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鉴定 U2 snRNP 蛋白 SF3A1 中的非典型 RNA 结合域。

Identification of a noncanonical RNA binding domain in the U2 snRNP protein SF3A1.

机构信息

Department of Basic Medical Sciences, University of Arizona, College of Medicine-Phoenix, Phoenix, Arizona 85004, USA.

School of Life Sciences, Arizona State University, Tempe, Arizona 85287, USA.

出版信息

RNA. 2019 Nov;25(11):1509-1521. doi: 10.1261/rna.072256.119. Epub 2019 Aug 5.

Abstract

During splicing of pre-mRNA, 5' and 3' splice sites are brought within proximity by interactions between the pre-mRNA bound U1 and U2 snRNPs, followed by recruitment of the tri-snRNP for assembly of the mature spliceosome. Previously, we identified an interaction between the U2 snRNP-specific protein SF3A1 and the stem-loop 4 (SL4) of the U1 snRNA that occurs during the early steps of spliceosome assembly. Although harboring many annotated domains, SF3A1 lacks a canonical RNA binding domain. To identify the U1-SL4 binding region in SF3A1, we expressed amino- and carboxy-terminal deletion constructs using a HeLa cell-based cell free expression system. UV-crosslinking of the truncated proteins with P-U1-SL4 RNA identified the carboxy-terminal ubiquitin-like (UBL) domain of SF3A1 as the RNA binding region. Characterization of the interaction between SF3A1-UBL and U1-SL4 by electrophoretic mobility shift assay and surface plasmon resonance determined high binding affinity ( = ∼97 nM), and revealed the double-stranded G-C rich stem of U1-SL4 as an important feature for binding to the UBL domain. Further, mutations of two conserved tyrosine residues, Y772 and Y773, were found to cause a two- and fivefold decrease in the binding affinity for U1-SL4, respectively. Finally, we found that SF3A1-UBL can specifically pull down the U1 snRNP from HeLa nuclear extract, demonstrating its capacity to bind U1-SL4 in the context of the intact snRNP. Thus, the data show that the UBL domain of SF3A1 can function as an RNA binding domain and that mutations in this region may interfere with U1-SL4 binding.

摘要

在 pre-mRNA 的剪接过程中,5' 和 3' 剪接位点通过 pre-mRNA 结合的 U1 和 U2 snRNPs 之间的相互作用而接近,随后招募三 snRNP 以组装成熟的剪接体。以前,我们鉴定了 U2 snRNP 特异性蛋白 SF3A1 与 U1 snRNA 的茎环 4(SL4)之间的相互作用,该相互作用发生在剪接体组装的早期步骤中。尽管 SF3A1 含有许多注释的结构域,但它缺乏典型的 RNA 结合结构域。为了鉴定 SF3A1 中与 U1-SL4 结合的区域,我们使用基于 HeLa 细胞的无细胞表达系统表达了氨基和羧基末端缺失的构建体。用 P-U1-SL4 RNA 对截断的蛋白质进行 UV 交联,鉴定出 SF3A1 的羧基末端泛素样(UBL)结构域是 RNA 结合区域。通过电泳迁移率变动分析和表面等离子体共振对 SF3A1-UBL 和 U1-SL4 之间的相互作用进行的表征确定了高结合亲和力(=∼97 nM),并揭示了 U1-SL4 的双链富含 G-C 的茎是与 UBL 结构域结合的重要特征。此外,发现两个保守的酪氨酸残基 Y772 和 Y773 的突变分别导致对 U1-SL4 的结合亲和力降低两到五倍。最后,我们发现 SF3A1-UBL 可以从 HeLa 核提取物中特异性下拉 U1 snRNP,证明其在完整 snRNP 中结合 U1-SL4 的能力。因此,数据表明 SF3A1 的 UBL 结构域可以作为 RNA 结合结构域,并且该区域的突变可能干扰 U1-SL4 的结合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a654/6795144/7869a6d869df/1509f01.jpg

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