College of Pharmacy, Chung-Ang University, Seoul 06974, Republic of Korea.
Department of Global Innovative Drugs, Graduate School of Chung-Ang University, Seoul 06974, Republic of Korea.
Nucleic Acids Res. 2024 Sep 23;52(17):10563-10574. doi: 10.1093/nar/gkae723.
CRISPR-Cas systems function as adaptive immune mechanisms in bacteria and archaea and offer protection against phages and other mobile genetic elements. Among many types of CRISPR-Cas systems, Type I CRISPR-Cas systems are most abundant, with target interference depending on a multi-subunit, RNA-guided complex known as Cascade that recruits a transacting helicase nuclease, Cas3, to degrade the target. While structural studies on several other types of Cas3 have been conducted long ago, it was only recently that the structural study of Type I-C Cas3 in complex with Cascade was revealed, shedding light on how Cas3 achieve its activity in the Cascade complex. In the present study, we elucidated the first structure of standalone Type I-C Cas3 from Neisseria lactamica (NlaCas3). Structural analysis revealed that the histidine-aspartate (HD) nuclease active site of NlaCas3 was bound to two Fe2+ ions that inhibited its activity. Moreover, NlaCas3 could cleave both single-stranded and double-stranded DNA in the presence of Ni2+ or Co2+, showing the highest activity in the presence of both Ni2+ and Mg2+ ions. By comparing the structural studies of various Cas3 proteins, we determined that our NlaCas3 stays in an inactive conformation, allowing us to understand the structural changes associated with its activation and their implication.
CRISPR-Cas 系统在细菌和古菌中作为适应性免疫机制发挥作用,为其提供针对噬菌体和其他移动遗传元件的保护。在众多类型的 CRISPR-Cas 系统中,I 型 CRISPR-Cas 系统最为丰富,其靶标干扰依赖于一种称为 Cascade 的多亚基 RNA 指导复合物,该复合物招募转激活解旋酶核酸酶 Cas3 来降解靶标。尽管很久以前就对其他几种 Cas3 进行了结构研究,但直到最近,I 型-Cas3 与 Cascade 复合物的结构研究才被揭示,这揭示了 Cas3 如何在 Cascade 复合物中实现其活性。在本研究中,我们阐明了来自乳奈瑟氏球菌(NlaCas3)的首个独立 I 型-C Cas3 的结构。结构分析表明,NlaCas3 的组氨酸-天冬氨酸(HD)核酸酶活性位点与两个抑制其活性的 Fe2+ 离子结合。此外,NlaCas3 可在 Ni2+ 或 Co2+ 的存在下切割单链和双链 DNA,在 Ni2+ 和 Mg2+ 离子同时存在时表现出最高的活性。通过比较各种 Cas3 蛋白的结构研究,我们确定我们的 NlaCas3 保持在非活性构象,这使我们能够理解与其激活相关的结构变化及其意义。