School of Engineering, Sun Yat-Sen University, Guangzhou 510006, China.
J Biomed Nanotechnol. 2012 Oct;8(5):779-85. doi: 10.1166/jbn.2012.1443.
In this study, a novel three-dimensional fluffy PPy conductive fibrous scaffold (3D-cFSs) was fabricated by electrospinning technique combined with situ surface polymerization. Chemical compositions, morphology were characterized by fourier transform infrared (FTIR) and scanning electron microscopy (SEM). The results showed that the average diameter of PPy coated PLLA fibers in the 3D-cFSs was 2.086 microm, the thickness of PPy nano-layer was -45 nm. These PPy coated PLLA fibers were in discrete state, the size of interconnected pores in the 3D-cFSs was from 50 microm to 100 microm, this unique structure ensured that cells can entry into internal of 3D-cFSs smoothly without any other extra help to achieve three-dimensional cell culture (3D-culture). Rat pheochromocytoma 12 (PC12) cells (as model cell) were cultured in the 3D-cFSs to evaluate its potential application for nerve tissue engineering. The interaction between cell and scaffold was test by detecting the cell proliferation, viability, and morphology. After 3 days culture, the number of PC12 in 3D-cFSs were much higher than that on the conductive fibrous meshes (cFMs) and well developed cell-fibers constructs were observed from fluorescence image and SEM of PC12 in the central of 3D-cFSs. These results showed that the 3D-cFSs provided cell 3D-culture, and improved cell growth. Therefore, we suggest that the 3D-cFSs maybe a suitable scaffold for the nerve tissue engineering as cells substrate to apply electrical stimulation.
在这项研究中,通过静电纺丝技术结合原位表面聚合制备了一种新型的三维蓬松聚吡咯导电纤维支架(3D-cFSs)。通过傅里叶变换红外(FTIR)和扫描电子显微镜(SEM)对化学组成和形态进行了表征。结果表明,3D-cFSs 中涂覆 PLLA 纤维的 PPy 的平均直径为 2.086 微米,PPy 纳米层的厚度为-45nm。这些涂覆 PPy 的 PLLA 纤维处于离散状态,3D-cFSs 中相互连接的孔的尺寸为 50-100 微米,这种独特的结构确保细胞可以顺畅地进入 3D-cFSs 的内部,无需任何其他额外的帮助即可实现三维细胞培养(3D-culture)。将大鼠嗜铬细胞瘤 12 (PC12)细胞(作为模型细胞)培养在 3D-cFSs 中,以评估其在神经组织工程中的潜在应用。通过检测细胞增殖、活力和形态来测试细胞与支架的相互作用。培养 3 天后,3D-cFSs 中的 PC12 数量明显高于导电纤维网(cFMs)上的 PC12 数量,并且从 3D-cFSs 中心的 PC12 的荧光图像和 SEM 可以观察到发达的细胞-纤维结构。这些结果表明,3D-cFSs 提供了细胞 3D 培养,并促进了细胞生长。因此,我们认为 3D-cFSs 可能是一种适合神经组织工程的支架,作为细胞的基底来应用电刺激。