Research Group Membrane Trafficking and Cytoskeleton, Department of Neurochemistry and Molecular Biology, Leibniz Institute for Neurobiology, Magdeburg, Germany.
PLoS One. 2007 May 2;2(5):e400. doi: 10.1371/journal.pone.0000400.
Polymerization and organization of actin filaments into complex superstructures is indispensable for structure and function of neuronal networks. We here report that knock down of the F-actin-binding protein Abp1, which is important for endocytosis and synaptic organization, results in changes in axon development virtually identical to Arp2/3 complex inhibition, i.e., a selective increase of axon length. Our in vitro and in vivo experiments demonstrate that Abp1 interacts directly with N-WASP, an activator of the Arp2/3 complex, and releases the autoinhibition of N-WASP in cooperation with Cdc42 and thereby promotes N-WASP-triggered Arp2/3 complex-mediated actin polymerization. In line with our mechanistical studies and the colocalization of Abp1, N-WASP and Arp2/3 at sites of actin polymerization in neurons, we reveal an essential role of Abp1 and its cooperativity with Cdc42 in N-WASP-induced rearrangements of the neuronal cytoskeleton. We furthermore show that introduction of N-WASP mutants lacking the ability to bind Abp1 or Cdc42, Arp2/3 complex inhibition, Abp1 knock down, N-WASP knock down and Arp3 knock down, all cause identical neuromorphological phenotypes. Our data thus strongly suggest that these proteins and their complex formation are important for cytoskeletal processes underlying neuronal network formation.
肌动蛋白丝的聚合和组织成复杂的超结构对于神经网络的结构和功能是必不可少的。我们在这里报告,敲低 F-肌动蛋白结合蛋白 Abp1(它对于内吞作用和突触组织很重要)导致轴突发育的变化几乎与 Arp2/3 复合物抑制完全相同,即轴突长度的选择性增加。我们的体外和体内实验表明,Abp1 与 N-WASP 直接相互作用,N-WASP 是 Arp2/3 复合物的激活剂,并且与 Cdc42 合作释放 N-WASP 的自动抑制,从而促进 N-WASP 触发的 Arp2/3 复合物介导的肌动蛋白聚合。与我们的机制研究以及 Abp1、N-WASP 和 Arp2/3 在神经元中肌动蛋白聚合部位的共定位一致,我们揭示了 Abp1 及其与 Cdc42 的协同作用在 N-WASP 诱导的神经元细胞骨架重排中的重要作用。此外,我们还表明,引入缺乏与 Abp1 或 Cdc42 结合能力的 N-WASP 突变体、Arp2/3 复合物抑制、Abp1 敲低、N-WASP 敲低和 Arp3 敲低,都会导致相同的神经形态表型。因此,我们的数据强烈表明,这些蛋白质及其复合物的形成对于神经元网络形成的细胞骨架过程很重要。