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Substrate specificities of SR proteins in constitutive splicing are determined by their RNA recognition motifs and composite pre-mRNA exonic elements.SR蛋白在组成型剪接中的底物特异性由其RNA识别基序和复合前体mRNA外显子元件决定。
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2
Deletion of the N-terminus of SF2/ASF permits RS-domain-independent pre-mRNA splicing.删除 SF2/ASF 的 N 端允许 RS 结构域独立的前体 mRNA 剪接。
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3
RNA splicing specificity determined by the coordinated action of RNA recognition motifs in SR proteins.由SR蛋白中RNA识别基序的协同作用所决定的RNA剪接特异性。
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4
Exonic splicing enhancer motif recognized by human SC35 under splicing conditions.在剪接条件下被人类SC35识别的外显子剪接增强子基序。
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5
Genetic analysis of the SR protein ASF/SF2: interchangeability of RS domains and negative control of splicing.SR蛋白ASF/SF2的遗传分析:RS结构域的互换性与剪接的负调控
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6
Exon identity established through differential antagonism between exonic splicing silencer-bound hnRNP A1 and enhancer-bound SR proteins.通过外显子剪接沉默子结合的hnRNP A1与增强子结合的SR蛋白之间的差异拮抗作用建立外显子身份。
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Differential effects of the SR proteins 9G8, SC35, ASF/SF2, and SRp40 on the utilization of the A1 to A5 splicing sites of HIV-1 RNA.SR蛋白9G8、SC35、ASF/SF2和SRp40对HIV-1 RNA的A1至A5剪接位点利用的差异效应。
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Myelodysplastic Syndrome-Associated SRSF2 Mutations Cause Splicing Changes by Altering Binding Motif Sequences.骨髓增生异常综合征相关的SRSF2突变通过改变结合基序序列导致剪接变化。
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10
Specific inhibition of splicing factor activity by decoy RNA oligonucleotides.通过诱饵 RNA 寡核苷酸特异性抑制剪接因子活性。
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本文引用的文献

1
Mammalian in vitro splicing assays.哺乳动物体外剪接分析
Methods Mol Biol. 1999;118:315-21. doi: 10.1385/1-59259-676-2:315.
2
Preparation of HeLa cell nuclear and cytosolic S100 extracts for in vitro splicing.用于体外剪接的HeLa细胞核和细胞质S100提取物的制备。
Methods Mol Biol. 1999;118:309-14. doi: 10.1385/1-59259-676-2:309.
3
Distinct functions of the closely related tandem RNA-recognition motifs of hnRNP A1.异质性核糖核蛋白A1(hnRNP A1)紧密相关的串联RNA识别基序的不同功能。
RNA. 1998 Sep;4(9):1111-23. doi: 10.1017/s135583829898089x.
4
The exon splicing silencer in human immunodeficiency virus type 1 Tat exon 3 is bipartite and acts early in spliceosome assembly.人类免疫缺陷病毒1型Tat外显子3中的外显子剪接沉默子是双组分的,且在剪接体组装早期起作用。
Mol Cell Biol. 1998 Sep;18(9):5404-13. doi: 10.1128/MCB.18.9.5404.
5
Genetic analysis of the SR protein ASF/SF2: interchangeability of RS domains and negative control of splicing.SR蛋白ASF/SF2的遗传分析:RS结构域的互换性与剪接的负调控
Genes Dev. 1998 Jul 15;12(14):2222-33. doi: 10.1101/gad.12.14.2222.
6
The function of multisite splicing enhancers.多位点剪接增强子的功能。
Mol Cell. 1998 Feb;1(3):449-55. doi: 10.1016/s1097-2765(00)80045-3.
7
Identification of functional exonic splicing enhancer motifs recognized by individual SR proteins.鉴定由单个SR蛋白识别的功能性外显子剪接增强子基序。
Genes Dev. 1998 Jul 1;12(13):1998-2012. doi: 10.1101/gad.12.13.1998.
8
A specific subset of SR proteins shuttles continuously between the nucleus and the cytoplasm.特定的SR蛋白亚群在细胞核和细胞质之间持续穿梭。
Genes Dev. 1998 Jan 1;12(1):55-66. doi: 10.1101/gad.12.1.55.
9
Role of the modular domains of SR proteins in subnuclear localization and alternative splicing specificity.SR蛋白模块化结构域在亚核定位和可变剪接特异性中的作用。
J Cell Biol. 1997 Jul 28;138(2):225-38. doi: 10.1083/jcb.138.2.225.
10
The SR splicing factors ASF/SF2 and SC35 have antagonistic effects on intronic enhancer-dependent splicing of the beta-tropomyosin alternative exon 6A.SR剪接因子ASF/SF2和SC35对β-原肌球蛋白可变外显子6A的内含子增强子依赖性剪接具有拮抗作用。
EMBO J. 1997 Apr 1;16(7):1772-84. doi: 10.1093/emboj/16.7.1772.

