEM techniques revealed the formation of nano fibers with mean diameter of about 500 nm and fully fibrous scaffolds with porous structure and interconnected pores. The growth, viability and proliferation of cultured human bone marrow mesenchymal stem cells in the fabricated nanofibers and bioactive glass-poly-L-lactic acid (BG-PLLA) nanocomposite scaffolds were studied using various biological assays including MTT, ALP activity, calcium deposit content, Alizarin red staining, and RT-PCR test. Based on the obtained results, incorporation of BG nanofibers in the nanocomposite scaffolds causes the better biological behavior of the scaffolds. In addition, three-dimensional and fibrous-porous structure of the scaffolds further contributes to their improved cell behavior compared to the components. (C) 2017 Elsevier B.V. All rights reserved.
机译:采用静电纺丝方法制备SiO2-CaO-P2O5生物活性玻璃(BG)纳米纤维,聚-L-乳酸(PLLA)纳米纤维和由制备的纳米纤维制成的纳米复合支架。通过XRD,FTIR和SEM技术表征制备的纳米纤维和支架和支架,揭示了纳米纤维的形成,平均直径为约500nm和具有多孔结构和相互连接的孔的完全纤维支架。研究了制造的纳米纤维和生物活性玻璃 - 聚-1-乳酸(BG-PLLA)纳米复合支架中培养的人骨髓间充质干细胞的生长,活力和增殖,采用包括MTT,ALP活性,钙沉积物含量的各种生物测定研究,茜素红染色和RT-PCR试验。基于所得的结果,在纳米复合支架中掺入BG纳米纤维素引起支架的更好的生物行为。另外,与组分相比,支架的三维和纤维状结构进一步有助于其改善的细胞行为。 (c)2017 Elsevier B.v.保留所有权利。

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