School of Materials & Chemistry, University of Shanghai for Science & Technology, Shanghai 200093, China.
Shanghai Engineering Technology Research Center for High-Performance Medical Device Materials, Shanghai 200093, China.
Biomolecules. 2022 Aug 12;12(8):1110. doi: 10.3390/biom12081110.
The purpose of this work is to develop a novel ultrathin fibrous membrane with a core-sheath structure as antibacterial food packaging film. Coaxial electrospinning was exploited to create the core-sheath structure, by which the delivery regulation of the active substance was achieved. Resveratrol (RE) and silver nanoparticles (AgNPs) were loaded into electrospun zein/polyethylene oxide ultrathin fibers to ensure a synergistic antibacterial performance. Under the assessments of a scanning electron microscope and transmission electron microscope, the ultrathin fiber was demonstrated to have a fine linear morphology, smooth surface and obvious core-sheath structure. X-ray diffraction and Fourier transform infrared analyses showed that RE and AgNPs coexisted in the ultrathin fibers and had good compatibility with the polymeric matrices. The water contact angle experiments were conducted to evaluate the hydrophilicity and hygroscopicity of the fibers. In vitro dissolution tests revealed that RE was released in a sustained manner. In the antibacterial experiments against and , the diameters of the inhibition zone of the fiber were 8.89 ± 0.09 mm and 7.26 ± 0.10 mm, respectively. Finally, cherry tomatoes were selected as the packaging object and packed with fiber films. In a practical application, the fiber films effectively reduced the bacteria and decreased the quality loss of cherry tomatoes, thereby prolonging the fresh-keeping period of cherry tomatoes to 12 days. Following the protocols reported here, many new food packaging films can be similarly developed in the future.
本工作旨在开发一种具有核壳结构的新型超薄纤维膜,用作抗菌食品包装膜。同轴静电纺丝被用于制造核壳结构,从而实现了活性物质的输送调控。将白藜芦醇(RE)和载银纳米粒子(AgNPs)负载到静电纺丝的玉米醇溶蛋白/聚氧化乙烯超纤维中,以确保协同抗菌性能。通过扫描电子显微镜和透射电子显微镜评估,超纤维表现出精细的线性形态、光滑的表面和明显的核壳结构。X 射线衍射和傅里叶变换红外分析表明,RE 和 AgNPs 共存于超纤维中,并与聚合物基质具有良好的相容性。水接触角实验用于评估纤维的亲水性和吸湿性。体外溶解试验表明 RE 以持续方式释放。在针对 和 的抗菌实验中,纤维的抑菌圈直径分别为 8.89 ± 0.09mm 和 7.26 ± 0.10mm。最后,选择樱桃番茄作为包装对象,并使用纤维膜进行包装。在实际应用中,纤维膜有效减少了细菌数量,并降低了樱桃番茄的质量损失,从而将樱桃番茄的保鲜期延长至 12 天。根据此处报告的方案,未来可以类似地开发许多新型食品包装膜。