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1
Human homologs of yeast prp16 and prp17 reveal conservation of the mechanism for catalytic step II of pre-mRNA splicing.酵母prp16和prp17的人类同源物揭示了前体mRNA剪接催化步骤II机制的保守性。
EMBO J. 1998 Apr 1;17(7):2095-106. doi: 10.1093/emboj/17.7.2095.
2
SLU7 and a novel activity, SSF1, act during the PRP16-dependent step of yeast pre-mRNA splicing.SLU7和一种新活性SSF1在酵母前体mRNA剪接的PRP16依赖性步骤中发挥作用。
EMBO J. 1995 Aug 15;14(16):4001-9. doi: 10.1002/j.1460-2075.1995.tb00071.x.
3
Characterization and functional ordering of Slu7p and Prp17p during the second step of pre-mRNA splicing in yeast.酵母前体mRNA剪接第二步中Slu7p和Prp17p的特征及功能排序
Proc Natl Acad Sci U S A. 1995 Oct 10;92(21):9687-91. doi: 10.1073/pnas.92.21.9687.
4
How Slu7 and Prp18 cooperate in the second step of yeast pre-mRNA splicing.Slu7和Prp18如何在酵母前体mRNA剪接的第二步中协同作用。
RNA. 2002 Aug;8(8):1068-77. doi: 10.1017/s1355838202022033.
5
Requirement for SLU7 in yeast pre-mRNA splicing is dictated by the distance between the branchpoint and the 3' splice site.酵母前体mRNA剪接中对SLU7的需求由分支点与3'剪接位点之间的距离决定。
RNA. 1996 Jul;2(7):707-17.
6
PRP16, a DEAH-box RNA helicase, is recruited to the spliceosome primarily via its nonconserved N-terminal domain.PRP16是一种DEAH盒RNA解旋酶,主要通过其非保守的N端结构域被招募到剪接体中。
RNA. 1998 Oct;4(10):1216-29.
7
Interaction of the yeast DExH-box RNA helicase prp22p with the 3' splice site during the second step of nuclear pre-mRNA splicing.酵母DExH盒RNA解旋酶prp22p在核内前体mRNA剪接第二步过程中与3'剪接位点的相互作用。
Nucleic Acids Res. 2000 Mar 15;28(6):1313-21. doi: 10.1093/nar/28.6.1313.
8
Genetic interactions between the yeast RNA helicase homolog Prp16 and spliceosomal snRNAs identify candidate ligands for the Prp16 RNA-dependent ATPase.酵母RNA解旋酶同源物Prp16与剪接体snRNA之间的遗传相互作用确定了Prp16 RNA依赖性ATP酶的候选配体。
Genetics. 1994 Jul;137(3):677-87. doi: 10.1093/genetics/137.3.677.
9
The DEAH box ATPases Prp16 and Prp43 cooperate to proofread 5' splice site cleavage during pre-mRNA splicing.DEAH 盒 ATP 酶 Prp16 和 Prp43 合作在 pre-mRNA 剪接过程中校对 5' 剪接位点切割。
Mol Cell. 2010 Aug 13;39(3):385-95. doi: 10.1016/j.molcel.2010.07.014.
10
DEAH-box ATPase Prp16 has dual roles in remodeling of the spliceosome in catalytic steps.DEAH-box ATP 酶 Prp16 在剪接体的催化步骤的重构图中具有双重作用。
RNA. 2011 Jan;17(1):145-54. doi: 10.1261/rna.2459611. Epub 2010 Nov 22.

