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生存运动神经元蛋白影响膜重塑以及蛋白质合成机制的锚定。

SMN affects membrane remodelling and anchoring of the protein synthesis machinery.

作者信息

Gabanella Francesca, Pisani Cinzia, Borreca Antonella, Farioli-Vecchioli Stefano, Ciotti Maria Teresa, Ingegnere Tiziano, Onori Annalisa, Ammassari-Teule Martine, Corbi Nicoletta, Canu Nadia, Monaco Lucia, Passananti Claudio, Di Certo Maria Grazia

机构信息

CNR-Institute of Cell Biology and Neurobiology, Rome 00143, Italy IRCCS Fondazione Santa Lucia, Rome 00143, Italy.

CNR-IBPM, Department of Molecular Medicine, Sapienza University of Rome, Rome 00161, Italy.

出版信息

J Cell Sci. 2016 Feb 15;129(4):804-16. doi: 10.1242/jcs.176750. Epub 2016 Jan 7.

Abstract

Disconnection between membrane signalling and actin networks can have catastrophic effects depending on cell size and polarity. The survival motor neuron (SMN) protein is ubiquitously involved in assembly of spliceosomal small nuclear ribonucleoprotein particles. Other SMN functions could, however, affect cellular activities driving asymmetrical cell surface expansions. Genes able to mitigate SMN deficiency operate within pathways in which SMN can act, such as mRNA translation, actin network and endocytosis. Here, we found that SMN accumulates at membrane protrusions during the dynamic rearrangement of the actin filaments. In addition to localization data, we show that SMN interacts with caveolin-1, which mediates anchoring of translation machinery components. Importantly, SMN deficiency depletes the plasma membrane of ribosomes, and this correlates with the failure of fibroblasts to extend membrane protrusions. These findings strongly support a relationship between SMN and membrane dynamics. We propose that SMN could assembly translational platforms associated with and governed by the plasma membrane. This activity could be crucial in cells that have an exacerbated interdependence of membrane remodelling and local protein synthesis.

摘要

根据细胞大小和极性,膜信号传导与肌动蛋白网络之间的脱节可能会产生灾难性影响。生存运动神经元(SMN)蛋白普遍参与剪接体小核糖核蛋白颗粒的组装。然而,SMN的其他功能可能会影响驱动不对称细胞表面扩张的细胞活动。能够减轻SMN缺陷的基因在SMN可以发挥作用的途径中起作用,例如mRNA翻译、肌动蛋白网络和内吞作用。在这里,我们发现SMN在肌动蛋白丝的动态重排过程中积聚在膜突起处。除了定位数据,我们还表明SMN与小窝蛋白-1相互作用,小窝蛋白-1介导翻译机器组件的锚定。重要的是,SMN缺陷会使核糖体从质膜上耗尽,这与成纤维细胞无法延伸膜突起相关。这些发现有力地支持了SMN与膜动力学之间的关系。我们提出,SMN可以组装与质膜相关并受其调控的翻译平台。这种活动在膜重塑和局部蛋白质合成相互依存性加剧的细胞中可能至关重要。

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