Instituto de Biomedicina de Valencia (IBV)-CSIC and CIBER de Enfermedades Raras (CIBERER)-ISCIII, Valencia, Spain.
Centre for Bacterial Resistance Biology, Imperial College London, London, UK.
Nat Microbiol. 2024 Jan;9(1):161-172. doi: 10.1038/s41564-023-01550-4. Epub 2024 Jan 4.
Phages can use a small-molecule communication arbitrium system to coordinate lysis-lysogeny decisions, but the underlying mechanism remains unknown. Here we determined that the arbitrium system in Bacillus subtilis phage phi3T modulates the bacterial toxin-antitoxin system MazE-MazF to regulate the phage life cycle. We show that phi3T expresses AimX and YosL, which bind to and inactivate MazF. AimX also inhibits the function of phi3T_93, a protein that promotes lysogeny by binding to MazE and releasing MazF. Overall, these mutually exclusive interactions promote the lytic cycle of the phage. After several rounds of infection, the phage-encoded AimP peptide accumulates intracellularly and inactivates the phage antiterminator AimR, a process that eliminates aimX expression from the aimP promoter. Therefore, when AimP increases, MazF activity promotes reversion back to lysogeny, since AimX is absent. Altogether, our study reveals the evolutionary strategy used by arbitrium to control lysis-lysogeny by domesticating and fine-tuning a phage-defence mechanism.
噬菌体可以使用小分子通讯仲裁系统来协调裂解-溶原决策,但潜在的机制仍然未知。在这里,我们确定枯草芽孢杆菌噬菌体 phi3T 的仲裁系统调节细菌毒素-抗毒素系统 MazE-MazF 来调节噬菌体生命周期。我们表明 phi3T 表达 AimX 和 YosL,它们结合并失活 MazF。AimX 还抑制了 phi3T_93 的功能,phi3T_93 通过与 MazE 结合并释放 MazF 来促进溶原。总的来说,这些相互排斥的相互作用促进了噬菌体的裂解周期。经过几轮感染,噬菌体编码的 AimP 肽积累在细胞内并使噬菌体终止子抑制剂 AimR 失活,这一过程从 aimP 启动子中消除了 aimX 的表达。因此,当 AimP 增加时,由于 AimX 不存在,MazF 活性促进了回溶原的逆转。总的来说,我们的研究揭示了仲裁系统通过驯化和微调噬菌体防御机制来控制裂解-溶原的进化策略。