Dai Zhikang, Chen Yu, Guan Zeyuan, Chen Xueting, Tan Keyi, Yang Kaiyue, Yan Xuhui, Liu Yidong, Gong Zhou, Han Wenyuan, Zou Tingting
National Key Laboratory of Agricultural Microbiology, Hubei Hongshan Laboratory, Huazhong Agricultural University, 430070 Wuhan, Hubei, China.
National Key Laboratory of Crop Genetic Improvement, Hubei Hongshan Laboratory, Huazhong Agricultural University, 430070 Wuhan, Hubei, China.
Nucleic Acids Res. 2025 Jan 24;53(3). doi: 10.1093/nar/gkaf059.
Prokaryotic Argonaute proteins (pAgos) defend the host against invading nucleic acids, including plasmids and viruses. Short pAgo systems confer immunity by inducing cell death upon detecting invading nucleic acids. However, the activation mechanism of the SiAgo system, comprising a short pAgo from the archaeon Sulfolobus islandicus and its associated proteins SiAga1 and SiAga2, remains largely unknown. Here, we determined the cryo-electron microscopy structures of the SiAgo-Aga1 apo complex and the RNA-DNA-bound SiAgo-Aga1 complex at resolutions of 2.7 and 3.0 Å, respectively. Our results revealed that a positively charged pocket is generated from the interaction between SiAgo and SiAga1, exhibiting an architecture similar to APAZ-pAgo of short pAgo systems and accommodating the nucleic acids. Further investigation elucidated the conserved mechanism of nucleic acid recognition by SiAgo-Aga1. Both the SiAgo-Aga1 interaction and nucleic acid recognition by the complex are essential for antiviral defense. Biochemical and structural analyses demonstrated that SiAgo-Aga1 undergoes extensive conformational changes upon binding to the RNA-DNA duplex, thereby licensing its interaction with the effector SiAga2 to trigger the immune response. Overall, our findings highlight the evolutionary conservation of Agos across phylogenetic clades and provide structural insights into the activation mechanism of the SiAgo system.
原核生物的Argonaute蛋白(pAgos)可保护宿主抵御包括质粒和病毒在内的入侵核酸。短pAgo系统通过在检测到入侵核酸时诱导细胞死亡来赋予免疫能力。然而,由古菌冰岛硫化叶菌的一种短pAgo及其相关蛋白SiAga1和SiAga2组成的SiAgo系统的激活机制在很大程度上仍不清楚。在此,我们分别以2.7 Å和3.0 Å的分辨率确定了SiAgo-Aga1无核酸复合物以及RNA-DNA结合的SiAgo-Aga1复合物的冷冻电子显微镜结构。我们的结果表明,SiAgo和SiAga1之间的相互作用产生了一个带正电的口袋,其结构类似于短pAgo系统的APAZ-pAgo,并可容纳核酸。进一步的研究阐明了SiAgo-Aga1识别核酸的保守机制。SiAgo-Aga1相互作用以及该复合物对核酸的识别对于抗病毒防御都是必不可少的。生化和结构分析表明,SiAgo-Aga1在与RNA-DNA双链体结合时会发生广泛的构象变化,从而使其能够与效应蛋白SiAga2相互作用以触发免疫反应。总体而言,我们的研究结果突出了Agos在系统发育分支中的进化保守性,并为SiAgo系统的激活机制提供了结构上的见解。