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2
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Structural analysis of the peptidyl transferase region in ribosomal RNA of the eukaryote Xenopus laevis.非洲爪蟾核糖体核糖核酸中肽基转移酶区域的结构分析
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Neighborhood of 16S rRNA nucleotides U788/U789 in the 30S ribosomal subunit determined by site-directed crosslinking.通过定点交联确定的30S核糖体亚基中16S rRNA核苷酸U788/U789的邻近区域。
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DNA insecticide developed from the Lymantria dispar 5.8S ribosomal RNA gene provides a novel biotechnology for plant protection.由舞毒蛾 5.8S 核糖体 RNA 基因开发的 DNA 杀虫剂为植物保护提供了一种新的生物技术。
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Expression of distinct maternal and somatic 5.8S, 18S, and 28S rRNA types during zebrafish development.斑马鱼发育过程中不同母源和体细胞5.8S、18S及28S核糖体RNA类型的表达
RNA. 2017 Aug;23(8):1188-1199. doi: 10.1261/rna.061515.117. Epub 2017 May 12.

本文引用的文献

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Variable and conserved elements of human ribosomes surrounding the mRNA at the decoding and upstream sites.在解码位点和上游位点围绕mRNA的人类核糖体的可变和保守元件。
Nucleic Acids Res. 2004 Jun 18;32(11):3282-93. doi: 10.1093/nar/gkh657. Print 2004.
2
The ribosomal A site-bound sense and stop codons are similarly positioned towards the A1823-A1824 dinucleotide of the 18S ribosomal RNA.与核糖体A位点结合的有义密码子和终止密码子与18S核糖体RNA的A1823 - A1824二核苷酸的位置相似。
FEBS Lett. 2003 Jul 31;548(1-3):97-102. doi: 10.1016/s0014-5793(03)00755-5.
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Locking and unlocking of ribosomal motions.核糖体运动的锁定与解锁。
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Positioning of mRNA codons with respect to 18S rRNA at the P and E sites of human ribosome.人核糖体P位和E位上mRNA密码子相对于18S rRNA的定位。
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[The mRNA codon environment at the P and E sites of human ribosomes deduced from photo crosslinking with pUUUGUU].[通过与pUUUGUU进行光交联推导得出的人核糖体P位和E位的mRNA密码子环境]
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Structure of the mammalian ribosome-channel complex at 17A resolution.哺乳动物核糖体通道复合物的17埃分辨率结构。
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Positioning of the mRNA stop signal with respect to polypeptide chain release factors and ribosomal proteins in 80S ribosomes.80S核糖体中mRNA终止信号相对于多肽链释放因子和核糖体蛋白的定位。
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Structure of the 80S ribosome from Saccharomyces cerevisiae--tRNA-ribosome and subunit-subunit interactions.酿酒酵母80S核糖体的结构——tRNA与核糖体及亚基间的相互作用
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Possible interaction sites of mRNA, tRNA, translation factors and the nascent peptide in 5S, 5.8S and 28S rRNA in in vivo assembled eukaryotic ribosomal complexes.体内组装的真核核糖体复合物中5S、5.8S和28S rRNA与mRNA、tRNA、翻译因子及新生肽的可能相互作用位点。
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在程序化的和游离的人类核糖体中,5.8 S rRNA的中心部分排列方式不同。

The central part of the 5.8 S rRNA is differently arranged in programmed and free human ribosomes.

作者信息

Graifer Dmitri, Molotkov Maxim, Eremina Anna, Ven'yaminova Aliya, Repkova Marina, Karpova Galina

机构信息

Institute of Chemical Biology and Fundamental Medicine, Siberian Branch of the Russian Academy of Sciences, Novosibirsk, 630090, Russia.

出版信息

Biochem J. 2005 Apr 1;387(Pt 1):139-45. doi: 10.1042/BJ20041450.

DOI:10.1042/BJ20041450
PMID:15527424
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1134941/
Abstract

A sequence-specific modification of the human 5.8 S rRNA in isolated 60 S subunits, non-programmed 80 S ribosomes and ribosomes complexed with mRNA and tRNAs was studied with the use of a derivative of the nonaribonucleotide UCUGUGUUU bearing a perfluorophenylazide group on the C-5 atom of the 5'-terminal uridine. Part of the oligonucleotide moiety of the derivative was complementary to the 5.8 S rRNA sequence ACACA in positions 82-86 flanked by two guanines at the 5'-terminus. The target for the cross-linking was identified as nucleotide G89 on the 5.8 S RNA. In addition, several ribosomal proteins were modified by the oligonucleotide derivative bound to the 5.8 S rRNA and proteins L6 and L8 were among them. Application of these results to known cryo-electron microscopy images of eukaryotic 60 S subunits made it possible to suggest that the central part of the 5.8 S rRNA containing the sequence 82-86 and proteins L6 and L8 are located at the base of the L1 stalk of the 60 S subunit. The efficacy of cross-linking in non-programmed 80 S ribosomes was much lower than in isolated 60 S subunits and in programmed 80 S ribosomes. We suggest that the difference in the accessibilities of the central part of the 5.8 S rRNA in the programmed and non-programmed 80 S ribosomes is caused by a conformational switch that seems to be required to dissociate the 80 S ribosomes into the subunits after termination of translation to allow initiation of translation of a new template.

摘要

利用一种在5'-末端尿苷的C-5原子上带有全氟苯基叠氮化物基团的非核糖核苷酸UCUGUGUUU衍生物,研究了分离的60 S亚基、非程序化80 S核糖体以及与mRNA和tRNA复合的核糖体中人类5.8 S rRNA的序列特异性修饰。该衍生物的寡核苷酸部分在82 - 86位与5.8 S rRNA序列ACACA互补,5'-末端两侧各有一个鸟嘌呤。交联的靶点被确定为5.8 S RNA上的核苷酸G89。此外,几种核糖体蛋白被与5.8 S rRNA结合的寡核苷酸衍生物修饰,其中包括蛋白L6和L8。将这些结果应用于已知的真核60 S亚基低温电子显微镜图像,使得人们有可能推测,包含序列82 - 86的5.8 S rRNA的中央部分以及蛋白L6和L8位于60 S亚基L1茎的基部。在非程序化80 S核糖体中的交联效率远低于在分离的60 S亚基和程序化80 S核糖体中的效率。我们认为,程序化和非程序化80 S核糖体中5.8 S rRNA中央部分可及性的差异是由一种构象转换引起的,这种构象转换似乎是翻译终止后80 S核糖体解离成亚基以允许新模板翻译起始所必需的。