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Dusp26 磷酸酶调节线粒体呼吸和氧化应激,保护神经元细胞死亡。

Dusp26 phosphatase regulates mitochondrial respiration and oxidative stress and protects neuronal cell death.

机构信息

Molecular Chaperone Biology, Georgia Cancer Center, Medical College of Georgia at Augusta University, 1120 15th St., CN3153, Augusta, GA, 30912, USA.

Department of Internal Medicine, University of Utah, Salt Lake City, Utah, USA.

出版信息

Cell Mol Life Sci. 2022 Mar 21;79(4):198. doi: 10.1007/s00018-022-04162-z.

Abstract

The dual specificity protein phosphatases (Dusps) control dephosphorylation of mitogen-activated protein kinases (MAPKs) as well as other substrates. Here, we report that Dusp26, which is highly expressed in neuroblastoma cells and primary neurons is targeted to the mitochondrial outer membrane via its NH-terminal mitochondrial targeting sequence. Loss of Dusp26 has a significant impact on mitochondrial function that is associated with increased levels of reactive oxygen species (ROS), reduction in ATP generation, reduction in mitochondria motility and release of mitochondrial HtrA2 protease into the cytoplasm. The mitochondrial dysregulation in dusp26-deficient neuroblastoma cells leads to the inhibition of cell proliferation and cell death. In vivo, Dusp26 is highly expressed in neurons in different brain regions, including cortex and midbrain (MB). Ablation of Dusp26 in mouse model leads to dopaminergic (DA) neuronal cell loss in the substantia nigra par compacta (SNpc), inflammatory response in MB and striatum, and phenotypes that are normally associated with Neurodegenerative diseases. Consistent with the data from our mouse model, Dusp26 expressing cells are significantly reduced in the SNpc of Parkinson's Disease patients. The underlying mechanism of DA neuronal death is that loss of Dusp26 in neurons increases mitochondrial ROS and concurrent activation of MAPK/p38 signaling pathway and inflammatory response. Our results suggest that regulation of mitochondrial-associated protein phosphorylation is essential for the maintenance of mitochondrial homeostasis and dysregulation of this process may contribute to the initiation and development of neurodegenerative diseases.

摘要

双重特异性蛋白磷酸酶(Dusps)控制丝裂原活化蛋白激酶(MAPKs)以及其他底物的去磷酸化。在这里,我们报告说,在神经母细胞瘤细胞和原代神经元中高度表达的 Dusp26 通过其 NH2 末端线粒体靶向序列靶向到线粒体外膜。Dusp26 的缺失对线粒体功能有显著影响,与活性氧(ROS)水平升高、ATP 生成减少、线粒体运动减少以及线粒体 HtrA2 蛋白酶释放到细胞质有关。dusp26 缺陷型神经母细胞瘤细胞中线粒体失调导致细胞增殖和细胞死亡的抑制。在体内,Dusp26 在不同脑区的神经元中高度表达,包括皮质和中脑(MB)。在小鼠模型中敲除 Dusp26 会导致黑质致密部(SNpc)中的多巴胺能(DA)神经元丢失、MB 和纹状体中的炎症反应,以及与神经退行性疾病相关的表型。与我们的小鼠模型数据一致,帕金森病患者 SNpc 中的 Dusp26 表达细胞明显减少。DA 神经元死亡的潜在机制是神经元中 Dusp26 的缺失增加了线粒体 ROS,同时激活了 MAPK/p38 信号通路和炎症反应。我们的结果表明,调节与线粒体相关的蛋白磷酸化对于维持线粒体稳态是必不可少的,而这个过程的失调可能导致神经退行性疾病的发生和发展。

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本文引用的文献

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