Stankovic Nancy, Schloesser Marie, Joris Marine, Sauvage Eric, Hanikenne Marc, Motte Patrick
Laboratory of Functional Genomics and Plant Molecular Imaging (N.S., M.S., M.J., M.H., P.M.), Laboratory of Macromolecular Crystallography (E.S.), PhytoSYSTEMS (M.H., P.M.), Centre for Protein Engineering (CIP; N.S., M.S., M.J., E.S., M.H., P.M.), Department of Life Sciences, and Centre for Assistance in Technology of Microscopy (CATM; P.M.), University of Liège, B-4000 Liège, Belgium.
Laboratory of Functional Genomics and Plant Molecular Imaging (N.S., M.S., M.J., M.H., P.M.), Laboratory of Macromolecular Crystallography (E.S.), PhytoSYSTEMS (M.H., P.M.), Centre for Protein Engineering (CIP; N.S., M.S., M.J., E.S., M.H., P.M.), Department of Life Sciences, and Centre for Assistance in Technology of Microscopy (CATM; P.M.), University of Liège, B-4000 Liège, Belgium
Plant Physiol. 2016 Feb;170(2):1000-13. doi: 10.1104/pp.15.01338. Epub 2015 Dec 23.
Ser/Arg-rich (SR) proteins are essential nucleus-localized splicing factors. Our prior studies showed that Arabidopsis (Arabidopsis thaliana) RSZ22, a homolog of the human SRSF7 SR factor, exits the nucleus through two pathways, either dependent or independent on the XPO1 receptor. Here, we examined the expression profiles and shuttling dynamics of the Arabidopsis SRSF1 subfamily (SR30, SR34, SR34a, and SR34b) under control of their endogenous promoter in Arabidopsis and in transient expression assay. Due to its rapid nucleocytoplasmic shuttling and high expression level in transient assay, we analyzed the multiple determinants that regulate the localization and shuttling dynamics of SR34. By site-directed mutagenesis of SR34 RNA-binding sequences and Arg/Ser-rich (RS) domain, we further show that functional RRM1 or RRM2 are dispensable for the exclusive protein nuclear localization and speckle-like distribution. However, mutations of both RRMs induced aggregation of the protein whereas mutation in the RS domain decreased the stability of the protein and suppressed its nuclear accumulation. Furthermore, the RNA-binding motif mutants are defective for their export through the XPO1 (CRM1/Exportin-1) receptor pathway, but retain nucleocytoplasmic mobility. We performed a yeast two hybrid screen with SR34 as bait and discovered SR45 as a new interactor. SR45 is an unusual SR splicing factor bearing two RS domains. These interactions were confirmed in planta by FLIM-FRET and BiFC and the roles of SR34 domains in protein-protein interactions were further studied. Altogether, our report extends our understanding of shuttling dynamics of Arabidopsis SR splicing factors.
富含丝氨酸/精氨酸(SR)的蛋白质是必需的定位于细胞核的剪接因子。我们之前的研究表明,拟南芥(Arabidopsis thaliana)中的RSZ22,即人类SRSF7 SR因子的同源物,通过两种途径离开细胞核,一种依赖于XPO1受体,另一种不依赖于XPO1受体。在这里,我们在拟南芥及其内源性启动子的控制下,以及在瞬时表达分析中,研究了拟南芥SRSF1亚家族(SR30、SR34、SR34a和SR34b)的表达谱和穿梭动力学。由于其在瞬时分析中快速的核质穿梭和高表达水平,我们分析了调节SR34定位和穿梭动力学的多个决定因素。通过对SR34 RNA结合序列和富含精氨酸/丝氨酸(RS)结构域进行定点诱变,我们进一步表明,功能性的RRM1或RRM2对于蛋白质的排他性核定位和斑点状分布是可有可无的。然而,两个RRM的突变都会诱导蛋白质聚集,而RS结构域的突变会降低蛋白质的稳定性并抑制其核积累。此外,RNA结合基序突变体通过XPO1(CRM1/输出蛋白-1)受体途径进行输出存在缺陷,但保留了核质流动性。我们以SR34为诱饵进行了酵母双杂交筛选,发现SR45是一个新的相互作用蛋白。SR45是一种不寻常的SR剪接因子,带有两个RS结构域。这些相互作用通过荧光寿命成像-荧光共振能量转移(FLIM-FRET)和双分子荧光互补(BiFC)在植物体内得到证实,并进一步研究了SR34结构域在蛋白质-蛋白质相互作用中的作用。总之,我们的报告扩展了我们对拟南芥SR剪接因子穿梭动力学的理解。