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生存运动神经元蛋白的新功能作为一种翻译调节因子。

A novel function for the survival motoneuron protein as a translational regulator.

机构信息

Department of Cellular and Molecular Medicine, University of Ottawa, Ottawa, ON, Canada K1H 8M5.

出版信息

Hum Mol Genet. 2013 Feb 15;22(4):668-84. doi: 10.1093/hmg/dds474. Epub 2012 Nov 6.

Abstract

SMN1, the causative gene for spinal muscular atrophy (SMA), plays a housekeeping role in the biogenesis of small nuclear RNA ribonucleoproteins. SMN is also present in granular foci along axonal projections of motoneurons, which are the predominant cell type affected in the pathology. These so-called RNA granules mediate the transport of specific mRNAs along neurites and regulate mRNA localization, stability, as well as local translation. Recent work has provided evidence suggesting that SMN may participate in the assembly of RNA granules, but beyond that, the precise nature of its role within these structures remains unclear. Here, we demonstrate that SMN associates with polyribosomes and can repress translation in an in vitro translation system. We further identify the arginine methyltransferase CARM1 as an mRNA that is regulated at the translational level by SMN and find that CARM1 is abnormally up-regulated in spinal cord tissue from SMA mice and in severe type I SMA patient cells. We have previously characterized a novel regulatory pathway in motoneurons involving the SMN-interacting RNA-binding protein HuD and CARM1. Thus, our results suggest the existence of a potential negative feedback loop in this pathway. Importantly, an SMA-causing mutation in the Tudor domain of SMN completely abolished translational repression, a strong indication for the functional significance of this novel SMN activity in the pathology.

摘要

SMN1 是脊髓性肌肉萎缩症(SMA)的致病基因,在小核 RNA 核糖核蛋白的生物发生中起管家作用。SMN 也存在于运动神经元轴突投射中的颗粒焦点中,这些焦点是病理学中受影响的主要细胞类型。这些所谓的 RNA 颗粒介导特定 mRNA 沿着神经突的运输,并调节 mRNA 定位、稳定性以及局部翻译。最近的工作提供了证据表明,SMN 可能参与 RNA 颗粒的组装,但除此之外,其在这些结构中的精确作用仍不清楚。在这里,我们证明 SMN 与多核糖体结合,并可以在体外翻译系统中抑制翻译。我们进一步确定精氨酸甲基转移酶 CARM1 是一种受 SMN 调节的翻译水平的 mRNA,并发现 CARM1 在 SMA 小鼠的脊髓组织和严重的 I 型 SMA 患者细胞中异常上调。我们之前在运动神经元中描述了一种涉及 SMN 相互作用的 RNA 结合蛋白 HuD 和 CARM1 的新型调节途径。因此,我们的结果表明该途径中存在潜在的负反馈回路。重要的是,SMN 中 Tudor 结构域的一个引起 SMA 的突变完全消除了翻译抑制,这强烈表明这种新型 SMN 活性在病理学中的功能意义。

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