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将负载生长因子的微球掺入用于组织工程应用的聚合物电纺纳米纤维中。

Incorporation of growth factor loaded microspheres into polymeric electrospun nanofibers for tissue engineering applications.

作者信息

Gungor-Ozkerim P Selcan, Balkan Timucin, Kose Gamze T, Sarac A Sezai, Kok Fatma N

机构信息

Molecular Biology-Genetics and Biotechnology Program, Istanbul Technical University, MOBGAM, Istanbul, 34469, Turkey.

出版信息

J Biomed Mater Res A. 2014 Jun;102(6):1897-908. doi: 10.1002/jbm.a.34857. Epub 2013 Jul 30.

DOI:10.1002/jbm.a.34857
PMID:23852885
Abstract

Nanofibrous double-layer matrices were prepared by electrospinning technique with the bottom layer formed from PCL (poly-ε-caprolactone)/PLLA (poly-l-lactic acid) nanofibers and the upper layer from PCL/Gelatin nanofibers. Bottom layer was designed to give mechanical strength to the system, whereas upper layer containing gelatin was optimized to improve the cell adhesion. Gelatin microspheres were incorporated in the middle of two layers for controlled growth factor delivery. Successful fabrication of the blend nanofibers were shown by spectroscopy. Scanning electron microscopy results demonstrated that bead-free nanofibers with uniform morphology could be obtained by 10% w/v concentrations of PCL/PLLA and PCL/Gelatin solutions. Microspheres prepared by 15% gelatin concentration and cross-linked with 7.5% glutaraldehyde solution were chosen after in vitro release studies for the incorporation to the double-layer matrices. The optimized conditions were used to prepare fibroblast growth factor-2 (FGF-2) loaded microspheres. Preliminary cell culture studies showed that the FGF-2 could be actively loaded into the microspheres and enhanced the cell attachment and proliferation. The complete system had a slow degradation rate in saline (18% weight loss in 2 months) and it could meanwhile preserve its integrity. This sandwich system prevented microsphere leakage from the scaffold, and the hydrophilic and bioactive nature of the fibers at the upper layer promoted cell attachment to the surface. PLLA/PCL layer, on the other hand, improved the mechanical properties of the system and enabled better handling.

摘要

通过静电纺丝技术制备了纳米纤维双层基质,底层由聚己内酯(PCL)/聚左旋乳酸(PLLA)纳米纤维形成,上层由PCL/明胶纳米纤维形成。底层旨在赋予系统机械强度,而含有明胶的上层则经过优化以改善细胞粘附。明胶微球被掺入两层中间用于控制生长因子的递送。光谱学显示成功制备了共混纳米纤维。扫描电子显微镜结果表明,通过10% w/v浓度的PCL/PLLA和PCL/明胶溶液可获得形态均匀的无珠纳米纤维。在体外释放研究后,选择了由15%明胶浓度制备并与7.5%戊二醛溶液交联的微球掺入双层基质中。使用优化条件制备了负载成纤维细胞生长因子-2(FGF-2)的微球。初步细胞培养研究表明,FGF-2可被主动加载到微球中,并增强细胞附着和增殖。完整的系统在盐水中具有缓慢的降解速率(2个月内重量损失18%),同时可以保持其完整性。这种三明治系统可防止微球从支架中泄漏,并且上层纤维的亲水性和生物活性促进了细胞在表面的附着。另一方面,PLLA/PCL层改善了系统的机械性能并便于更好地操作。

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