Modulation of Mitochondrial calcium uniporter complex in Ischemic Stroke

K. Mallilankaraman, S. Baik, Sung-Chun Tang, T. Arumugam
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Abstract

Globally, Stroke ranks as the second leading cause of death. Reperfusion of the ischemic brain also initiates pathologic intracellular cascades that contribute to post-ischemic brain injury. Mitochondrial dysfunction has been known to be a major contributor of neuronal injury during stroke. During reperfusion, [Ca2+]m overload causes mitochondrial ROS overproduction, mitochondrial permeability transition, and activation of cell death signaling cascades. The consequences of mitochondrial calcium overload during stroke has been studied, but the causal upstream mechanisms that leads to calcium overload remains unclear. In the past five years, we1-4 and others have identified the molecular components of the mitochondrial calcium uniporter. The objective of the study was to investigate the expression pattern of uniporter complex during ischemic stroke. Using in-vitro (Oxygen-Glucose deprivation) and in-vivo (murine MCAO) model systems, we investigated in detail, the changes in expression pattern of uniporter components during Hypoxia-Reoxygenation and Ischemia-Reperfusion injury respectively. Finally, we validated our in-vitro and in-vivo findings in human stroke using stroke patient derived post-mortem brain samples. Collectively, data from our study suggests that the unique changes in expression of MCU complex, during reperfusion, results in enhanced [Ca2+]m uptake. The detailed findings of our study will be presented in the conference.
线粒体单转运钙复合物在缺血性卒中中的调节作用
在全球范围内,中风是第二大死亡原因。缺血脑的再灌注也会引发病理细胞内级联反应,导致缺血后脑损伤。线粒体功能障碍是中风期间神经元损伤的主要原因。在再灌注过程中,[Ca2+]m超载导致线粒体ROS过量产生,线粒体通透性转变和细胞死亡信号级联激活。中风期间线粒体钙超载的后果已被研究,但导致钙超载的上游因果机制尚不清楚。在过去的五年中,we1-4和其他人已经确定了线粒体钙单转运蛋白的分子成分。本研究旨在探讨单转运复合物在缺血性脑卒中中的表达模式。通过体外(氧-葡萄糖剥夺)和体内(小鼠MCAO)模型系统,我们分别详细研究了缺氧-再氧合和缺血-再灌注损伤过程中单组分表达模式的变化。最后,我们利用中风患者的死后脑样本验证了我们在体外和体内的研究结果。总的来说,我们的研究数据表明,在再灌注过程中,MCU复合物表达的独特变化导致[Ca2+]m摄取增强。我们研究的详细结果将在会议上公布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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