Center for Nanofibers and Nanotechnology, E3-05-14, Nanoscience and Nanotechnology Initiative, Faculty of Engineering, National University of Singapore, 2 Engineering Drive 3, Singapore, 117576, Singapore.
Biotechnol Bioeng. 2013 Oct;110(10):2775-84. doi: 10.1002/bit.24937. Epub 2013 Apr 29.
Nerve regeneration following the injury of nerve tissue remains a major issue in the therapeutic medical field. Various bio-mimetic strategies are employed to direct the nerve growth in vitro, among which the chemical and topographical cues elicited by the scaffolds are crucial parameters that is primarily responsible for the axon growth and neurite extension involved in nerve regeneration. We carried out electrospinning for the first time, to fabricate both random and aligned nanofibers of Poly(3-hydroxybutyrate-co-3-hydroxyvalerate; PHBV) and composite PHBV/collagen nanofibers with fiber diameters in the range of 386-472 nm and 205-266 nm, respectively. To evaluate the potential of electrospun aligned nanofibers of PHBV and composite scaffolds as a substrate for nerve regeneration, we cultured nerve cells (PC12) and studied the biocompatibility effect along with neurite extension by immunostaining studies. Cell proliferation assays showed 40.01% and 5.48% higher proliferation of nerve cells on aligned PHBV/Coll50:50 nanofibers compared to cell proliferation on aligned PHBV and PHBV/Col75:25 nanofibers, respectively. Aligned nanofibers of PHBV/Coll provided contact guidance to direct the orientation of nerve cells along the direction of the fibers, thus endowing elongated cell morphology, with bi-polar neurite extensions required for nerve regeneration. Results showed that aligned PHBV/Col nanofibers are promising substrates than the random PHBV/Col nanofibers for application as bioengineered grafts for nerve tissue regeneration.
神经组织损伤后的神经再生仍然是治疗医学领域的一个主要问题。各种仿生策略被用于在体外引导神经生长,其中支架引起的化学和拓扑线索是轴突生长和参与神经再生的神经突延伸的关键参数。我们首次进行了静电纺丝,以制造聚(3-羟基丁酸酯-共-3-羟基戊酸酯; PHBV)的随机和定向纳米纤维以及 PHBV/胶原复合纳米纤维,纤维直径分别在 386-472nm 和 205-266nm 范围内。为了评估静电纺丝 PHBV 定向纳米纤维和复合支架作为神经再生基底的潜力,我们培养了神经细胞(PC12),并通过免疫染色研究研究了其生物相容性和神经突延伸效果。细胞增殖实验表明,与 PHBV 和 PHBV/Col75:25 纳米纤维相比,神经细胞在定向 PHBV/Coll50:50 纳米纤维上的增殖率分别高 40.01%和 5.48%。PHBV/Coll 定向纳米纤维为神经细胞提供了接触导向,沿着纤维的方向引导神经细胞的定向,从而赋予伸长的细胞形态,具有神经再生所需的双极神经突延伸。结果表明,定向 PHBV/Col 纳米纤维比随机 PHBV/Col 纳米纤维更适合作为神经组织再生的生物工程移植物应用。