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tRNA-TrpCCA 的内含子对于酿酒酵母的生长和翻译是可有可无的。

The intron of tRNA-TrpCCA is dispensable for growth and translation of Saccharomyces cerevisiae.

机构信息

Department of Chemistry, Graduate School of Science, Nagoya University, Nagoya, 464-8602, Japan.

出版信息

RNA. 2011 Sep;17(9):1760-9. doi: 10.1261/rna.2851411. Epub 2011 Jul 22.

Abstract

A part of eukaryotic tRNA genes harbor an intron at one nucleotide 3' to the anticodon, so that removal of the intron is an essential processing step for tRNA maturation. While some tRNA introns have important roles in modification of certain nucleotides, essentiality of the tRNA intron in eukaryotes has not been tested extensively. This is partly because most of the eukaryotic genomes have multiple genes encoding an isoacceptor tRNA. Here, we examined whether the intron of tRNA-Trp(CCA) genes, six copies of which are scattered on the genome of yeast, Saccharomyces cerevisiae, is essential for growth or translation of the yeast in vivo. We devised a procedure to remove all of the tRNA introns from the yeast genome iteratively with marker cassettes containing both positive and negative markers. Using this procedure, we removed all the introns from the six tRNA-Trp(CCA) genes, and found that the intronless strain grew normally and expressed tRNA-Trp(CCA) in an amount similar to that of the wild-type genes. Neither incorporation of (35)S-labeled amino acids into a TCA-insoluble fraction nor the major protein pattern on SDS-PAGE/2D gel were affected by complete removal of the intron, while expression levels of some proteins were marginally affected. Therefore, the tRNA-Trp(CCA) intron is dispensable for growth and bulk translation of the yeast. This raises the possibility that some mechanism other than selective pressure from translational efficiency maintains the tRNA intron on the yeast genome.

摘要

真核生物 tRNA 基因的一部分在反密码子的 3'端有一个内含子,因此去除内含子是 tRNA 成熟的一个必要加工步骤。虽然一些 tRNA 内含子在某些核苷酸的修饰中具有重要作用,但真核生物中 tRNA 内含子的必要性尚未得到广泛验证。这在一定程度上是因为大多数真核生物基因组都有多拷贝基因编码同工受体 tRNA。在这里,我们研究了酵母 Saccharomyces cerevisiae 基因组中散布的六个 tRNA-Trp(CCA)基因的内含子是否对酵母体内的生长或翻译是必需的。我们设计了一种程序,用含有正、负标记物的标记盒,通过迭代的方式从酵母基因组中去除所有的 tRNA 内含子。使用这种程序,我们从六个 tRNA-Trp(CCA)基因中去除了所有的内含子,发现无内含子的菌株生长正常,并且以与野生型基因相似的量表达 tRNA-Trp(CCA)。(35)S 标记氨基酸掺入 TCA 不溶性部分,以及 SDS-PAGE/2D 凝胶上的主要蛋白质图谱都不受完全去除内含子的影响,而一些蛋白质的表达水平则受到轻微影响。因此,tRNA-Trp(CCA)内含子对于酵母的生长和大量翻译是可有可无的。这提出了一种可能性,即除了翻译效率的选择压力之外,还有其他机制维持酵母基因组上的 tRNA 内含子。

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