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首页> 外文期刊>Cell death & disease. >Analysis of BH3-only proteins upregulated in response to oxygen/glucose deprivation in cortical neurons identifies Bmf but not Noxa as potential mediator of neuronal injury
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Analysis of BH3-only proteins upregulated in response to oxygen/glucose deprivation in cortical neurons identifies Bmf but not Noxa as potential mediator of neuronal injury

机译:分析皮质神经元中对缺氧/葡萄糖缺乏反应而仅上调BH3的蛋白质后,确定Bmf而非Noxa是神经元损伤的潜在介质

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摘要

Stress signaling in response to oxygen/glucose deprivation (OGD) and ischemic injury activates a group of pro-apoptotic genes, the Bcl-2 homology domain 3 (BH3)-only proteins, which are capable of activating the mitochondrial apoptosis pathway. Targeted studies previously identified the BH3-only proteins Puma, Bim and Bid to have a role in ischemic/hypoxic neuronal injury. We here investigated the transcriptional activation of pro-apoptotic BH3-only proteins after OGD-induced injury in murine neocortical neurons. We observed a potent and early upregulation of noxa at mRNA and protein level, and a significant increase in Bmf protein levels during OGD in neocortical neurons and in the ipsilateral cortex of mice subjected to transient middle cerebral artery occlusion (tMCAO). Surprisingly, gene deficiency in noxa reduced neither OGD- nor glutamate-induced neuronal injury in cortical neurons and failed to influence infarct size or neurological deficits after tMCAO. In contrast, bmf deficiency induced significant protection against OGD- or glutamate-induced injury in cultured neurons, and bmf -deficient mice showed reduced neurological deficits after tMCAO in vivo . Collectively, our data not only point to a role of Bmf as a BH3-only protein contributing to excitotoxic and ischemic neuronal injury but also demonstrate that the early and potent induction of noxa does not influence ischemic neuronal injury.
机译:响应氧/葡萄糖剥夺(OGD)和缺血性损伤的应激信号激活一组促凋亡基因,即仅Bcl-2同源结构域3(BH3)的蛋白,能够激活线粒体凋亡途径。此前有针对性的研究确定了仅BH3蛋白Puma,Bim和Bid在缺血/缺氧性神经元损伤中起作用。我们在这里调查了OGD诱导的鼠新皮层神经元损伤后促凋亡的仅BH3蛋白的转录激活。我们观察到新生皮层神经元和短暂大脑中动脉闭塞(tMCAO)小鼠的同侧皮质在OGD期间noxa在mRNA和蛋白水平上的有效和早期上调,并且Bmf蛋白水平显着增加。出乎意料的是,诺卡氏菌的基因缺乏既不能减少皮层神经元中OGD或谷氨酸诱导的神经元损伤,也不能影响tMCAO后的梗塞面积或神经功能缺损。相比之下,bmf缺乏症在培养的神经元中对OGD或谷氨酸诱导的损伤具有明显的保护作用,而bmf缺乏症的小鼠在体内tMCAO后显示出神经功能障碍的减少。总体而言,我们的数据不仅指出Bmf作为仅BH3的蛋白,可引起兴奋性毒性和缺血性神经元损伤,而且还证明了早期有效地诱导Noxa不会影响缺血性神经元损伤。

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