Department of Chemistry and Biochemistry, Texas Tech University, Lubbock, Texas 79409, United States.
Department of Biochemistry, Molecular Biology, and Biophysics, University of Minnesota, Minneapolis, Minnesota 55455, United States.
Biochemistry. 2024 Oct 1;63(19):2449-2462. doi: 10.1021/acs.biochem.4c00408. Epub 2024 Sep 21.
The RNA recognition motif (RRM) is a conserved and ubiquitous RNA-binding domain that plays essential roles in mRNA splicing, polyadenylation, transport, and stability. RRM domains exhibit remarkable diversity in binding partners, interacting with various sequences of single- and double-stranded RNA, despite their small size and compact fold. During pre-mRNA cleavage and polyadenylation, the RRM domain from CSTF2 recognizes U- or G/U-rich RNA sequences downstream from the cleavage and polyadenylation site to regulate the process. Given the importance of alternative cleavage and polyadenylation in increasing the diversity of mRNAs, the exact mechanism of binding of RNA to the RRM of CSTF2 remains unclear, particularly in the absence of a structure of this RRM bound to a native RNA substrate. Here, we performed a series of NMR titration and spin relaxation experiments, which were complemented by paramagnetic relaxation enhancement measurements and rigid-body docking, to characterize the interactions of the CSTF2 RRM with a U-rich ligand. Our results reveal a multistep binding process involving differences in ps-ns time scale dynamics and potential structural changes, particularly in the C-terminalα-helix. These results provide insights into how the CSTF2 RRM domain binds to U-rich RNA ligands and offer a greater understanding for the molecular basis of the regulation of pre-mRNA cleavage and polyadenylation.
RNA 识别基序(RRM)是一种保守且普遍存在的 RNA 结合域,在 mRNA 剪接、多聚腺苷酸化、运输和稳定性中发挥着重要作用。RRM 结构域在结合伴侣方面表现出显著的多样性,尽管其体积小且折叠紧凑,但可以与单链和双链 RNA 的各种序列相互作用。在 pre-mRNA 切割和多聚腺苷酸化过程中,CSTF2 的 RRM 结构域识别切割和多聚腺苷酸化位点下游的 U 或 U/U 富含 RNA 序列,以调节该过程。鉴于选择性切割和多聚腺苷酸化在增加 mRNA 多样性方面的重要性,RNA 与 CSTF2 的 RRM 结合的确切机制仍不清楚,特别是在没有该 RRM 与天然 RNA 底物结合的结构的情况下。在这里,我们进行了一系列 NMR 滴定和自旋弛豫实验,并用顺磁松弛增强测量和刚体对接进行了补充,以表征 CSTF2 RRM 与富含 U 的配体的相互作用。我们的结果揭示了一个多步结合过程,涉及 ps-ns 时间尺度动力学和潜在结构变化的差异,特别是在 C 末端α-螺旋中。这些结果深入了解了 CSTF2 RRM 结构域如何与富含 U 的 RNA 配体结合,并为 pre-mRNA 切割和多聚腺苷酸化的调控提供了分子基础的更好理解。