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A role for kinesin heavy chain in controlling vesicle transport into dendrites in Drosophila

机译:驱动蛋白重链在控制果蝇中囊泡向树突中运输的作用

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The unique architecture of neurons requires the establishment and maintenance of polarity, which relies in part on microtubule-based transport to deliver essential cargo into dendrites. To test different models of differential motor protein regulation and to understand how different compartments in neurons are supplied with necessary functional proteins, we studied mechanisms of dendritic transport, using Drosophila as a model system. Our data suggest that dendritic targeting systems in Drosophila and mammals are evolutionarily conserved, since mammalian cargoes are moved into appropriate domains in Drosophila . In a genetic screen for mutants that mislocalize the dendritic marker human transferrin receptor (hTfR), we found that kinesin heavy chain (KHC) may function as a dendritic motor. Our analysis of dendritic and axonal phenotypes of KHC loss-of-function clones revealed a role for KHC in maintaining polarity of neurons, as well as ensuring proper axonal outgrowth. In addition we identified adenomatous polyposis coli 1 (APC1) as an interaction partner of KHC in controlling directed transport and modulating kinesin function in neurons.
机译:神经元的独特结构要求建立和维持极性,这部分依赖于基于微管的运输将必需的货物运送到树突中。为了测试差异运动蛋白调节的不同模型并了解神经元的不同区室如何提供必要的功能蛋白,我们使用果蝇作为模型系统研究了树突运输的机制。我们的数据表明,果蝇和哺乳动物中的树突靶向系统在进化上是保守的,因为哺乳动物的货物被移至果蝇中的适当区域。在对树突状标记人运铁蛋白受体(hTfR)进行错误定位的突变体的遗传筛选中,我们发现驱动蛋白重链(KHC)可能起树突状马达的作用。我们对KHC功能丧失克隆的树突状和轴突表型的分析揭示了KHC在维持神经元极性以及确保适当的轴突生长方面的作用。此外,我们确定腺瘤性息肉病1(APC1)为KHC在控制定向转运和调节神经元驱动蛋白功能方面的相互作用。

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