Department of Molecular Neurobiology, Tokyo Metropolitan Institute for Neuroscience, Fuchu, Tokyo 183-8526, Japan.
Proc Natl Acad Sci U S A. 2010 Apr 20;107(16):7586-91. doi: 10.1073/pnas.0914514107. Epub 2010 Apr 5.
Atypical Rho-guanine nucleotide exchange factors (Rho-GEFs) that contain Dock homology regions (DHR-1 and DHR-2) are expressed in a variety of tissues; however, their functions and mechanisms of action remain unclear. We identify key conserved amino acids in the DHR-2 domain that are critical for the catalytic activity of Dock-GEFs (Dock1-4). We further demonstrate that Dock-GEFs directly associate with WASP family verprolin-homologous (WAVE) proteins through the DHR-1 domain. Brain-derived neurotrophic factor (BDNF)-TrkB signaling recruits the Dock3/WAVE1 complex to the plasma membrane, whereupon Dock3 activates Rac and dissociates from the WAVE complex in a phosphorylation-dependent manner. BDNF induces axonal sprouting through Dock-dependent Rac activation, and adult transgenic mice overexpressing Dock3 exhibit enhanced optic nerve regeneration after injury without affecting WAVE expression levels. Our results highlight a unique mechanism through which Dock-GEFs achieve spatial and temporal restriction of WAVE signaling, and identify Dock-GEF activity as a potential therapeutic target for axonal regeneration.
非典型 Rho 鸟嘌呤核苷酸交换因子(Rho-GEFs)含有 Dock 同源结构域(DHR-1 和 DHR-2),在多种组织中表达;然而,它们的功能和作用机制仍不清楚。我们确定了 DHR-2 结构域中对 Dock-GEFs(Dock1-4)催化活性至关重要的关键保守氨基酸。我们进一步证明,Dock-GEFs 通过 DHR-1 结构域直接与 WASP 家族 verprolin 同源(WAVE)蛋白结合。脑源性神经营养因子(BDNF)-TrkB 信号通过募集 Dock3/WAVE1 复合物到质膜,随后 Dock3 通过磷酸化依赖性方式激活 Rac 并从 WAVE 复合物解离。BDNF 通过 Dock 依赖性 Rac 激活诱导轴突发芽,而过表达 Dock3 的成年转基因小鼠在损伤后表现出增强的视神经再生,而不影响 WAVE 表达水平。我们的结果强调了一种独特的机制,通过该机制 Dock-GEFs 实现了 WAVE 信号的时空限制,并确定了 Dock-GEF 活性作为轴突再生的潜在治疗靶点。