Department of Biological Sciences, Simon Fraser University, Burnaby, British Columbia V5A 1S6, Canada.
Department of Biological Sciences, Simon Fraser University, Burnaby, British Columbia V5A 1S6, Canada
Genetics. 2019 Apr;211(4):1331-1343. doi: 10.1534/genetics.119.301999. Epub 2019 Feb 21.
The central nervous system of most animals is bilaterally symmetrical. Closer observation often reveals some functional or anatomical left-right asymmetries. In the nematode , the most obvious asymmetry in the nervous system is found in the ventral nerve cord (VNC), where most axons are in the right axon tract. The asymmetry is established when axons entering the VNC from the brain switch from the left to the right side at the anterior end of the VNC. In genetic screens we identified several mutations compromising VNC asymmetry. This includes alleles of (encoding a transmembrane collagen), /perlecan and (encoding the actin modulator Enabled/Vasodilator-stimulated phosphoproteins). In addition, we evaluated mutants in known axon guidance pathways for asymmetry defects and used genetic interaction studies to place the genes into genetic pathways. In total we identified four different pathways contributing to the establishment of VNC asymmetry, represented by UNC-6/netrin, SAX-3/Robo, COL-99, and EPI-1/laminin. The combined inactivation of these pathways in triple and quadruple mutants leads to highly penetrant VNC asymmetry defects, suggesting these pathways are important contributors to the establishment of VNC asymmetry in .
大多数动物的中枢神经系统是双侧对称的。进一步观察往往会发现一些功能或解剖学上的左右不对称。在线虫中,神经系统最明显的不对称性存在于腹神经索(VNC)中,大多数轴突位于右侧轴突束中。当从大脑进入 VNC 的轴突在前 VNC 末端从左侧切换到右侧时,这种不对称性就建立起来了。在遗传筛选中,我们发现了几种破坏 VNC 不对称性的突变。其中包括 (编码跨膜胶原蛋白)、/perlecan 和 (编码肌动蛋白调节剂 Enabled/Vasodilator-stimulated phosphoproteins)的等位基因。此外,我们还评估了已知轴突导向途径中的突变体是否存在不对称缺陷,并利用遗传相互作用研究将这些基因置于遗传途径中。总共确定了四个不同的途径,通过 UNC-6/netrin、SAX-3/Robo、COL-99 和 EPI-1/laminin 来建立 VNC 不对称性。这些途径在三突变体和四突变体中的联合失活导致 VNC 不对称性缺陷的高穿透率,这表明这些途径对线虫 VNC 不对称性的建立具有重要贡献。