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Bioactive polymeric nanofiber matrices for skin regeneration

机译:用于皮肤再生的生物活性聚合物纳米纤维基质

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摘要

Electrospun nanofiber matrices have attracted a great deal of attention as matrices for skin repair and regeneration. The current manuscript reports the fabrication and characterization of a bioactive polycaprolactone (PCL) fiber matrix for its ability to deliver multiple factors. Bioactive PCL matrices were created by incorporating a model angiogenic factor and a model antibiotic drug. Chitosan coating on the fiber matrices significantly improved the ability to hold moisture and contributed to antibiotic activity. These fiber matrices have a modulus of 5.8 +/- 1.3 MPa and matrices subjected to degradation over 4 weeks did not lose their tensile properties due to slow degradation rate. Chitosan coating avoided the initial burst release commonly associated with fiber matrices and only 60% of the encapsulated drug was released over a period of 15 days. Control PCL-chitosan matrices were able to reduce Staphylococcus aureus (S. aureus) growth both in static and dynamic condition as compared to formulations with 50 mg gentamicin. In general, all the fiber matrices were able to support fibroblast growth and maintained normal cell morphology. Such bioactive bandages may serve as versatile and less expensive alternatives for the treatment of complex wounds. (C) 2015 Wiley Periodicals, Inc.
机译:作为用于皮肤修复和再生的基质,电纺纳米纤维基质引起了广泛的关注。本手稿报告了生物活性聚己内酯(PCL)纤维基质的制造和表征,因为它具有传递多种因素的能力。通过合并模型血管生成因子和模型抗生素药物来创建生物活性PCL基质。纤维基质上的壳聚糖涂层显着提高了保持水分的能力,并有助于抗生素活性。这些纤维基体的模量为5.8 +/- 1.3 MPa,经过4周降解的基体不会因缓慢的降解速率而失去其拉伸性能。壳聚糖包衣避免了通常与纤维基质相关的初始突释,并且在15天的时间内仅释放了60%的封装药物。与含有50 mg庆大霉素的制剂相比,对照PCL-壳聚糖基质在静态和动态条件下均能够减少金黄色葡萄球菌(S. aureus)的生长。通常,所有纤维基质都能够支持成纤维细胞生长并维持正常的细胞形态。这种生物活性绷带可以用作治疗复杂伤口的通用且较便宜的替代品。 (C)2015年Wiley Periodicals,Inc.

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