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首页> 外文期刊>Human Molecular Genetics >Friedreich ataxia-induced pluripotent stem cell-derived neurons show a cellular phenotype that is corrected by a benzamide HDAC inhibitor
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Friedreich ataxia-induced pluripotent stem cell-derived neurons show a cellular phenotype that is corrected by a benzamide HDAC inhibitor

机译:Friedreich Ataxia诱导的多能干细胞衍生的神经元显示出通过苯甲酰胺HDAC抑制剂校正的细胞表型

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We employed induced pluripotent stem cell (iPSC)-derived neurons obtained from Friedreich ataxia (FRDA) patients and healthy subjects, FRDA neurons and CT neurons, respectively, to unveil phenotypic alterations related to frataxin (FXN) deficiency and investigate if they can be reversed by treatments that upregulate FXN. FRDA and control iPSCs were equally capable of differentiating into a neuronal or astrocytic phenotype. FRDA neurons showed lower levels of iron–sulfur (Fe–S) and lipoic acid-containing proteins, higher labile iron pool (LIP), higher expression of mitochondrial superoxide dismutase (SOD2), increased reactive oxygen species (ROS) and lower reduced glutathione (GSH) levels, and enhanced sensitivity to oxidants compared with CT neurons, indicating deficient Fe–S cluster biogenesis, altered iron metabolism, and oxidative stress. Treatment with the benzamide HDAC inhibitor 109 significantly upregulated FXN expression and increased Fe–S and lipoic acid-containing protein levels, downregulated SOD2 levels, normalized LIP and ROS levels, and almost fully protected FRDA neurons from oxidative stress-mediated cell death. Our findings suggest that correction of FXN deficiency may not only stop disease progression, but also lead to clinical improvement by rescuing still surviving, but dysfunctional neurons.
机译:我们使用诱导多能干细胞(IPSC)的神经元,分别从Friedreich Ataxia(FRDA)患者和健康受试者,FRDA神经元和CT神经元获得,以揭示与稻草(FXN)缺乏相关的表型改变,并调查它们是否可以逆转通过调理FXN的治疗。 FRDA和控制IPSC同样能够区分为神经元或星形胶质表型。 FRDA神经元显示出较低水平的铁 - 硫(Fe-S)和含硫辛酸的蛋白质,较高的稳定性铁池(唇),线粒体超氧化物歧化酶(SOD2)的更高表达,增加的反应性氧物质(ROS)和降低的谷胱甘肽(GSH)水平和增强对氧化剂的敏感性与CT神经元相比,表明Fe-S簇生物发生,铁代谢改变和氧化应激。用苯甲酰胺HDAC抑制剂109治疗显着上调的FXN表达和含Fe-S和含硫辛酸的蛋白质水平,下调的SOD2水平,标准化的唇缘和ROS水平,以及来自氧化应激介导的细胞死亡的几乎完全受保护的FRDA神经元。我们的研究结果表明,FXN缺乏的纠正可能不仅可以停止疾病进展,而且还导致通过拯救仍存活性,但功能障碍神经元的临床改善。

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