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首页> 外文期刊>Human Molecular Genetics >Expression of ALS/FTD-linked mutant CCNF in zebrafish leads to increased cell death in the spinal cord and an aberrant motor phenotype
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Expression of ALS/FTD-linked mutant CCNF in zebrafish leads to increased cell death in the spinal cord and an aberrant motor phenotype

机译:斑马鱼中的Als / FTD连接突变体CCNF的表达导致脊髓和异常运动表型的细胞死亡增加

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摘要

Amyotrophic lateral sclerosis (ALS) is a rapidly progressive, fatal neurodegenerative disease characterised by the death of upper and lower motor neurons. Approximately 10% of cases have a known family history of ALS and disease-linked mutations in multiple genes have been identified. ALS-linked mutations in CCNF were recently reported, however the pathogenic mechanisms associated with these mutations are yet to be established. To investigate possible disease mechanisms, we developed in vitro and in vivo models based on an ALS-linked missense mutation in CCNF. Proteomic analysis of the in vitro models identified the disruption of several cellular pathways in the mutant model, including caspase-3 mediated cell death. Transient overexpression of human CCNF in zebrafish embryos supported this finding, with fish expressing the mutant protein found to have increased levels of cleaved (activated) caspase-3 and increased cell death in the spinal cord. The mutant CCNF fish also developed a motor neuron axonopathy consisting of shortened primary motor axons and increased frequency of aberrant axonal branching. Importantly, we demonstrated a significant correlation between the severity of the CCNF-induced axonopathy and a reduced motor response to a light stimulus (photomotor response). This is the first report of an ALS-linked CCNF mutation in vivo and taken together with the in vitro model identifies the disruption of cell death pathways as a significant consequence of this mutation. Additionally, this study presents a valuable new tool for use in ongoing studies investigating the pathobiology of ALS-linked CCNF mutations.
机译:肌营养的外侧硬化症(ALS)是一种迅速进行的致命的神经变性疾病,其特征在于上下运动神经元死亡。已经鉴定了大约10%的病例具有已知的ALS和疾病关联突变的疾病。最近报道了CCNF中的Als连接突变,但是与这些突变相关的致病机制尚未建立。研究可能的疾病机制,我们在体外和体内模型中基于CCNF中的ALS连接的畸形突变开发。体外模型的蛋白质组学分析确定了突变模型中几种细胞途径的破坏,包括Caspase-3介导的细胞死亡。在斑马鱼胚胎中的人CCNF的瞬时过度表达支持该发现,用鱼类表达发现突变蛋白质的鱼蛋白,裂解(活化的)胱天冬酶-3的水平增加以及脊髓中增加的细胞死亡。突变体CCNF鱼还开发了由缩短的初级电机轴突组成的电机神经元腋窝和多种轴突分支的增加频率。重要的是,我们证明了CCNF诱导的轴突的严重程度与对光刺激(光学选响应)的电动机响应的严重程度之间的显着相关性。这是体内ALS链接CCNF突变的第一个报告,并与体外模型一起鉴定细胞死亡途径的破坏,作为这种突变的重大结果。此外,本研究介绍了在正在进行的研究中使用的有价值的新工具,调查ALS连接的CCNF突变的病理学。

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  • 来源
    《Human Molecular Genetics 》 |2017年第14期| 共11页
  • 作者单位

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    ANZAC Res Inst Northcott Neurosci Lab Sydney NSW 2139 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Dept Chem &

    Biomol Sci Fac Sci &

    Engn Sydney NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

    Macquarie Univ Fac Med &

    Hlth Sci Dept Biomed Sci N Ryde NSW 2109 Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 医学遗传学 ;
  • 关键词

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