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首页> 外文期刊>Human Molecular Genetics >Gcn5 loss-of-function accelerates cerebellar and retinal degeneration in a SCA7 mouse model
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Gcn5 loss-of-function accelerates cerebellar and retinal degeneration in a SCA7 mouse model

机译:Gcn5功能丧失加速了SCA7小鼠模型中的小脑和视网膜变性

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Spinocerebellar ataxia type 7 (SCA7) is a neurodegenerative disease caused by expansion of a CAG repeat encoding a polyglutamine tract in ATXN7, a component of the SAGA histone acetyltransferase (HAT) complex. Previous studies provided conflicting evidence regarding the effects of polyQ–ATXN7 on the activity of Gcn5, the HAT catalytic subunit of SAGA. Here, we report that reducing Gcn5 expression accelerates both cerebellar and retinal degeneration in a mouse model of SCA7. Deletion of Gcn5 in Purkinje cells in mice expressing wild-type (wt) Atxn7, however, causes only mild ataxia and does not lead to the early lethality observed in SCA7 mice. Reduced Gcn5 expression strongly enhances retinopathy in SCA7 mice, but does not affect the known transcriptional targets of Atxn7, as expression of these genes is not further altered by Gcn5 depletion. These findings demonstrate that loss of Gcn5 functions can contribute to the time of onset and severity of SCA7 phenotypes, and suggest that non-transcriptional functions of SAGA may play a role in neurodegeneration in this disease.
机译:脊髓小脑性共济失调7型(SCA7)是由编码SAGA组蛋白乙酰基转移酶(HAT)复合物ATXN7中的聚谷氨酰胺束的CAG重复序列扩增引起的神经退行性疾病。先前的研究提供了关于polyQ–ATXN7对SAGA的HAT催化亚基Gcn5的活性的相互矛盾的证据。在这里,我们报道,在SCA7小鼠模型中,减少Gcn5表达可加速小脑和视网膜变性。然而,表达野生型(wt)Atxn7的小鼠的Purkinje细胞中Gcn5的缺失仅引起轻度共济失调,并且不会导致在SCA7小鼠中观察到的早期致死性。减少的Gcn5表达可大大增强SCA7小鼠的视网膜病变,但不会影响Atxn7的已知转录靶标,因为这些基因的表达不会因Gcn5耗竭而进一步改变。这些发现表明,Gcn5功能的丧失可导致SCA7表型的发作时间和严重程度,并表明SAGA的非转录功能可能在该疾病的神经退行性变中起作用。

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  • 来源
    《Human Molecular Genetics 》 |2012年第2期| p.394-405| 共12页
  • 作者单位

    1Department of Molecular Carcinogenesis, University of Texas MD Anderson Cancer Center Science Park, Smithville, TX 78957, USA, 2Graduate School of Biomedical Sciences and the Center for Cancer Epigenetics and 3Department of Biochemistry and Molecular Biology, University of Texas MD Anderson Cancer Center, Houston, TX 77030, USA, 4Department of Neuroscience and 5Department of Molecular and Human Genetics and Howard Hughes Medical Institute, Baylor College of Medicine, Houston, TX 77030, USA and 6Department of Biochemistry and Molecular Genetics, University of Virginia School of Medicine, Charlottesville, VA 22908, USA;

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