Zare Mohadeseh, Davoodi Pooya, Ramakrishna Seeram
School of Metallurgy and Materials, University of Birmingham, Birmingham B15 2TT, UK.
Department of Mechanical Engineering, Center for Nanofibers and Nanotechnology, National University of Singapore, Singapore 119260, Singapore.
Nanomaterials (Basel). 2021 Apr 6;11(4):933. doi: 10.3390/nano11040933.
Shape memory polymers (SMPs) as a relatively new class of smart materials have gained increasing attention in academic research and industrial developments (e.g., biomedical engineering, aerospace, robotics, automotive industries, and smart textiles). SMPs can switch their shape, stiffness, size, and structure upon being exposed to external stimuli. Electrospinning technique can endow SMPs with micro-/nanocharacteristics for enhanced performance in biomedical applications. Dynamically changing micro-/nanofibrous structures have been widely investigated to emulate the dynamical features of the ECM and regulate cell behaviors. Structures such as core-shell fibers, developed by coaxial electrospinning, have also gained potential applications as drug carriers and artificial blood vessels. The clinical applications of micro-/nanostructured SMP fibers include tissue regeneration, regulating cell behavior, cell growth templates, and wound healing. This review presents the molecular architecture of SMPs, the recent developments in electrospinning techniques for the fabrication of SMP micro-/nanofibers, the biomedical applications of SMPs as well as future perspectives for providing dynamic biomaterials structures.
形状记忆聚合物(SMPs)作为一类相对较新的智能材料,在学术研究和工业发展(如生物医学工程、航空航天、机器人技术、汽车工业和智能纺织品)中受到越来越多的关注。SMPs在受到外部刺激时可以改变其形状、刚度、尺寸和结构。静电纺丝技术可以赋予SMPs微/纳米特性,以提高其在生物医学应用中的性能。动态变化的微/纳米纤维结构已被广泛研究,以模拟细胞外基质的动态特征并调节细胞行为。通过同轴静电纺丝开发的核壳纤维等结构,作为药物载体和人造血管也具有潜在的应用价值。微/纳米结构SMP纤维的临床应用包括组织再生、调节细胞行为、细胞生长模板和伤口愈合。本文综述了SMPs的分子结构、用于制备SMP微/纳米纤维的静电纺丝技术的最新进展、SMPs的生物医学应用以及提供动态生物材料结构的未来前景。