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影响核糖体蛋白 S12 的易错和易错限制突变。

Error-prone and error-restrictive mutations affecting ribosomal protein S12.

机构信息

School of Biological Sciences, University of Missouri-Kansas City, 5007 Rockhill Road, Kansas City, MO 64110, USA.

出版信息

J Mol Biol. 2011 Jul 1;410(1):1-9. doi: 10.1016/j.jmb.2011.04.068. Epub 2011 May 7.

Abstract

Ribosomal protein S12 plays a pivotal role in decoding functions on the ribosome. X-ray crystallographic analyses of ribosomal complexes have revealed that S12 is involved in the inspection of codon-anticodon pairings in the ribosomal A site, as well as in the succeeding domain rearrangements of the 30S subunit that are essential for accommodation of aminoacyl-tRNA. A role for S12 in tRNA selection is also well supported by classical genetic analyses; mutations affecting S12 are readily isolated in bacteria and organelles, since specific alterations in S12 confer resistance to the error-inducing antibiotic streptomycin, and the ribosomes from many such streptomycin-resistant S12 mutants display decreased levels of miscoding. However, substitutions that confer resistance to streptomycin likely represent a very distinct class of all possible S12 mutants. Until recently, the technical difficulties in generating random, unselectable mutations in essential genes in complex operons have generally precluded the analysis of other classes of S12 alterations. Using a recombineering approach, we have targeted the Escherichia coli rpsL gene, encoding S12, for random mutagenesis and screened the resulting mutants for effects on decoding fidelity. We have recovered over 40 different substitutions located throughout the S12 protein that alter the accuracy of translation without substantially affecting the sensitivity to streptomycin. Moreover, this collection includes mutants that promote miscoding, as well as those that restrict decoding errors. These results affirm the importance of S12 in decoding processes and indicate that alterations in this essential protein can have diverse effects on the accuracy of decoding.

摘要

核糖体蛋白 S12 在核糖体的解码功能中起着关键作用。核糖体复合物的 X 射线晶体分析表明,S12 参与了核糖体 A 位上密码子-反密码子配对的检查,以及 30S 亚基后续结构域的重排,这些重排对于氨酰-tRNA 的适应是必不可少的。S12 在 tRNA 选择中的作用也得到了经典遗传分析的充分支持;影响 S12 的突变在细菌和细胞器中很容易被分离出来,因为 S12 的特定改变赋予了对诱导错误的抗生素链霉素的抗性,并且来自许多这种链霉素抗性 S12 突变体的核糖体显示出较低水平的误码。然而,赋予链霉素抗性的取代可能代表了所有可能 S12 突变体的一个非常独特的类别。直到最近,在复杂操纵子中的必需基因中产生随机、不可选择突变的技术困难通常排除了对其他 S12 改变类别的分析。使用重组方法,我们针对编码 S12 的大肠杆菌 rpsL 基因进行了随机诱变,并筛选了由此产生的突变体对解码保真度的影响。我们已经恢复了超过 40 种不同的取代,这些取代位于 S12 蛋白的整个区域,改变了翻译的准确性,而不会显著影响对链霉素的敏感性。此外,这一集合包括促进误码的突变体,以及限制解码错误的突变体。这些结果证实了 S12 在解码过程中的重要性,并表明这种必需蛋白的改变可以对解码的准确性产生不同的影响。

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