Akhila B, Abhijith V, Sreedharan Mridula, Ravindran Lakshmipriya, Sathian Aiswarya, Thomas Sabu, Sadasivan Sreekala Meyyarappallil
School of Chemical Sciences, Mahatma Gandhi University, Kottayam, Kerala 686560, India.
International and Inter University Centre for Nanoscience and Nanotechnology (IIUCNN), Mahatma Gandhi University, Kottayam, Kerala 686560, India.
ACS Biomater Sci Eng. 2025 Jul 14;11(7):3826-3857. doi: 10.1021/acsbiomaterials.5c00194. Epub 2025 Jun 16.
The unique structural and functional properties of polylactic acid (PLA) nanofibers, particularly in core-shell structures, have placed them as a crucial material in biomedical engineering. In addition to its renewable characteristics, biodegradability, and biocompatibility, PLA distinguishes itself and satisfies the increasing demand for environmentally friendly and sustainable materials in medical applications. It is an optimal material for scaffolds, implants, and biomedical devices due to its adjustable mechanical strength, degradation rate, excellent biocompatibility, and capacity to form intricate fiber architectures. The precise manipulation of PLA nanofibers can be made easier by advanced electrospinning techniques, which maintain the structural integrity of the PLA nanofibers while allowing for the encapsulation with controlled release of bioactive compounds. The core-shell architectures enhance mechanical performance, cellular adhesion, and proliferation, making them suitable for various advanced biomedical applications. Moreover, PLA degradation products have a much lower environmental effect compared to other synthetic nondegradable polymers, signifying a substantial advantage. The review article covers the techniques used for the fabrication of coaxial electrospun PLA nanofibers, their benefits, and potential uses in innovative healthcare products and sustainable biomedical practices.
聚乳酸(PLA)纳米纤维独特的结构和功能特性,尤其是在核壳结构中的特性,使其成为生物医学工程中的关键材料。除了具有可再生、可生物降解和生物相容性外,PLA还独具特色,满足了医疗应用中对环保和可持续材料日益增长的需求。由于其可调节的机械强度、降解速率、出色的生物相容性以及形成复杂纤维结构的能力,它是用于支架、植入物和生物医学设备的理想材料。先进的静电纺丝技术可以更轻松地精确操控PLA纳米纤维,该技术在保持PLA纳米纤维结构完整性的同时,还能实现生物活性化合物的包封和控释。核壳结构增强了机械性能、细胞粘附和增殖能力,使其适用于各种先进的生物医学应用。此外,与其他合成不可降解聚合物相比,PLA降解产物对环境的影响要小得多,这是一个显著的优势。这篇综述文章涵盖了用于制备同轴静电纺PLA纳米纤维的技术、它们的优点以及在创新医疗产品和可持续生物医学实践中的潜在用途。