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Knot/Collier控制树突细胞骨架的不同方面,并协同作用以确定最终的树突形态。

Knot/Collier and cut control different aspects of dendrite cytoskeleton and synergize to define final arbor shape.

作者信息

Jinushi-Nakao Shiho, Arvind Ramanathan, Amikura Reiko, Kinameri Emi, Liu Andrew Winston, Moore Adrian Walton

机构信息

RIKEN Brain Science Institute, Wako-shi, Saitama 351-0198, Japan.

出版信息

Neuron. 2007 Dec 20;56(6):963-78. doi: 10.1016/j.neuron.2007.10.031.

Abstract

In a complex nervous system, neuronal functional diversity is reflected in the wide variety of dendritic arbor shapes. Different neuronal classes are defined by class-specific transcription factor combinatorial codes. We show that the combination of the transcription factors Knot and Cut is particular to Drosophila class IV dendritic arborization (da) neurons. Knot and Cut control different aspects of the dendrite cytoskeleton, promoting microtubule- and actin-based dendritic arbors, respectively. Knot delineates class IV arbor morphology by simultaneously synergizing with Cut to promote complexity and repressing Cut-mediated promotion of dendritic filopodia/spikes. Knot increases dendritic arbor outgrowth through promoting the expression of Spastin, a microtubule-severing protein disrupted in autosomal dominant hereditary spastic paraplegia (AD-HSP). Knot and Cut may modulate cellular mechanisms that are conserved between Drosophila and vertebrates. Hence, this study gives significant general insight into how multiple transcription factors combine to control class-specific dendritic arbor morphology through controlling different aspects of the cytoskeleton.

摘要

在复杂的神经系统中,神经元功能多样性体现在多种多样的树突状分支形态上。不同的神经元类别由特定类别的转录因子组合编码所定义。我们发现,转录因子Knot和Cut的组合是果蝇IV类树突状分支(da)神经元所特有的。Knot和Cut控制树突细胞骨架的不同方面,分别促进基于微管和肌动蛋白的树突状分支。Knot通过与Cut协同作用促进复杂性,同时抑制Cut介导的树突丝状伪足/棘突的形成,从而勾勒出IV类分支形态。Knot通过促进Spastin的表达来增加树突状分支的生长,Spastin是一种在常染色体显性遗传性痉挛性截瘫(AD-HSP)中被破坏的微管切断蛋白。Knot和Cut可能调节果蝇和脊椎动物之间保守的细胞机制。因此,本研究为多种转录因子如何通过控制细胞骨架的不同方面来组合控制特定类别的树突状分支形态提供了重要的一般性见解。

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