新生隐球菌
甲基乙二醛
两性霉素B
微生物学
细胞内
隐球菌
药理学
毒力
氟康唑
化学
抗药性
肾毒性
生物膜
抗真菌
生物
毒性
隐球菌病
白色念珠菌
两性霉素B脱氧胆酸盐
生物活性
作用机理
脂质体
细胞内寄生虫
利什曼原虫
医学
多重耐药
作者
Masood Alam Khan,Md. Arif Khan,Mohd Azam,Md Zafar Iqubal,Hina Younus
摘要
Cryptococcosis, caused by Cryptococcus neoformans, remains a major cause of mortality in immunocompromised patients, with treatment increasingly limited by resistance and toxicity associated with Amphotericin B (Amp B). In this study, methylglyoxal (MG) was evaluated as a virulence-targeted antifungal strategy, with emphasis on its liposomal delivery. MG exhibited superior antifungal activity as compared to Amp B, demonstrating lower MIC values and significantly enhanced inhibition of biofilm formation and laccase activity, key determinants of cryptococcal pathogenicity. Notably, MG showed potent intracellular antifungal activity within macrophages, where C. neoformans persists. Liposomal MG (Lip-MG) markedly reduced macrophage-associated fungal burden under the tested conditions, markedly outperforming both free MG and Amp B formulations. In a leukopenic mouse model of systemic infection, liposomal MG significantly improved survival (up to ~70%) and reduced pulmonary fungal burden as compared to Amp B, which showed limited therapeutic benefit. Importantly, MG-based formulations exhibited a favorable safety profile, with significantly lower nephrotoxicity than Amp B. Collectively, these findings demonstrate that Lip-MG acts through a dual virulence-targeted activity mechanism while effectively eliminating intracellular infection. This dual action, combined with improved safety, highlights MG-based nanotherapy as a promising and translational alternative for the treatment of drug-resistant cryptococcosis.
科研通智能强力驱动
Strongly Powered by AbleSci AI