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Aberrant RNA splicing is the major pathogenic effect in a knock‐in mouse model of the dominantly inherited c.1430A>G human RPE65 RPE65 mutation

机译:异常RNA剪接是突出的遗传性C.1430A> G人RPE65 RPE65突变的敲击小鼠模型中的主要致病作用

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摘要

Abstract Human RPE65 mutations cause a spectrum of retinal dystrophies that result in blindness. While RPE65 mutations have been almost invariably recessively inherited, a c.1430AG (p.(D477G)) mutation has been reported to cause autosomal dominant retinitis pigmentosa (adRP). To study the pathogenesis of this human mutation, we have replicated the mutation in a knock‐in (KI) mouse model using CRISPR/Cas9‐mediated genome editing. Significantly, in contrast to human patients, heterozygous KI mice do not exhibit any phenotypes in visual function tests. When raised in regular vivarium conditions, homozygous KI mice display relatively undisturbed visual functions with minimal retinal structural changes. However, KI/KI mouse retinae are more sensitive to light exposure and exhibit signs of degenerative features when subjected to light stress. We find that instead of merely producing a missense mutant protein, the AG nucleotide substitution greatly affects appropriate splicing of Rpe65 mRNA by generating an ectopic splice site in comparable context to the canonical one, thereby disrupting RPE65 protein expression. Similar splicing defects were also confirmed for the human RPE65 c.1430G mutant in an in vitro Exontrap assay. Our data demonstrate that a splicing defect is associated with c.1430G pathogenesis, and therefore provide insights in the therapeutic strategy for human patients.
机译:摘要人RPE65突变导致导致盲目的视网膜滴定剂。据报道,虽然RPE65突变几乎总是遗传的,但据报道,C.1430A& G(p。(D477G))突变引起常染色体显性视网膜炎PIGMENTOSA(ADRP)。为了研究这种人类突变的发病机制,我们使用CRISPR / CAS9介导的基因组编辑复制了敲入(KI)小鼠模型中的突变。显着地,与人类患者相比,杂合的Ki小鼠在视觉功能测试中没有表现出任何表型。当在常规的vivarium条件下提高时,纯合的Ki小鼠显示相对不受干扰的视觉功能,具有最小的视网膜结构变化。然而,Ki / Ki小鼠Retinae对曝光更敏感,并且当受到轻应力时表现出退行性特征的迹象。我们发现,通过在可比较的上下文中产生异位接头位点至规范蛋白表达,而不是仅仅产生致命的突变蛋白,而不是仅产生致命的突变蛋白,而不是仅产生核苷酸突变蛋白,从而通过在比较的情况下产生异位接头位点,从而破坏RPE65蛋白表达。在体外外出测定中,还在人RPE65 C.1430G突变体中确认了类似的剪接缺陷。我们的数据表明,剪​​接缺陷与C.1430G发病机制有关,因此提供了人类患者治疗策略的见解。

著录项

  • 来源
    《Human mutation》 |2019年第4期|共18页
  • 作者单位

    Laboratory of Retinal Cell &

    Molecular BiologyNational Eye Institute NIHBethesda Maryland;

    Laboratory of Retinal Cell &

    Molecular BiologyNational Eye Institute NIHBethesda Maryland;

    Laboratory of Retinal Cell &

    Molecular BiologyNational Eye Institute NIHBethesda Maryland;

    Laboratory of Retinal Cell &

    Molecular BiologyNational Eye Institute NIHBethesda Maryland;

    Laboratory of Retinal Cell &

    Molecular BiologyNational Eye Institute NIHBethesda Maryland;

    Laboratory of Retinal Cell &

    Molecular BiologyNational Eye Institute NIHBethesda Maryland;

    Neurobiology‐Neurodegeneration &

    Repair LaboratoryNational Eye Institute NIHBethesda Maryland;

    Neurobiology‐Neurodegeneration &

    Repair LaboratoryNational Eye Institute NIHBethesda Maryland;

    Laboratory of Retinal Cell &

    Molecular BiologyNational Eye Institute NIHBethesda Maryland;

    Visual Function CoreNational Eye Institute NIHBethesda Maryland;

    Genetic Engineering CoreNational Eye Institute NIHBethesda Maryland;

    Genetic Engineering CoreNational Eye Institute NIHBethesda Maryland;

    National Center for Biotechnology InformationNational Library of Medicine NIHBethesda Maryland;

    Laboratory of Retinal Cell &

    Molecular BiologyNational Eye Institute NIHBethesda Maryland;

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

    autosomal dominant; autosomal recessive retinitis pigmentosa; retina; retinal pigment epithelium; RNA splicing; RPE65;

    机译:常染色体占优势;常染色体隐性视网膜炎pigmentosa;视网膜;视网膜颜料上皮;RNA拼接;RPE65;

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