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剪接体UsnRNP组装受损导致Sm mRNA下调和Sm蛋白降解。

Impaired spliceosomal UsnRNP assembly leads to Sm mRNA down-regulation and Sm protein degradation.

作者信息

Prusty Archana Bairavasundaram, Meduri Rajyalakshmi, Prusty Bhupesh Kumar, Vanselow Jens, Schlosser Andreas, Fischer Utz

机构信息

Department of Biochemistry, Biocenter, University of Würzburg, Am Hubland, Würzburg, Germany.

Department of Microbiology, Biocenter, University of Würzburg, Am Hubland, Würzburg, Germany.

出版信息

J Cell Biol. 2017 Aug 7;216(8):2391-2407. doi: 10.1083/jcb.201611108. Epub 2017 Jun 21.

Abstract

Specialized assembly factors facilitate the formation of many macromolecular complexes in vivo. The formation of Sm core structures of spliceosomal U-rich small nuclear ribonucleoprotein particles (UsnRNPs) requires assembly factors united in protein arginine methyltransferase 5 (PRMT5) and survival motor neuron (SMN) complexes. We demonstrate that perturbations of this assembly machinery trigger complex cellular responses that prevent aggregation of unassembled Sm proteins. Inactivation of the SMN complex results in the initial tailback of Sm proteins on the PRMT5 complex, followed by down-regulation of their encoding mRNAs. In contrast, reduction of pICln, a PRMT5 complex subunit, leads to the retention of newly synthesized Sm proteins on ribosomes and their subsequent lysosomal degradation. Overexpression of Sm proteins under these conditions results in a surplus of Sm proteins over pICln, promoting their aggregation. Our studies identify an elaborate safeguarding system that prevents individual Sm proteins from aggregating, contributing to cellular UsnRNP homeostasis.

摘要

特殊的组装因子有助于体内许多大分子复合物的形成。富含U的剪接体小核核糖核蛋白颗粒(UsnRNPs)的Sm核心结构的形成需要联合在蛋白质精氨酸甲基转移酶5(PRMT5)和存活运动神经元(SMN)复合物中的组装因子。我们证明,这种组装机制的扰动会引发复杂的细胞反应,从而防止未组装的Sm蛋白聚集。SMN复合物的失活导致Sm蛋白最初在PRMT5复合物上积累,随后其编码mRNA下调。相反,PRMT5复合物亚基pICln的减少导致新合成的Sm蛋白保留在核糖体上并随后被溶酶体降解。在这些条件下Sm蛋白的过表达导致Sm蛋白相对于pICln过剩,促进它们的聚集。我们的研究确定了一个精心设计的保护系统,该系统可防止单个Sm蛋白聚集,有助于细胞UsnRNP的稳态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c149/5551706/b8ca116411d7/JCB_201611108_Fig1.jpg

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