State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, Shanghai 200237, China.
Shanghai Frontiers Science Center of Optogenetic Techniques for Cell Metabolism, Frontiers Science Center for Materiobiology and Dynamic Chemistry, Research Center for Biomedical Materials of Ministry of Education, East China University of Science and Technology, Shanghai 200237, China.
J Am Chem Soc. 2023 Nov 29;145(47):25753-25765. doi: 10.1021/jacs.3c09240. Epub 2023 Nov 15.
Invasive fungal infections, including meningitis, cause a high mortality rate due to few available antifungal drugs and frequently associated side effects and quick emergence of drug-resistant fungi. The restrictive permeability of the blood-brain barrier (BBB) further limits the efficacy of antifungal agents substantially in treating meningitis. Hereby, we design and synthesize guanidinium-functionalized poly(2-oxazoline)s by mimicking cell-penetrating peptides. The optimal polymer, PGMeOx bearing a methylene spacer arm, displays potent activities against the drug-resistant fungi and biofilm, negligible toxicity, and insusceptibility to antimicrobial resistance. Moreover, PGMeOx can break BBB retractions to exert promising antifungal functions in the brain. PGMeOx demonstrates potent in vivo antifungal therapeutic efficacy in mouse models including skin infection, systemic infections, and meningitis. PGMeOx effectively rescues infected mice and reduces fungal burden and inflammation in the brain. These results and the excellent biosafety of poly(2-oxazoline)s indicate the effectiveness and potential of our strategy to design promising antifungal agents in treating systemic infections and meningitis.
侵袭性真菌感染,包括脑膜炎,由于可用的抗真菌药物很少,且常伴有副作用,以及抗真菌药物耐药真菌的迅速出现,导致死亡率很高。血脑屏障 (BBB) 的通透性有限,这进一步大大限制了抗真菌药物治疗脑膜炎的疗效。为此,我们通过模拟细胞穿透肽来设计和合成胍基功能化的聚(2-恶唑啉)。最佳聚合物 PGMeOx 带有亚甲基间隔臂,对耐药真菌和生物膜具有强大的活性,毒性可忽略不计,且不易产生抗微生物耐药性。此外,PGMeOx 可以打破 BBB 的收缩,在大脑中发挥有前景的抗真菌作用。PGMeOx 在包括皮肤感染、全身感染和脑膜炎在内的小鼠模型中表现出强大的体内抗真菌治疗功效。PGMeOx 有效地挽救了感染的小鼠,并降低了大脑中的真菌负荷和炎症。这些结果和聚(2-恶唑啉)的出色生物安全性表明,我们设计有前途的抗真菌药物治疗全身感染和脑膜炎的策略是有效且有潜力的。