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2
Wide mutational analysis to ascertain the functional roles of eL33 in ribosome biogenesis and translation initiation.广泛的突变分析以确定 eL33 在核糖体生物发生和翻译起始中的功能作用。
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Mol Cell Biol. 1991 Jun;11(6):3203-16. doi: 10.1128/mcb.11.6.3203-3216.1991.

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1
Yeast Rrp14p is required for ribosomal subunit synthesis and for correct positioning of the mitotic spindle during mitosis.酵母Rrp14p对于核糖体亚基的合成以及有丝分裂期间有丝分裂纺锤体的正确定位是必需的。
Nucleic Acids Res. 2007;35(4):1354-66. doi: 10.1093/nar/gkl824. Epub 2007 Feb 1.
2
Comprehensive mutational analysis of yeast DEXD/H box RNA helicases involved in large ribosomal subunit biogenesis.参与大核糖体亚基生物合成的酵母DEXD/H盒RNA解旋酶的全面突变分析。
Mol Cell Biol. 2006 Feb;26(4):1195-208. doi: 10.1128/MCB.26.4.1195-1208.2006.
3
Proteome survey reveals modularity of the yeast cell machinery.蛋白质组研究揭示酵母细胞机制的模块化特性。
Nature. 2006 Mar 30;440(7084):631-6. doi: 10.1038/nature04532. Epub 2006 Jan 22.
4
Identification of functionally important amino acids of ribosomal protein L3 by saturation mutagenesis.通过饱和诱变鉴定核糖体蛋白L3的功能重要氨基酸
Mol Cell Biol. 2005 Dec;25(24):10863-74. doi: 10.1128/MCB.25.24.10863-10874.2005.
5
The putative NTPase Fap7 mediates cytoplasmic 20S pre-rRNA processing through a direct interaction with Rps14.假定的NTP酶Fap7通过与Rps14直接相互作用介导细胞质20S前体rRNA加工。
Mol Cell Biol. 2005 Dec;25(23):10352-64. doi: 10.1128/MCB.25.23.10352-10364.2005.
6
Roles of eukaryotic ribosomal proteins in maturation and transport of pre-18S rRNA and ribosome function.真核生物核糖体蛋白在18S前体rRNA成熟与转运及核糖体功能中的作用。
Mol Cell. 2005 Oct 28;20(2):263-75. doi: 10.1016/j.molcel.2005.09.005.
7
L25 functions as a conserved ribosomal docking site shared by nascent chain-associated complex and signal-recognition particle.L25作为新生链相关复合物和信号识别颗粒共有的保守核糖体对接位点发挥作用。
EMBO Rep. 2006 Jan;7(1):78-84. doi: 10.1038/sj.embor.7400551.
8
The eIF1A C-terminal domain promotes initiation complex assembly, scanning and AUG selection in vivo.真核起始因子1A(eIF1A)的C末端结构域在体内促进起始复合物的组装、扫描及AUG选择。
EMBO J. 2005 Oct 19;24(20):3588-601. doi: 10.1038/sj.emboj.7600821. Epub 2005 Sep 29.
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Translational regulation of GCN4 and the general amino acid control of yeast.GCN4的翻译调控与酵母的一般氨基酸控制
Annu Rev Microbiol. 2005;59:407-50. doi: 10.1146/annurev.micro.59.031805.133833.
10
Mechanisms of haploinsufficiency revealed by genome-wide profiling in yeast.酵母全基因组分析揭示的单倍剂量不足机制
Genetics. 2005 Apr;169(4):1915-25. doi: 10.1534/genetics.104.036871. Epub 2005 Feb 16.

核糖体生物合成、亚基结合以及GCN4翻译的抑制都需要核糖体蛋白L33。

Ribosomal protein L33 is required for ribosome biogenesis, subunit joining, and repression of GCN4 translation.

作者信息

Martín-Marcos Pilar, Hinnebusch Alan G, Tamame Mercedes

机构信息

Instituto de Microbiología Bioquímica, CSIC/Universidad de Salamanca, Edificio Departamental de Biología, Campus Miguel de Unamuno, 37007 Salamanca, Spain.

出版信息

Mol Cell Biol. 2007 Sep;27(17):5968-85. doi: 10.1128/MCB.00019-07. Epub 2007 Jun 4.

DOI:10.1128/MCB.00019-07
PMID:17548477
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1952170/
Abstract

We identified a mutation in the 60S ribosomal protein L33A (rpl33a-G76R) that elicits derepression of GCN4 translation (Gcd- phenotype) by allowing scanning preinitiation complexes to bypass inhibitory upstream open reading frame 4 (uORF4) independently of prior uORF1 translation and reinitiation. At 37 degrees C, rpl33a-G76R confers defects in 60S biogenesis comparable to those produced by the deletion of RPL33A (DeltaA). At 28 degrees C, however, the 60S biogenesis defect is less severe in rpl33a-G76R than in DeltaA cells, yet rpl33a-G76R confers greater derepression of GCN4 and a larger reduction in general translation. Hence, it appears that rpl33a-G76R has a stronger effect on ribosomal-subunit joining than does a comparable reduction of wild-type 60S levels conferred by DeltaA. We suggest that rpl33a-G76R alters the 60S subunit in a way that impedes ribosomal-subunit joining and thereby allows 48S rRNA complexes to abort initiation at uORF4, resume scanning, and initiate downstream at GCN4. Because overexpressing tRNAiMet suppresses the Gcd- phenotype of rpl33a-G76R cells, dissociation of tRNAiMet from the 40S subunit may be responsible for abortive initiation at uORF4 in this mutant. We further demonstrate that rpl33a-G76R impairs the efficient processing of 35S and 27S pre-rRNAs and reduces the accumulation of all four mature rRNAs, indicating an important role for L33 in the biogenesis of both ribosomal subunits.

摘要

我们鉴定出60S核糖体蛋白L33A(rpl33a-G76R)中的一个突变,该突变通过允许扫描起始前复合物独立于先前的uORF1翻译和重新起始而绕过抑制性上游开放阅读框4(uORF4),从而引发GCN4翻译的去抑制(Gcd-表型)。在37℃时,rpl33a-G76R导致60S生物合成缺陷,其程度与RPL33A缺失(DeltaA)所产生的缺陷相当。然而,在28℃时,rpl33a-G76R中的60S生物合成缺陷比DeltaA细胞中的要轻,但rpl33a-G76R导致GCN4的去抑制作用更强,总体翻译水平降低幅度更大。因此,似乎rpl33a-G76R对核糖体亚基结合的影响比DeltaA导致的野生型60S水平的相应降低更强。我们认为,rpl33a-G76R以某种方式改变了60S亚基,从而阻碍核糖体亚基的结合,进而使48S rRNA复合物在uORF4处中止起始,重新开始扫描,并在GCN4下游起始。由于过表达tRNAiMet可抑制rpl33a-G76R细胞的Gcd-表型,tRNAiMet从40S亚基的解离可能是该突变体中uORF4处起始失败的原因。我们进一步证明,rpl33a-G76R损害了35S和27S前体rRNA的有效加工,并减少了所有四种成熟rRNA的积累,表明L33在两个核糖体亚基的生物合成中具有重要作用。