Song Wei, An Duo, Kao Der-I, Lu Yen-Chun, Dai Guohao, Chen Shuibing, Ma Minglin
Department of Biological and Environmental Engineering, Cornell University , Ithaca, New York 14853, United States.
ACS Appl Mater Interfaces. 2014 May 28;6(10):7038-44. doi: 10.1021/am502046h. Epub 2014 May 9.
A simple, robust, and cost-effective method is developed to fabricate nanofibrous micropatterns particularly microposts and microwells of controlled shapes. The key to this method is the use of an easily micropatternable and intrinsically conductive metal alloy as a template to collect electrospun fibers. The micropatterned alloy allows conformal fiber deposition with high fidelity on its topographical features and in situ formation of diverse, free-standing micropatterned nanofibrous membranes. Interestingly, these membranes can serve as structural frames to form robust hydrogel micropatterns that may otherwise be fragile on their own. These hybrid micropatterns represent a new platform for cell encapsulation where the nanofiber frames enhance the mechanical integrity of hydrogel and the micropatterns provide additional surface area for mass transfer and cell loading.
开发了一种简单、稳健且经济高效的方法来制造纳米纤维微图案,特别是具有可控形状的微柱和微孔。该方法的关键在于使用易于微图案化且具有本征导电性的金属合金作为模板来收集电纺纤维。微图案化合金允许在其形貌特征上以高保真度进行保形纤维沉积,并原位形成各种独立的微图案化纳米纤维膜。有趣的是,这些膜可以作为结构框架来形成坚固的水凝胶微图案,否则这些水凝胶微图案本身可能很脆弱。这些混合微图案代表了一种用于细胞封装的新平台,其中纳米纤维框架增强了水凝胶的机械完整性,而微图案为传质和细胞加载提供了额外的表面积。