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用于神经分化的生物相容的四(苯胺)共轭肽纳米纤维

Biocompatible Electroactive Tetra(aniline)-Conjugated Peptide Nanofibers for Neural Differentiation.

机构信息

School of Chemistry, University of Bristol , Bristol BS8 1TS, U.K.

Department of Electrical and Electronics Engineering, Atilim University , Ankara 06836, Turkey.

出版信息

ACS Appl Mater Interfaces. 2018 Jan 10;10(1):308-317. doi: 10.1021/acsami.7b16509. Epub 2017 Dec 20.

Abstract

Peripheral nerve injuries cause devastating problems for the quality of patients' lives, and regeneration following damage to the peripheral nervous system is limited depending on the degree of the damage. Use of nanobiomaterials can provide therapeutic approaches for the treatment of peripheral nerve injuries. Electroactive biomaterials, in particular, can provide a promising cure for the regeneration of nerve defects. Here, a supramolecular electroactive nanosystem with tetra(aniline) (TA)-containing peptide nanofibers was developed and utilized for nerve regeneration. Self-assembled TA-conjugated peptide nanofibers demonstrated electroactive behavior. The electroactive self-assembled peptide nanofibers formed a well-defined three-dimensional nanofiber network mimicking the extracellular matrix of the neuronal cells. Neurite outgrowth was improved on the electroactive TA nanofiber gels. The neural differentiation of PC-12 cells was more advanced on electroactive peptide nanofiber gels, and these biomaterials are promising for further use in therapeutic neural regeneration applications.

摘要

周围神经损伤会对患者的生活质量造成严重影响,而外周神经系统损伤后的再生能力则取决于损伤的严重程度。纳米生物材料的应用为周围神经损伤的治疗提供了新的方法。特别是电活性生物材料,为神经缺损的再生提供了很有前途的治疗方法。在这里,开发并利用了一种具有四(苯胺)(TA)的超分子电活性纳米系统来实现神经再生。含有 TA 的肽纳米纤维的自组装表现出电活性。电活性自组装肽纳米纤维形成了一种具有良好定义的三维纳米纤维网络,模仿神经元细胞的细胞外基质。在有活性的 TA 纳米纤维凝胶上,轴突生长得到了改善。PC-12 细胞的神经分化在电活性肽纳米纤维凝胶上更为先进,这些生物材料有望进一步用于治疗性神经再生应用。

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