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The Phenotype of Many Independently Isolated+1 Frameshift Suppressor Mutants Supports a Pivotal Role of the P-Site in Reading Frame Maintenance

机译:许多独立孤立的+1移码抑制子突变体的表型支持P网站在阅读框架维护中的关键作用。

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摘要

The main features of translation are similar in all organisms on this planet and one important feature of it is the way the ribosome maintain the reading frame. We have earlier characterized several bacterial mutants defective in tRNA maturation and found that some of them correct a +1 frameshift mutation; i.e. such mutants possess an error in reading frame maintenance. Based on the analysis of the frameshifting phenotype of such mutants we proposed a pivotal role of the ribosomal grip of the peptidyl-tRNA to maintain the correct reading frame. To test the model in an unbiased way we first isolated many (467) independent mutants able to correct a +1 frameshift mutation and thereafter tested whether or not their frameshifting phenotypes were consistent with the model. These 467+1 frameshift suppressor mutants had alterations in 16 different loci of which 15 induced a defective tRNA by hypo- or hypermodifications or altering its primary sequence. All these alterations of tRNAs induce a frameshift error in the P-site to correct a +1 frameshift mutation consistent with the proposed model. Modifications next to and 39 of the anticodon (position 37), like 1-methylguanosine, are important for proper reading frame maintenance due to their interactions with components of the ribosomal P-site. Interestingly, two mutants had a defect in a locus (rpsI), which encodes ribosomal protein S9. The C-terminal of this protein contacts position 32-34 of the peptidyl-tRNA and is thus part of the P-site environment. The two rpsI mutants had a C-terminal truncated ribosomal protein S9 that destroys its interaction with the peptidyl-tRNA resulting in +1 shift in the reading frame. The isolation and characterization of the S9 mutants gave strong support of our model that the ribosomal grip of the peptidylt-RNA is pivotal for the reading frame maintenance.
机译:翻译的主要特征在该星球上的所有生物中都相似,并且其一个重要特征是核糖体维持阅读框架的方式。我们较早地鉴定了几种在tRNA成熟中有缺陷的细菌突变体,并发现其中一些可纠正+1移码突变。即,这样的突变体在阅读框架维持中具有错误。基于对此类突变体的移码表型的分析,我们提出了肽基-tRNA核糖体握持的关键作用,以维持正确的阅读框架。为了以无偏方式测试模型,我们首先分离了许多(467)独立的能够纠正+1移码突变的突变体,然后测试了它们的移码表型是否与模型一致。这些467 + 1移码抑制子突变体在16个不同基因座中均有改变,其中15个通过过低或过高修饰或改变其主要序列诱导了有缺陷的tRNA。 tRNA的所有这些改变都会在P位点引起移码错误,以纠正与提出的模型一致的+1移码突变。反密码子旁边和39位(第37位)的修饰,如1-甲基鸟苷,由于它们与核糖体P位点的相互作用,对于正确阅读框架的维护很重要。有趣的是,两个突变体在编码核糖体蛋白S9的基因座(rpsI)中存在缺陷。该蛋白质的C末端接触肽基tRNA的32-34位,因此是P位环境的一部分。这两个rpsI突变体的C端截短的核糖体蛋白S9破坏了其与肽基tRNA的相互作用,导致阅读框中的+1移位。 S9突变体的分离和鉴定为我们的模型提供了有力的支持,即肽基RNA的核糖体抓握对于维持阅读框至关重要。

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