Yuan Chen, Yuning Peng, Yuanyuan Liu, Yewei Zhang, Hao Xiao, Wenyuan Chen, Binning Sun, Jianxun He, Xiaorong Yang, Jing Zheng, Hongrong Liu
Since conventional antibiotics frequently fail to effectively treat infections caused by encapsulated bacteria, phage therapy has gained attention as a potential treatment approach. However, the understanding of phages that can specifically infect encapsulated bacteria-particularly myophages-remains limited, especially regarding their structures with multi-states, and infection and contraction mechanisms, such as tail fiber conformational changes and what triggers tail contraction. In this study, we resolved the intact structures of phi92, which possesses a broad host range encompassing both encapsulated and non-encapsulated strains of Escherichia coli strains and diverse Salmonella strains, in both its extended and contracted states by cryo-electron microscopy (cryo-EM). We identified and built atomic models for most components in the head, connector, tail, and baseplate. Notably, we inferred that one of the three fibers corresponds to fiber I (gp143) and identified another as fiber III (gp147). We propose that fiber I specifically degrades host capsular polysaccharides, while fiber III mediates stable adsorption to the host cell membrane. Phi92 achieves broad host adaptability through its multiple fibers, thereby conferring a significant competitive advantage when infecting bacteria with distinct types. Comparison of the two states reveals that significant conformational rearrangements of fiber III and baseplate periphery play a pivotal role in triggering sheath contraction. This study elucidates the trigger mechanism of the contractile nanomachine in phi92-like myophages with a baseplate architecture, providing a crucial structural foundation for developing myophage-based therapies against encapsulated, drug-resistant bacteria.