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Mutational analysis of the Tetrahymena telomerase RNA: identification of residues affecting telomerase activity in vitro.嗜热四膜虫端粒酶RNA的突变分析:体外影响端粒酶活性的残基鉴定
Nucleic Acids Res. 1998 Feb 1;26(3):787-95. doi: 10.1093/nar/26.3.787.
2
Boundary elements of the Tetrahymena telomerase RNA template and alignment domains.嗜热四膜虫端粒酶RNA模板和比对结构域的边界元件
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3
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Ciliate telomerase RNA structural features.纤毛虫端粒酶RNA的结构特征。
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Mechanisms of template handling and pseudoknot folding in human telomerase and their manipulation to expand the sequence repertoire of processive repeat synthesis.人端粒酶中模板处理和假结折叠的机制及其操纵以扩展连续重复合成的序列库。
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A stem-loop of Tetrahymena telomerase RNA distant from the template potentiates RNA folding and telomerase activity.四膜虫端粒酶RNA中一个远离模板的茎环结构增强了RNA折叠和端粒酶活性。
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Arabidopsis retains vertebrate-type telomerase accessory proteins via a plant-specific assembly.拟南芥通过一种植物特有的组装方式保留了脊椎动物型端粒酶辅助蛋白。
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The conserved structure of plant telomerase RNA provides the missing link for an evolutionary pathway from ciliates to humans.植物端粒酶 RNA 的保守结构为从纤毛虫到人这一进化途径提供了缺失的环节。
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Functional importance of telomerase pseudoknot revealed by single-molecule analysis.通过单分子分析揭示端粒酶假结的功能重要性。
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10
Tetrahymena telomerase protein p65 induces conformational changes throughout telomerase RNA (TER) and rescues telomerase reverse transcriptase and TER assembly mutants.四膜虫端粒酶蛋白 p65 诱导端粒酶 RNA(TER)发生构象变化,并拯救端粒酶逆转录酶和 TER 组装突变体。
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本文引用的文献

1
A functional telomerase RNA swap in vivo reveals the importance of nontemplate RNA domains.体内功能性端粒酶RNA交换揭示了非模板RNA结构域的重要性。
Proc Natl Acad Sci U S A. 1997 Apr 1;94(7):2823-7. doi: 10.1073/pnas.94.7.2823.
2
Reconstitution of human telomerase activity and identification of a minimal functional region of the human telomerase RNA.人端粒酶活性的重建及人端粒酶RNA最小功能区域的鉴定。
EMBO J. 1996 Nov 1;15(21):5928-35.
3
A single telomerase RNA is sufficient for the synthesis of variable telomeric DNA repeats in ciliates of the genus Paramecium.单个端粒酶RNA足以在草履虫属纤毛虫中合成可变的端粒DNA重复序列。
Mol Cell Biol. 1996 Apr;16(4):1871-9. doi: 10.1128/MCB.16.4.1871.
4
Specific RNA residue interactions required for enzymatic functions of Tetrahymena telomerase.嗜热四膜虫端粒酶酶促功能所需的特定RNA残基相互作用。
Mol Cell Biol. 1996 Jan;16(1):66-75. doi: 10.1128/MCB.16.1.66.
5
Tetrahymena telomerase catalyzes nucleolytic cleavage and nonprocessive elongation.四膜虫端粒酶催化核酸裂解和非连续延伸。
Genes Dev. 1993 Jul;7(7B):1364-76. doi: 10.1101/gad.7.7b.1364.
6
Telomerase RNAs of different ciliates have a common secondary structure and a permuted template.不同纤毛虫的端粒酶RNA具有共同的二级结构和重排模板。
Genes Dev. 1994 Aug 15;8(16):1984-98. doi: 10.1101/gad.8.16.1984.
7
Purification of Tetrahymena telomerase and cloning of genes encoding the two protein components of the enzyme.嗜热四膜虫端粒酶的纯化及编码该酶两个蛋白质组分的基因克隆。
Cell. 1995 Jun 2;81(5):677-86. doi: 10.1016/0092-8674(95)90529-4.
8
Ciliate telomerase RNA structural features.纤毛虫端粒酶RNA的结构特征。
Nucleic Acids Res. 1995 Apr 11;23(7):1091-7. doi: 10.1093/nar/23.7.1091.
9
Runaway telomere elongation caused by telomerase RNA gene mutations.端粒酶RNA基因突变导致的端粒失控性延长
Nature. 1995 Aug 3;376(6539):403-9. doi: 10.1038/376403a0.
10
Boundary elements of the Tetrahymena telomerase RNA template and alignment domains.嗜热四膜虫端粒酶RNA模板和比对结构域的边界元件
Genes Dev. 1995 Sep 15;9(18):2227-39. doi: 10.1101/gad.9.18.2227.

嗜热四膜虫端粒酶RNA的突变分析:体外影响端粒酶活性的残基鉴定

Mutational analysis of the Tetrahymena telomerase RNA: identification of residues affecting telomerase activity in vitro.

作者信息

Autexier C, Greider C W

机构信息

Cold Spring Harbor Laboratory, PO Box 100, Cold Spring Harbor, NY 11724, USA.

出版信息

Nucleic Acids Res. 1998 Feb 1;26(3):787-95. doi: 10.1093/nar/26.3.787.

DOI:10.1093/nar/26.3.787
PMID:9443971
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC147331/
Abstract

Telomere-specific repeat sequences are essential for chromosome end stability. Telomerase maintains telomere length by adding sequences de novo onto chromosome ends. The template domain of the telomerase RNA component dictates synthesis of species-specific telomeric repeats and other regions of the RNA have been suggested to be important for enzyme structure and/or catalysis. Using enzyme reconstituted in vitro with RNAs containing deletions or substitutions we identified nucleotides in the RNA component that are important for telomerase activity. Although many changes to conserved features in the RNA secondary structure did not abolish enzyme activity, levels of activity were often greatly reduced, suggesting that regions other than the template play a role in telomerase function. The template boundary was only altered by changes in stem II that affected the conserved region upstream of the template, not by changes in other regions, such as stems I, III and IV, consistent with a role of the conserved region in defining the 5' boundary of the template. Surprisingly, telomerase RNAs with substitutions or deletion of residues potentially abolishing the conserved pseudoknot structure had wild-type levels of telomerase activity. This suggests that this base pairing interaction may not be required for telomerase activity per se but may be conserved as a regulatory site for the enzyme in vivo.

摘要

端粒特异性重复序列对于染色体末端稳定性至关重要。端粒酶通过在染色体末端从头添加序列来维持端粒长度。端粒酶RNA组分的模板结构域决定了物种特异性端粒重复序列的合成,并且RNA的其他区域被认为对酶的结构和/或催化作用很重要。使用含有缺失或替代的RNA在体外重组的酶,我们鉴定了RNA组分中对端粒酶活性重要的核苷酸。虽然RNA二级结构中许多保守特征的改变并没有消除酶活性,但活性水平常常大幅降低,这表明除模板外的区域在端粒酶功能中发挥作用。模板边界仅通过影响模板上游保守区域的茎II的变化而改变,而不是通过其他区域(如茎I、III和IV)的变化,这与保守区域在定义模板5'边界中的作用一致。令人惊讶的是,具有潜在消除保守假结结构的残基替代或缺失的端粒酶RNA具有野生型水平的端粒酶活性。这表明这种碱基配对相互作用本身可能不是端粒酶活性所必需的,但可能作为该酶在体内的一个调节位点而被保留。