静电纺丝纳米纤维创伤愈合人工皮肤支架的研制

N. Gokarneshan, D. M. Jenita
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引用次数: 0

摘要

原生皮肤主要由表皮层和真皮层组成。利用静电纺丝技术构建了一种模拟天然皮肤双层结构的人工皮肤支架,用于伤口愈合。聚氨酯(PU)和明胶(Ge)分别用于表皮层和真皮层的发育。盐酸环丙沙星(Cip.HCl)是一种氟喹诺酮类抗生素,用于快速伤口愈合。使用扫描电子显微镜(SEM)分析研究了皮肤支架的形态,并使用FTIR光谱进行了化学表征。通过水蒸气透过率试验和氧气透过率试验对支架的阻隔性能进行了评价。使用DSC和TGA评估皮肤支架的热稳定性,同时分别从吸水性研究和体外降解研究中了解支架的渗出物吸收能力和降解行为。通过体外释药研究和药物释放动力学研究,了解Cip的释放机制。来自支架的HCl。使用SEM分析时,这两层都显示出纳米和微孔。真皮层表现出相对更大的吸水能力和降解能力,因此为伤口提供了潮湿的环境。皮肤支架可渗透水蒸气和氧气,因此将加快伤口愈合的过程。Cip的体外释放。HCl显示出具有零级动力学的非Fickian溶胀型释放。在双层膜上进行的圆盘扩散试验证明了该膜的抗菌活性。因此,电纺PU-Ge皮肤支架含有Cip。盐酸是现代伤口愈合材料中一种很有前途的候选者。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of Artificial Skin Scaffold Using Electrospun Nano Fibres for Wound Healing
Native skin consists mainly of epidermal and dermal layers. An artificial skin scaffold has been constructed mimicking the bilayered structure of the native skin using electrospinning technique for wound healing. Polyurethane (PU) and Gelatin (Ge) were used for developing the epidermal layer and the dermal layer respectively. Ciprofloxacin HCl (Cip. HCl) a fluoroquinolone antibiotic was incorporated in both layers for rapid wound healing. Morphology of the skin scaffold was studied using scanning electron microscopy (SEM) analysis and the chemical characterization was performed using FTIR spectroscopy. Water vapor transmission rate test and oxygen transmission rate test was conducted to evaluate the barrier properties of the scaffold. Thermal stability of the skin scaffold was evaluated using DSC and TGA while an understanding of the exudate absorbing capacity and degradation behavior of the scaffold was obtained from water absorption studies and in vitro degradation studies respectively. In vitro drug release study and drug release kinetics was explored to understand the release mechanism of Cip. HCl from the scaffold. Both the layers showed nano and micropores when analyzed using SEM. The dermal layer showed comparatively more water absorption capacity and degradation, hence providing a moist environment for the wound. The skin scaffold was permeable to water vapor and oxygen, and hence will speed up the process of wound healing. In vitro release for Cip. HCl showed a non-Fickian swelling type release with zero-order kinetics. Disk diffusion test conducted on the bilayers proved the antibacterial activity of the membrane. Hence the electrospun PU-Ge skin scaffold containing Cip. HCl is a promising candidate among modern day wound healing materials.
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