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氧化石墨烯与聚乙二醇的表面接枝,作为聚乳酸纳米复合支架的增强材料用于潜在的组织工程应用。

The surface grafting of graphene oxide with poly(ethylene glycol) as a reinforcement for poly(lactic acid) nanocomposite scaffolds for potential tissue engineering applications.

作者信息

Zhang Chunmei, Wang Liwei, Zhai Tianliang, Wang Xinchao, Dan Yi, Turng Lih-Sheng

机构信息

College of Chemistry and Materials Engineering, Guiyang University, Guiyang 550005, China; Wisconsin Institute for Discovery, University of Wisconsin-Madison, Madison, WI 53706, USA; State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, China.

Department of Biomedical Engineering, University of Wisconsin-Madison, Madison, WI 53706, USA.

出版信息

J Mech Behav Biomed Mater. 2016 Jan;53:403-413. doi: 10.1016/j.jmbbm.2015.08.043. Epub 2015 Sep 8.

Abstract

Graphene oxide (GO) was incorporated into poly(lactic acid) (PLA) as a reinforcing nanofiller to produce composite nanofibrous scaffolds using the electrospinning technique. To improve the dispersion of GO in PLA and the interfacial adhesion between the filler and matrix, GO was surface-grafted with poly(ethylene glycol) (PEG). Morphological, thermal, mechanical, and wettability properties, as well as preliminary cytocompatibility with Swiss mouse NIH 3T3 cells of PLA, PLA/GO, and PLA/GO-g-PEG electrospun nanofibers, were characterized. Results showed that the average diameter of PLA/GO-g-PEG electrospun nanofibers decreased with filler content. Both GO and GO-g-PEG improved the thermal stability of PLA, but GO-g-PEG was more effective. The water contact angle test of the nanofiber mats showed that the addition of GO in PLA did not change the surface wettability of the materials, but PLA/GO-g-PEG samples exhibited improved wettability with lower water contact angles. The tensile strength of the composite nanofiber mats was improved with the addition of GO, and it was further enhanced when GO was surface grafted with PEG. This suggested that improved interfacial adhesion between GO and PLA was achieved by grafting PEG onto the GO. The cell viability and proliferation results showed that the cytocompatibility of PLA was not compromised with the addition of GO and GO-g-PEG. With enhanced mechanical properties as well as good wettability and cytocompatibility, PLA/GO-g-PEG composite nanofibers have the potential to be used as scaffolds in tissue engineering.

摘要

将氧化石墨烯(GO)作为增强型纳米填料掺入聚乳酸(PLA)中,采用静电纺丝技术制备复合纳米纤维支架。为了改善GO在PLA中的分散性以及填料与基体之间的界面粘附性,对GO进行了聚乙二醇(PEG)表面接枝。对PLA、PLA/GO和PLA/GO-g-PEG静电纺纳米纤维的形态、热性能、力学性能、润湿性以及与瑞士小鼠NIH 3T3细胞的初步细胞相容性进行了表征。结果表明,PLA/GO-g-PEG静电纺纳米纤维的平均直径随填料含量的增加而减小。GO和GO-g-PEG均提高了PLA的热稳定性,但GO-g-PEG更有效。纳米纤维毡的水接触角测试表明,在PLA中添加GO不会改变材料的表面润湿性,但PLA/GO-g-PEG样品表现出改善的润湿性和更低的水接触角。复合纳米纤维毡的拉伸强度随着GO的添加而提高,当GO用PEG进行表面接枝时进一步增强。这表明通过将PEG接枝到GO上实现了GO与PLA之间界面粘附性的改善。细胞活力和增殖结果表明,PLA的细胞相容性不会因添加GO和GO-g-PEG而受到影响。PLA/GO-g-PEG复合纳米纤维具有增强的力学性能以及良好的润湿性和细胞相容性,有潜力用作组织工程中的支架材料。

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