Fan Linpeng, Cai Zengxiao, Zhao Jian, Wang Xungai, Li Jing-Liang
Australian Future Fibers Research and Innovation Center, Institute for Frontier Materials, Deakin University, Geelong, Victoria 3216, Australia.
State Key Laboratory of Separation Membranes and Membrane Processes, School of Textile Science and Engineering, Tiangong University, Tianjin 300387, China.
Nano Lett. 2023 Sep 27;23(18):8602-8609. doi: 10.1021/acs.nanolett.3c02440. Epub 2023 Sep 14.
It is challenging to recapitulate the natural extracellular matrix's hierarchical nano/microfibrous three-dimensional (3D) structure with multilevel pores, good mechanical and hydrophilic properties, and excellent bioactivity for designing and developing advanced biomimetic materials. This work reports a new facile strategy for the scalable manufacturing of such a 3D architecture. Natural polymers in an aqueous solution are interpenetrated into a 3D microfibrous matrix with arbitrary shapes and property characteristics to self-assemble into a nanofibrous network. The collagen fiber-like hierarchical structure and interconnected multilevel pores are achieved by self-assembly of the formed nanofibers within the 3D matrix, triggered by a simple cross-linking treatment. The as-prepared alginate/polypropylene biomimetic matrices are bioactive and have a tunable mechanical property (compressive modulus from ∼17 to ∼24 kPa) and a tunable hydrophilicity (water contact angle from ∼94° to 63°). This facile and versatile strategy allows eco-friendly and scalable manufacturing of diverse biomimetic matrices or modification of any existing porous matrices using different polymers.
对于设计和开发先进的仿生材料而言,要重现天然细胞外基质具有多级孔隙、良好机械性能和亲水性以及出色生物活性的分级纳米/微纤维三维(3D)结构具有挑战性。这项工作报道了一种用于可扩展制造这种3D结构的新的简便策略。水溶液中的天然聚合物渗透到具有任意形状和性能特征的3D微纤维基质中,以自组装成纳米纤维网络。通过在3D基质内形成的纳米纤维的自组装,在简单的交联处理触发下,实现了胶原纤维状的分级结构和相互连接的多级孔隙。所制备的藻酸盐/聚丙烯仿生基质具有生物活性,并且具有可调的机械性能(压缩模量从约17至约24 kPa)和可调的亲水性(水接触角从约94°至63°)。这种简便且通用的策略允许使用不同的聚合物对各种仿生基质进行环保且可扩展的制造或对任何现有的多孔基质进行改性。