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Mammalian Pumilio 2 regulates dendrite morphogenesis and synaptic function

机译:哺乳动物Pumilio 2调节树突形态发生和突触功能。

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摘要

In Drosophila, Pumilio (Pum) is important for neuronal homeostasis as well as learning and memory. We have recently characterized a mammalian homolog of Pum, Pum2, which is found in discrete RNA-containing particles in the somatodendritic compartment of polarized neurons. In this study, we investigated the role of Pum2 in developing and mature neurons by RNA interference. In immature neurons, loss of Pum2 led to enhanced dendritic outgrowth and arborization. In mature neurons, Pum2 down-regulation resulted in a significant reduction in dendritic spines and an increase in elongated dendritic filopodia. Furthermore, we observed an increase in excitatory synapse markers along dendritic shafts. Electrophysio-logical analysis of synaptic function of neurons lacking Pum2 revealed an increased miniature excitatory postsynaptic current frequency. We then identified two specific mRNAs coding for a known translational regulator, elF4E, and for a voltage-gated sodium channel, Scn1a, which interacts with Pum2 in immunopreci-pitations from brain lysates. Finally, we show that Pum2 regulates translation of the eIF4E mRNA. Taken together, our data reveal a previously undescribed role for Pum2 in dendrite morphogenesis, synapse function, and translational control.
机译:在果蝇中,Pumilio(Pumlio)对于神经元稳态以及学习和记忆很重要。我们最近表征了Pum的哺乳动物同源物Pum2,该基因在极化神经元的体树突状区室中的离散的含RNA颗粒中发现。在这项研究中,我们调查了RNA干扰Pum2在发育和成熟神经元中的作用。在未成熟的神经元中,Pum2的缺失导致树突状生长和乔木化增强。在成熟的神经元中,Pum2的下调导致树突棘明显减少,而延长的树突状丝状伪足增加。此外,我们观察到沿树突状干的兴奋性突触标记物增加。缺乏Pum2的神经元的突触功能的电生理分析表明,微型兴奋性突触后电流频率增加。然后,我们确定了两个特定的mRNA,它们分别编码已知的翻译调节子elF4E和电压门控钠通道Scn1a,该通道与Pum2在脑裂解物中的免疫沉淀相互作用。最后,我们显示Pum2调节eIF4E mRNA的翻译。综上所述,我们的数据揭示了Pum2在树突形态发生,突触功能和翻译控制中未曾描述的作用。

著录项

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  • 作者单位

    Departments of Neuronal Cell Biology Center for Brain Research, Medical University of Vienna,1090 Vienna, Austria;

    rnDepartments of Neuronal Cell Biology Center for Brain Research, Medical University of Vienna,1090 Vienna, Austria;

    rnDepartments of Neurophysiology, Center for Brain Research, Medical University of Vienna,1090 Vienna, Austria;

    rnLaboratory of Molecular Genetics, Center on Endocrine Hereditary Tumors, Azienda Ospedaliera Universitaria Careggi, Department of Internal Medicine, University of Florence, 50139 Florence, Italy;

    rnDepartments of Neuronal Cell Biology Center for Brain Research, Medical University of Vienna,1090 Vienna, Austria;

    rnCentre for Integrative Biology, Laboratory of Molecular and Cellular Neurobiology, University of Trento, 38060 Mattarello, Trento, Italy;

    rnDepartments of Neuronal Cell Biology Center for Brain Research, Medical University of Vienna,1090 Vienna, Austria;

    rnDepartments of Neuronal Cell Biology Center for Brain Research, Medical University of Vienna,1090 Vienna, Austria;

    rnDepartments of Neuronal Cell Biology Center for Brain Research, Medical University of Vienna,1090 Vienna, Austria;

    rnDepartments of Neuronal Cell Biology Center for Brain Research, Medical University of Vienna,1090 Vienna, Austria Centre for Integrative Biology, Laboratory of Molecular and Cellular Neurobiology, University of Trento, 38060 Mattarello, Trento, Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    dendritic spines; eIF4E; ribonucleoparticles; neuronal development; translational control;

    机译:树突棘;eIF4E;核糖核酸颗粒;神经元发育翻译控制;
  • 入库时间 2022-08-18 00:41:17

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