负载异巴瓦甲尔酮的静电纺聚己内酯/明胶纳米纤维的抗菌和抗氧化应用。

Peibo Guo, Wen Zhang, Pei Zhao, Xinyi Lv, Ao Qu, Wenjing Liang, Huijing Hou, Ying Li, Zijian Wu
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引用次数: 0

摘要

抗菌纳米纤维在生物医药、食品包装等领域有着广泛的应用。为了克服现有的抗生素耐药性,本研究利用具有抗菌和抗氧化性能的天然化合物异巴瓦甲酮(IBC)与聚己内酯(PCL)和明胶(GEL)联合制备了电纺丝纳米纤维抗菌膜。扫描电镜(SEM)分析表明,纳米纤维具有均匀光滑的表面结构。傅里叶变换红外光谱和x射线衍射证实了纳米纤维膜PCL/GEL/IBC (PGI)各组分之间的相互作用。热重分析和接触角测量证明了该材料的热稳定性和亲水性。PGI膜的断裂伸长率提高到19.9%,拉伸强度达到2.9 MPa。体外释放实验表明,PGI纳米纤维膜在12 h内IBC的释放率至少为48%,释放期长达14 d。抗氧化实验结果表明PGI膜具有良好的自由基清除能力。PGI膜对金黄色葡萄球菌和白色念珠菌的去除率分别超过99%和54%,表明其具有抗菌和抗氧化的潜力。随后4-HNE和8-OHdG的伤口愈合更快,氧化损伤更低,进一步证明PGI可以减少伤口的氧化损伤,促进伤口愈合。这些发现也提示了PGI在组织工程领域的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Isobavachalcone-loaded electrospun polycaprolactone/gelatin nanofibers for antibacterial and antioxidant applications.

Antibacterial nanofibers have been widely used in the fields of biomedicine and food packaging fields. To overcome existing antibiotic resistance, this study utilized isobavachalcone (IBC), a natural compound with antibacterial and antioxidant properties, combined with polycaprolactone (PCL) and gelatin (GEL) to develop an electrospun nanofibrous antibacterial membrane. Scanning electron microscopy (SEM) analysis revealed a uniform and smooth surface structure of the nanofiber. Fourier transform infrared spectroscopy and x-ray diffraction confirmed the interactions among the components of the nanofibrous membrane PCL/GEL/IBC (PGI). Thermogravimetric analysis and contact angle measurements demonstrated the thermal stability and hydrophilic nature. Additionally, the mechanical properties of PGI membrane were that the elongation at break increased to 19.9% and the tensile strength to 2.9 MPa.In vitrorelease studies indicated at least 48% release rate of IBC from the PGI nanofibrous membrane in 12 h, and release period up to 14 d. Antioxidant results revealed PGI membranes had fine abilities for scavenging free radical. The elimination of over 99% ofStaphylococcus aureusand elimination of 54%Candida albicansdemonstrated the antibacterial capacities of the PGI membrane, indicating its potential as antibacterial and antioxidant materials. Subsequent faster wound healing, lower oxidative damage for 4-HNE and 8-OHdG, further demonstrated that PGI can reduce oxidative damage at the wound and promote wound healing. These findings also suggest the potential of PGI in the field of tissue engineering.

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