Hsu Min, Yu Eun Young, Sprušanský Ondrej, McEachern Michael J, Lue Neal F
Department of Microbiology & Immunology, WR Hearst Microbiology Research Center, Weill Medical College of Cornell University, New York, New York, USA.
Eukaryot Cell. 2012 Jul;11(7):932-42. doi: 10.1128/EC.05319-11. Epub 2012 Apr 27.
Est1 and Ebs1 in Saccharomyces cerevisiae are paralogous proteins that arose through whole-genome duplication and that serve distinct functions in telomere maintenance and translational regulation. Here we present our functional analysis of the sole Est1/Ebs1 homologue in the related budding yeast Kluyveromyces lactis (named KlEst1). We show that similar to other Est1s, KlEst1 is required for normal telomere maintenance in vivo and full telomerase primer extension activity in vitro. KlEst1 also associates with telomerase RNA (Ter1) and an active telomerase complex in cell extracts. Both the telomere maintenance and the Ter1 association functions of KlEst1 require its N-terminal domain but not its C terminus. Analysis of clusters of point mutations revealed residues in both the N-terminal TPR subdomain and the downstream helical subdomain (DSH) that are important for telomere maintenance and Ter1 association. A UV cross-linking assay was used to establish a direct physical interaction between KlEst1 and a putative stem-loop in Ter1, which also requires both the TPR and DSH subdomains. Moreover, similar to S. cerevisiae Ebs1 (ScEbs1) (but not ScEst1), KlEst1 confers rapamycin sensitivity and may be involved in nonsense-mediated decay. Interestingly, unlike telomere regulation, this apparently separate function of KlEst1 requires its C-terminal domain. Our findings provide insights on the mechanisms and evolution of Est1/Ebs1 homologues in budding yeast and present an attractive model system for analyzing members of this multifunctional protein family.
酿酒酵母中的Est1和Ebs1是通过全基因组复制产生的旁系同源蛋白,它们在端粒维持和翻译调控中发挥着不同的功能。在此,我们展示了对相关出芽酵母乳酸克鲁维酵母中唯一的Est1/Ebs1同源物(命名为KlEst1)的功能分析。我们发现,与其他Est1s相似,KlEst1在体内正常端粒维持和体外端粒酶引物延伸活性方面是必需的。KlEst1还与细胞提取物中的端粒酶RNA(Ter1)和活性端粒酶复合物相关联。KlEst1的端粒维持和Ter1关联功能都需要其N端结构域,而不是C端。对点突变簇的分析揭示了N端TPR亚结构域和下游螺旋亚结构域(DSH)中的残基,这些残基对端粒维持和Ter1关联很重要。使用紫外线交联试验建立了KlEst1与Ter1中假定的茎环之间的直接物理相互作用,这也需要TPR和DSH亚结构域。此外,与酿酒酵母Ebs1(ScEbs1)(但不是ScEst1)相似,KlEst1赋予雷帕霉素敏感性,可能参与无义介导的衰变。有趣的是,与端粒调控不同,KlEst1的这种明显独立的功能需要其C端结构域。我们的发现为出芽酵母中Est1/Ebs1同源物的机制和进化提供了见解,并为分析这个多功能蛋白家族的成员提供了一个有吸引力的模型系统。