Nayl AbdElAziz A, Abd-Elhamid Ahmed I, Awwad Nasser S, Abdelgawad Mohamed A, Wu Jinglei, Mo Xiumei, Gomha Sobhi M, Aly Ashraf A, Bräse Stefan
Department of Chemistry, College of Science, Jouf University, P.O. Box 2014, Sakaka 72341, Al Jouf, Saudi Arabia.
Composites and Nanostructured Materials Research Department, Advanced Technology and New Materials Research Institute, City of Scientific Research and Technological Applications (SRTA-City), New Borg Al-Arab, Alexandria 21934, Egypt.
Polymers (Basel). 2022 Apr 7;14(8):1508. doi: 10.3390/polym14081508.
Electrospun techniques are promising and flexible technologies to fabricate ultrafine fiber/nanofiber materials from diverse materials with unique characteristics under optimum conditions. These fabricated fibers/nanofibers via electrospinning can be easily assembled into several shapes of three-dimensional (3D) structures and can be combined with other nanomaterials. Therefore, electrospun nanofibers, with their structural and functional advantages, have gained considerable attention from scientific communities as suitable candidates in biomedical fields, such as the regeneration of tissues and organs, where they can mimic the network structure of collagen fiber in its natural extracellular matrix(es). Due to these special features, electrospinning has been revolutionized as a successful technique to fabricate such nanomaterials from polymer media. Therefore, this review reports on recent progress in electrospun nanofibers and their applications in various biomedical fields, such as bone cell proliferation, nerve regeneration, and vascular tissue, and skin tissue, engineering. The functionalization of the fabricated electrospun nanofibers with different materials furnishes them with promising properties to enhance their employment in various fields of biomedical applications. Finally, we highlight the challenges and outlooks to improve and enhance the application of electrospun nanofibers in these applications.
电纺技术是一种很有前景且灵活的技术,可在最佳条件下由具有独特特性的多种材料制备超细纤维/纳米纤维材料。通过静电纺丝制备的这些纤维/纳米纤维可以很容易地组装成几种三维(3D)结构形状,并可与其他纳米材料结合。因此,具有结构和功能优势的电纺纳米纤维作为生物医学领域的合适候选材料,如组织和器官再生领域,受到了科学界的广泛关注,在这些领域中它们可以模拟天然细胞外基质中胶原纤维的网络结构。由于这些特殊特性,静电纺丝已彻底变革为一种从聚合物介质制备此类纳米材料的成功技术。因此,本综述报道了电纺纳米纤维的最新进展及其在各种生物医学领域的应用,如骨细胞增殖、神经再生、血管组织和皮肤组织工程。用不同材料对制备的电纺纳米纤维进行功能化处理,赋予了它们有前景的特性,以增强其在生物医学应用各个领域的应用。最后,我们强调了在这些应用中改进和增强电纺纳米纤维应用的挑战和前景。