McBride Anne E, Conboy Ana K, Brown Shanique P, Ariyachet Chaiyaboot, Rutledge Kate L
Department of Biology, Bowdoin College, Brunswick, ME 04011, USA.
Nucleic Acids Res. 2009 Jul;37(13):4322-30. doi: 10.1093/nar/gkp349. Epub 2009 May 19.
The discovery of roles for arginine methylation in intracellular transport and mRNA splicing has focused attention on the methylated arginine-glycine (RG)-rich domains found in many eukaryotic RNA-binding proteins. Sequence similarity among these highly repetitive RG domains, combined with interactions between RG-rich proteins, raises the question of whether these regions are general interaction motifs or whether there is specificity within these domains. Using the essential Saccharomyces cerevisiae mRNA-binding protein Npl3 (ScNpl3) as a model system, we first tested the importance of the RG domain for protein function. While Npl3 lacking the RG domain could not support growth of cells lacking Npl3, surprisingly, expression of the RG domain alone supported partial growth of these cells. To address the specificity of this domain, we created chimeric forms of ScNpl3 with RG-rich domains of S. cerevisiae nucleolar proteins, Gar1 and Nop1 (ScGar1, ScNop1), or of the Candida albicans Npl3 ortholog (CaNpl3). Whereas the CaNpl3 RG chimeric protein retained nearly wild-type function in S. cerevisiae, the ScGar1 and ScNop1 RG domains significantly reduced Npl3 function and self-association, indicating RG domain specificity. Nuclear localization of Npl3 also requires specific RG sequences, yet heterologous RG domains allow similar modulation of Npl3 transport by arginine methylation.
精氨酸甲基化在细胞内运输和mRNA剪接中的作用的发现,使人们将注意力集中在许多真核RNA结合蛋白中发现的富含甲基化精氨酸 - 甘氨酸(RG)的结构域上。这些高度重复的RG结构域之间的序列相似性,加上富含RG的蛋白质之间的相互作用,引发了一个问题:这些区域是通用的相互作用基序,还是这些结构域内存在特异性。我们使用必需的酿酒酵母mRNA结合蛋白Npl3(ScNpl3)作为模型系统,首先测试了RG结构域对蛋白质功能的重要性。虽然缺乏RG结构域的Npl3不能支持缺乏Npl3的细胞生长,但令人惊讶的是,单独的RG结构域的表达支持了这些细胞的部分生长。为了解决这个结构域的特异性问题,我们创建了ScNpl3与酿酒酵母核仁蛋白Gar1和Nop1(ScGar1,ScNop1)或白色念珠菌Npl3直系同源物(CaNpl3)的富含RG结构域的嵌合形式。虽然CaNpl3 RG嵌合蛋白在酿酒酵母中保留了几乎野生型的功能,但ScGar1和ScNop1 RG结构域显著降低了Npl3的功能和自缔合,表明RG结构域具有特异性。Npl3的核定位也需要特定的RG序列,然而异源RG结构域允许通过精氨酸甲基化对Npl3运输进行类似的调节。