Wang Jingge, Li Zhao, Lang Hao, Fu Wenfeng, Gao Yina, Yin Sen, Sun Panpan, Li Zhaolong, Huang Jiafeng, Liu Songqing, Zhu Yun, Sun Fei, Li Dong, Gao Pu
Department of Radiology, Zhuhai People's Hospital, The Affiliated Hospital of Beijing Institute of Technology, School of Life Science, Beijing Institute of Technology, Beijing 100081, China.
National Laboratory of Biomacromolecules, CAS Center for Excellence in Biomacromolecules, Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Cell. 2025 Jul 10;188(14):3744-3756.e16. doi: 10.1016/j.cell.2025.04.022. Epub 2025 May 8.
Cyclic-oligonucleotide-based antiphage signaling systems (CBASS), a widespread antiviral bacterial immune system homologous to the mammalian cGAS-STING pathway, synthesizes cyclic nucleotide signals and triggers effector proteins to induce cell death and prevent viral propagation. Among various CBASS effectors, phospholipase effectors are the first to be discovered and are one of the most widespread families that sense cyclic dinucleotides to degrade cell membrane phospholipids. Here, we report that CBASS phospholipases assemble from a dimeric inactive state into active higher-order filamentous oligomers upon sensing cyclic dinucleotides. Using a combined approach of cryo-electron microscopy and X-ray crystallography, we have determined the structures of CBASS phospholipase in the inactive dimeric state, the cyclic-dinucleotide-bound active higher-order state, and the substrate-analog-bound catalytic mimicry state, thereby visualizing the complete conformational reorganization process. Complemented by functional assays of intermolecular binding, phospholipase enzymatic activity, in vitro membrane disruption, and in vivo antiphage efficiency, our work elucidates the mechanisms of assembly and activation of CBASS phospholipases.
基于环寡核苷酸的抗噬菌体信号系统(CBASS)是一种广泛存在的抗病毒细菌免疫系统,与哺乳动物的cGAS-STING途径同源,它能合成环核苷酸信号并触发效应蛋白以诱导细胞死亡并阻止病毒传播。在各种CBASS效应器中,磷脂酶效应器是最早被发现的,也是最广泛的家族之一,它们能感知环二核苷酸以降解细胞膜磷脂。在此,我们报告CBASS磷脂酶在感知环二核苷酸后会从二聚体无活性状态组装成活性更高阶的丝状寡聚体。通过冷冻电子显微镜和X射线晶体学相结合的方法,我们确定了CBASS磷脂酶在无活性二聚体状态、环二核苷酸结合的活性高阶状态以及底物类似物结合的催化模拟状态下的结构,从而可视化了完整的构象重组过程。通过分子间结合、磷脂酶酶活性、体外膜破坏和体内抗噬菌体效率的功能测定进行补充,我们的工作阐明了CBASS磷脂酶的组装和激活机制。