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在丘脑神经元中鉴定出的新型β-catenin 靶基因编码神经元兴奋性的调节剂。

Novel β-catenin target genes identified in thalamic neurons encode modulators of neuronal excitability.

机构信息

International Institute of Molecular and Cell Biology, Laboratory of Neurodegeneration, Warsaw, Poland.

出版信息

BMC Genomics. 2012 Nov 17;13:635. doi: 10.1186/1471-2164-13-635.

Abstract

BACKGROUND

LEF1/TCF transcription factors and their activator β-catenin are effectors of the canonical Wnt pathway. Although Wnt/β-catenin signaling has been implicated in neurodegenerative and psychiatric disorders, its possible role in the adult brain remains enigmatic. To address this issue, we sought to identify the genetic program activated by β-catenin in neurons. We recently showed that β-catenin accumulates specifically in thalamic neurons where it activates Cacna1g gene expression. In the present study, we combined bioinformatics and experimental approaches to find new β-catenin targets in the adult thalamus.

RESULTS

We first selected the genes with at least two conserved LEF/TCF motifs within the regulatory elements. The resulting list of 428 putative LEF1/TCF targets was significantly enriched in known Wnt targets, validating our approach. Functional annotation of the presumed targets also revealed a group of 41 genes, heretofore not associated with Wnt pathway activity, that encode proteins involved in neuronal signal transmission. Using custom polymerase chain reaction arrays, we profiled the expression of these genes in the rat forebrain. We found that nine of the analyzed genes were highly expressed in the thalamus compared with the cortex and hippocampus. Removal of nuclear β-catenin from thalamic neurons in vitro by introducing its negative regulator Axin2 reduced the expression of six of the nine genes. Immunoprecipitation of chromatin from the brain tissues confirmed the interaction between β-catenin and some of the predicted LEF1/TCF motifs. The results of these experiments validated four genes as authentic and direct targets of β-catenin: Gabra3 for the receptor of GABA neurotransmitter, Calb2 for the Ca(2+)-binding protein calretinin, and the Cacna1g and Kcna6 genes for voltage-gated ion channels. Two other genes from the latter cluster, Cacna2d2 and Kcnh8, appeared to be regulated by β-catenin, although the binding of β-catenin to the regulatory sequences of these genes could not be confirmed.

CONCLUSIONS

In the thalamus, β-catenin regulates the expression of a novel group of genes that encode proteins involved in neuronal excitation. This implies that the transcriptional activity of β-catenin is necessary for the proper excitability of thalamic neurons, may influence activity in the thalamocortical circuit, and may contribute to thalamic pathologies.

摘要

背景

LEF1/TCF 转录因子及其激活剂 β-连环蛋白是经典 Wnt 途径的效应物。尽管 Wnt/β-连环蛋白信号已被牵涉到神经退行性和精神疾病中,但它在成年大脑中的可能作用仍然是个谜。为了解决这个问题,我们试图确定 β-连环蛋白在神经元中激活的遗传程序。我们最近表明,β-连环蛋白特异性地在丘脑神经元中积累,在那里它激活 Cacna1g 基因的表达。在本研究中,我们结合生物信息学和实验方法在成年丘脑发现新的 β-连环蛋白靶标。

结果

我们首先选择在调节元件内至少具有两个保守的 LEF/TCF 基序的基因。由此产生的 428 个假定的 LEF1/TCF 靶标列表在已知的 Wnt 靶标中显著富集,验证了我们的方法。假定靶标的功能注释还揭示了一组 41 个迄今与 Wnt 途径活性无关的基因,它们编码参与神经元信号传递的蛋白质。使用定制的聚合酶链反应阵列,我们对大鼠前脑的这些基因的表达进行了分析。我们发现,在所分析的基因中,有 9 个在丘脑的表达明显高于皮质和海马。在体外通过引入其负调节剂 Axin2 从丘脑神经元中去除核 β-连环蛋白,降低了其中 6 个基因的表达。从脑组织中免疫沉淀染色质证实了 β-连环蛋白与一些预测的 LEF1/TCF 基序之间的相互作用。这些实验的结果验证了四个基因是 β-连环蛋白的真实和直接靶标:Gabar3 为 GABA 神经递质的受体,Calb2 为钙结合蛋白 calretinin,Cacna1g 和 Kcna6 基因用于电压门控离子通道。后一个簇中的另外两个基因,Cacna2d2 和 Kcnh8,似乎受到 β-连环蛋白的调节,尽管不能证实 β-连环蛋白与这些基因的调节序列结合。

结论

在丘脑,β-连环蛋白调节一组新的基因的表达,这些基因编码参与神经元兴奋的蛋白质。这意味着 β-连环蛋白的转录活性对于丘脑神经元的适当兴奋性是必要的,可能影响丘脑皮层回路的活动,并可能导致丘脑病变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eda8/3532193/47017f0a83ba/1471-2164-13-635-1.jpg

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