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核壳纳米纤维:整合明胶的生物活性与聚乙烯醇的机械性能。

Core-shell nanofibers: Integrating the bioactivity of gelatin and the mechanical property of polyvinyl alcohol.

作者信息

Merkle Valerie M, Zeng Like, Slepian Marvin J, Wu Xiaoyi

机构信息

Biomedical Engineering Program and Bio5 Institute, The University of Arizona, Tucson, AZ 85721.

出版信息

Biopolymers. 2014 Apr;101(4):336-46. doi: 10.1002/bip.22367.

Abstract

Coaxial electrospinning is used to fabricate nanofibers with gelatin in the shell and polyvinyl alcohol (PVA) in the core in order to derive mechanical strength from PVA and bioactivity from gelatin. At a 1:1 PVA/gelatin mass ratio, the core-shell nanofiber scaffolds display a Young's modulus of 168.6 ± 36.5 MPa and a tensile strength of 5.42 ± 1.95 MPa, which are significantly higher than those of the scaffolds composed solely of gelatin or PVA. The Young's modulus and tensile strength of the core-shell nanofibers are further improved by reducing the PVA/gelatin mass ratio from 1:1 to 1:3. The mechanical analysis of the core-shell nanofibers suggests that the presence of the gelatin shell may improve the molecular alignment of the PVA core, transforming the semi-crystalline, plastic PVA into a more crystallized, elastic PVA, and enhancing the mechanical properties of the core. Lastly, the PVA/gelatin core-shell nanofibers possess cellular viability, proliferation, and adhesion similar to these of the gelatin nanofibers, and show significantly higher proliferation and adhesion than the PVA nanofibers. Taken together, the coaxial electrospinning of nanofibers with a core-shell structure permits integration of the bioactivity of gelatin and the mechanical strength of PVA in single fibers.

摘要

同轴静电纺丝用于制造壳层为明胶、核层为聚乙烯醇(PVA)的纳米纤维,以便从PVA获得机械强度并从明胶获得生物活性。在PVA/明胶质量比为1:1时,核壳纳米纤维支架的杨氏模量为168.6±36.5MPa,拉伸强度为5.42±1.95MPa,显著高于仅由明胶或PVA组成的支架。通过将PVA/明胶质量比从1:1降至1:3,核壳纳米纤维的杨氏模量和拉伸强度进一步提高。核壳纳米纤维的力学分析表明,明胶壳层的存在可能改善PVA核的分子排列,将半结晶、塑性的PVA转变为结晶度更高、更具弹性的PVA,并增强核的力学性能。最后,PVA/明胶核壳纳米纤维具有与明胶纳米纤维相似的细胞活力、增殖和粘附能力,并且显示出比PVA纳米纤维显著更高的增殖和粘附能力。综上所述,具有核壳结构的纳米纤维的同轴静电纺丝能够将明胶的生物活性和PVA的机械强度整合到单根纤维中。

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