Lackmann Fredrik, Belikov Sergey, Wieslander Lars
Department of Molecular Biosciences, The Wenner-Gren Institute, Stockholm University, Stockholm, Sweden.
PLoS One. 2017 Apr 7;12(4):e0175506. doi: 10.1371/journal.pone.0175506. eCollection 2017.
Ribosome synthesis is an essential process in all cells. In Sacharomyces cerevisiae, the precursor rRNA, 35S pre-rRNA, is folded and assembled into a 90S pre-ribosomal complex. The 40S ribosomal subunit is processed from the pre-ribosomal complex. This requires concerted action of small nucleolar RNAs, such as U3 snoRNA, and a large number of trans-acting factors. Mrd1p, one of the essential small ribosomal subunit synthesis factors is required for cleavage of the 35S pre-rRNA to generate 18S rRNA of the small ribosomal subunit. Mrd1p is evolutionary conserved in all eukaryotes and in yeast it contains five RNA Binding Domains (RBDs) separated by linker regions. One of these linkers, Linker 2 between RBD2 and RBD3, is conserved in length, predicted to be structured and contains conserved clusters of amino acid residues. In this report, we have analysed Linker 2 mutations and demonstrate that it is essential for Mrd1p function during pre-ribosomal processing. Extensive changes of amino acid residues as well as specific changes of conserved clusters of amino acid residues were found to be incompatible with synthesis of pre-40S ribosomes and cell growth. In addition, gross changes in primary sequence of Linker 2 resulted in Mrd1p instability, leading to degradation of the N-terminal part of the protein. Our data indicates that Linker 2 is functionally coupled to RBD2 and argues for that these domains constitute a functional module in Mrd1p. We conclude that Linker 2 has an essential role for Mrd1p beyond just providing a defined length between RBD2 and RBD3.
核糖体合成是所有细胞中的一个基本过程。在酿酒酵母中,前体rRNA,即35S前体rRNA,会折叠并组装成一个90S前核糖体复合物。40S核糖体亚基从前核糖体复合物中加工而来。这需要小核仁RNA(如U3 snoRNA)和大量反式作用因子的协同作用。Mrd1p是小核糖体亚基合成的必需因子之一,它参与35S前体rRNA的切割,以产生小核糖体亚基的18S rRNA。Mrd1p在所有真核生物中都具有进化保守性,在酵母中它包含五个由连接区隔开的RNA结合结构域(RBD)。其中一个连接区,即RBD2和RBD3之间的连接区2,长度保守,预计具有结构,并且包含保守的氨基酸残基簇。在本报告中,我们分析了连接区2的突变,并证明它在核糖体前体加工过程中对Mrd1p的功能至关重要。发现氨基酸残基的广泛变化以及保守氨基酸残基簇的特定变化与40S前核糖体的合成和细胞生长不相容。此外,连接区2一级序列的总体变化导致Mrd1p不稳定,导致该蛋白N端部分降解。我们的数据表明连接区2在功能上与RBD2相关联,并表明这些结构域构成了Mrd1p中的一个功能模块。我们得出结论,连接区2对Mrd1p具有至关重要的作用,而不仅仅是在RBD2和RBD3之间提供确定的长度。