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FUS ALS-causative mutations impair FUS autoregulation and splicing factor networks through intron retention

机译:Fus Als - 致病突变通过内含子保留损害Fus自动调用和剪接因子网络

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摘要

Mutations in the RNA-binding protein FUS cause amyotrophic lateral sclerosis (ALS), a devastating neurodegenerative disease. FUS plays a role in numerous aspects of RNA metabolism, including mRNA splicing. However, the impact of ALS-causative mutations on splicing has not been fully characterized, as most disease models have been based on overexpressing mutant FUS, which will alter RNA processing due to FUS autoregulation. We and others have recently created knockin models that overcome the overexpression problem, and have generated high depth RNA-sequencing on FUS mutants in parallel to FUS knockout, allowing us to compare mutation-induced changes to genuine loss of function. We find that FUS-ALS mutations induce a widespread loss of function on expression and splicing. Specifically, we find that mutant FUS directly alters intron retention levels in RNA-binding proteins. Moreover, we identify an intron retention event in FUS itself that is associated with its autoregulation. Altered FUS levels have been linked to disease, and we show here that this novel autoregulation mechanism is altered by FUS mutations. Crucially, we also observe this phenomenon in other genetic forms of ALS, including those caused by TDP-43, VCP and SOD1 mutations, supporting the concept that multiple ALS genes interact in a regulatory network.
机译:RNA结合蛋白Fus中的突变导致肌营养的侧面硬化剂(ALS),一种破坏性的神经变性疾病。 Fus在RNA代谢的许多方面发挥作用,包括mRNA剪接。然而,由于大多数疾病模型基于过表达突变体FU,因此尚未完全表征患者对剪接突变的影响尚未完全表征,这将改变由于FUS自瓣引起的RNA处理。我们和其他人最近创建了克服过表达问题的敲门模型,并在Fus突变体上并行地产生了高度的RNA测序,与Fus敲除,允许我们将突变引起的变化与真正的功能丧失进行比较。我们发现Fus-Als突变诱导在表达和剪接上广泛丧失功能。具体而言,我们发现突变体重符团直接在RNA结合蛋白中改变内含子保留水平。此外,我们在Fus本身中确定了与其自动调节相关的内含子保留事件。改变的FUS水平已与疾病相关联,我们在此显示这种新的自动调节机制通过FUS突变改变。至关重要,我们还在其他遗传形式的ALS中观察到这种现象,包括由TDP-43,VCP和SOD1突变引起的那些,支持多个ALS基因在监管网络中互动的概念。

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  • 来源
    《Nucleic Acids Research》 |2020年第12期|共17页
  • 作者单位

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    UCL UCL Queen Sq Inst Neurol UK Dementia Res Inst London WC1N 3BG England;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    UCL UCL Queen Sq Inst Neurol UK Dementia Res Inst London WC1N 3BG England;

    Univ Bern Dept Chem &

    Biochem Freiestr 3 CH-3012 Bern Switzerland;

    Univ Bern Dept Chem &

    Biochem Freiestr 3 CH-3012 Bern Switzerland;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    Sapienza Univ Rome I-00185 Rome Italy;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    Univ Padua Dept Neurosci I-35121 Padua Italy;

    Sapienza Univ Rome I-00185 Rome Italy;

    Sapienza Univ Rome I-00185 Rome Italy;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    Univ Bern Dept Chem &

    Biochem Freiestr 3 CH-3012 Bern Switzerland;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

    UCL UCL Queen Sq Inst Neurol UK Dementia Res Inst London WC1N 3BG England;

    UCL UCL Queen Sq Inst Neurol UK Dementia Res Inst London WC1N 3BG England;

    UCL UCL Genet Inst London WC1E 6BT England;

    UCL Dept Neuromuscular Dis UCL Queen Sq Inst Neurol London WC1N 3BG England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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