The CAS Key Laboratory of Engineering Plastics, Institute of Chemistry, Chinese Academy of Sciences (CAS), Beijing 100190, China.
ACS Appl Mater Interfaces. 2012 Sep 26;4(9):4643-50. doi: 10.1021/am301013e. Epub 2012 Aug 20.
A double template method to fabricate poly(ε-caprolactone) (PCL) hierarchical patterned nanowires with highly ordered nano- and microscaled topography was developed in this study. The topography of PCL film with a patterned nanowire surface can be easily and well controlled by changing the template and melting time of PCL film on the templates. The surface morphology, water contact angle, protein adsorption, and cell growth behavior on the PCL films with different surface structures were well studied. The results revealed that the PCL nanowire arrays and the hierarchical patterned nanowires showed higher capability of protein adsorption and better cell growth than the PCL film with smooth surface. Typically, the PCL surface with hierarchical nanowire patterns was most favorable for cell attachment and proliferation. The present study was innovative at fabrication of polymer substrates with hierarchical architecture of nanowires inside microscaled islands to gain insight into the cell response to this unique topography and to develop a new method of constructing the bionic surface for tissue engineering applications.
本研究开发了一种双重模板法,用于制备具有高度有序纳米和微尺度形貌的聚己内酯(PCL)分级图案纳米线。通过改变模板上 PCL 膜的模板和熔化时间,可以轻松且很好地控制具有图案化纳米线表面的 PCL 膜的形貌。对具有不同表面结构的 PCL 薄膜的表面形态、水接触角、蛋白质吸附和细胞生长行为进行了很好的研究。结果表明,与具有光滑表面的 PCL 薄膜相比,PCL 纳米线阵列和分级图案纳米线具有更高的蛋白质吸附能力和更好的细胞生长能力。通常,具有分级纳米线图案的 PCL 表面最有利于细胞附着和增殖。本研究创新性地制备了具有纳米线内部微尺度岛分级结构的聚合物基底,以深入了解细胞对这种独特形貌的反应,并开发用于组织工程应用的仿生表面的构建方法。