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核糖体的原子诱变:迈向对翻译的分子理解

Atomic mutagenesis of the ribosome: towards a molecular understanding of translation.

作者信息

Polacek Norbert

机构信息

Department of Chemistry and Biochemistry, University of Bern Freiestrasse 3 CH-3012 Bern, Switzerland.

出版信息

Chimia (Aarau). 2013;67(5):322-6. doi: 10.2533/chimia.2013.322.

DOI:10.2533/chimia.2013.322
PMID:23863265
Abstract

The multifaceted repertoire of non-protein-coding RNAs (ncRNAs) in organisms of all three domains of life emphasizes their fundamental role in biology. Research in my lab focuses on revealing the regulatory and catalytic function of small and large ncRNAs in different model organisms. In particular we are interested in understanding ncRNA/protein complexes such as the vault complex or the ribosome. The ribosome, the central enzyme of protein biosynthesis, is a multifunctional ribonucleoprotein particle composed of two unequal subunits that translates the genome's message into all proteins needed for life. The crucial role the translation machinery plays in gene expression is also mirrored by the fact that the ribosome represents the main target for antibiotics. Decades of genetic, biochemical and recent crystallographic studies revealed the ribosome as an RNA-enzyme with roots in the 'RNA world'. Despite these experimental insights, the catalytic and regulatory mechanisms of the ribosomal RNA are still not fully understood at the molecular level. To unravel the detailed contributions of rRNA nucleotides for protein synthesis we have developed and applied an 'atomic mutagenesis' approach. This tool allows the role of specific 23S rRNA functional groups and even individual atoms to be studied during various stages of the ribosomal elongation cycle with thus far unequalled precision. This experimental approach bridges the disciplines of biochemistry and organic chemistry and has recently revealed specific functional 23S rRNA groups involved in peptide bond synthesis, peptidyl-tRNA hydrolysis, GTPase activation, and tRNA translocation.

摘要

生命三界所有生物体中的非蛋白质编码RNA(ncRNA)具有多方面的功能,这凸显了它们在生物学中的基础作用。我实验室的研究重点是揭示不同模式生物中小ncRNA和大ncRNA的调控及催化功能。我们尤其感兴趣的是了解诸如穹窿体复合物或核糖体等ncRNA/蛋白质复合物。核糖体是蛋白质生物合成的核心酶,是一种多功能核糖核蛋白颗粒,由两个大小不等的亚基组成,它将基因组信息转化为生命所需的所有蛋白质。翻译机制在基因表达中所起的关键作用也反映在核糖体是抗生素的主要作用靶点这一事实上。数十年的遗传学、生物化学研究以及最近的晶体学研究表明,核糖体是一种起源于“RNA世界”的RNA酶。尽管有这些实验见解,但核糖体RNA的催化和调控机制在分子水平上仍未完全了解。为了阐明rRNA核苷酸对蛋白质合成的具体贡献,我们开发并应用了一种“原子诱变”方法。该工具能够在核糖体延伸循环的各个阶段以迄今无与伦比的精度研究特定23S rRNA功能基团甚至单个原子的作用。这种实验方法跨越了生物化学和有机化学学科,最近揭示了参与肽键合成、肽基-tRNA水解、GTP酶激活和tRNA易位的特定23S rRNA功能基团。

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1
Atomic mutagenesis of the ribosome: towards a molecular understanding of translation.核糖体的原子诱变:迈向对翻译的分子理解
Chimia (Aarau). 2013;67(5):322-6. doi: 10.2533/chimia.2013.322.
2
Ribosomal intersubunit bridge B2a is involved in factor-dependent translation initiation and translational processivity.核糖体亚基间桥B2a参与依赖因子的翻译起始和翻译持续性。
J Mol Biol. 2009 Jan 16;385(2):405-22. doi: 10.1016/j.jmb.2008.10.065. Epub 2008 Nov 5.
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The structure of helix 89 of 23S rRNA is important for peptidyl transferase function of Escherichia coli ribosome.23S rRNA 中 89 号螺旋结构对于大肠杆菌核糖体的肽基转移酶功能很重要。
FEBS Lett. 2011 Oct 3;585(19):3073-8. doi: 10.1016/j.febslet.2011.08.030. Epub 2011 Aug 27.
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The identification of the determinants of the cyclic, sequential binding of elongation factors tu and g to the ribosome.对延伸因子tu和g与核糖体的循环、顺序结合的决定因素的鉴定。
J Mol Biol. 2009 Feb 27;386(3):802-13. doi: 10.1016/j.jmb.2008.12.071. Epub 2009 Jan 6.
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Characterization of in vitro and in vivo mutations in non-conserved nucleotides in the ribosomal RNA recognition domain for the ribotoxins ricin and sarcin and the translation elongation factors.核糖体毒素蓖麻毒素和帚曲霉素以及翻译延伸因子的核糖体RNA识别结构域中非保守核苷酸的体外和体内突变特征分析
J Mol Biol. 1999 Jan 15;285(2):567-80. doi: 10.1006/jmbi.1998.2337.
6
A base pair between tRNA and 23S rRNA in the peptidyl transferase centre of the ribosome.核糖体肽基转移酶中心内tRNA与23S rRNA之间的碱基对。
Nature. 1995 Sep 28;377(6547):309-14. doi: 10.1038/377309a0.
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Periodic conformational changes in rRNA: monitoring the dynamics of translating ribosomes.核糖体RNA的周期性构象变化:监测翻译中核糖体的动态变化
Mol Cell. 2000 Jul;6(1):159-71.
8
Mutational analysis of the ribosome.核糖体的突变分析
Adv Genet. 2007;58:89-119. doi: 10.1016/S0065-2660(06)58004-6.
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Importance of transient structures during post-transcriptional refolding of the pre-23S rRNA and ribosomal large subunit assembly.前23S rRNA转录后重折叠及核糖体大亚基组装过程中瞬时结构的重要性。
J Mol Biol. 2004 Sep 17;342(3):725-41. doi: 10.1016/j.jmb.2004.07.082.
10
Cleavage of the sarcin-ricin loop of 23S rRNA differentially affects EF-G and EF-Tu binding.核糖体 23S rRNA 上的 sarcin-ricin 环的切割会对 EF-G 和 EF-Tu 的结合产生不同的影响。
Nucleic Acids Res. 2010 Jul;38(12):4108-19. doi: 10.1093/nar/gkq151. Epub 2010 Mar 9.

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