Mendelsohn Bryce A, Li Ai-Min, Vargas Claudia A, Riehman Kristen, Watson Alice, Fridovich-Keil Judith L
Department of Biology, Emory College, Emory University School of Medicine, Room 325.2 Whitehead Building, 615 Michael Street, Atlanta, GA 30322, USA.
Nucleic Acids Res. 2003 Oct 15;31(20):5838-47. doi: 10.1093/nar/gkg810.
Scp160p is a multiple KH-domain RNA-binding protein in yeast known to associate with polyribosomes as an mRNP component, although its biological role remains unclear. As a genetic approach to examine Scp160p function, we applied an ethyl methanesulfonate (EMS) screen for loci synthetically lethal with scp160 loss, and identified a single candidate gene, EAP1, whose protein product functions in translation as an eIF4E-binding protein, with additional uncharacterized spindle pole body functions. To reconfirm scp160/eap1 synthetic lethality, we constructed a strain null for both genes, supported by an SCP160 maintenance plasmid. We used this strain to establish a quantitative assay for both Scp160p and Eap1p functions in vivo, and applied this assay to demonstrate that Y109A EAP1, a previously described allele of EAP1 that cannot bind eIF4E, is markedly impaired with regard to its SCP160-related activity. In addition, we explored the possibility of physical interaction between Eap1p and Scp160p, and discovered that Eap1p associates with Scp160p-containing complexes in an RNA-dependent manner. Finally, we probed the impact of EAP1 loss on Scp160p, and vice versa, and found that loss of each gene resulted in a significant change in either the complex associations or subcellular distribution of the other protein. These results clearly support the hypothesis that Scp160p plays a role in translation, demonstrate that the interaction of SCP160 and EAP1 is biologically significant, and provide important tools for future studies of the in vivo functions of both genes.
Scp160p是酵母中一种具有多个KH结构域的RNA结合蛋白,已知它作为一种mRNA核糖体蛋白复合物的成分与多核糖体相关联,但其生物学功能仍不清楚。作为研究Scp160p功能的一种遗传学方法,我们应用甲磺酸乙酯(EMS)筛选与scp160缺失合成致死的基因座,并鉴定出一个单一的候选基因EAP1,其蛋白产物在翻译过程中作为一种eIF4E结合蛋白发挥作用,同时还具有其他未明确的纺锤体极体功能。为了再次确认scp160/eap1的合成致死性,我们构建了一个由SCP160维持质粒支持的双基因缺失菌株。我们利用该菌株建立了一种体内定量检测Scp160p和Eap1p功能的方法,并应用该方法证明Y109A EAP1(一种先前描述的不能结合eIF4E的EAP1等位基因)在其与SCP160相关的活性方面明显受损。此外,我们探索了Eap1p与Scp160p之间发生物理相互作用的可能性,发现Eap1p以RNA依赖的方式与含有Scp160p的复合物相关联。最后,我们探究了EAP1缺失对Scp160p的影响,反之亦然,发现每个基因的缺失都会导致另一种蛋白的复合物关联或亚细胞分布发生显著变化。这些结果清楚地支持了Scp160p在翻译中发挥作用的假设,证明了SCP160和EAP1之间的相互作用具有生物学意义,并为未来研究这两个基因的体内功能提供了重要工具。