Yeakley J M, Tronchère H, Olesen J, Dyck J A, Wang H Y, Fu X D
Division of Cellular and Molecular Medicine, Department and School of Medicine, University of California, San Diego, La Jolla, California 92093-0651, USA.
J Cell Biol. 1999 May 3;145(3):447-55. doi: 10.1083/jcb.145.3.447.
The SR superfamily of splicing factors and regulators is characterized by arginine/serine (RS)-rich domains, which are extensively modified by phosphorylation in cells. In vitro binding studies revealed that RS domain-mediated protein interactions can be differentially affected by phosphorylation. Taking advantage of the single nonessential SR protein-specific kinase Sky1p in Saccharomyces cerevisiae, we investigated RS domain interactions in vivo using the two-hybrid assay. Strikingly, all RS domain-mediated interactions were abolished by SKY1 deletion and were rescuable by yeast or mammalian SR protein-specific kinases, indicating that phosphorylation has a far greater impact on RS domain interactions in vivo than in vitro. To understand this dramatic effect, we examined the localization of SR proteins and found that SC35 was shifted to the cytoplasm in sky1Delta yeast, although this phenomenon was not obvious with ASF/SF2, indicating that nuclear import of SR proteins may be differentially regulated by phosphorylation. Using a transcriptional repression assay, we further showed that most LexA-SR fusion proteins depend on Sky1p to efficiently recognize the LexA binding site in a reporter, suggesting that molecular targeting of RS domain-containing proteins within the nucleus was also affected. Together, these results reveal multiple phosphorylation-dependent steps for SR proteins to interact with one another efficiently and specifically, which may ultimately determine the splicing activity and specificity of these factors in mammalian cells.
剪接因子和调节因子的SR超家族的特征是富含精氨酸/丝氨酸(RS)的结构域,这些结构域在细胞中会被磷酸化广泛修饰。体外结合研究表明,RS结构域介导的蛋白质相互作用会受到磷酸化的不同影响。利用酿酒酵母中单一的非必需SR蛋白特异性激酶Sky1p,我们使用双杂交试验在体内研究了RS结构域的相互作用。令人惊讶的是,所有RS结构域介导的相互作用都因SKY1缺失而被消除,并可被酵母或哺乳动物SR蛋白特异性激酶挽救,这表明磷酸化在体内对RS结构域相互作用的影响远大于体外。为了理解这种显著效应,我们检查了SR蛋白的定位,发现SC35在sky1Delta酵母中转移到了细胞质中,尽管ASF/SF2没有明显这种现象,这表明SR蛋白的核输入可能受到磷酸化的差异调节。使用转录抑制试验,我们进一步表明,大多数LexA-SR融合蛋白依赖Sky1p来有效识别报告基因中的LexA结合位点,这表明细胞核内含有RS结构域的蛋白质的分子靶向也受到了影响。总之,这些结果揭示了SR蛋白相互之间有效且特异性地相互作用的多个磷酸化依赖步骤,这最终可能决定这些因子在哺乳动物细胞中的剪接活性和特异性。