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用于伤口敷料应用的超支化聚甘油电纺纳米纤维。

Hyperbranched polyglycerol electrospun nanofibers for wound dressing applications.

机构信息

Faculdade de Medicina de Itajubá (FMIt), Laboratório de Bioquímica, Itajubá-MG, Brazil.

出版信息

Acta Biomater. 2010 Mar;6(3):1069-78. doi: 10.1016/j.actbio.2009.09.018. Epub 2009 Sep 27.

Abstract

This study reports on the performance of electrospun hyperbranched polyglycerol nanofibers capable of providing an active agent delivery for wound dressing applications. The aim of this work was to prepare electrospun HPGL nanofibers containing Calendula officinalis as a wound-healing and anti-inflammatory agent. The morphology of the electrospun HPGL-C. officinalis nanofibers was analyzed using a scanning electron microscope. The results showed that the diameters of the fibers were in nanoscales. The release of C. officinalis from the electrospun HPGL fibers was determined by HPLC at a physiological temperature (37 degrees C). Rapid release of the C. officinalis from the electrospun HPGL-C. officinalis nanofibers was exhibited as result of the high swelling ability as well as the high porosity of the electrospun HPGL-C. officinalis membranes. The degree of swelling, and the mechanical and biocompatible properties of the electrospun HPGL fibers were determined. The results showed that, in physiological conditions, the water absorption into the HPGL electrospun fibers slowed down, governed by the rate at which the electrospun HPGL-C. officinalis membranes interacted with the physiological fluid. The rate of release of C. officinalis seemed to depend on the C. officinalis content in the HPGL nanofibers. From the elastic modulus, it could be seen that elastic electrospun HPGL fibers were obtained with increments of C. officinalis content in the HPGL-C. officinalis membranes. The results of in vivo experiments in rats suggested that HPGL-C. officinalis might be an interesting bioactive wound dressing material for clinical applications.

摘要

这项研究报告了能够为伤口敷料应用提供活性剂递送的电纺超支化聚甘油纳米纤维的性能。本工作的目的是制备含有金盏花的电纺 HPGL 纳米纤维作为伤口愈合和抗炎剂。使用扫描电子显微镜分析电纺 HPGL-C. officinalis 纳米纤维的形态。结果表明,纤维的直径在纳米范围内。通过 HPLC 在生理温度(37°C)下测定电纺 HPGL 纤维中 C. officinalis 的释放。电纺 HPGL-C. officinalis 纳米纤维的快速释放是由于高溶胀能力和电纺 HPGL-C. officinalis 膜的高孔隙率所致。测定了电纺 HPGL 纤维的溶胀程度、机械性能和生物相容性。结果表明,在生理条件下,HPGL 电纺纤维的吸水速度减慢,这取决于电纺 HPGL-C. officinalis 膜与生理流体相互作用的速度。C. officinalis 的释放速度似乎取决于 HPGL 纳米纤维中的 C. officinalis 含量。从弹性模量可以看出,随着 HPGL-C. officinalis 膜中 C. officinalis 含量的增加,获得了弹性电纺 HPGL 纤维。大鼠体内实验结果表明,HPGL-C. officinalis 可能是一种有前途的用于临床应用的生物活性伤口敷料材料。

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