Liu Na, Zhong Hua, Tu Jie, Jiang Zhigan, Jiang Yanjuan, Jiang Yan, Jiang Yuanying, Li Jian, Zhang Wannian, Wang Yan, Sheng Chunquan
School of Pharmacy, Second Military Medical University, 325 Guohe Road, Shanghai 200433, People's Republic of China.
School of Pharmacy, East China University of Science & Technology, 130 Meilong Road, Shanghai 200237, People's Republic of China.
Eur J Med Chem. 2018 Jan 1;143:1510-1523. doi: 10.1016/j.ejmech.2017.10.043. Epub 2017 Oct 16.
Lack of novel antifungal agents and severe drug resistance have led to high incidence and associated mortality of invasive fungal infections. To tackle the challenges, novel antifungal agents with new chemotype, fungicidal activity and anti-resistant potency are highly desirable. On the basis of our previously identified simplified analogue of antifungal natural product sampangine, systemic structure-activity relationships were clarified and two novel derivatives showed promising features as novel antifungal lead compounds. Compounds 22b and 22c showed good fungicidal activity against both fluconazole-sensitive and fluconazole-resistant Candida albicans strains. Moreover, they were proven to be potent inhibitors of Candida albicans biofilm formation and yeast-to-hypha morphological transition by down-regulating biofilm-associated genes. In a rat vaginal Candida albicans infection model, compounds 22b and 22c showed excellent therapeutic effects with low toxicity. The results highlighted the potential of sampangine derivatives to overcome fluconazole-related and biofilm-related drug resistance.
新型抗真菌药物的缺乏以及严重的耐药性导致侵袭性真菌感染的高发病率和相关死亡率。为应对这些挑战,非常需要具有新化学类型、杀菌活性和抗耐药效力的新型抗真菌药物。基于我们之前鉴定的抗真菌天然产物桑帕金的简化类似物,阐明了系统的构效关系,两种新型衍生物作为新型抗真菌先导化合物显示出有前景的特性。化合物22b和22c对氟康唑敏感和氟康唑耐药的白色念珠菌菌株均表现出良好的杀菌活性。此外,通过下调生物膜相关基因,它们被证明是白色念珠菌生物膜形成和酵母-菌丝形态转变的有效抑制剂。在大鼠阴道白色念珠菌感染模型中,化合物22b和22c显示出优异的治疗效果且毒性低。结果突出了桑帕金衍生物克服氟康唑相关和生物膜相关耐药性的潜力。