首页> 外文期刊>Journal of Materials Science >Fabrication of bioactive polycaprolactone/hydroxyapatite scaffolds with final bilayer nano-/micro-fibrous structures for tissue engineering application
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Fabrication of bioactive polycaprolactone/hydroxyapatite scaffolds with final bilayer nano-/micro-fibrous structures for tissue engineering application

机译:具有最终双层纳米/微纤维结构的生物活性聚己内酯/羟基磷灰石支架的制备,用于组织工程应用

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摘要

In this study, two techniques, namely electrospinning and needle-punching processes, were used to fabricate bioactive polycaprolactone/hydroxyapatite scaffolds with a final bilayer nano-/micro-fibrous porous structure. A hybrid scaffold was fabricated to combine the beneficial properties of nanofibers and microfibers and to create a three-dimensional porous structure (which is usually very difficult to produce using electrospinning technology only). The first part of this work focused on determining the conditions necessary to fabricate nano- and micro-fibrous components of scaffold layers. A characterization of scaffold components, with respect to their morphology, fiber diameter, pore size, wettability, chemical composition and mechanical properties, was performed. Then, the same process parameters were applied to produce a hybrid bilayer scaffold by electrospinning the nanofibers directly onto the micro-fibrous nonwovens obtained in a traditional mechanical needle-punching process. In the second part, the bioactive character of a hybrid nano-/ micro-fibrous scaffold in simulated body fluid (SBF) was assessed. Spherical calcium phosphate was precipitated onto the nano-/micro-fibrous scaffold surface proving its bioactivity.
机译:在这项研究中,两种技术,即静电纺丝和针刺工艺,被用于制造具有最终双层纳米/微纤维多孔结构的生物活性聚己内酯/羟基磷灰石支架。制造了一种混合支架,以结合纳米纤维和微纤维的有益特性并创建三维多孔结构(通常仅使用静电纺丝技术很难制造)。这项工作的第一部分集中于确定制造支架层的纳米纤维和微纤维成分的必要条件。对脚手架组件的形态,纤维直径,孔径,可湿性,化学成分和机械性能进行了表征。然后,将相同的工艺参数应用于通过将纳米纤维直接静电纺丝到在传统机械针刺工艺中获得的微纤维非织造布上来生产混合双层支架。在第二部分中,评估了混合纳米/微纤维支架在模拟体液(SBF)中的生物活性特征。球形磷酸钙沉淀在纳米/微纤维支架表面上,证明其具有生物活性。

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