首页> 美国卫生研究院文献>The Journal of Neuroscience >A Feed-Forward Mechanism Involving the NOX Complex and RyR-Mediated Ca2+ Release During Axonal Specification
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A Feed-Forward Mechanism Involving the NOX Complex and RyR-Mediated Ca2+ Release During Axonal Specification

机译:在轴突指定过程中涉及NOX络合物和RyR介导的Ca2 +释放的前馈机制。

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摘要

Physiological levels of ROS support neurite outgrowth and axonal specification, but the mechanisms by which ROS are able to shape neurons remain unknown. Ca2+, a broad intracellular second messenger, promotes both Rac1 activation and neurite extension. Ca2+ release from the endoplasmic reticulum, mediated by both the IP3R1 and ryanodine receptor (RyR) channels, requires physiological ROS levels that are mainly sustained by the NADPH oxidase (NOX) complex. In this work, we explore the contribution of the link between NOX and RyR-mediated Ca2+ release toward axonal specification of rat hippocampal neurons. Using genetic approaches, we find that NOX activation promotes both axonal development and Rac1 activation through a RyR-mediated mechanism, which in turn activates NOX through Rac1, one of the NOX subunits. Collectively, these data suggest a feedforward mechanism that integrates both NOX activity and RyR-mediated Ca2+ release to support cellular mechanisms involved in axon development.>SIGNIFICANCE STATEMENT High levels of ROS are frequently associated with oxidative stress and disease. In contrast, physiological levels of ROS, mainly sustained by the NADPH oxidase (NOX) complex, promote neuronal development and axonal growth. However, the mechanisms by which ROS shape neurons have not been described. Our work suggests that NOX-derived ROS promote axonal growth by regulating Rac1 activity, a molecular determinant of axonal growth, through a ryanodine receptor (RyR)-mediated Ca2+ release mechanism. In addition, Rac1, one of the NOX subunits, was activated after RyR-mediated Ca2+ release, suggesting a feedforward mechanism between NOX and RyR. Collectively, our data suggest a novel mechanism that is instrumental in sustaining physiological levels of ROS required for axonal growth of hippocampal neurons.
机译:ROS的生理水平支持神经突生长和轴突特性,但是ROS能够塑造神经元的机制仍然未知。 Ca 2 + 是一种广泛的细胞内第二信使,可同时促进Rac1激活和神经突延伸。由IP3R1和ryanodine受体(RyR)通道介导的从内质网释放Ca 2 + 需要生理性ROS水平,该水平主要由NADPH氧化酶(NOX)复合物维持。在这项工作中,我们探索NOX和RyR介导的Ca 2 + 释放之间的联系对大鼠海马神经元轴突特性的贡献。使用遗传方法,我们发现NOX激活通过RyR介导的机制促进轴突发育和Rac1激活,而RyR介导的机制又通过Rac1(NOX亚基之一)激活NOX。总的来说,这些数据表明前馈机制整合了NOX活性和RyR介导的Ca 2 + 释放,以支持参与轴突发育的细胞机制。>重要意义声明通常与氧化应激和疾病有关。相反,主要由NADPH氧化酶(NOX)复合物维持的生理水平的ROS促进神经元发育和轴突生长。但是,尚未描述ROS塑造神经元的机制。我们的工作表明,NOX衍生的ROS通过Ryan受体(RyR)介导的Ca 2 + 释放机制,通过调节Rac1活性(轴突生长的分子决定因素)来促进轴突生长。此外,RyR介导的Ca 2 + 释放后,NOx亚基之一的Rac1被激活,表明NOx和RyR之间存在前馈机制。总的来说,我们的数据表明一种新的机制,在维持海马神经元轴突生长所需的ROS的生理水平中起作用。

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