首页> 美国卫生研究院文献>The Journal of Neuroscience >The Survival of Motor Neuron (SMN) Protein Interacts with the mRNA-Binding Protein HuD and Regulates Localization of Poly(A) mRNA in Primary Motor Neuron Axons
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The Survival of Motor Neuron (SMN) Protein Interacts with the mRNA-Binding Protein HuD and Regulates Localization of Poly(A) mRNA in Primary Motor Neuron Axons

机译:运动神经元(SMN)蛋白的生存与mRNA结合蛋白HuD相互作用并调节原发性运动神经元轴突中poly(A)mRNA的定位。

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摘要

Spinal muscular atrophy (SMA) results from reduced levels of the survival of motor neuron (SMN) protein, which has a well characterized function in spliceosomal small nuclear ribonucleoprotein assembly. Currently, it is not understood how deficiency of a housekeeping protein leads to the selective degeneration of spinal cord motor neurons. Numerous studies have shown that SMN is present in neuronal processes and has many interaction partners, including mRNA-binding proteins, suggesting a potential noncanonical role in axonal mRNA metabolism. In this study, we have established a novel technological approach using bimolecular fluorescence complementation (BiFC) and quantitative image analysis to characterize SMN-protein interactions in primary motor neurons. Consistent with biochemical studies on the SMN complex, BiFC analysis revealed that SMN dimerizes and interacts with Gemin2 in nuclear gems and axonal granules. In addition, using pull down assays, immunofluorescence, cell transfection, and BiFC, we characterized a novel interaction between SMN and the neuronal mRNA-binding protein HuD, which was dependent on the Tudor domain of SMN. A missense mutation in the SMN Tudor domain, which is known to cause SMA, impaired the interaction with HuD, but did not affect SMN axonal localization or self-association. Furthermore, time-lapse microscopy revealed SMN cotransport with HuD in live motor neurons. Importantly, SMN knockdown in primary motor neurons resulted in a specific reduction of both HuD protein and poly(A) mRNA levels in the axonal compartment. These findings reveal a noncanonical role for SMN whereby its interaction with mRNA-binding proteins may facilitate the localization of associated poly(A) mRNAs into axons.
机译:脊髓性肌萎缩症(SMA)是由于运动神经元(SMN)蛋白的存活水平降低而引起的,该蛋白在剪接小核糖核糖核蛋白装配中具有很好的功能。目前,尚不清楚管家蛋白的缺乏如何导致脊髓运动神经元的选择性变性。大量研究表明,SMN存在于神经元过程中,并具有许多相互作用伙伴,包括mRNA结合蛋白,这表明在轴突mRNA代谢中可能存在非典型作用。在这项研究中,我们已经建立了一种使用双分子荧光互补(BiFC)和定量图像分析来表征原发性运动神经元中SMN-蛋白质相互作用的新技术方法。与对SMN复合物的生化研究一致,BiFC分析表明SMN使核宝石和轴突颗粒中的Gemin2二聚化并相互作用。此外,使用下拉检测,免疫荧光,细胞转染和BiFC,我们表征了SMN与神经元mRNA结合蛋白HuD之间的新型相互作用,该相互作用取决于SMN的Tudor域。 SMN Tudor域中的一个错义突变(已知会导致SMA)损害了与HuD的相互作用,但并未影响SMN的轴突定位或自缔合。此外,延时显微镜显示SMN与HuD在运动神经元中共转运。重要的是,在原代运动神经元中的SMN敲低导致轴突区室中的HuD蛋白和poly(A)mRNA的水平都有特定的降低。这些发现揭示了SMN的非规范作用,即它与mRNA结合蛋白的相互作用可能有助于将相关的poly(A)mRNA定位到轴突中。

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