Xing Jiyao, Zhang Miao, Liu Xinlin, Wang Chao, Xu Nannan, Xing Dongming
The Affiliated Hospital of Qingdao University, Qingdao University, Qingdao, 266071, China.
Qingdao Cancer Institute, Qingdao, 266071, China.
Mater Today Bio. 2023 Jun 23;21:100710. doi: 10.1016/j.mtbio.2023.100710. eCollection 2023 Aug.
Electrospinning as a versatile, simple, and cost-effective method to engineer a variety of micro or nanofibrous materials, has contributed to significant developments in the biomedical field. However, the traditional electrospinning of single material only can produce homogeneous fibrous assemblies with limited functional properties, which oftentimes fails to meet the ever-increasing requirements of biomedical applications. Thus, multi-material electrospinning referring to engineering two or more kinds of materials, has been recently developed to enable the fabrication of diversified complex fibrous structures with advanced performance for greatly promoting biomedical development. This review firstly gives an overview of multi-material electrospinning modalities, with a highlight on their features and accessibility for constructing different complex fibrous structures. A perspective of how multi-material electrospinning opens up new opportunities for specific biomedical applications, i.e., tissue engineering and drug delivery, is also offered.
静电纺丝作为一种通用、简单且经济高效的方法,可用于制造各种微纤维或纳米纤维材料,为生物医学领域的重大发展做出了贡献。然而,传统的单一材料静电纺丝只能生产功能特性有限的均质纤维组件,这往往无法满足生物医学应用不断增长的需求。因此,多材料静电纺丝(即加工两种或更多种材料)最近得到了发展,以实现具有先进性能的多样化复杂纤维结构的制造,从而极大地推动生物医学的发展。本文首先概述了多材料静电纺丝方式,重点介绍了它们构建不同复杂纤维结构的特点和可行性。还提供了一个关于多材料静电纺丝如何为特定生物医学应用(即组织工程和药物递送)开辟新机会的观点。