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首页> 外文期刊>Journal of Neurochemistry: Offical Journal of the International Society for Neurochemistry >Early growth response‐1‐mediated down‐regulation of drebrin correlates with loss of dendritic spines
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Early growth response‐1‐mediated down‐regulation of drebrin correlates with loss of dendritic spines

机译:早期生长反应-1-介导的猎犬的下调与树突脊柱的损失相关

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Abstract Post‐synaptic dendritic spines are structurally composed of actin cytoskeleton, which undergoes dynamic morphological changes to accommodate incoming synaptic activity. Drebrin is an actin‐binding protein highly expressed in dendritic spines that serves an important role in regulating spine morphology. Functionally, loss of drebrin directly correlates with deficits in learning and memory, as is the case observed in Alzheimer's disease. Despite these findings, the regulatory factor responsible for drebrin loss remains unclear. Here, we show that early growth response‐1 (Egr‐1), an inducible zinc finger transcription factor, down‐regulates drebrin expression. Chromatin immunoprecipitation analyses identified Egr‐1 binding sites upstream of the drebrin start site in neuronal cells. Over‐expression of Egr‐1 in?vitro in primary hippocampal neurons or in?vivo in homogenates prepared from the hippocampi of an inducible mouse model of Egr‐1 show reduced drebrin mRNA and protein levels. Conversely, increased drebrin was detected in hippocampal samples isolated from Egr‐1‐deficient brain. These data demonstrate that Egr‐1 interacts with the drebrin promoter and negatively regulates drebrin expression. Furthermore, immunocytochemical and Golgi staining analyses revealed reduced drebrin protein and dendritic spine density as well as reduced expression of synaptic markers in in?vitro hippocampal neurons over‐expressing Egr‐1 and in?vivo inducible mouse model of Egr‐1. In contrast, increased drebrin expression correlated with increased dendritic spine density was detected in samples from Egr‐1‐deficient mice. These data provide evidence that Egr‐1 is a novel regulator of drebrin expression, which is linked to changes in dendritic spine density.
机译:摘要突触后树突脊柱在结构上由肌动蛋白细胞骨架组成,该肌动蛋白是经历动态形态变化以适应进入的突触活动。行动是一种在树突状刺中高度表达的肌动蛋白结合蛋白,在调节脊柱形态方面具有重要作用。在功能上,由于在阿尔茨海默病的病症中观察到的情况,Devebrin的丧失与学习和记忆中的缺陷直接相关。尽管这些发现,负责堤防损失的调控因素仍然尚不清楚。在这里,我们表明早期生长反应-1(EGR-1),诱导型锌指转录因子,下调蛇纹蛋白表达。染色质免疫沉淀分析分析了神经元细胞中滴虫开始点上游的EGR-1结合位点。 egr-1在原发性海马神经元的体外过度表达,或者在eGR-1诱导型小鼠模型的海马制备的均匀素中的αvivo中的αvivo显示出降低的翅膀mRNA和蛋白质水平。相反,在从EGR-1缺陷的脑中分离的海马样品中检测到增加的流动。这些数据表明EGR-1与滴虫启动子相互作用,并负调节河豚表达。此外,免疫细胞化学和高尔基染色分析揭示了蛇纹蛋白和树突状脊柱密度的减少,以及减少了在egr-1的体外海马神经元中突触标志物的表达和βvivo诱导的小鼠模型的突触型egr-1。相反,在EGR-1缺陷小鼠的样品中检测到与增加的树突脊柱密度相关的增加的捕养表达。这些数据提供了证据表明EGR-1是捕获表达的新型调节剂,其与树突脊柱密度的变化有关。

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