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RNA. 1995 Apr;1(2):210-8.
2
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7
NAIM and site-specific functional group modification analysis of RNase P RNA: magnesium dependent structure within the conserved P1-P4 multihelix junction contributes to catalysis.核糖核酸酶P RNA的NAIM和位点特异性官能团修饰分析:保守的P1-P4多螺旋连接区内的镁依赖性结构有助于催化作用。
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Specific phosphorothioate substitutions probe the active site of Bacillus subtilis ribonuclease P.特定的硫代磷酸酯取代作用探究了枯草芽孢杆菌核糖核酸酶P的活性位点。
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Snapshots of the second-step self-splicing of Tetrahymena ribozyme revealed by cryo-EM.低温电镜揭示四膜虫核酶两步自我剪接的瞬时结构。
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2
The Diversity of Ribonuclease P: Protein and RNA Catalysts with Analogous Biological Functions.核糖核酸酶P的多样性:具有类似生物学功能的蛋白质和RNA催化剂
Biomolecules. 2016 May 13;6(2):27. doi: 10.3390/biom6020027.
3
The bacterial ribonuclease P holoenzyme requires specific, conserved residues for efficient catalysis and substrate positioning.细菌核糖核酸酶 P 全酶需要特定的保守残基以实现高效催化和底物定位。
Nucleic Acids Res. 2012 Nov 1;40(20):10384-93. doi: 10.1093/nar/gks744. Epub 2012 Aug 16.
4
A divalent cation stabilizes the active conformation of the B. subtilis RNase P x pre-tRNA complex: a role for an inner-sphere metal ion in RNase P.二价阳离子稳定枯草芽孢杆菌 RNase P x pre-tRNA 复合物的活性构象:内配位球金属离子在 RNase P 中的作用。
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5
NMR and XAS reveal an inner-sphere metal binding site in the P4 helix of the metallo-ribozyme ribonuclease P.NMR 和 XAS 揭示了金属核糖核酸酶 P 的 P4 螺旋中的内球金属结合位点。
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6
Identification of catalytic metal ion ligands in ribozymes.核酶中催化金属离子配体的鉴定。
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7
Mapping metal-binding sites in the catalytic domain of bacterial RNase P RNA.绘制细菌核糖核酸酶P RNA催化结构域中的金属结合位点
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8
Probing the architecture of the B. subtilis RNase P holoenzyme active site by cross-linking and affinity cleavage.通过交联和亲和切割探究枯草芽孢杆菌核糖核酸酶P全酶活性位点的结构
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9
Structural plasticity and Mg2+ binding properties of RNase P P4 from combined analysis of NMR residual dipolar couplings and motionally decoupled spin relaxation.通过核磁共振剩余偶极耦合和动态去耦自旋弛豫的联合分析研究核糖核酸酶P P4的结构可塑性和Mg2+结合特性
RNA. 2007 Feb;13(2):251-66. doi: 10.1261/rna.264207. Epub 2006 Dec 28.
10
Structure and function of eukaryotic Ribonuclease P RNA.真核核糖核酸酶P RNA的结构与功能
Mol Cell. 2006 Nov 3;24(3):445-56. doi: 10.1016/j.molcel.2006.09.011.

鉴定核酶RNase P RNA催化过程中涉及的磷酸盐。

Identification of phosphates involved in catalysis by the ribozyme RNase P RNA.

作者信息

Harris M E, Pace N R

机构信息

Department of Biology, Indiana University, Bloomington 47405, USA.

出版信息

RNA. 1995 Apr;1(2):210-8.

PMID:7585250
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1369074/
Abstract

The RNA subunit of ribonuclease P (RNase P RNA) is a catalytic RNA that cleaves precursor tRNAs to generate mature tRNA 5' ends. Little is known concerning the identity and arrangement of functional groups that constitute the active site of this ribozyme. We have used an RNase P RNA-substrate conjugate that undergoes rapid, accurate, and efficient self-cleavage in vitro to probe, by phosphorothioate modification-interference, functional groups required for catalysis. We identify four phosphate oxygens where substitution by sulfur significantly reduces the catalytic rate (50-200-fold). Interference at one site was partially rescued in the presence of manganese, suggesting a direct involvement in binding divalent metal ion cofactors required for catalysis. All sites are located in conserved sequence and secondary structure, and positioned adjacent to the substrate phosphate in a tertiary structure model of the ribozyme-substrate complex. The spatial arrangement of phosphorothioate-sensitive sites in RNase P RNA was found to resemble the distribution of analogous positions in the secondary and potential tertiary structures of other large catalytic RNAs.

摘要

核糖核酸酶P的RNA亚基(RNase P RNA)是一种催化性RNA,可切割前体tRNA以产生成熟tRNA的5'末端。关于构成这种核酶活性位点的功能基团的身份和排列,人们知之甚少。我们使用了一种在体外能快速、准确且高效地进行自我切割的RNase P RNA-底物缀合物,通过硫代磷酸酯修饰干扰来探测催化所需的功能基团。我们确定了四个磷酸氧原子,用硫取代这些氧原子会显著降低催化速率(50 - 200倍)。在锰存在的情况下,一个位点的干扰得到了部分挽救,这表明该位点直接参与结合催化所需的二价金属离子辅因子。所有位点都位于保守序列和二级结构中,并且在核酶-底物复合物的三级结构模型中与底物磷酸相邻。人们发现RNase P RNA中硫代磷酸酯敏感位点的空间排列类似于其他大型催化RNA的二级结构和潜在三级结构中类似位置的分布。