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Nature Communications,2022年

Wancang Liu, Liyan Yu, Quanjie Li, Tao Zhang, Zhe Guo, Jing Wang, Xu Pang, Xiaoyu Li, Dongrong Yi, Yongxin Zhang, Xiaomei Fang, Shan Cen, Jianyuan Zhao, Rui Zhou, Tao Deng, Fei Guo, Chen Liang, Zhenlong Liu

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The emergence of new highly pathogenic and drug-resistant influenza strains urges the development of novel therapeutics for influenza A virus (IAV). Here, we report the discovery of an anti-IAV microbial metabolite called APL-16-5 that was originally isolated from the plant endophytic fungus Aspergillus sp. CPCC 400735. APL-16-5 binds to both the E3 ligase TRIM25 and IAV polymerase subunit PA, leading to TRIM25 ubiquitination of PA and subsequent degradation of PA in the proteasome. This mode of action conforms to that of a proteolysis targeting chimera which employs the cellular ubiquitin-proteasome machinery to chemically induce the degradation of target proteins. Importantly, APL-16-5 potently inhibits IAV and protects mice from lethal IAV infection. Therefore, we have identified a natural microbial metabolite with potent in vivo anti-IAV activity and the potential of becoming a new IAV therapeutic. The antiviral mechanism of APL-16-5 opens the possibility of improving its anti-IAV potency and specificity by adjusting its affinity for TRIM25 and viral PA protein through medicinal chemistry.

    Nature Communications,2022年

    Wancang Liu, Liyan Yu, Quanjie Li, Tao Zhang, Zhe Guo, Jing Wang, Xu Pang, Xiaoyu Li, Dongrong Yi, Yongxin Zhang, Xiaomei Fang, Shan Cen, Jianyuan Zhao, Rui Zhou, Tao Deng, Fei Guo, Chen Liang, Zhenlong Liu

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    The emergence of new highly pathogenic and drug-resistant influenza strains urges the development of novel therapeutics for influenza A virus (IAV). Here, we report the discovery of an anti-IAV microbial metabolite called APL-16-5 that was originally isolated from the plant endophytic fungus Aspergillus sp. CPCC 400735. APL-16-5 binds to both the E3 ligase TRIM25 and IAV polymerase subunit PA, leading to TRIM25 ubiquitination of PA and subsequent degradation of PA in the proteasome. This mode of action conforms to that of a proteolysis targeting chimera which employs the cellular ubiquitin-proteasome machinery to chemically induce the degradation of target proteins. Importantly, APL-16-5 potently inhibits IAV and protects mice from lethal IAV infection. Therefore, we have identified a natural microbial metabolite with potent in vivo anti-IAV activity and the potential of becoming a new IAV therapeutic. The antiviral mechanism of APL-16-5 opens the possibility of improving its anti-IAV potency and specificity by adjusting its affinity for TRIM25 and viral PA protein through medicinal chemistry.

      Signal Transduction and Targeted Therapy,2022年

      Yan Chang, Quanjie Li, Saisai Guo, Zixiong Zhang, Jing Wang, Xiaoyu Li, Qian Liu, Jiwei Ding, Dongrong Yi, Yongxin Zhang, Ling Ma, Jianyuan Zhao, Lidan Wang, Shan Cen, Chen Liang, Fei Guo, Jianwei Wang, Xiaojing Dong, Xiaobo Lei

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      npj Digital Medicine,2022年

      Mingkai Chen, Liwen Yao, Chenxia Zhang, Ming Xu, Zhengqiang Wang, Xiaoda Jiang, Jing Wang, Yong Xiao, Yijie Zhu, Mengjuan Lin, Xun Li, Honggang Yu, Renquan Luo, Lianlian Wu, Jiao Li, Shi Chen

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      BMC Pregnancy and Childbirth,2022年

      Damin Zhu, Jing Wang, Zhaolian Wei, Ping Zhou, Danyang Li, Cong Ma, Xiaofeng Xu, Yunxia Cao, Yulu Yang, Qiushuang Wang, Xiaoqing Peng

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      NPG Asia Materials,2022年

      Feng Xu, Yufei Ma, Jing Wang, Ting Han, Yuchen Dong, Wei Dai, Jing Li, Bin Gao, Hui Guo

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