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拟南芥滞留和剪接复合物通过前体 mRNA 剪接调控根和胚胎发育。

An Arabidopsis Retention and Splicing complex regulates root and embryo development through pre-mRNA splicing.

机构信息

National Key Laboratory of Crop Biology, College of Life Sciences, Shandong Agricultural University, Taian 271018, China.

Department of Botany, University of Wisconsin-Madison, Madison, Wisconsin 53706, USA.

出版信息

Plant Physiol. 2022 Aug 29;190(1):621-639. doi: 10.1093/plphys/kiac256.

Abstract

Pre-mRNA splicing is an important step in the posttranscriptional processing of transcripts and a key regulator of development. The heterotrimeric retention and splicing (RES) complex plays vital roles in the growth and development of yeast, zebrafish, and humans by mediating pre-mRNA splicing of multiple genes. However, whether the RES complex is conserved in plants and what specific functions it has remain unknown. In this study, we identified Arabidopsis (Arabidopsis thaliana) BUD13 (AtBUD13), GROWTH, DEVELOPMENT AND SPLICING 1 (GDS1), and DAWDLE (DDL) as the counterparts of the yeast RES complex subunits Bud site selection protein 13 (Bud13), U2 snRNP component Snu17 (Snu17), and Pre-mRNA leakage protein 1, respectively. Moreover, we showed that RES is an ancient complex evolutionarily conserved in eukaryotes. GDS1 directly interacts with both AtBUD13 and DDL in nuclear speckles. The BUD13 domain of AtBUD13 and the RNA recognition motif domain of GDS1 are necessary and sufficient for AtBUD13-GDS1 interaction. Mutants of AtBUD13, GDS1, and DDL failed to properly splice multiple genes involved in cell proliferation and showed defects in early embryogenesis and root development. In addition, we found that GDS1 and DDL interact, respectively, with the U2 small nuclear ribonucleoproteins auxiliary factor AtU2AF65B and the NineTeen Complex-related splicing factor SKIP, which are essential for early steps of spliceosome assembly and recognition of splice sites. Altogether, our work reveals that the Arabidopsis RES complex is important for root and early embryo development by modulating pre-mRNA splicing.

摘要

前体 mRNA 剪接是转录后加工的重要步骤,也是发育的关键调节剂。三聚体保留和剪接(RES)复合物通过介导多个基因的前体 mRNA 剪接,在酵母、斑马鱼和人类的生长和发育中发挥重要作用。然而,RES 复合物是否在植物中保守,以及它具有什么特定功能尚不清楚。在这项研究中,我们鉴定出拟南芥(Arabidopsis thaliana)的 BUD13(AtBUD13)、GROWTH、DEVELOPMENT AND SPLICING 1(GDS1)和 DAWDLE(DDL)分别是酵母 RES 复合物亚基 Bud 位点选择蛋白 13(Bud13)、U2 snRNP 成分 Snu17(Snu17)和 Pre-mRNA 泄漏蛋白 1 的对应物。此外,我们表明 RES 是一个在真核生物中进化上保守的古老复合物。GDS1 直接在核斑中与 AtBUD13 和 DDL 相互作用。AtBUD13 的 BUD13 结构域和 GDS1 的 RNA 识别基序结构域对于 AtBUD13-GDS1 相互作用是必要和充分的。AtBUD13、GDS1 和 DDL 的突变体不能正确剪接多个涉及细胞增殖的基因,并在早期胚胎发生和根发育中表现出缺陷。此外,我们发现 GDS1 和 DDL 分别与 U2 小核核糖核蛋白辅助因子 AtU2AF65B 和 NineTeen Complex 相关剪接因子 SKIP 相互作用,这对于剪接体组装的早期步骤和剪接位点的识别是必不可少的。总之,我们的工作揭示了拟南芥 RES 复合物通过调节前体 mRNA 剪接对根和早期胚胎发育很重要。

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