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Splicing regulator SC35 is essential for genomic stability and cell proliferation during mammalian organogenesis.剪接调节因子SC35在哺乳动物器官发生过程中对基因组稳定性和细胞增殖至关重要。
Mol Cell Biol. 2007 Aug;27(15):5393-402. doi: 10.1128/MCB.00288-07. Epub 2007 May 25.
2
Dephosphorylation-dependent sorting of SR splicing factors during mRNP maturation.mRNP成熟过程中SR剪接因子的去磷酸化依赖性分选
Mol Cell. 2005 Nov 11;20(3):413-25. doi: 10.1016/j.molcel.2005.09.015.
3
PLRG1 is an essential regulator of cell proliferation and apoptosis during vertebrate development and tissue homeostasis.PLRG1是脊椎动物发育和组织稳态过程中细胞增殖和凋亡的重要调节因子。
Mol Cell Biol. 2009 Jun;29(11):3173-85. doi: 10.1128/MCB.01807-08. Epub 2009 Mar 23.
4
SC35 plays a role in T cell development and alternative splicing of CD45.SC35在T细胞发育及CD45的可变剪接过程中发挥作用。
Mol Cell. 2001 Feb;7(2):331-42. doi: 10.1016/s1097-2765(01)00181-2.
5
Mice lacking protein phosphatase 5 are defective in ataxia telangiectasia mutated (ATM)-mediated cell cycle arrest.缺乏蛋白磷酸酶5的小鼠在共济失调毛细血管扩张突变(ATM)介导的细胞周期停滞方面存在缺陷。
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6
Dilated cardiomyopathy caused by tissue-specific ablation of SC35 in the heart.心脏中SC35的组织特异性消融导致的扩张型心肌病。
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7
The transcription factor E2F1 and the SR protein SC35 control the ratio of pro-angiogenic versus antiangiogenic isoforms of vascular endothelial growth factor-A to inhibit neovascularization in vivo.转录因子 E2F1 和 SR 蛋白 SC35 控制血管内皮生长因子-A 的促血管生成与抗血管生成异构体的比例,以抑制体内新生血管形成。
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8
Genome-wide analysis reveals SR protein cooperation and competition in regulated splicing.全基因组分析揭示了剪接调控中 SR 蛋白的合作与竞争。
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SC35 autoregulates its expression by promoting splicing events that destabilize its mRNAs.SC35 通过促进导致其 mRNA 不稳定的剪接事件来自动调节自身表达。
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Depletion of Arabidopsis SC35 and SC35-like serine/arginine-rich proteins affects the transcription and splicing of a subset of genes.拟南芥SC35及类SC35富含丝氨酸/精氨酸蛋白的缺失会影响一部分基因的转录和剪接。
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Spliceosome protein alterations differentiate hubs of the default mode connectome during the progression of Alzheimer's disease.剪接体蛋白改变在阿尔茨海默病进展过程中区分默认模式连接组的枢纽。
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SRSF2 is required for mRNA splicing during spermatogenesis.SRSF2 在精子发生过程中对于 mRNA 的剪接是必需的。
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SR Splicing Factors Promote Cancer via Multiple Regulatory Mechanisms.剪接因子通过多种调控机制促进癌症发生。
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Effects of Serine/Arginine Enriched Protein BmUP on the Development of Male Silkworm Reproductive Organs.富含丝氨酸/精氨酸蛋白BmUP对雄蚕生殖器官发育的影响
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本文引用的文献