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1
Identification of RNA binding proteins that mediate a quality control mechanism of splicing.介导剪接质量控制机制的RNA结合蛋白的鉴定。
bioRxiv. 2025 Jul 23:2025.07.20.665773. doi: 10.1101/2025.07.20.665773.
2
Structure of a step II catalytically activated spliceosome from Chlamydomonas reinhardtii.莱茵衣藻第二步催化激活剪接体的结构
EMBO J. 2025 Feb;44(4):975-990. doi: 10.1038/s44318-024-00274-3. Epub 2024 Oct 16.
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The splicing factor DHX38 enables retinal development through safeguarding genome integrity.剪接因子DHX38通过维护基因组完整性促进视网膜发育。
iScience. 2023 Sep 30;26(11):108103. doi: 10.1016/j.isci.2023.108103. eCollection 2023 Nov 17.
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Retinitis pigmentosa-linked mutation in DHX38 modulates its splicing activity.DHX38 中的致视网膜色素变性突变调节其剪接活性。
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The splicing factor DHX38/PRP16 is required for ovarian clear cell carcinoma tumorigenesis, as revealed by a CRISPR-Cas9 screen.CRISPR-Cas9 筛选揭示剪接因子 DHX38/PRP16 是卵巢透明细胞癌发生所必需的。
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Confirmation of the Role of DHX38 in the Etiology of Early-Onset Retinitis Pigmentosa.确认 DHX38 在早发性视网膜色素变性发病机制中的作用。
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The Fission Yeast Pre-mRNA-processing Factor 18 (prp18+) Has Intron-specific Splicing Functions with Links to G1-S Cell Cycle Progression.裂殖酵母前体mRNA加工因子18(prp18+)具有内含子特异性剪接功能,并与G1-S期细胞周期进程相关。
J Biol Chem. 2016 Dec 30;291(53):27387-27402. doi: 10.1074/jbc.M116.751289. Epub 2016 Nov 15.
8
Complementation of Yeast Genes with Human Genes as an Experimental Platform for Functional Testing of Human Genetic Variants.用人基因对酵母基因进行互补,作为人类遗传变异功能测试的实验平台。
Genetics. 2015 Nov;201(3):1263-74. doi: 10.1534/genetics.115.181099. Epub 2015 Sep 9.
9
The Arabidopsis ortholog of the DEAH-box ATPase Prp16 influences auxin-mediated development.DEAH盒ATP酶Prp16的拟南芥直系同源基因影响生长素介导的发育。
Plant Signal Behav. 2015;10(10):e1074369. doi: 10.1080/15592324.2015.1074369.
10
Splicing functions and global dependency on fission yeast slu7 reveal diversity in spliceosome assembly.剪接功能和对裂殖酵母 slu7 的全局依赖性揭示了剪接体组装的多样性。
Mol Cell Biol. 2013 Aug;33(16):3125-36. doi: 10.1128/MCB.00007-13. Epub 2013 Jun 10.

本文引用的文献

1
The human U5 snRNP-specific 100-kD protein is an RS domain-containing, putative RNA helicase with significant homology to the yeast splicing factor Prp28p.人U5小核核糖核蛋白特异性100-kD蛋白是一种含RS结构域的假定RNA解旋酶,与酵母剪接因子Prp28p具有显著同源性。
RNA. 1997 Nov;3(11):1313-26.
2
Crosslinking of the U5 snRNP-specific 116-kDa protein to RNA hairpins that block step 2 of splicing.U5 小核核糖核蛋白特异性 116 kDa 蛋白与阻断剪接第二步的 RNA 发夹的交联。
RNA. 1997 Nov;3(11):1207-19.
3
Cloning of mDEAH9, a putative RNA helicase and mammalian homologue of Saccharomyces cerevisiae splicing factor Prp43.mDEAH9的克隆,mDEAH9是一种假定的RNA解旋酶,也是酿酒酵母剪接因子Prp43的哺乳动物同源物。
Proc Natl Acad Sci U S A. 1997 Oct 28;94(22):11803-7. doi: 10.1073/pnas.94.22.11803.
4
Prp43: An RNA helicase-like factor involved in spliceosome disassembly.Prp43:一种参与剪接体解聚的类RNA解旋酶因子。
Proc Natl Acad Sci U S A. 1997 Oct 28;94(22):11798-802. doi: 10.1073/pnas.94.22.11798.
5
The role of U5 snRNP in pre-mRNA splicing.U5 小核核糖核蛋白在信使核糖核酸前体剪接中的作用。
EMBO J. 1997 Oct 1;16(19):5797-800. doi: 10.1093/emboj/16.19.5797.
6
Evidence that U5 snRNP recognizes the 3' splice site for catalytic step II in mammals.有证据表明,在哺乳动物中,U5 小核核糖核蛋白颗粒(U5 snRNP)识别催化第二步反应的 3' 剪接位点。
EMBO J. 1997 Aug 1;16(15):4746-59. doi: 10.1093/emboj/16.15.4746.
7
The human U4/U6 snRNP contains 60 and 90kD proteins that are structurally homologous to the yeast splicing factors Prp4p and Prp3p.人类U4/U6核小核糖核蛋白包含60kD和90kD的蛋白质,它们在结构上与酵母剪接因子Prp4p和Prp3p同源。
RNA. 1997 Aug;3(8):926-41.
8
Identification of a human protein that recognizes the 3' splice site during the second step of pre-mRNA splicing.一种在mRNA前体剪接第二步中识别3'剪接位点的人类蛋白质的鉴定。
EMBO J. 1997 Jul 16;16(14):4421-32. doi: 10.1093/emboj/16.14.4421.
9
A protein related to splicing factor U2AF35 that interacts with U2AF65 and SR proteins in splicing of pre-mRNA.一种与剪接因子U2AF35相关的蛋白质,在pre-mRNA剪接过程中与U2AF65和SR蛋白相互作用。
Nature. 1997 Jul 24;388(6640):397-400. doi: 10.1038/41137.
10
An evolutionarily conserved U5 snRNP-specific protein is a GTP-binding factor closely related to the ribosomal translocase EF-2.一种进化上保守的U5小核核糖核蛋白特异性蛋白是一种与核糖体转位酶EF-2密切相关的GTP结合因子。
EMBO J. 1997 Jul 1;16(13):4092-106. doi: 10.1093/emboj/16.13.4092.

