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聚(ε-己内酯)/胶原蛋白/纳米生物玻璃电纺神经导向支架:外周神经组织工程的体外研究

Electrospun nerve guide scaffold of poly(ε-caprolactone)/collagen/nanobioglass: an in vitro study in peripheral nerve tissue engineering.

作者信息

Mohamadi Forouzan, Ebrahimi-Barough Somayeh, Reza Nourani Mohammad, Ali Derakhshan Mohammad, Goodarzi Vahabodin, Sadegh Nazockdast Mohammad, Farokhi Mehdi, Tajerian Roksana, Faridi Majidi Reza, Ai Jafar

机构信息

Department of Tissue Engineering and Applied Cell Sciences, School of Advanced Technologies in Medicine, Tehran University of Medical Sciences, Tehran, Iran.

Nano Biotechnology Research Center, Baqiyatallah University of Medical Sciences, Tehran, Iran.

出版信息

J Biomed Mater Res A. 2017 Jul;105(7):1960-1972. doi: 10.1002/jbm.a.36068. Epub 2017 Apr 3.

Abstract

Among various methods, nerve tissue engineering (NTE) is one of the applicable methods to reconstruct damaged nerve tissues. Electrospinning technique and biomaterials are often considered to fabricate fibrous tissue engineered conduits which have great similarity to the extracellular matrix on fiber structure. Polymer blending is one of the most effective methods for the production of new materials with outstanding features. In this study, conduit structures as main part of the peripheral nerve regeneration based on polymer blend nanocomposites poly(ε-caprolactone)/collagen/nanobioglass (PCL/collagen/NBG) were manufactured by electrospinning technique. Various properties of electrospun mats were investigated by using contact angle, tensile, degradation time, porosity, scanning electron microscopy (SEM), Fourier-transform infrared (FTIR), and wide-angle X-ray scattering (WAXS). The SEM analysis was shown that size range and average pore size of polymer blend nanocomposite nanofibers were about 250-400 nm and 0.7 µm, respectively, with an optimum porosity of 62.5%. The XRD result was shown that synthesized nanoparticles of NBG had amorphous structures. Also, FTIR analysis indicated that good interaction between polymer-polymer macromolecules and polymer particles. The contact angle and tensile tests were indicated that electrospun webs showed good hydrophilicity and toughness properties. According to SEM, MTT assay and DAPI staining technique, the ability to support cell attachment and viability of samples were characterized. In vitro study indicated electrospun collagen/PCL/NBG nanofibrous conduit promoted Human Endometrial Stem cells (hEnSCs) adhesion and proliferation. © 2016 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 105A: 1960-1972, 2017.

摘要

在各种方法中,神经组织工程(NTE)是重建受损神经组织的适用方法之一。静电纺丝技术和生物材料常被用于制造纤维组织工程导管,其在纤维结构上与细胞外基质极为相似。聚合物共混是生产具有卓越特性新材料的最有效方法之一。在本研究中,基于聚合物共混纳米复合材料聚(ε-己内酯)/胶原蛋白/纳米生物玻璃(PCL/胶原蛋白/NBG)的导管结构作为周围神经再生的主要部分,通过静电纺丝技术制造而成。利用接触角、拉伸、降解时间、孔隙率、扫描电子显微镜(SEM)、傅里叶变换红外光谱(FTIR)和广角X射线散射(WAXS)对静电纺丝垫的各种性能进行了研究。SEM分析表明,聚合物共混纳米复合纳米纤维的尺寸范围和平均孔径分别约为250 - 400 nm和0.7 µm,最佳孔隙率为62.5%。XRD结果表明合成的NBG纳米颗粒具有无定形结构。此外,FTIR分析表明聚合物 - 聚合物大分子与聚合物颗粒之间存在良好的相互作用。接触角和拉伸试验表明静电纺丝网具有良好的亲水性和韧性。根据SEM、MTT分析和DAPI染色技术,对样品支持细胞附着和活力的能力进行了表征。体外研究表明静电纺丝胶原蛋白/PCL/NBG纳米纤维导管促进了人子宫内膜干细胞(hEnSCs)的黏附和增殖。© 2016威利期刊公司。《生物医学材料研究杂志》A部分:105A:1960 - 1972,2017年。

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