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鸟嘌呤交换因子 vav 控制果蝇发育过程中的轴突生长和导向。

The guanine exchange factor vav controls axon growth and guidance during Drosophila development.

机构信息

Centro Andaluz de Biología del Desarrollo, Consejo Superior de Investigaciones Científicas, Universidad Pablo de Olavide, 41013 Sevilla, Spain.

出版信息

J Neurosci. 2010 Feb 10;30(6):2257-67. doi: 10.1523/JNEUROSCI.1820-09.2010.

Abstract

The Vav proteins are guanine exchange factors (GEFs) that trigger the activation of the Rho GTPases in general and the Rac family in particular. While the role of the mammalian vav genes has been extensively studied in the hematopoietic system and the immune response, there is little information regarding the role of vav outside of these systems. Here, we report that the single Drosophila vav homolog is ubiquitously expressed during development, although it is enriched along the embryonic ventral midline and in the larval eye discs and brain. We have analyzed the role that vav plays during development by generating Drosophila null mutant alleles. Our results indicate that vav is required during embryogenesis to prevent longitudinal axons from crossing the midline. Later on, during larval development, vav is required within the axons to regulate photoreceptor axon targeting to the optic lobe. Finally, we demonstrate that adult vav mutant escapers, which exhibit coordination problems, display axon growth defects in the ellipsoid body, a brain area associated with locomotion control. In addition, we show that vav interacts with other GEFs known to act downstream of guidance receptors. Thus, we propose that vav acts in coordination with other GEFs to regulate axon growth and guidance during development by linking guidance signals to the cytoskeleton via the modulation of Rac activity.

摘要

Vav 蛋白是鸟嘌呤交换因子(GEFs),可普遍触发 Rho GTPases 的激活,尤其是 Rac 家族。尽管哺乳动物 vav 基因在造血系统和免疫反应中的作用已得到广泛研究,但有关 vav 在这些系统之外的作用的信息却很少。在这里,我们报告说,果蝇中单一的 vav 同源物在发育过程中普遍表达,尽管它在胚胎腹中线和幼虫眼盘和脑中富集。我们通过生成果蝇无效突变等位基因来分析 vav 在发育过程中的作用。我们的结果表明,vav 在胚胎发生过程中是必需的,以防止长轴突穿过中线。后来,在幼虫发育过程中,vav 在轴突内被需要来调节光感受器轴突向视神经叶的靶向。最后,我们证明成年 vav 突变逃逸者表现出协调问题,在与运动控制相关的脑区椭圆体中表现出轴突生长缺陷。此外,我们表明 vav 与其他已知作为导向受体下游作用的 GEFs 相互作用。因此,我们提出 vav 通过调节 Rac 活性,通过将导向信号与细胞骨架连接,与其他 GEF 协同作用,在发育过程中调节轴突生长和导向。

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