NEST, Scuola Normale Superiore and Istituto Nanoscienze-CNR, Piazza San Silvestro 12, 56127 Pisa, Italy.
Nanoscale. 2017 Oct 12;9(39):14861-14874. doi: 10.1039/c7nr02822a.
Periodic ripples are a variety of anisotropic nanostructures that can be realized by ion beam irradiation on a wide range of solid surfaces. Only a few authors have investigated these surfaces for tuning the response of biological systems, probably because it is challenging to directly produce them in materials that well sustain long-term cellular cultures. Here, hierarchical rippled nanotopographies with a lateral periodicity of ∼300 nm are produced from a gold-irradiated germanium mold in polyethylene terephthalate (PET), a biocompatible polymer approved by the US Food and Drug Administration for clinical applications, by a novel three-step embossing process. The effects of nano-ripples on Schwann Cells (SCs) are studied in view of their possible use for nerve-repair applications. The data demonstrate that nano-ripples can enhance short-term SC adhesion and proliferation (3-24 h after seeding), drive their actin cytoskeleton spatial organization and sustain long-term cell growth. Notably, SCs are oriented perpendicularly with respect to the nanopattern lines. These results provide information about the possible use of hierarchical nano-rippled elements for nerve-regeneration protocols.
周期性波纹是一种各向异性纳米结构,可以通过离子束辐照在广泛的固体表面上实现。只有少数作者研究了这些表面,以调整生物系统的反应,这可能是因为在能够长期维持细胞培养的材料中直接产生这些表面具有挑战性。在这里,通过一种新颖的三步压印工艺,从金辐照的锗模具中在聚对苯二甲酸乙二醇酯(PET)中产生具有约 300nm 横向周期性的分层波纹纳米形貌,PET 是一种生物相容性聚合物,已被美国食品和药物管理局批准用于临床应用。考虑到其在神经修复应用中的潜在用途,研究了纳米波纹对许旺细胞(SCs)的影响。数据表明,纳米波纹可以增强SCs 的短期黏附和增殖(接种后 3-24 小时),驱动其肌动蛋白细胞骨架的空间组织,并维持长期细胞生长。值得注意的是,SCs 垂直于纳米图案线排列。这些结果为分层纳米波纹元件在神经再生方案中的可能应用提供了信息。