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Crystal structure of ribosomal protein L30e from the extreme thermophile Thermococcus celer: thermal stability and RNA binding.嗜热栖热放线菌核糖体蛋白L30e的晶体结构:热稳定性和RNA结合
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Multiple functions of an evolutionarily conserved RNA binding domain.一个进化上保守的RNA结合结构域的多种功能。
Mol Cell. 2000 Apr;5(4):761-6. doi: 10.1016/s1097-2765(00)80255-5.
8
A novel loop-loop recognition motif in the yeast ribosomal protein L30 autoregulatory RNA complex.酵母核糖体蛋白L30自调控RNA复合物中的一种新型环-环识别基序。
Nat Struct Biol. 1999 Dec;6(12):1139-47. doi: 10.1038/70081.
9
Functional interaction of a novel 15.5kD [U4/U6.U5] tri-snRNP protein with the 5' stem-loop of U4 snRNA.一种新型15.5kD [U4/U6.U5]三小核核糖核蛋白与U4小核RNA 5'茎环的功能相互作用。
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Assignment of the L30-mRNA complex using selective isotopic labeling and RNA mutants.使用选择性同位素标记和RNA突变体对L30-mRNA复合物进行定位
Nucleic Acids Res. 1999 Oct 15;27(20):4059-70. doi: 10.1093/nar/27.20.4059.

酵母L30 RNA转录本核糖体蛋白L30结合位点的内环突变

Internal loop mutations in the ribosomal protein L30 binding site of the yeast L30 RNA transcript.

作者信息

White Susan A, Hoeger Margaret, Schweppe James J, Shillingford Amanda, Shipilov Valerie, Zarutskie Jennifer

机构信息

Department of Chemistry, Bryn Mawr College, Bryn Mawr, Pennsylvania 19010, USA.

出版信息

RNA. 2004 Mar;10(3):369-77. doi: 10.1261/rna.2159504.

DOI:10.1261/rna.2159504
PMID:14970382
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1370932/
Abstract

Yeast ribosomal protein L30 binds to an asymmetric, purine-rich internal loop in its transcript to repress its own splicing and translation. The protein-bound form of the stem-internal loop-stem RNA is an example of a kink-turn RNA structural motif. Analysis of kink-turn motifs reveals that in (2 + 5) internal loops, the identities of five nucleotides are very important, while the remaining two may be varied. Previous SELEX experiments on the L30 binding site showed an identical pattern of sequence variation with five nucleotides highly conserved and two positions variable. In this work, internal loop residues were mutated and tested for protein binding in vitro and in vivo. The two sheared G-A pairs, which cannot be mutated without severely weakening L30 binding, make sequence specific contacts with other portions of the RNA and L30 protein. In contrast, the lone nucleotide that protrudes into the protein and an unpaired adenosine make no sequence-specific contacts, and may be mutated without compromising L30 binding. The internal loop allows the formation of a very tight bend that brings the two stems together with cross-strand stacking of two adenines and an interhelical ribose contact. Replacement of a ribonucleotide with a deoxynucleotide adjacent to the internal loop weakens protein binding significantly. In the absence of L30, some of the internal loop residues involved in the formation of the kink-turn motif are protected from chemical modification, indicating that some elements of kink-turn structure may form in the free L30 RNA.

摘要

酵母核糖体蛋白L30与其转录本中一个不对称、富含嘌呤的内环结合,以抑制自身的剪接和翻译。茎-内环-茎RNA的蛋白质结合形式是扭结-turn RNA结构基序的一个例子。对扭结-turn基序的分析表明,在(2+5)内环中,五个核苷酸的身份非常重要,而其余两个核苷酸可以变化。先前关于L30结合位点的SELEX实验显示了相同的序列变异模式,其中五个核苷酸高度保守,两个位置可变。在这项工作中,内环残基被突变,并在体外和体内测试其与蛋白质的结合。两个剪切的G-A对在不严重削弱L30结合的情况下不能被突变,它们与RNA和L30蛋白的其他部分进行序列特异性接触。相比之下,突入蛋白质中的单个核苷酸和一个未配对的腺苷不进行序列特异性接触,并且可以被突变而不影响L30结合。内环允许形成一个非常紧密的弯曲,使两个茎与两个腺嘌呤的跨链堆积和螺旋间核糖接触结合在一起。在内环附近用脱氧核苷酸取代核糖核苷酸会显著削弱蛋白质结合。在没有L30的情况下,一些参与扭结-turn基序形成的内环残基受到化学修饰的保护,这表明扭结-turn结构的一些元件可能在游离的L30 RNA中形成。