首页> 外文OA文献 >Protein interaction analysis of senataxin and the ALS4 L389S mutant yields insights into senataxin post-translational modification and uncovers mutant-specific binding with a brain cytoplasmic RNA-encoded peptide
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Protein interaction analysis of senataxin and the ALS4 L389S mutant yields insights into senataxin post-translational modification and uncovers mutant-specific binding with a brain cytoplasmic RNA-encoded peptide

机译:senataxin和ALS4 L389S突变体的蛋白质相互作用分析可深入了解senataxin的翻译后修饰,并揭示与脑细胞质RNA编码肽的突变体特异性结合

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摘要

Senataxin is a large 303 kDa protein linked to neuron survival, as recessive mutations cause Ataxia with Oculomotor Apraxia type 2 (AOA2), and dominant mutations cause amyotrophic lateral sclerosis type 4 (ALS4). Senataxin contains an amino-terminal protein-interaction domain and a carboxy-terminal DNA/RNA helicase domain. In this study, we focused upon the common ALS4 mutation, L389S, by performing yeast two-hybrid screens of a human brain expression library with control senataxin or L389S senataxin as bait. Interacting clones identified from the two screens were collated, and redundant hits and false positives subtracted to yield a set of 13 protein interactors. Among these hits, we discovered a highly specific and reproducible interaction of L389S senataxin with a peptide encoded by the antisense sequence of a brain-specific non-coding RNA, known as BCYRN1. We further found that L389S senataxin interacts with other proteins containing regions of conserved homology with the BCYRN1 reverse complement-encoded peptide, suggesting that such aberrant protein interactions may contribute to L389S ALS4 disease pathogenesis. As the yeast two-hybrid screen also demonstrated senataxin self-association, we confirmed senataxin dimerization via its amino-terminal binding domain and determined that the L389S mutation does not abrogate senataxin self-association. Finally, based upon detection of interactions between senataxin and ubiquitin–SUMO pathway modification enzymes, we examined senataxin for the presence of ubiquitin and SUMO monomers, and observed this post-translational modification. Our senataxin protein interaction study reveals a number of features of senataxin biology that shed light on senataxin normal function and likely on senataxin molecular pathology in ALS4.
机译:Senataxin是与神经元存活相关的大型303 kDa蛋白,因为隐性突变会导致动眼性失用症2型(AOA2)共济失调,显性突变会导致4型肌萎缩性侧索硬化(ALS4)。 Senataxin包含一个氨基末端蛋白质相互作用域和一个羧基末端DNA / RNA解旋酶域。在这项研究中,我们通过以对照Senataxin或L389S senataxin作为诱饵对人脑表达文库进行酵母双杂交筛选,将重点放在常见的ALS4突变L389S上。比较从两个筛选中鉴定出的相互作用克隆,并减去多余的命中和假阳性,以产生一组13种蛋白质相互作用子。在这些命中中,我们发现了L389S senataxin与由大脑特异性非编码RNA反义序列(称为BCYRN1)反义序列编码的肽的高度特异性和可再现的相互作用。我们进一步发现,L389S senataxin与包含与BCYRN1反向补体编码的肽具有保守同源性的区域的其他蛋白质相互作用,表明这种异常的蛋白质相互作用可能有助于L389S ALS4的发病机理。由于酵母双杂交筛选也显示了senataxin的自缔合,我们通过其氨基末端结合域确认了senataxin的二聚化,并确定L389S突变不会消除senataxin的自缔合。最后,基于检测到的senataxin和泛素–SUMO途径修饰酶之间的相互作用,我们检查了senataxin中是否存在泛素和SUMO单体,并观察了这种翻译后修饰。我们的senataxin蛋白质相互作用研究揭示了senataxin生物学的许多特征,这些特征阐明了senataxin的正常功能,并可能阐明了ALS4中的senataxin分子病理学。

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