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1
Stereochemical selectivity of group II intron splicing, reverse splicing, and hydrolysis reactions.II类内含子剪接、反向剪接和水解反应的立体化学选择性。
Mol Cell Biol. 1995 Aug;15(8):4466-78. doi: 10.1128/MCB.15.8.4466.
2
Group II intron splicing in vivo by first-step hydrolysis.通过第一步水解实现II组内含子在体内的剪接。
Nature. 1998 Feb 26;391(6670):915-8. doi: 10.1038/36142.
3
A phosphorothioate at the 3' splice-site inhibits the second splicing step in a group I intron.3'剪接位点处的硫代磷酸酯会抑制I类内含子的第二步剪接。
Nucleic Acids Res. 1992 Dec 11;20(23):6303-9. doi: 10.1093/nar/20.23.6303.
4
Unexpected metal ion requirements specific for catalysis of the branching reaction in a group II intron.II类内含子中分支反应催化所特有的意外金属离子需求。
Biochemistry. 1999 Mar 9;38(10):3157-67. doi: 10.1021/bi982462j.
5
The stereochemical course of group II intron self-splicing.II类内含子自我剪接的立体化学过程。
Science. 1994 Dec 9;266(5191):1685-8. doi: 10.1126/science.7527587.
6
Branch-point attack in group II introns is a highly reversible transesterification, providing a potential proofreading mechanism for 5'-splice site selection.II类内含子中的分支点攻击是一种高度可逆的转酯反应,为5'-剪接位点选择提供了一种潜在的校对机制。
RNA. 1995 Jun;1(4):391-406.
7
Fate of the junction phosphate in alternating forward and reverse self-splicing reactions of group II intron RNA.II类内含子RNA在交替正向和反向自我剪接反应中连接磷酸的命运
J Mol Biol. 1991 Nov 20;222(2):145-54. doi: 10.1016/0022-2836(91)90201-g.
8
Reverse self-splicing of group II intron RNAs in vitro.II类内含子RNA在体外的反向自我剪接
Nature. 1990 Jan 25;343(6256):383-6. doi: 10.1038/343383a0.
9
The two steps of group II intron self-splicing are mechanistically distinguishable.II类内含子自我剪接的两个步骤在机制上是可区分的。
RNA. 1998 Aug;4(8):890-900. doi: 10.1017/s1355838298971643.
10
Two competing pathways for self-splicing by group II introns: a quantitative analysis of in vitro reaction rates and products.II类内含子自我剪接的两条竞争途径:体外反应速率和产物的定量分析
J Mol Biol. 1996 Feb 16;256(1):31-49. doi: 10.1006/jmbi.1996.0066.

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Molecular characterization of both transesterification reactions of the group II intron circularization pathway.II类内含子环化途径中两个酯交换反应的分子特征分析。
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The Role of Alternative Splicing in the Control of Immune Homeostasis and Cellular Differentiation.可变剪接在免疫稳态调控和细胞分化中的作用
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Nucleic acid catalysis: metals, nucleobases, and other cofactors.核酸催化:金属、核碱基及其他辅助因子。
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5
Principles of ion recognition in RNA: insights from the group II intron structures.RNA 中的离子识别原理:来自 II 组内含子结构的见解。
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The spliceosome catalyzes debranching in competition with reverse of the first chemical reaction.剪接体催化分支脱离,与第一个化学反应的逆反应竞争。
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Now on display: a gallery of group II intron structures at different stages of catalysis.现正在展出的是一组处于不同催化阶段的 II 类内含子结构的图片。
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Visualizing group II intron catalysis through the stages of splicing.通过剪接的各个阶段来可视化 II 类内含子催化作用。
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9
Group II introns: mobile ribozymes that invade DNA.内含子 II 类:入侵 DNA 的移动核酶
Cold Spring Harb Perspect Biol. 2011 Aug 1;3(8):a003616. doi: 10.1101/cshperspect.a003616.
10
The tertiary structure of group II introns: implications for biological function and evolution.二级类内含子的三级结构:对生物功能和进化的影响。
Crit Rev Biochem Mol Biol. 2010 Jun;45(3):215-32. doi: 10.3109/10409231003796523.

