铜缺乏和儿童神经变性遗传模型中的适应性蛋白质合成

Alicia R. Lane, Noah E. Scher, Shatabdi Bhattacharjee, Stephanie A. Zlatic, Anne M. Roberts, Avanti Gokhale, Kaela S. Singleton, Duc M. Duong, Mike McKenna, William L. Liu, Alina Baiju, Felix G Rivera Moctezuma, Tommy Tran, Atit Patel, Lauren B. Clayton, Michael J. Petris, Levi B. Wood, Anupam Patgiri, Alysia D. Vrailas-Mortimer, Daniel N. Cox, Blaine R. Roberts, Erica Werner, Victor Faundez
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引用次数: 0

摘要

由铜转运体 SLC31A1 (CTR1) 或 ATP7A 突变引起的罕见遗传性疾病会诱发大脑和全身铜缺乏症,导致婴儿期癫痫发作和神经变性。这种神经病理学的机理基础仍不清楚。在这里,我们描述了神经元细胞在多个遗传模型系统中对铜缺乏做出反应的分子机制。在神经母细胞瘤克隆细胞系中靶向缺失 CTR1 会导致铜缺乏,而铜缺乏与依赖铜的高尔基体和线粒体酶受损以及新陈代谢偏向糖酵解而非氧化磷酸化有关。蛋白质组和转录组分析表明,在 CTR1 KO 细胞中,mTORC1 和 S6K 信号同时上调,PERK 信号减少。基因和蛋白质表达模式以及药物基因组学显示,mTORC1-S6K通路的激活增加是一种促进生存的机制,最终导致蛋白质合成增加(通过嘌呤霉素标记测量)。对 Atp7aflx/Y ::Vil1Cre/+ 小鼠的小脑中,缺铜的浦肯野细胞表现出上调的蛋白质合成机制和 mTORC1-S6K 通路基因的表达。我们通过果蝇的遗传外显实验检测了缺铜神经元中mTOR活性的增加是适应性的还是有害的。S6k表达的增加或4E-BP1(Thor)RNAi可部分挽救缺铜的IV类神经元树突表型,而Akt、S6k或raptor RNAi则会加剧表皮表型。总之,我们证明了增加 mTORC1-S6K 通路的激活和蛋白质合成是神经元细胞对铜耗竭做出反应的一种适应性机制。
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Adaptive protein synthesis in genetic models of copper deficiency and childhood neurodegeneration
Rare inherited diseases caused by mutations in the copper transporters SLC31A1 (CTR1) or ATP7A induce copper deficiency in the brain and throughout the body, causing seizures and neurodegeneration in infancy. The mechanistic underpinnings of such neuropathology remains unclear. Here, we characterized the molecular mechanisms by which neuronal cells respond to copper depletion in multiple genetic model systems. Targeted deletion of CTR1 in neuroblastoma clonal cell lines produced copper deficiency that was associated with compromised copper-dependent Golgi and mitochondrial enzymes and a metabolic shift favoring glycolysis over oxidative phosphorylation. Proteomic and transcriptomic analysis revealed simultaneous upregulation of mTORC1 and S6K signaling, along with reduced PERK signaling in CTR1 KO cells. Patterns of gene and protein expression and pharmacogenomics show increased activation of the mTORC1-S6K pathway as a pro-survival mechanism, ultimately resulting in increased protein synthesis as measured by puromycin labeling. These effects of copper depletion were corroborated by spatial transcriptomic profiling of the cerebellum of Atp7aflx/Y :: Vil1Cre/+ mice, in which copper-deficient Purkinje cells exhibited upregulated protein synthesis machinery and expression of mTORC1-S6K pathway genes. We tested whether increased activity of mTOR in copper-deficient neurons was adaptive or deleterious by genetic epistasis experiments in Drosophila. Copper deficiency dendritic phenotypes in class IV neurons are partially rescued by increased S6k expression or 4E-BP1 (Thor) RNAi, while epidermis phenotypes are exacerbated by Akt, S6k, or raptor RNAi. Overall, we demonstrate that increased mTORC1-S6K pathway activation and protein synthesis is an adaptive mechanism by which neuronal cells respond to copper depletion.
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