SR蛋白在组成型剪接中的底物特异性由其RNA识别基序和复合前体mRNA外显子元件决定。

Substrate specificities of SR proteins in constitutive splicing are determined by their RNA recognition motifs and composite pre-mRNA exonic elements.

作者信息

Mayeda A, Screaton G R, Chandler S D, Fu X D, Krainer A R

机构信息

Cold Spring Harbor Laboratory, Cold Spring Harbor, New York 11724-2208, USA.

出版信息

Mol Cell Biol. 1999 Mar;19(3):1853-63. doi: 10.1128/MCB.19.3.1853.

DOI:10.1128/MCB.19.3.1853
PMID:10022872
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC83978/
Abstract

We report striking differences in the substrate specificities of two human SR proteins, SF2/ASF and SC35, in constitutive splicing. beta-Globin pre-mRNA (exons 1 and 2) is spliced indiscriminately with either SR protein. Human immunodeficiency virus tat pre-mRNA (exons 2 and 3) and immunoglobulin mu-chain (IgM) pre-mRNA (exons C3 and C4) are preferentially spliced with SF2/ASF and SC35, respectively. Using in vitro splicing with mutated or chimeric derivatives of the tat and IgM pre-mRNAs, we defined specific combinations of segments in the downstream exons, which mediate either positive or negative effects to confer SR protein specificity. A series of recombinant chimeric proteins consisting of domains of SF2/ASF and SC35 in various combinations was used to localize trans-acting domains responsible for substrate specificity. The RS domains of SF2/ASF and SC35 can be exchanged without effect on substrate specificity. The RNA recognition motifs (RRMs) of SF2/ASF are active only in the context of a two-RRM structure, and RRM2 has a dominant role in substrate specificity. In contrast, the single RRM of SC35 can function alone, but its substrate specificity can be influenced by the presence of an additional RRM. The RRMs behave as modules that, when present in different combinations, can have positive, neutral, or negative effects on splicing, depending upon the specific substrate. We conclude that SR protein-specific recognition of specific positive and negative pre-mRNA exonic elements via one or more RRMs is a crucial determinant of the substrate specificity of SR proteins in constitutive splicing.

摘要

我们报道了两种人类SR蛋白SF2/ASF和SC35在组成型剪接中底物特异性的显著差异。β-珠蛋白前体mRNA(外显子1和2)与任何一种SR蛋白都能随意剪接。人类免疫缺陷病毒tat前体mRNA(外显子2和3)和免疫球蛋白μ链(IgM)前体mRNA(外显子C3和C4)分别优先与SF2/ASF和SC35剪接。通过对tat和IgM前体mRNA的突变或嵌合衍生物进行体外剪接,我们确定了下游外显子中特定的片段组合,这些组合介导正向或负向作用以赋予SR蛋白特异性。使用一系列由SF2/ASF和SC35的结构域以各种组合构成的重组嵌合蛋白来定位负责底物特异性的反式作用结构域。SF2/ASF和SC35的RS结构域可以互换而不影响底物特异性。SF2/ASF的RNA识别基序(RRMs)仅在双RRM结构的背景下才有活性,并且RRM2在底物特异性中起主导作用。相比之下,SC35的单个RRM可以单独发挥作用,但其底物特异性会受到额外RRM存在的影响。RRMs表现为模块,当以不同组合存在时,根据特定底物,它们对剪接可产生正向、中性或负向影响。我们得出结论,SR蛋白通过一个或多个RRMs对特定的正向和负向前体mRNA外显子元件进行特异性识别,是SR蛋白在组成型剪接中底物特异性的关键决定因素。