首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Mitochondrial Dysfunction Combined with High Calcium Load Leads to Impaired Antioxidant Defense Underlying the Selective Loss of Nigral Dopaminergic Neurons
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Mitochondrial Dysfunction Combined with High Calcium Load Leads to Impaired Antioxidant Defense Underlying the Selective Loss of Nigral Dopaminergic Neurons

机译:线粒体功能障碍联合高钙载体导致抗氧化防御受损的抗氧化防御性抗氧化剂的选择性丧失的抗氧化剂神经元

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摘要

Mitochondrial dysfunction is critically involved in Parkinson's disease, characterized by loss of dopaminergic neurons (DaNs) in the substantia nigra (SNc), whereas DaNs in the neighboring ventral tegmental area (VTA) are much less affected. In contrast to VTA, SNc DaNs engage calcium channels to generate action potentials, which lead to oxidant stress by yet unknown pathways. To determine the molecular mechanisms linking calcium load with selective cell death in the presence of mitochondrial deficiency, we analyzed the mitochondrial redox state and the mitochondrial membrane potential in mice of both sexes with genetically induced, severe mitochondrial dysfunction in DaNs (MitoPark mice), at the same time expressing a redox-sensitive GFP targeted to the mitochondrial matrix. Despite mitochondrial insufficiency in all DaNs, exclusively SNc neurons showed an oxidized redox-system, i.e., a low reduced/oxidized glutathione (GSH-GSSG) ratio. This was mimicked by cyanide, but not by rotenone or antimycin A, making the involvement of reactive oxygen species rather unlikely. Surprisingly, a high mitochondrial inner membrane potential was maintained in MitoPark SNc DaNs. Antagonizing calcium influx into the cell and into mitochondria, respectively, rescued the disturbed redox ratio and induced further hyperpolarization of the inner mitochondrial membrane. Our data therefore show that the constant calcium load in SNc DaNs is counterbalanced by a high mitochondrial inner membrane potential, even under conditions of severe mitochondrial dysfunction, but triggers a detrimental imbalance in the mitochondrial redox system, which will lead to neuron death. Our findings thus reveal a new mechanism, redox imbalance, which underlies the differential vulnerability of DaNs to mitochondrial defects.
机译:线粒体功能障碍统治性涉及帕金森病,其特征在于实质性NIGRA(SNC)中的多巴胺能神经元(DAN)的损失,而邻近腹侧腹部(VTA)的丹数则受到影响程度较小。与VTA相比,SNC DANS接合钙通道以产生动作电位,从而导致氧化剂应力达到尚不清楚的途径。确定在线粒体缺乏的存在下将钙载荷与选择性细胞死亡的分子机制联系起来,我们分析了达斯(MITOPARK小鼠)的遗传诱导的严重线粒体功能障碍两性小鼠的线粒体氧化还原状态和线粒体膜势。同时表达靶向线粒体矩阵的氧化还原敏感GFP的时间。尽管所有DANS中的线粒体不足,但仅仅是SNC神经元,显示出氧化的氧化还原系统,即低减少/氧化的谷胱甘肽(GSH-GSSG)的比例。这由氰化物模仿,但不是由Rotenone或抗霉素A,使反应性氧物种的累积相当不太可能。令人惊讶的是,在MITOPARK SNC DAN中维持高线粒体内膜电位。分别将钙流入细胞中的钙流入细胞和线粒体,拯救了干扰的氧化还原比,并诱导了内部线粒体膜的进一步超极化。因此,我们的数据表明,即使在严重线粒体功能障碍的条件下,SNC DAN的恒定钙载荷也受到高线粒体内膜电位的平衡,但在严重的线粒体功能障碍的条件下,甚至在线粒体氧化还原系统中触发了不平衡,这将导致神经元死亡。因此,我们的研究结果揭示了一种新的机制,氧化还原性失衡,这是丹Lans对线粒体缺陷的差异脆弱性的影响。

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