Institute of Biophysics and Physical Biochemistry, Regensburg Center for Biochemistry, University of Regensburg, 93053 Regensburg, Germany
RNA. 2023 Sep;29(9):1339-1354. doi: 10.1261/rna.079582.123. Epub 2023 May 23.
DEAD-box RNA helicases are implicated in most aspects of RNA biology, where these enzymes unwind short RNA duplexes in an ATP-dependent manner. During the central step of the unwinding cycle, the two domains of the helicase core form a distinct closed conformation that destabilizes the RNA duplex, which ultimately leads to duplex melting. Despite the importance of this step for the unwinding process no high-resolution structures of this state are available. Here, I used nuclear magnetic resonance spectroscopy and X-ray crystallography to determine structures of the DEAD-box helicase DbpA in the closed conformation, complexed with substrate duplexes and single-stranded unwinding product. These structures reveal that DbpA initiates duplex unwinding by interacting with up to three base-paired nucleotides and a 5' single-stranded RNA duplex overhang. These high-resolution snapshots, together with biochemical assays, rationalize the destabilization of the RNA duplex and are integrated into a conclusive model of the unwinding process.
DEAD-box RNA 解旋酶在 RNA 生物学的各个方面都有涉及,这些酶以 ATP 依赖的方式解开短的 RNA 双链。在解旋循环的中心步骤中,解旋酶核心的两个结构域形成独特的封闭构象,使 RNA 双链不稳定,最终导致双链解链。尽管这一步骤对解旋过程非常重要,但目前还没有该状态的高分辨率结构。在这里,我使用核磁共振波谱学和 X 射线晶体学来确定 DEAD-box 解旋酶 DbpA 在封闭构象下与底物双链体和单链解旋产物复合物的结构。这些结构表明,DbpA 通过与多达三个碱基配对的核苷酸以及 5'单链 RNA 双链突出端相互作用,从而起始双链体的解旋。这些高分辨率的快照,以及生化分析,合理化了 RNA 双链的去稳定化,并整合到解旋过程的一个结论性模型中。