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摇蚊 I 控制着一种独特的细胞质途径,该途径调节髓鞘相关糖蛋白的可变剪接。

Quaking I controls a unique cytoplasmic pathway that regulates alternative splicing of myelin-associated glycoprotein.

机构信息

Department of Pharmacology, School of Medicine, Emory University, Atlanta, GA 30322, USA.

出版信息

Proc Natl Acad Sci U S A. 2010 Nov 2;107(44):19061-6. doi: 10.1073/pnas.1007487107. Epub 2010 Oct 18.

DOI:10.1073/pnas.1007487107
PMID:20956316
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2973874/
Abstract

Precise control of alternative splicing governs oligodendrocyte (OL) differentiation and myelination in the central nervous system (CNS). A well-known example is the developmentally regulated expression of splice variants encoding myelin-associated glycoprotein (MAG), which generates two protein isoforms that associate with distinct cellular components crucial for axon-glial recognition during myelinogenesis and axon-myelin stability. In the quakingviable (qk(v)) hypomyelination mutant mouse, diminished expression of isoforms of the selective RNA-binding protein quaking I (QKI) leads to severe dysregulation of MAG splicing. The nuclear isoform QKI-5 was previously shown to bind an intronic element of MAG and modulate alternative exon inclusion from a MAG minigene reporter. Thus, QKI-5 deficiency was thought to underlie the defects of MAG splicing in the qk(v) mutant. Surprisingly, we found that transgenic expression of the cytoplasmic isoform QKI-6 in the qk(v) OLs completely rescues the dysregulation of MAG splicing without increasing expression or nuclear abundance of QKI-5. In addition, cytoplasmic QKI-6 selectively associates with the mRNA that encodes heterogeneous nuclear ribonucleoprotein A1 (hnRNPA1), a well-characterized splicing factor. Furthermore, QKI deficiency in the qk(v) mutant results in abnormally enhanced hnRNPA1 translation and overproduction of the hnRNPA1 protein but not hnRNPA1 mRNA, which can be successfully rescued by the QKI-6 transgene. Finally, we show that hnRNPA1 binds MAG pre-mRNA and modulates alternative inclusion of MAG exons. Together, these results reveal a unique cytoplasmic pathway in which QKI-6 controls translation of the splicing factor hnRNPA1 to govern alternative splicing in CNS myelination.

摘要

精确调控可变剪接控制着中枢神经系统(CNS)中少突胶质细胞(OL)的分化和髓鞘形成。一个众所周知的例子是,编码髓鞘相关糖蛋白(MAG)的剪接变体的发育调控表达,其产生两种与髓鞘形成和轴突-髓鞘稳定性过程中轴突-胶质识别至关重要的不同细胞成分结合的蛋白同工型。在震颤失活(qk(v))少突胶质发育不良突变小鼠中,选择性 RNA 结合蛋白 quaking I(QKI)的同工型表达减少,导致 MAG 剪接严重失调。先前的研究表明,核型同工型 QKI-5 与 MAG 的内含子元件结合,并调节 MAG 小基因报告的选择性外显子包含。因此,QKI-5 缺陷被认为是 qk(v) 突变体中 MAG 剪接缺陷的基础。令人惊讶的是,我们发现,在 qk(v) OL 中转基因表达细胞质同工型 QKI-6 可完全挽救 MAG 剪接的失调,而不会增加 QKI-5 的表达或核丰度。此外,细胞质 QKI-6 选择性地与编码异质核核糖核蛋白 A1(hnRNPA1)的 mRNA 结合,hnRNPA1 是一种公认的剪接因子。此外,qk(v) 突变体中的 QKI 缺乏导致 hnRNPA1 翻译异常增强和 hnRNPA1 蛋白过度产生,但 hnRNPA1 mRNA 不受影响,而 QKI-6 转基因可成功挽救这一现象。最后,我们发现 hnRNPA1 与 MAG 前体 mRNA 结合并调节 MAG 外显子的选择性包含。总之,这些结果揭示了一种独特的细胞质途径,其中 QKI-6 控制剪接因子 hnRNPA1 的翻译,从而调控 CNS 髓鞘形成中的可变剪接。

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The alternative splicing repressors hnRNP A1/A2 and PTB influence pyruvate kinase isoform expression and cell metabolism.hnRNP A1/A2 和 PTB 等可变剪接抑制剂影响丙酮酸激酶同工酶的表达和细胞代谢。
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Essential function, sophisticated regulation and pathological impact of the selective RNA-binding protein QKI in CNS myelin development.选择性RNA结合蛋白QKI在中枢神经系统髓鞘发育中的基本功能、复杂调控及病理影响
Future Neurol. 2008 Nov;3(6):655-668. doi: 10.2217/14796708.3.6.655.
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Nuclear functions of heterogeneous nuclear ribonucleoproteins A/B.不均一核核糖核蛋白A/B的核功能
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Wrapping it up: the cell biology of myelination.总结:髓鞘形成的细胞生物学
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hnRNP A1 functions with specificity in repression of SMN2 exon 7 splicing.异质性核糖核蛋白A1在抑制SMN2基因第7外显子剪接过程中具有特异性作用。
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