本文引用的文献

1
Introns in pieces.
Curr Biol. 1991 Oct;1(5):331-3. doi: 10.1016/0960-9822(91)90103-4.
2
Evidence for two active sites in the spliceosome provided by stereochemistry of pre-mRNA splicing.前体mRNA剪接的立体化学为剪接体中两个活性位点提供的证据。
Nature. 1993 Sep 23;365(6444):364-8. doi: 10.1038/365364a0.
3
Kinetic analysis of the 5' splice junction hydrolysis of a group II intron promoted by domain 5.
Nucleic Acids Res. 1993 Feb 11;21(3):627-34. doi: 10.1093/nar/21.3.627.
4
A general two-metal-ion mechanism for catalytic RNA.催化性RNA的一般双金属离子机制。
Proc Natl Acad Sci U S A. 1993 Jul 15;90(14):6498-502. doi: 10.1073/pnas.90.14.6498.
5
The stereochemical course of the first step of pre-mRNA splicing.前体mRNA剪接第一步的立体化学过程。
Nucleic Acids Res. 1993 Nov 25;21(23):5456-62. doi: 10.1093/nar/21.23.5456.
6
Phosphorothioates in pre-tRNAs can change the specificities of RNAses P or reduce the cleavage efficiencies.前体tRNA中的硫代磷酸酯可改变核糖核酸酶P的特异性或降低切割效率。
Biochimie. 1993;75(11):955-62. doi: 10.1016/0300-9084(93)90145-i.
7
Catalytic site components common to both splicing steps of a group II intron.II类内含子两个剪接步骤共有的催化位点成分。
Science. 1994 Nov 25;266(5189):1383-7. doi: 10.1126/science.7973729.
8
Conversion of a group II intron into a new multiple-turnover ribozyme that selectively cleaves oligonucleotides: elucidation of reaction mechanism and structure/function relationships.将II组内含子转化为一种新的可选择性切割寡核苷酸的多轮周转核酶:反应机制及结构/功能关系的阐明
Biochemistry. 1995 Mar 7;34(9):2965-77. doi: 10.1021/bi00009a028.
9
Catalytically critical nucleotide in domain 5 of a group II intron.II类内含子结构域5中的催化关键核苷酸。
Proc Natl Acad Sci U S A. 1995 May 9;92(10):4422-6. doi: 10.1073/pnas.92.10.4422.
10
The stereochemical course of group II intron self-splicing.II类内含子自我剪接的立体化学过程。
Science. 1994 Dec 9;266(5191):1685-8. doi: 10.1126/science.7527587.

II类内含子剪接、反向剪接和水解反应的立体化学选择性。

Stereochemical selectivity of group II intron splicing, reverse splicing, and hydrolysis reactions.

作者信息

Podar M, Perlman P S, Padgett R A

机构信息

Department of Biochemistry, University of Texas Southwestern Medical Center, Dallas 75235-9038, USA.

出版信息

Mol Cell Biol. 1995 Aug;15(8):4466-78. doi: 10.1128/MCB.15.8.4466.

DOI:10.1128/MCB.15.8.4466
PMID:7542746
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC230686/
Abstract

We have previously shown, using phosphorothioate substitutions at splice site, that both transesterification steps of group II intron self-splicing proceed, by stereochemical inversion, with an Sp but not an Rp phosphorothioate. Under alternative reaction conditions or with various intron fragments, group II introns can splice following hydrolysis at the 5' splice site and can also hydrolyze the bond between spliced exons (the spliced-exon reopening reaction). In this study, we have determined the stereochemical specificities of all of the major model hydrolytic reactions carried out by the aI5 gamma intron from Saccharomyces cerevisiae mitochondria. For all substrates containing exon 1 and most of the intron, the stereospecificity of hydrolysis is the same as for the step 1 transesterification reaction. In contrast, the spliced-exon reopening reaction proceeds with an Rp but not an Sp phosphorothioate at the scissile bond, as does true reverse splicing. Thus, by stereochemistry, this reaction appears to be related to the reverse of step 2 of self-splicing. Finally, a substrate RNA that contains the first exon and nine nucleotides of the intron, when reacted with the intron ribozyme, releases the first exon regardless of the configuration of the phosphorothioate at the 5' splice site, suggesting that this substrate can be cleaved by either the step 1 or the step 2 reaction site. Our findings clarify the relationships of these model reactions to the transesterification reactions of the intact self-splicing system and permit new studies to be interpreted more rigorously.

摘要

我们之前利用剪接位点处的硫代磷酸酯取代进行了研究,结果表明II组内含子自我剪接的两个酯转移步骤均通过立体化学反转,由Sp而非Rp硫代磷酸酯进行。在其他反应条件下或使用各种内含子片段时,II组内含子可在5'剪接位点水解后进行剪接,并且还能水解已剪接外显子之间的键(已剪接外显子重新打开反应)。在本研究中,我们确定了酿酒酵母线粒体aI5γ内含子进行的所有主要模型水解反应的立体化学特异性。对于所有包含外显子1和大部分内含子的底物,水解的立体特异性与酯转移反应的第一步相同。相比之下,已剪接外显子重新打开反应在可裂解键处由Rp而非Sp硫代磷酸酯进行,真正的反向剪接也是如此。因此,从立体化学角度来看,该反应似乎与自我剪接第二步的反向反应有关。最后,当一个包含第一个外显子和内含子九个核苷酸的底物RNA与内含子核酶反应时,无论5'剪接位点处硫代磷酸酯的构型如何,都会释放出第一个外显子,这表明该底物可被第一步或第二步反应位点切割。我们的研究结果阐明了这些模型反应与完整自我剪接系统的酯转移反应之间的关系,并使得新的研究能够得到更严谨的解释。