创新抗菌纳米纤维:促进伤口愈合和生物膜破坏的天然整合。

IF 3.4 4区 医学 Q2 PHARMACOLOGY & PHARMACY
Eman Abdelhakeem, Heba Attia, Mona M Hashem, Mohamed A Abdel Khalek, Shaimaa M Badr-Eldin, Islam M Adel
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引用次数: 0

摘要

由耐多药细菌引起的伤口感染是医疗保健领域面临的重大挑战。纳米纤维,特别是当注入天然提取物时,正在成为抗菌应用的有前途的平台。本研究探讨了以热塑性聚氨酯为材料制备的载红毛针叶提取物的静电纺丝纳米纤维在抗感染和促进伤口愈合方面的潜力。采用静电纺丝法制备了掺入青针叶提取物的纳米纤维,得到了均匀的棒状结构,扫描电镜证实了纳米纤维的结构。通过水接触角(WCA)测量和膨胀试验对纳米纤维的亲水性进行了评价。机械性能,包括应变和应力进行评估,以确定药物输送的适用性。对性能最佳的配方NF20进行了进一步的研究。在72 h内分析药物释放谱,并测试对各种病原体的抗菌效果,并以水飞蓟素为标准进行比较。生物膜研究评估了抗毒活性,而伤口愈合试验评估了优化的提取物负载纳米纤维在促进组织修复方面的潜力。纳米纤维的亲水性增强,1 h后WCA为43.1±0.6°,溶胀率为216.67±2.36%。NF20具有优异的力学性能,应变和应力值分别为67.6%和0.0486 N/mm2。72 h后的缓释量为73.40±1.31%。抗菌试验结果表明,该药物对主要病原菌的最低抑菌浓度、最低杀菌浓度和最低杀真菌浓度均显著降低。生物膜研究证实了提取物负载纳米纤维在抑制生物膜形成和破坏已建立的生物膜方面的有效性。这些发现强调了由热塑性聚氨酯组成的提取物负载纳米纤维作为创新伤口敷料的潜力,可以增强抗菌性能,促进加速愈合和支持组织再生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Innovative Antimicrobial Nanofibers: Natural Integrations for Enhanced Wound Healing and Biofilm Disruption.

Wound infections caused by multidrug-resistant bacteria present a substantial challenge in healthcare. Nanofibers, particularly when infused with natural extracts, are emerging as promising platforms for antimicrobial applications. This study investigates the potential of Anastatica hierochuntica extract-loaded electrospun nanofibers prepared with thermoplastic polyurethane for combating infections and promoting wound healing. Electrospinning was utilized to prepare nanofibers infused with Anastatica hierochuntica extract, resulting in uniform rod-shaped structures confirmed by scanning electron microscopy. The hydrophilicity of the nanofibers was assessed through water contact angle (WCA) measurements and swelling tests. Mechanical properties, including strain and stress were evaluated to determine suitability for drug delivery. The formulation with optimal properties, designated as NF20, underwent further investigation. Drug release profiles were analyzed over 72 h, and antimicrobial efficacy was tested against various pathogens, with comparisons made to Silymarin as a standard. A biofilm study evaluated the anti-virulence activity, while wound healing assays assessed the optimized extract loaded nanofibers potential in fostering tissue repair. The extract-loaded nanofibers exhibited enhanced hydrophilicity, with a WCA of 43.1 ± 0.6° and swelling of 216.67 ± 2.36% after 1 h. NF20 demonstrated superior mechanical properties, with strain and stress values of 67.6% and 0.0486 N/mm2, respectively. The sustained release profile indicated 73.40 ± 1.31% release after 72 h. Antimicrobial tests revealed significant reductions in minimum inhibitory concentration, minimum bactericidal concentration, and minimum fungicidal concentration against key pathogens. The biofilm study confirmed extract loaded nanofiber's efficacy in inhibiting biofilm formation and disrupting established biofilms. These findings underscore the potential of the extract-loaded nanofiber composed of thermoplastic polyurethane as innovative wound dressings that enhance antimicrobial properties, promote accelerated healing and support tissue regeneration.

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来源期刊
AAPS PharmSciTech
AAPS PharmSciTech 医学-药学
CiteScore
6.80
自引率
3.00%
发文量
264
审稿时长
2.4 months
期刊介绍: AAPS PharmSciTech is a peer-reviewed, online-only journal committed to serving those pharmaceutical scientists and engineers interested in the research, development, and evaluation of pharmaceutical dosage forms and delivery systems, including drugs derived from biotechnology and the manufacturing science pertaining to the commercialization of such dosage forms. Because of its electronic nature, AAPS PharmSciTech aspires to utilize evolving electronic technology to enable faster and diverse mechanisms of information delivery to its readership. Submission of uninvited expert reviews and research articles are welcomed.
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