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Mitochondrial dysfunction induces dendritic loss via eIF2α phosphorylation

机译:线粒体功能障碍通过EIF2α磷酸化引起树突损失

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Mitochondria are key contributors to the etiology of diseases associated with neuromuscular defects or neurodegeneration. How changes in cellular metabolism specifically impact neuronal intracellular processes and cause neuropathological events is still unclear. We here dissect the molecular mechanism by which mitochondrial dysfunction induced by Prel aberrant function mediates selective dendritic loss in Drosophila melanogaster class IV dendritic arborization neurons. Using in vivo ATP imaging, we found that neuronal cellular ATP levels during development are not correlated with the progression of dendritic loss. We searched for mitochondrial stress signaling pathways that induce dendritic loss and found that mitochondrial dysfunction is associated with increased eIF2α phosphorylation, which is sufficient to induce dendritic pathology in class IV arborization neurons. We also observed that eIF2α phosphorylation mediates dendritic loss when mitochondrial dysfunction results from other genetic perturbations. Furthermore, mitochondrial dysfunction induces translation repression in class IV neurons in an eIF2α phosphorylation-dependent manner, suggesting that differential translation attenuation among neuron subtypes is a determinant of preferential vulnerability.
机译:线粒体是与神经肌肉缺陷或神经变性相关的病因的关键贡献者。细胞新陈代谢的变化如何影响神经元细胞内方法并引起神经病理事件仍然不清楚。我们在这里解剖了PREL异常函数诱导的线粒体功能障碍在果蝇中介导的选择性树突式损失诱导的分子机制介于奇孢子菌蛋白酶体IV树突树突树突族植物中的选择性树突损失。在体内ATP成像中使用,我们发现在发育过程中的神经元细胞ATP水平与树突损失的进展无关。我们搜索了诱导树突损失的线粒体应力信号传导途径,发现线粒体功能障碍与增加的EIF2α磷酸化有关,这足以诱导IV类族树枝状神经元中的树突病理学。我们还观察到,当线粒体功能障碍来自其他遗传扰动时,EIF2α磷酸化介导树枝状损失。此外,线粒体功能障碍在EIF2α磷酸化依赖性方式中引起IV类神经元的转化抑制,表明神经元亚型中的差异转化衰减是优先脆弱性的决定因素。

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