Li Zhuang, Liu Na, Yang Wanzhen, Tu Jie, Huang Yahui, Wang Wei, Sheng Chunquan
State Key Laboratory of Bioengineering Reactor, And Shanghai Key Laboratory of New Drug Design, School of Pharmacy, East China University of Science & Technology, Shanghai 200237, China.
School of Pharmacy, Second Military Medical University (Naval Medical University), Shanghai 200433, China.
Acta Pharm Sin B. 2023 Jul;13(7):3080-3092. doi: 10.1016/j.apsb.2023.02.008. Epub 2023 Feb 21.
Invasive fungal infections (IFIs) have been associated with high mortality, highlighting the urgent need for developing novel antifungal strategies. Herein the first light-responsive antifungal agents were designed by optical control of fungal ergosterol biosynthesis pathway with photocaged triazole lanosterol 14-demethylase (CYP51) inhibitors. The photocaged triazoles completely shielded the CYP51 inhibition. The content of ergosterol in fungi before photoactivation and after photoactivation was 4.4% and 83.7%, respectively. Importantly, the shielded antifungal activity (MIC ≥ 64 μg/mL) could be efficiently recovered (MIC = 0.5-8 μg/mL) by light irradiation. The new chemical tools enable optical control of fungal growth arrest, morphological conversion and biofilm formation. The ability for high-precision antifungal treatment was validated by models. The light-activated compound was comparable to fluconazole in prolonging survival in larvae with a median survival of 14 days and reducing fungal burden in the mouse skin infection model. Overall, this study paves the way for precise regulation of antifungal therapy with improved efficacy and safety.
侵袭性真菌感染(IFI)与高死亡率相关,这凸显了开发新型抗真菌策略的迫切需求。在此,通过用光笼蔽的三唑羊毛甾醇14-脱甲基酶(CYP51)抑制剂对真菌麦角甾醇生物合成途径进行光学控制,设计出了首批光响应性抗真菌剂。光笼蔽的三唑完全屏蔽了CYP51抑制作用。光激活前和光激活后真菌中麦角甾醇的含量分别为4.4%和83.7%。重要的是,通过光照可有效恢复被屏蔽的抗真菌活性(MIC≥64μg/mL)(MIC = 0.5 - 8μg/mL)。这些新的化学工具能够对真菌生长停滞、形态转变和生物膜形成进行光学控制。通过模型验证了其进行高精度抗真菌治疗的能力。在幼虫中,光激活化合物在延长中位生存期至14天方面与氟康唑相当,并且在小鼠皮肤感染模型中降低了真菌负荷。总体而言,本研究为精确调控抗真菌治疗以提高疗效和安全性铺平了道路。