首页> 美国卫生研究院文献>Frontiers in Cellular Neuroscience >A Shift from a Pivotal to Supporting Role for the Growth-Associated Protein (GAP-43) in the Coordination of Axonal Structural and Functional Plasticity
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A Shift from a Pivotal to Supporting Role for the Growth-Associated Protein (GAP-43) in the Coordination of Axonal Structural and Functional Plasticity

机译:生长相关蛋白(GAP-43)在轴突结构和功能可塑性的协调中从关键角色转变为支持角色。

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摘要

In a number of animal species, the growth-associated protein (GAP), GAP-43 (aka: F1, neuromodulin, B-50, G50, pp46), has been implicated in the regulation of presynaptic vesicular function and axonal growth and plasticity via its own biochemical properties and interactions with a number of other presynaptic proteins. Changes in the expression of GAP-43 mRNA or distribution of the protein coincide with axonal outgrowth as a consequence of neuronal damage and presynaptic rearrangement that would occur following instances of elevated patterned neural activity including memory formation and development. While functional enhancement in GAP-43 mRNA and/or protein activity has historically been hypothesized as a central mediator of axonal neuroplastic and regenerative responses in the central nervous system, it does not appear to be the crucial substrate sufficient for driving these responses. This review explores the historical discovery of GAP-43 (and associated monikers), its transcriptional, post-transcriptional and post-translational regulation and current understanding of protein interactions and regulation with respect to its role in axonal function. While GAP-43 itself appears to have moved from a pivotal to a supporting factor, there is no doubt that investigations into its functions have provided a clearer understanding of the biochemical underpinnings of axonal plasticity.
机译:在许多动物物种中,与生长相关的蛋白质(GAP),GAP-43(又名:F1,神经调节素,B-50,G50,pp46)已经牵涉到突触前水泡功能以及轴突生长和可塑性的调节中。通过其自身的生化特性以及与许多其他突触前蛋白的相互作用。 GAP-43 mRNA表达或蛋白质分布的变化与神经元损伤和突触前重排有关,这是由于神经元活动的模式化活动(包括记忆形成和发育)升高引起的。虽然历史上已经假设GAP-43 mRNA和/或蛋白质活性的功能增强是中枢神经系统中轴突神经增生和再生反应的中央介体,但它似乎并不是足以驱动这些反应的关键底物。这篇综述探讨了GAP-43(及其相关绰号)的历史发现,其转录,转录后和翻译后调控,以及目前对蛋白质相互作用和调控的认识,以及其在轴突功能中的作用。虽然GAP-43本身似乎已经从关键因素转变为支持因素,但毫无疑问,对其功能的研究已经对轴突可塑性的生化基础提供了更清晰的理解。

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