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首页> 外文期刊>Acta biomaterialia >Synthesis, characterization and osteoblastic activity of polycaprolactone nanofibers coated with biomimetic calcium phosphate.
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Synthesis, characterization and osteoblastic activity of polycaprolactone nanofibers coated with biomimetic calcium phosphate.

机译:仿生磷酸钙包覆的聚己内酯纳米纤维的合成,表征和成骨活性。

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摘要

Immersion of electrospun polycaprolactone (PCL) nanofiber mats in calcium phosphate solutions similar to simulated body fluid resulted in deposition of biomimetic calcium phosphate layer on the nanofibers and thus a highly bioactive novel scaffold has been developed for bone tissue engineering. Coatings with adequate integrity, favorable chemistry and morphology were achieved in less than 6h of immersion. In the coating solutions, use of lower concentrations of phosphate sources with respect to the literature values (i.e., 3.62 vs. 10 mM) was substantiated by a thermodynamic modeling approach. Recipe concentration combinations that were away from the calculated dicalcium phosphate phase stability region resulted in micron-sized calcium phosphates with native nanostructures. While the nano/microstructure formed by the deposited calcium phosphate layer is controlled by increasing the solution pH to above 6.5 and increasing the duration of immersion experimentally, the nanostructure imposed by the dimensions of the fibers was controlled by the polymer concentration (12% w/v), applied voltage (25 kV) and capillary tip to collector distance (35 cm). The deposited coating increased quantitatively by extending the soak up to 6h. On the other hand, the porosity values attained in the scaffolds were around 87% and the biomimetic coatings did not alter the nanofiber mat porosities negatively since the deposition continued along the fibers after the first 2h. Upon confirming the non-toxic nature of the electrospun PCL nanofiber mats, the effects of different nano/microstructures formed were evaluated by the osteoblastic activity. The levels of both alkaline phosphatase activity and osteocalcin were found to be higher in the coated PCL nanofibers than in the uncoated PCL nanofibers, indicating that biomimetic calcium phosphate on PCL nanofibers supports osteoblastic differentiation.
机译:将电纺聚己内酯(PCL)纳米纤维垫浸入类似于模拟体液的磷酸钙溶液中,导致仿生磷酸钙层沉积在纳米纤维上,因此开发了一种具有高生物活性的新型支架用于骨组织工程。浸入少于6小时即可获得具有足够完整性,良好化学性质和形态的涂层。在涂料溶液中,通过热力学建模方法证实使用相对于文献值较低浓度的磷酸盐源(即3.62 vs. 10 mM)。偏离计算出的磷酸氢钙相稳定区域的配方浓度组合产生了具有天然纳米结构的微米级磷酸钙。虽然通过将溶液的pH值提高到6.5以上并通过实验延长浸泡时间来控制由沉积的磷酸钙层形成的纳米/微观结构,但由纤维尺寸施加的纳米结构却受聚合物浓度(12%w / v),施加的电压(25 kV)和毛细管尖端到收集器的距离(35 cm)。通过延长浸泡时间至6h,可以定量地增加沉积的涂层。另一方面,在支架中获得的孔隙率值大约为87%,并且仿生涂层不会不利地改变纳米纤维垫的孔隙率,因为在最初的2h之后沉积沿着纤维继续进行。确认静电纺PCL纳米纤维垫的无毒性质后,通过成骨活性评估所形成的不同纳米/微结构的效果。发现涂覆的PCL纳米纤维中的碱性磷酸酶活性和骨钙素水平均高于未涂覆的PCL纳米纤维,这表明PCL纳米纤维上的仿生磷酸钙支持成骨细胞分化。

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