Nanotechnology National Laboratory for Agriculture (LNNA), Embrapa Instrumentação, 13560-970, São Carlos, São Paulo, Brazil.
Materials and Biosystems Laboratory (LAMAB), Department of Materials Engineering (DEMAT), Federal University of Paraíba (UFPB), Cidade Universitária, 58.051-900, João Pessoa, Paraiba, Brazil.
ACS Appl Mater Interfaces. 2020 Oct 14;12(41):45673-45701. doi: 10.1021/acsami.0c12410. Epub 2020 Oct 2.
Functional polymeric micro-/nanofibers have emerged as promising materials for the construction of structures potentially useful in biomedical fields. Among all kinds of technologies to produce polymer fibers, spinning methods have gained considerable attention. Herein, we provide a recent review on advances in the design of micro- and nanofibrous platforms via spinning techniques for biomedical applications. Specifically, we emphasize electrospinning, solution blow spinning, centrifugal spinning, and microfluidic spinning approaches. We first introduce the fundamentals of these spinning methods and then highlight the potential biomedical applications of such micro- and nanostructured fibers for drug delivery, tissue engineering, regenerative medicine, disease modeling, and sensing/biosensing. Finally, we outline the current challenges and future perspectives of spinning techniques for the practical applications of polymer fibers in the biomedical field.
功能性聚合物微/纳米纤维作为构建生物医学领域有应用潜力的结构的材料已崭露头角。在用于制备聚合物纤维的各种技术中,纺丝技术得到了广泛关注。在此,我们对通过纺丝技术设计用于生物医学应用的微纳纤维平台的最新进展进行综述。具体而言,我们强调了静电纺丝、溶液吹纺、离心纺丝和微流控纺丝方法。我们首先介绍了这些纺丝方法的基本原理,然后重点介绍了此类微纳结构化纤维在药物输送、组织工程、再生医学、疾病建模和传感/生物传感方面的潜在生物医学应用。最后,我们概述了纺丝技术在聚合物纤维在生物医学领域实际应用中面临的挑战和未来展望。