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Characterization of gene regulation and protein interaction networks for Matrin 3 encoding mutations linked to amyotrophic lateral sclerosis and myopathy

机译:Matrin 3编码与肌萎缩性侧索硬化症和肌病相关的突变的基因调控和蛋白质相互作用网络的表征

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摘要

To understand how mutations in Matrin 3 (MATR3) cause amyotrophic lateral sclerosis (ALS) and distal myopathy, we used transcriptome and interactome analysis, coupled with microscopy. Over-expression of wild-type (WT) or F115C mutant MATR3 had little impact on gene expression in neuroglia cells. Only 23 genes, expressed at levels of >100 transcripts showed ≥1.6-fold changes in expression by transfection with WT or mutant MATR3:YFP vectors. We identified ~123 proteins that bound MATR3, with proteins associated with stress granules and RNA processing/splicing being prominent. The interactome of myopathic S85C and ALS-variant F115C MATR3 were virtually identical to WT protein. Deletion of RNA recognition motif (RRM1) or Zn finger motifs (ZnF1 or ZnF2) diminished the binding of a subset of MATR3 interacting proteins. Remarkably, deletion of the RRM2 motif caused enhanced binding of >100 hundred proteins. In live cells, MATR3 lacking RRM2 (ΔRRM2) formed intranuclear spherical structures that fused over time into large structures. Our findings in the cell models used here suggest that MATR3 with disease-causing mutations is not dramatically different from WT protein in modulating gene regulation or in binding to normal interacting partners. The intra-nuclear localization and interaction network of MATR3 is strongly modulated by its RRM2 domain.
机译:为了了解Matrin 3(MATR3)中的突变如何引起肌萎缩性侧索硬化症(ALS)和远端肌病,我们使用了转录组和相互作用组分析,并结合了显微镜检查。野生型(WT)或F115C突变体MATR3的过表达对神经胶质细胞中的基因表达影响很小。用WT或突变型MATR3:YFP载体转染时,只有23个基因的表达水平大于100个转录物,表达变化≥1.6倍。我们鉴定了〜123个与MATR3结合的蛋白质,其中与应激颗粒和RNA加工/剪接相关的蛋白质尤为突出。肌病性S85C和ALS变异型F115C MATR3的相互作用组实际上与WT蛋白相同。 RNA识别基序(RRM1​​)或Zn手指基序(ZnF1或ZnF2)的删除减少了MATR3相互作用蛋白子集的结合。值得注意的是,RRM2基序的缺失导致> 100种蛋白质的结合增强。在活细胞中,缺少RRM2(ΔRRM2)的MATR3形成了核内球形结构,随着时间的推移融合成大结构。我们在此处使用的细胞模型中的发现表明,具有致病突变的MATR3与WT蛋白在调节基因调控或与正常相互作用伴侣结合方面没有显着差异。 MATR3的核内定位和相互作用网络受到其RRM2域的强烈调节。

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