Department of Biological Sciences, Graduate School of Science, The University of Tokyo, Tokyo, Japan.
Department of Biophysics, Graduate School of Science, Kyoto University, Kyoto, Japan.
Commun Biol. 2021 Dec 10;4(1):1386. doi: 10.1038/s42003-021-02918-0.
RNA helicases are enzymes that generally unwind double-stranded RNA using ATP hydrolysis energy, mainly involved in RNA metabolism, transcription, translation, and mRNA splicing. While the helicase core is crucial for RNA unwinding activity, N- and C-terminal extensions of specific helicases may contain an intrinsically disordered region for electrostatic interaction, resulting in the formation of droplets in the cytoplasm. However, how the disordered region of the RNA helicase contributes to RNA unwinding and dissociation remains unclear. Here, we focused on Bombyx mori Vasa, which unwinds truncated target transposon RNAs from the piRNA-induced silencing complex piRISC. In this study, we used single-molecule techniques to visualise how Vasa dynamically interacts with piRISC and investigate how Vasa oligomerization is involved in the process of piRNA amplification, named the ping-pong pathway. We found that Vasa's oligomerization is required during these processes in vitro and in vivo, and that Vasa triggers the dissociation of truncated RNA in heterogeneous pathways. Our single-molecule results suggest that oligomerized Vasa guides the timing of the process regulating overall dissociation efficiency.
RNA 解旋酶是一类利用 ATP 水解能量将双链 RNA 解旋的酶,主要参与 RNA 代谢、转录、翻译和 mRNA 剪接。虽然解旋酶核心对于 RNA 解旋活性至关重要,但特定解旋酶的 N 端和 C 端延伸可能包含一个固有无序区域,用于静电相互作用,导致细胞质中形成液滴。然而,RNA 解旋酶的无序区域如何促进 RNA 解旋和解离仍不清楚。在这里,我们专注于家蚕 Vasa,它从 piRNA 诱导的沉默复合物 piRISC 中解旋截断的靶转座子 RNA。在这项研究中,我们使用单分子技术来可视化 Vasa 如何与 piRISC 动态相互作用,并研究 Vasa 寡聚化如何参与 piRNA 扩增过程,称为乒乓途径。我们发现 Vasa 的寡聚化在体外和体内这些过程中是必需的,并且 Vasa 触发截断 RNA 在异质途径中的解离。我们的单分子结果表明,寡聚化的 Vasa 指导调节整体解离效率的过程的时间。