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Fabrication of Nanohydroxyapatite/Poly(caprolactone) Composite Microfibers Using Electrospinning Technique for Tissue Engineering Applications

机译:纳米羟基磷灰石/聚(己内酯)复合微纤维的制备应用静电纺织技术组织工程应用

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Tissue engineering fibrous scaffolds serve as three-dimensional (3D) environmental framework by mimicking the extracellular matrix (ECM) for cells to grow. Biodegradable polycaprolactone (PCL) microfibers were fabricated to mimic the ECM as a scaffold with 7.5% (w/v) and 12.5% (w/v) concentrations. Lower PCL concentration of 7.5% (w/v) resulted in microfibers with bead defects. The average diameter of fibers increased at higher voltage and the distance of tip to collector. Further investigation was performed by the incorporation of nanosized hydroxyapatite (nHA) into microfibers. The incorporation of 10% (w/w) nHA with 7.5% (w/v) PCL solution produced submicron sized beadless fibers. The microfibrous scaffolds were evaluated using various techniques. Biodegradable PCL and nHA/PCL could be promising for tissue engineering scaffold application.
机译:组织工程纤维支架作为三维(3D)环境框架,通过模拟细胞外基质(ECM)来生长。制造可生物降解的聚己内酯(PCL)微纤维以模拟ECM作为具有7.5%(w / v)和12.5%(w / v)浓度的支架。降低PCL浓度为7.5%(w / v),导致微纤维具有珠缺损。纤维的平均直径在更高的电压下增加以及尖端到收集器的距离。通过将纳米化羟基磷灰石(NHA)掺入微纤维中进行进一步的研究。掺入10%(w / w)NHA,具有7.5%(w / v)pcl溶液产生亚微米大小的珠光纤维。使用各种技术评估微纤维支架。可生物降解的PCL和NHA / PCL可能对组织工程支架应用有望。

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