免疫
基础(线性代数)
DNA
生物
计算生物学
遗传学
免疫系统
数学
几何学
作者
Matthieu Haudiquet,A. Chakravarti,Zhiying Zhang,Jacqueline Ramı́rez,Alba Herrero del Valle,Paul Dominic B. Olinares,Rachel Lavenir,Mohammed Ahmed,M. Jason de la Cruz,Brian T. Chait,Samuel H. Sternberg,Aude Bernheim,Dinshaw J. Patel
标识
DOI:10.1101/2025.04.02.646746
摘要
ABSTRACT Bacterial immune systems exhibit remarkable diversity and modularity, as a consequence of the continuous selective pressures imposed by phage predation. Despite recent mechanistic advances, the evolutionary origins of many antiphage immune systems remain elusive, especially for those that encode homologs of the Structural Maintenance of Chromosomes (SMC) superfamily, which are essential for chromosome maintenance and DNA repair across domains of life. Here, we elucidate the structural basis and evolutionary emergence of Lamassu, a bacterial immune system family featuring diverse effectors but a core conserved SMC-like sensor. Using cryo-EM, we determined structures of the Vibrio cholerae Lamassu complex in both apo- and dsDNA-bound states, revealing unexpected stoichiometry and topological architectures. We further demonstrate how Lamassu specifically senses dsDNA in vitro and phage replication origins in vivo , thereby triggering the formation of LmuA tetramers that activate the Cap4 nuclease domain. Our findings reveal that Lamassu evolved via exaptation of the bacterial Rad50-Mre11 DNA repair system to form a compact, modular sensor for viral replication, exemplifying how cellular machinery can be co-opted for novel immune functions.
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