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电响应核壳混合微纤维用于控制药物释放和细胞培养。

Electrically-responsive core-shell hybrid microfibers for controlled drug release and cell culture.

机构信息

Institute of Chemicobiology and Functional Materials, School of Chemical Engineering, Nanjing University of Science and Technology, 200 Xiao Ling Wei Street, Nanjing, Jiangsu Province, China.

School of Radiation Medicine and Protection and Collaborative Innovation Center of Radiation Medicine of Jiangsu Higher Education Institutions, Medical College of Soochow University, 199 Ren Ai Road, Suzhou Industrial Park, Suzhou, Jiangsu Province, China.

出版信息

Acta Biomater. 2017 Jun;55:434-442. doi: 10.1016/j.actbio.2017.04.005. Epub 2017 Apr 6.

Abstract

UNLABELLED

It is an active research field to develop fiber-shaped smart materials for biomedical applications. Here we report the development of the multifunctional core-shell hybrid microfibers with excellent mechanical and electrical performance as a new smart biomaterial. The microfibers were synthesized using a combination of co-axial spinning with a microfluidic device and subsequent dip-coating, containing a hydrogel core of bacterial cellulose (BC) and a conductive polymer shell layer of poly(3,4-ethylenedioxythiophene) (PEDOT). The hybrid microfibers were featured with a well-controlled microscopic morphology, exhibiting enhanced mechanic properties. A model drug, diclofenac sodium, can be loaded in the core layer of the microfibers in situ during the process of synthesis. Our experiments suggested that the releasing behaviors of the drug molecules from the microfibers were enhanced by external electrical stimulation. Interestingly, we demonstrated an excellent biocompatibility and electroactivity of the hybrid microfibers for PC12 cell culture, thus promising a flexible template for the reconstruction of electrically-responsive tissues mimicking muscle fibers or nerve networks.

STATEMENT OF SIGNIFICANCE

Fiber-shaped biomaterials are useful in creating various functional objects from one dimensional to three-dimensional. The fabrication of microfibers with integrated physicochemical properties and bio-performance has drawn an increasing attention on researchers from chemical to biomedical. This study combined biocompatible bacterial cellulose with electroconductive poly(3,4-ethylenedioxythiophene) and further reduced them to a highly electroactive BC/PEDOT core-shell microfiber electrode for electrochemical actuator design. The result showed that the microfibers were well fabricated and the release of drugs from the microfibers was enhanced and could be controlled under electrical stimulation externally. Considering the excellent biocompatibility and electroactive toward PC12 cells, these microfibers may find use as templates for the reconstruction of fiber-shaped functional tissues that mimic muscle fibers, blood vessels or nerve networks in vivo.

摘要

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开发用于生物医学应用的纤维状智能材料是一个活跃的研究领域。在这里,我们报告了多功能核壳混合微纤维的开发,作为一种新的智能生物材料,具有优异的机械和电气性能。微纤维是通过同轴纺丝与微流控装置相结合,然后进行浸涂的方法合成的,包含水凝胶核细菌纤维素 (BC) 和导电聚合物壳层聚 (3,4-亚乙基二氧噻吩) (PEDOT)。混合微纤维具有良好的微观形态控制,表现出增强的力学性能。一种模型药物双氯芬酸钠可以在微纤维的原位合成过程中加载到微纤维的核层中。我们的实验表明,外部电刺激可以增强药物分子从微纤维中的释放行为。有趣的是,我们证明了混合微纤维具有良好的生物相容性和电活性,可用于 PC12 细胞培养,因此有望成为模仿肌肉纤维或神经网络的电响应组织重建的柔性模板。

意义陈述

纤维状生物材料可用于从一维到三维创建各种功能物体。具有综合物理化学性质和生物性能的微纤维的制造引起了化学和生物医学研究人员越来越多的关注。本研究将生物相容性的细菌纤维素与导电的聚 (3,4-亚乙基二氧噻吩) 结合,并进一步将其还原为高度电活性的 BC/PEDOT 核壳微纤维电极,用于电化学致动器设计。结果表明,微纤维制造良好,药物从微纤维中的释放可以增强,并可以在外部电刺激下进行控制。考虑到对 PC12 细胞的优异生物相容性和电活性,这些微纤维可能可用作模仿体内肌肉纤维、血管或神经网络的纤维状功能组织重建的模板。

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