1
Splicing oncogenes.剪接癌基因
Nat Struct Mol Biol. 2007 Mar;14(3):174-5. doi: 10.1038/nsmb0307-174.
2
The gene encoding the splicing factor SF2/ASF is a proto-oncogene.编码剪接因子SF2/ASF的基因是一种原癌基因。
Nat Struct Mol Biol. 2007 Mar;14(3):185-93. doi: 10.1038/nsmb1209. Epub 2007 Feb 18.
3
Cotranscriptional processes and their influence on genome stability.共转录过程及其对基因组稳定性的影响。
Genes Dev. 2006 Jul 15;20(14):1838-47. doi: 10.1101/gad.1438306.
4
Alternative splicing and control of apoptotic DNA fragmentation.可变剪接与凋亡性DNA片段化的调控
Cell Cycle. 2006 Jun;5(12):1286-8. doi: 10.4161/cc.5.12.2832. Epub 2006 Jun 15.
5
Homeodomain-mediated beta-catenin-dependent switching events dictate cell-lineage determination.同源结构域介导的β-连环蛋白依赖性转换事件决定细胞谱系的确定。
Cell. 2006 May 5;125(3):593-605. doi: 10.1016/j.cell.2006.02.046.
6
Cell motility is controlled by SF2/ASF through alternative splicing of the Ron protooncogene.细胞运动性由SF2/ASF通过Ron原癌基因的可变剪接来控制。
Mol Cell. 2005 Dec 22;20(6):881-90. doi: 10.1016/j.molcel.2005.10.026.
7
Dephosphorylation-dependent sorting of SR splicing factors during mRNP maturation.mRNP成熟过程中SR剪接因子的去磷酸化依赖性分选
Mol Cell. 2005 Nov 11;20(3):413-25. doi: 10.1016/j.molcel.2005.09.015.
8
Loss of splicing factor ASF/SF2 induces G2 cell cycle arrest and apoptosis, but inhibits internucleosomal DNA fragmentation.剪接因子ASF/SF2的缺失会诱导G2期细胞周期停滞和凋亡,但会抑制核小体间DNA片段化。
Genes Dev. 2005 Nov 15;19(22):2705-14. doi: 10.1101/gad.1359305. Epub 2005 Oct 31.
9
Inactivation of the SR protein splicing factor ASF/SF2 results in genomic instability.SR蛋白剪接因子ASF/SF2的失活会导致基因组不稳定。
Cell. 2005 Aug 12;122(3):365-78. doi: 10.1016/j.cell.2005.06.008.
10
The C-terminal lysines fine-tune P53 stress responses in a mouse model but are not required for stability control or transactivation.在小鼠模型中,C末端赖氨酸可微调P53应激反应,但对于稳定性控制或反式激活并非必需。
Proc Natl Acad Sci U S A. 2005 Jul 19;102(29):10188-93. doi: 10.1073/pnas.0503068102. Epub 2005 Jul 8.

剪接调节因子SC35在哺乳动物器官发生过程中对基因组稳定性和细胞增殖至关重要。

Splicing regulator SC35 is essential for genomic stability and cell proliferation during mammalian organogenesis.

作者信息

Xiao Ran, Sun Ye, Ding Jian-Hua, Lin Shengrong, Rose Dave W, Rosenfeld Michael G, Fu Xiang-Dong, Li Xue

机构信息

Department of Surgery/Urology, Children's Hospital of Boston, Harvard Medical School, 300 Longwood Ave., Boston, MA 02115, USA.

出版信息

Mol Cell Biol. 2007 Aug;27(15):5393-402. doi: 10.1128/MCB.00288-07. Epub 2007 May 25.

DOI:10.1128/MCB.00288-07
PMID:17526736
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1952092/
Abstract

The members of the SR family of splicing regulators were initially characterized for their critical roles in constitutive and regulated splicing. They are implicated in different aspects of gene expression processes, including transcription, RNA stability, mRNA transport, and translational control. While knockout studies have demonstrated their essential functions during animal development, the pathway(s) leading to a specific cellular phenotype remains poorly understood. We report here that the SR protein SC35 controls cell proliferation during pituitary gland development but is completely dispensable in terminal differentiated mature cardiomyocytes in mice. We show that loss of SC35 in mouse embryonic fibroblasts induces G2/M cell cycle arrest and genomic instability, resulting at least in part from p53 hyperphosphorylation and hyperacetylation. While p53 hyperphosphorylation appears related to ATM activation, its hyperacetylation has been attributed to the increased expression of the acetyltransferase gene p300 and the aberrant splicing of the deacetylase gene SirT1. These findings reveal the involvement of SC35 in specific pathways in regulating cell proliferation and genomic stability during mammalian organogenesis and suggest its potential function in tumorigenesis.

摘要

剪接调节因子SR家族的成员最初因其在组成型和调节型剪接中的关键作用而被鉴定。它们参与基因表达过程的不同方面,包括转录、RNA稳定性、mRNA运输和翻译控制。虽然基因敲除研究已经证明了它们在动物发育过程中的重要功能,但导致特定细胞表型的途径仍知之甚少。我们在此报告,SR蛋白SC35在垂体发育过程中控制细胞增殖,但在小鼠终末分化的成熟心肌细胞中则完全不需要。我们表明,小鼠胚胎成纤维细胞中SC35的缺失会诱导G2/M期细胞周期停滞和基因组不稳定,这至少部分是由p53的过度磷酸化和过度乙酰化导致的。虽然p53的过度磷酸化似乎与ATM激活有关,但其过度乙酰化归因于乙酰转移酶基因p300表达的增加和去乙酰化酶基因SirT1的异常剪接。这些发现揭示了SC35在哺乳动物器官发生过程中调节细胞增殖和基因组稳定性的特定途径中的作用,并提示了其在肿瘤发生中的潜在功能。