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Anisotropic Cellular Alignment on Nano-Wrinkled Polymeric Surface

机译:纳米起皱的聚合物表面上的各向异性细胞排列

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摘要

Convenient preparation of nano/micro scale topography is crucial for the fabrication of low-cost biodevices, which could be useful tools for understanding cell biology mechanisms and for the development of scaffolds for tissue engineering. Such intelligent surfaces have been conventionally fabricated through photolithography, micro-contact printing, and nano/micro imprinting. However, considering the process integration, these approaches are not always adequate in order to produce large dimensional patterns in a convenient and rapid way. In this study, we focused on the convenient fabrication of nano-wrinkles based on the elastic instability between a shape memory polymer sheet and a conductive polymeric film, on which the behavior of murine skeletal muscle cells (C2C12) was evaluated. A tens-of-nm-thick layer of poly(3,4-ethylenedioxythiophene) with poly(styrenesulfonate) (PEDOT:PSS) was spincoated on a thermo-retractable polymer sheet. Then, thermal treatment produced different periodicity of the unidirectional nano-wrinkles on the polymer sheet covered with different thickness of PEDOT:PSS layer. Finally, adhesion and proliferation of C2C12 were evaluated, comparing different samples. The cells preferentially adhered and anisotropicaily aligned on low and narrow ridges (1.5 nm height) rather than on high and wide ones (2.5 μm height). Furthermore, we observed that these trends were confirmed in the differentiation stage of C2C12 into myotubes. The combination of living cells and tunable nano-wrinkles made of conductive polymeric materials will represent a unique tool for the development of innovative biomedical devices.
机译:纳米/微米级地形的便捷制备对于制造低成本生物设备至关重要,这对于了解细胞生物学机制和开发组织工程支架而言可能是有用的工具。通常通过光刻,微接触印刷和纳米/微压印来制造这种智能表面。然而,考虑到过程集成,这些方法并不总是足够的,以便以方便和快速的方式产生大尺寸图案。在这项研究中,我们集中在基于形状记忆聚合物片和导电聚合物膜之间的弹性不稳定性的纳米皱纹的方便制备上,在其上评估了鼠骨骼肌细胞(C2C12)的行为。将聚(3,4-乙撑二氧噻吩)与聚(苯乙烯磺酸盐)(PEDOT:PSS)的数十纳米厚的层旋涂在可热收缩的聚合物片材上。然后,热处理在覆盖有不同厚度的PEDOT:PSS层的聚合物片材上产生了不同周期性的单向纳米皱纹。最后,通过比较不同样品评估了C2C12的黏附和增殖。细胞优先粘附并各向异性排列在低而窄的山脊(高度为1.5 nm)上,而不是高而宽的山脊(高度为2.5μm)上。此外,我们观察到这些趋势在C2C12分化为肌管的阶段得到证实。活细胞和由导电聚合物材料制成的可调纳米皱纹的结合将代表开发创新生物医学设备的独特工具。

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  • 会议地点 Boston MA(US);Boston MA(US);Boston MA(US);Boston MA(US)
  • 作者单位

    Center for MicroBioRobotics IIT@SSSA, Istituto Italiano di Tecnologia, Viale Rinaldo Piaggio 34, 56025 Pontedera, Italy,European Biomedical Science Institute (EBSI), Organization for European Studies, Waseda University, 2-2 Wakamtsu-cho, Shinjuku, Tokyo 162-8480, Japan;

    Center for MicroBioRobotics IIT@SSSA, Istituto Italiano di Tecnologia, Viale Rinaldo Piaggio 34, 56025 Pontedera, Italy;

    Center for MicroBioRobotics IIT@SSSA, Istituto Italiano di Tecnologia, Viale Rinaldo Piaggio 34, 56025 Pontedera, Italy,Biorobotics Institute, Scuola Superiore Sant'Anna, Polo Sant'Anna Valdera, Viale Rinaldo Piaggio 34, 56025 Pontedera, Italy;

    Biorobotics Institute, Scuola Superiore Sant'Anna, Polo Sant'Anna Valdera, Viale Rinaldo Piaggio 34, 56025 Pontedera, Italy;

    Center for MicroBioRobotics IIT@SSSA, Istituto Italiano di Tecnologia, Viale Rinaldo Piaggio 34, 56025 Pontedera, Italy,Biorobotics Institute, Scuola Superiore Sant'Anna, Polo Sant'Anna Valdera, Viale Rinaldo Piaggio 34, 56025 Pontedera, Italy;

    Center for MicroBioRobotics IIT@SSSA, Istituto Italiano di Tecnologia, Viale Rinaldo Piaggio 34, 56025 Pontedera, Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 材料结构及物理性质;材料结构及物理性质;
  • 关键词

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