头孢地洛辛-莫匹罗辛复合电纺纳米纤维膜用于烧伤创面治疗。

Saman Rashid, Munaza Ijaz, Sana Rafique, Haya Yasin, Mahnoor Mushtaq, Abida Kalsoom Khan, Madiha Khan, Bushra Nasir, Ghulam Murtaza
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引用次数: 0

摘要

目的:以聚乙烯醇(PVA)和壳聚糖为材料,添加头孢地诺辛和莫匹罗星制备双载药纳米纤维膜,以满足烧伤创面护理的迫切需要。方法:采用静电纺丝法制备头孢丙醇和莫匹罗辛负载聚乙烯醇PVA/壳聚糖纳米纤维。通过傅里叶变换红外光谱、扫描电镜、热重分析仪和x射线衍射光谱对纳米纤维的结构和形态进行了表征。利用药物释放机制的动力学特征来确定头孢丙罗西和莫匹罗星的释放。测定其对金黄色葡萄球菌和铜绿假单胞菌的抑菌活性,并在兔全层创面模型上检测创面愈合效果。结果:扫描电镜分析表明形成均匀光滑的纳米纤维,具有明确的形态。FTIR光谱证实了头孢地洛辛和莫匹罗辛成功地掺入到PVA/壳聚糖基质中。TGA分析表明纳米纤维具有热稳定性,而XRD结果表明药物在生物聚合物共混物中呈分子分散或无定形状态。药物释放研究显示出不同的特征,最初的突然释放随后是持续的药物释放。超过80%的莫匹罗辛在最初2小时内释放,而头孢地洛辛的累积释放量超过60%。抗菌实验显示对金黄色葡萄球菌有明显的抑制区,最大抑制区为20 mm。利用全层兔伤口模型的体内研究表明,载药纳米纤维加速伤口收缩,在第17天达到约90%的闭合,而对照组则不到70%。结论:头孢氨苄-莫匹罗星纳米纤维膜具有良好的抗菌活性和更快的创面愈合速度,在晚期烧伤创面治疗中具有重要的应用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cefadroxil-Mupirocin Integrated Electrospun Nanofiber Films for Burn Wound Therapy.

Objective: This study aims to fabricate dual drug-loaded nanofibrous films made from polyvinyl alcohol (PVA) and chitosan, incorporating cefadroxil and mupirocin to meet the critical needs of burn wound care.

Methods: Electrospinning was utilized to fabricate cefadroxil- and mupirocin-loaded polyvinyl alcohol PVA/Chitosan nanofibers. Characterization of structural and morphological properties of these nanofibers was done through Fourier Transform IR Spectroscopy, Scanning Electron Microscopy, Thermal analysis by TGA, and XRD spectroscopy. The kinetic profiles of the drug release mechanisms were considered to determine the release of cefadroxil and mupirocin. Antibacterial activity was determined against the bacteria Staphylococcus aureus and Pseudomonas aeruginosa, while the wound healing efficacy was tested in a rabbit model using full-thickness wounds.

Results: SEM analysis demonstrated the formation of uniform and smooth nanofibers possessing a well-defined morphology. FTIR spectroscopy confirmed the successful incorporation of cefadroxil and mupirocin into the PVA/Chitosan matrix. TGA analysis indicated the thermal stability of the nanofibers, while XRD results suggested that the drugs were either molecularly dispersed or in an amorphous state within the biopolymeric blend. Drug release studies showed distinct profiles, with an initial burst release followed by sustained drug release. Over 80% of mupirocin was released within the first 2 hours, while cefadroxil exhibited a cumulative release exceeding 60%. Antibacterial assays showed significant inhibition zones, with the largest being 20 mm against Staphylococcus aureus. In vivo studies utilizing a full-thickness rabbit wound model revealed that the drug-loaded nanofibers accelerated wound contraction, achieving approximately 90% closure by day 17, compared to less than 70% for the control.

Conclusion: The study demonstrates that cefadroxil-mupirocin nanofiber films provide superior antibacterial activity and faster wound healing rates, highlighting their potential in advanced burn wound management.

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