酵母prp16和prp17的人类同源物揭示了前体mRNA剪接催化步骤II机制的保守性。

Human homologs of yeast prp16 and prp17 reveal conservation of the mechanism for catalytic step II of pre-mRNA splicing.

作者信息

Zhou Z, Reed R

机构信息

Department of Cell Biology, Harvard Medical School, Boston, MA 02115, USA.

出版信息

EMBO J. 1998 Apr 1;17(7):2095-106. doi: 10.1093/emboj/17.7.2095.

DOI:10.1093/emboj/17.7.2095
PMID:9524131
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1170554/
Abstract

Pre-mRNA splicing takes place in two catalytic steps. The second step is poorly understood, especially in mammals. In yeast, the splicing factors, Prps 16, 17, 18 and Slu7 function exclusively in step II. Here we report the isolation of cDNAs encoding human Prps 16 and 17 which are 41 and 36% identical to their yeast counterparts. The Prp16 gene is essential in yeast, and we show that a chimeric yeast-human Prp16 protein rescues a yeast Prp16 knockout strain. Immunodepletion of hPrp16 from splicing extracts specifically blocks step II, and the activity can be fully restored with recombinant hPrp16. Moreover, both hPrps 16 and 17 associate with the spliceosome late in the splicing pathway. Mutations at the 3' splice site that specifically block step II do not affect the association of hPrps 16 and 17 with the spliceosome, indicating that these factors may function at a stage of step II prior to recognition of the 3' splice site. Recently, the human homologs of Prp18 and Slu7 were identified. The observation that humans contain homologs of all four known step II proteins in yeast indicates that the mechanism for catalytic step II is highly conserved.

摘要

前体mRNA剪接分两个催化步骤进行。第二步的情况了解得很少,在哺乳动物中尤其如此。在酵母中,剪接因子Prps 16、17、18和Slu7仅在第二步发挥作用。在此我们报告了编码人Prps 16和17的cDNA的分离,它们与酵母中的对应物分别有41%和36%的同源性。Prp16基因在酵母中是必需的,我们发现一种嵌合的酵母-人Prp16蛋白可拯救酵母Prp16基因敲除菌株。从剪接提取物中免疫去除hPrp16会特异性阻断第二步,而重组hPrp16可完全恢复该活性。此外,hPrps 16和17均在剪接途径后期与剪接体结合。特异性阻断第二步的3'剪接位点突变并不影响hPrps 16和17与剪接体的结合,这表明这些因子可能在识别3'剪接位点之前的第二步阶段发挥作用。最近,已鉴定出Prp18和Slu7的人同源物。人类含有酵母中所有四种已知第二步蛋白的同源物这一观察结果表明,催化第二步的机制高度保守。