Lee Seongsoo, Nahm Minyeop, Lee Mihye, Kwon Minjae, Kim Euijae, Zadeh Alireza Dehghani, Cao Hanwei, Kim Hyung-Jun, Lee Zang Hee, Oh Seog Bae, Yim Jeongbin, Kolodziej Peter A, Lee Seungbok
Department of Cell and Developmental Biology, School of Dentistry, Seoul National University, Seoul, Republic of Korea.
Development. 2007 May;134(9):1767-77. doi: 10.1242/dev.02842. Epub 2007 Apr 4.
Axon extension and guidance require a coordinated assembly of F-actin and microtubules as well as regulated translation. The molecular basis of how the translation of mRNAs encoding guidance proteins could be closely tied to the pace of cytoskeletal assembly is poorly understood. Previous studies have shown that the F-actin-microtubule crosslinker Short stop (Shot) is required for motor and sensory axon extension in the Drosophila embryo. Here, we provide biochemical and genetic evidence that Shot functions with a novel translation inhibitor, Krasavietz (Kra, Exba), to steer longitudinally directed CNS axons away from the midline. Kra binds directly to the C-terminus of Shot, and this interaction is required for the activity of Shot to support midline axon repulsion. shot and kra mutations lead to weak robo-like phenotypes, and synergistically affect midline avoidance of CNS axons. We also show that shot and kra dominantly enhance the frequency of midline crossovers in embryos heterozygous for slit or robo, and that in kra mutant embryos, some Robo-positive axons ectopically cross the midline that normally expresses the repellent Slit. Finally, we demonstrate that Kra also interacts with the translation initiation factor eIF2beta and inhibits translation in vitro. Together, these data suggest that Kra-mediated translational regulation plays important roles in midline axon repulsion and that Shot functions as a direct physical link between translational regulation and cytoskeleton reorganization.
轴突延伸和导向需要F-肌动蛋白和微管的协调组装以及翻译调控。编码导向蛋白的mRNA的翻译如何与细胞骨架组装的节奏紧密相连,其分子基础仍知之甚少。先前的研究表明,F-肌动蛋白-微管交联蛋白Short stop(Shot)是果蝇胚胎中运动和感觉轴突延伸所必需的。在此,我们提供了生化和遗传学证据,表明Shot与一种新型翻译抑制剂Krasavietz(Kra,Exba)共同作用,引导纵向定向的中枢神经系统轴突远离中线。Kra直接与Shot的C末端结合,这种相互作用是Shot支持中线轴突排斥活性所必需的。shot和kra突变导致类似robo的弱表型,并协同影响中枢神经系统轴突对中线的回避。我们还表明,shot和kra在杂合子胚胎中显著增加中线交叉的频率,并且在kra突变胚胎中,一些Robo阳性轴突异位穿过正常表达排斥因子Slit的中线。最后,我们证明Kra也与翻译起始因子eIF2β相互作用并在体外抑制翻译。总之,这些数据表明Kra介导的翻译调控在中线轴突排斥中起重要作用,并且Shot作为翻译调控和细胞骨架重组之间的直接物理联系发挥作用。