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首页> 外文期刊>Developmental neurobiology >Transcription Factor Sp4 Regulates Expression of Nervous Wreck 2 to Control NMDAR1 Levels and Dendrite Patterning
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Transcription Factor Sp4 Regulates Expression of Nervous Wreck 2 to Control NMDAR1 Levels and Dendrite Patterning

机译:转录因子Sp4调节神经残骸2的表达,以控制NMDAR1水平和树突图案。

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Glutamatergic signaling through N-methyl-d-aspartate receptors (NMDARs) is important for neuronal development and plasticity and is often dysregulated in psychiatric disorders. Mice mutant for the transcription factor Sp4 have reduced levels of NMDAR subunit 1 (NR1) protein, but not mRNA, and exhibit behavioral and memory deficits (Zhou et al., [2010] Human Molecular Genetics 19: 3797-3805). In developing cerebellar granule neurons (CGNs), Sp4 controls dendrite patterning (Ramos et al., [2007] Proc Natl Acad Sci USA 104: 9882-9887). Sp4 target genes that regulate dendrite pruning or NR1 levels are not known. Here we report that Sp4 activates transcription of Nervous Wreck 2 (Nwk2; also known as Fchsd1) and, further, that Nwk2, an F-BAR domain-containing protein, mediates Sp4-dependent regulation of dendrite patterning and cell surface expression of NR1. Knockdown of Nwk2 in CGNs increased primary dendrite number, phenocopying Sp4 knockdown, and exogenous expression of Nwk2 in Sp4-depleted neurons rescued dendrite number. We observed that acute Sp4 depletion reduced levels of surface, but not total, NR1, and this was rescued by Nwk2 expression. Furthermore, expression of Nr1 suppressed the increase in dendrite number in Sp4- or Nwk2- depleted neurons. We previously reported that Sp4 protein levels were reduced in cerebellum of subjects with bipolar disorder (BD) (Pinacho et al., [2011] Bipolar Disorders 13: 474-485). Here we report that Nwk2 mRNA and NR1 protein levels were also reduced in postmortem cerebellum of BD subjects. Our data suggest a role for Sp4-regulated Nwk2 in NMDAR trafficking and identify a Sp4-Nwk2-NMDAR1 pathway that regulates neuronal morphogenesis during development and may be disrupted in bipolar disorder. (c) 2014 Wiley Periodicals, Inc. Develop Neurobiol 75: 93-108, 2015
机译:通过N-甲基-d-天冬氨酸受体(NMDARs)进行的谷氨酸能信号传导对神经元发育和可塑性很重要,在精神疾病中常常失调。转录因子Sp4的小鼠突变体具有降低的NMDAR亚基1(NR1)蛋白水平,但不具有mRNA水平,并且表现出行为和记忆缺陷(Zhou等人,[2010] Human Molecular Genetics 19:3797-3805)。在发育中的小脑颗粒神经元(CGN)中,Sp4控制树突模式(Ramos等,[2007] Proc Natl Acad Sci USA 104:9882-9887)。尚不清楚调节枝状修剪或NR1水平的Sp4靶基因。在这里我们报告说,Sp4激活神经残骸2(Nwk2;也称为Fchsd1)的转录,此外,Nwk2,一种含F-BAR域的蛋白质,介导了Sp4依赖性的树突图案和NR1细胞表面表达的调控。在CGNs中敲除Nwk2增加了初级树突数目,表型复制了Sp4敲除,并且在Sp4耗尽的神经元中Nwk2的外源表达挽救了树突数目。我们观察到,Sp4的急性耗竭会降低表面NR1的水平,但不能降低表面的总水平,而Nwk2的表达可以挽救这一点。此外,Nr1的表达抑制了Sp4或Nwk2缺失的神经元中树突数目的增加。我们先前曾报道,患有躁郁症(BD)的受试者小脑中Sp4蛋白水平降低(Pinacho等人,[2011]躁郁症13:474-485)。在这里,我们报道BD受试者的死后小脑中Nwk2 mRNA和NR1蛋白水平也降低了。我们的数据表明Sp4-调节Nwk2在NMDAR贩运中的作用,并确定了一个Sp4-Nwk2-NMDAR1通路,该通路在发育过程中调节神经元形态发生,并可能在双相情感障碍中被破坏。 (c)2014年,Wiley Periodicals,Inc.开发Neurobiol 75:93-108,2015年

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