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WNT Protein-independent Constitutive Nuclear Localization of β-Catenin Protein and Its Low Degradation Rate in Thalamic Neurons

机译:WNT蛋白依赖性β-连环蛋白的本构核定位及其在丘脑神经元中的低降解率

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摘要

Nuclear localization of β-catenin is a hallmark of canonical Wnt signaling, a pathway that plays a crucial role in brain development and the neurogenesis of the adult brain. We recently showed that β-catenin accumulates specifically in mature thalamic neurons, where it regulates the expression of the Cav3.1 voltage-gated calcium channel gene. Here, we investigated the mechanisms underlying β-catenin accumulation in thalamic neurons. We report that a lack of soluble factors produced either by glia or cortical neurons does not impair nuclear β-catenin accumulation in thalamic neurons. We next found that the number of thalamic neurons with β-catenin nuclear localization did not change when the Wnt/Dishevelled signaling pathway was inhibited by Dickkopf1 or a dominant negative mutant of Dishevelled3. These results suggest a WNT-independent cell-autonomous mechanism. We found that the protein levels of APC, AXIN1, and GSK3β, components of the β-catenin degradation complex, were lower in the thalamus than in the cortex of the adult rat brain. Reduced levels of these proteins were also observed in cultured thalamic neurons compared with cortical cultures. Finally, pulse-chase experiments confirmed that cytoplasmic β-catenin turnover was slower in thalamic neurons than in cortical neurons. Altogether, our data indicate that the nuclear localization of β-catenin in thalamic neurons is their cell-intrinsic feature, which was WNT-independent but associated with low levels of proteins involved in β-catenin labeling for ubiquitination and subsequent degradation.
机译:β-catenin的核定位是经典Wnt信号的标志,该信号在大脑发育和成年大脑的神经发生中起着至关重要的作用。我们最近发现,β-catenin专门在成熟的丘脑神经元中蓄积,它调节Cav3.1电压门控钙通道基因的表达。在这里,我们调查了丘脑神经元中β-catenin积累的机制。我们报告说,由胶质细胞或皮质神经元产生的可溶性因子的缺乏不会损害丘脑神经元中核β-连环蛋白的积累。接下来,我们发现当Dickkopf1或Dishevelled3的显性负突变体抑制Wnt / Dishevelled信号通路时,具有β-catenin核定位的丘脑神经元的数量没有改变。这些结果表明独立于WNT的细胞自主机制。我们发现丘脑中的APC,AXIN1和GSK3β(β-连环蛋白降解复合物的组成部分)的蛋白质水平低于成年大鼠大脑皮层中的蛋白质水平。与皮质培养物相比,在培养的丘脑神经元中也观察到这些蛋白质水平降低。最后,脉冲追踪实验证实,丘脑神经元中的细胞质β-连环蛋白更新比皮质神经元中的慢。总而言之,我们的数据表明,β-catenin在丘脑神经元中的核定位是其细胞内在特征,该特征是WNT独立的,但与参与泛素化和随后降解的β-catenin标记的蛋白质含量低相关。

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