Kyser Anthony J, Fotouh Bassam, Harris Victoria, Patel Rudra, Maners Caden, Frieboes Hermann B
Department of Bioengineering, University of Louisville Speed School of Engineering, Louisville, KY, 40202.
Center for Predictive Medicine, University of Louisville, Louisville, KY, 40202.
J Drug Deliv Sci Technol. 2025 Feb;104. doi: 10.1016/j.jddst.2024.106520. Epub 2024 Dec 20.
Whether it be due to genetic variances, lack of patient adherence, or sub-optimal drug metabolism, the risk of antibiotic resistance from medications administered systemically continues to pose significant challenges to fighting infectious diseases. Ideally, infections would be treated locally for maximal efficacy while minimizing off-target effects. The electrospinning of biomaterials has recently facilitated the creation of electrospun nanofibers as an alternative delivery vehicle for local treatment. This review describes electrospun nanofiber applications to locally target various infectious diseases. Electrospinning is first reviewed as a method to fabricate nanofiber platforms with advantageous properties for developing drug delivery systems. The emergence of artificial intelligence to facilitate the development of nanofiber formulations and the evaluation of operating parameters to customize therapeutic behavior are described. A range of biomaterials utilized for electrospinning nanofibers is summarized in the context of properties suitable for drug delivery, particularly to treat infectious diseases. The current body of literature for electrospun nanofiber applications to tackle infectious diseases, including sexually transmitted infections, oral infections, and infections is described. We anticipate that the advantages of electrospun nanofibers to facilitate targeted application while minimizing antibiotic resistance will substantially expand their clinical use in coming years.
无论是由于基因差异、患者依从性差还是药物代谢不理想,全身给药产生抗生素耐药性的风险继续给抗击传染病带来重大挑战。理想情况下,感染应进行局部治疗,以实现最大疗效,同时将脱靶效应降至最低。生物材料的静电纺丝最近促进了电纺纳米纤维的产生,作为局部治疗的替代给药载体。本综述描述了电纺纳米纤维在局部靶向各种传染病方面的应用。首先回顾静电纺丝作为一种制造纳米纤维平台的方法,该平台具有开发药物递送系统的有利特性。描述了人工智能的出现,以促进纳米纤维制剂的开发和评估操作参数以定制治疗行为。在适合药物递送,特别是治疗传染病的特性背景下,总结了一系列用于静电纺丝纳米纤维的生物材料。描述了目前关于电纺纳米纤维应用于解决传染病,包括性传播感染、口腔感染和其他感染的文献。我们预计,电纺纳米纤维在促进靶向应用同时将抗生素耐药性降至最低的优势,将在未来几年大幅扩大其临床应用。