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首页> 外文期刊>Artificial Organs >Hardystonite‐Coated Poly( l l ‐lactide) Nanofibrous Scaffold and Efficient Osteogenic Differentiation of Adipose‐Derived Mesenchymal Stem Cells
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Hardystonite‐Coated Poly( l l ‐lactide) Nanofibrous Scaffold and Efficient Osteogenic Differentiation of Adipose‐Derived Mesenchymal Stem Cells

机译:涂覆的高硅酸盐涂覆的聚(LL-LACTADE)纳米纤维支架和脂肪衍生间充质干细胞的有效成骨分化

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Abstract In this study, a ceramic‐coated nanofibrous scaffold has been fabricated to biomimic the microstructure of natural extracellular matrix and the stiffening inorganic compartment of bone. Poly‐ l ‐lactic acid (PLLA) nanofibers were electrospun and exposed to oxygen plasma to induce hydrophilicity and promote ceramic adsorption. Hardystonite (HS), which possesses superior osteoinduction potential over hydroxyapatite, was coated on plasma‐treated PLLA nanofibers by drenching the nanofibers in HS suspension. Pure and composite PLLA‐based scaffolds were characterized in terms of physical and biological properties. In vitro cultivation of adipose‐derived mesenchymal stem cells (AMSCs) on the scaffolds displayed that the composite scaffold is able to further support cell attachment and proliferation. In case of osteogenic differentiation of AMSCs, HS coating significantly increased the synthesis and activity of alkaline phosphate over 21 days period. In addition, the composite scaffold showed improved mineralization. The expression level of osteonectin and osteocalcin genes was significantly enhanced by HS coating of nanofibers. The biological improvement of PLLA nanofibrous matrix in the presence of HS nanoparticles could either be attributed to the release and stimulatory effect of constituent ions of HS or to the modification of chemico‐physical properties of the resultant ceramic by silicon and zinc present in HS.
机译:摘要在这项研究中,已经制造了一种陶瓷涂覆的纳米纤维支架,用于生物染色天然细胞外基质的微观结构和骨的加强无机室。将多L-乳酸(PLLA)纳米纤维是Electropul并暴露于氧等离子体以诱导亲水性并促进陶瓷吸附。具有优异的羟基磷灰石上具有优异的骨诱导电位的Hardystonite(HS)通过在HS悬浮液中浸没纳米纤维来涂覆在血浆处理的PLLA纳米纤维上。基于纯和基于复合PLLA的支架在物理和生物学性质方面表征。在展示支架上的脂肪衍生的间充质干细胞(AMSCs)的体外培养显示复合支架能够进一步支持细胞附着和增殖。在AMSCs的成骨分化的情况下,HS涂层在21天内显着增加了碱性磷酸盐的合成和活性。此外,复合支架显示出改善的矿化。纳米纤维的HS涂层显着提高了骨升素和骨钙素基因的表达水平。 HS纳米颗粒存在下PLLA纳米纤维基质的生物学改善归因于HS组成离子的释放和刺激作用或通过HS中存在的硅和锌的所得陶瓷的化学物理性质的修饰。

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