NMNAT2的轴突转运及其在轴突生长和存活中的作用。

Bioarchitecture Pub Date : 2013-09-01 Epub Date: 2013-11-07 DOI:10.4161/bioa.27049
Stefan Milde, Jonathan Gilley, Michael P Coleman
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引用次数: 22

摘要

nad合成酶NMNAT2在原代培养中对轴突存活至关重要,它的缺失可能导致各种神经退行性疾病的轴突退化。在这里,我们讨论了我们实验室最近的几份报告,这些报告确立了NMNAT2在小鼠体内轴突生长中的关键作用,并阐明了该存活因子在轴突中的传递和周转。在缺乏NMNAT2的情况下,在胚胎发育过程中,轴突不能向细胞体外延伸超过一小段距离,这意味着即使在发育过程中,轴突的维持也需要NMNAT2。此外,我们强调了在原代培养神经突和小鼠坐骨神经轴突中进行快速轴突运输的囊泡群在轴突中双向运输NMNAT2的发现。令人惊讶的是,囊泡关联的缺失增强了NMNAT2的轴突保护能力,这种作用至少部分是由细胞质NMNAT2变体较长的蛋白质半衰期介导的。对小鼠坐骨神经和果蝇嗅觉受体神经元轴突中野生型和变异型NMNAT2的分析支持了体内类似机制的存在,强调了NMNAT2稳定性和转换调节作为体内轴突变性调节机制的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Axonal trafficking of NMNAT2 and its roles in axon growth and survival in vivo.

Axonal trafficking of NMNAT2 and its roles in axon growth and survival in vivo.

Axonal trafficking of NMNAT2 and its roles in axon growth and survival in vivo.

The NAD-synthesizing enzyme NMNAT2 is critical for axon survival in primary culture and its depletion may contribute to axon degeneration in a variety of neurodegenerative disorders. Here we discuss several recent reports from our laboratory that establish a critical role for NMNAT2 in axon growth in vivo in mice and shed light on the delivery and turnover of this survival factor in axons. In the absence of NMNAT2, axons fail to extend more than a short distance beyond the cell body during embryonic development, implying a requirement for NMNAT2 in axon maintenance even during development. Furthermore, we highlight findings regarding the bidirectional trafficking of NMNAT2 in axons on a vesicle population that undergoes fast axonal transport in primary culture neurites and in mouse sciatic nerve axons in vivo. Surprisingly, loss of vesicle association boosts the axon protective capacity of NMNAT2, an effect that is at least partially mediated by a longer protein half-life of cytosolic NMNAT2 variants. Analysis of wild-type and variant NMNAT2 in mouse sciatic nerves and Drosophila olfactory receptor neuron axons supports the existence of a similar mechanism in vivo, highlighting the potential for regulation of NMNAT2 stability and turnover as a mechanism to modulate axon degeneration in vivo.

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