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首页> 外文期刊>Cerebral cortex >KCC2 Regulates Dendritic Spine Formation in a Brain-Region Specific and BDNF Dependent Manner
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KCC2 Regulates Dendritic Spine Formation in a Brain-Region Specific and BDNF Dependent Manner

机译:KCC2调节脑区特定和BDNF依赖方式的树突脊柱形成

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KCC2 is the major chloride extruder in neurons. The spatiotemporal regulation of KCC2 expression orchestrates the developmental shift towards inhibitory GABAergic drive and the formation of glutamatergic synapses. Whether KCC2's role in synapse formation is similar in different brain regions is unknown. First, we found that KCC2 subcellular localization, but not overall KCC2 expression levels, differed between cortex and hippocampus during the first postnatal week. We performed site-specific in utero electroporation of KCC2 cDNA to target either hippocampal CA1 or somatosensory cortical pyramidal neurons. We found that a premature expression of KCC2 significantly decreased spine density in CA1 neurons, while it had the opposite effect in cortical neurons. These effects were cell autonomous, because single-cell biolistic overexpression of KCC2 in hippocampal and cortical organotypic cultures also induced a reduction and an increase of dendritic spine density, respectively. In addition, we found that the effects of its premature expression on spine density were dependent on BDNF levels. Finally, we showed that the effects of KCC2 on dendritic spine were dependent on its chloride transporter function in the hippocampus, contrary to what was observed in cortex. Altogether, these results demonstrate that KCC2 regulation of dendritic spine development, and its underlying mechanisms, are brain-region specific.
机译:KCC2是神经元中的主要氯化物挤出机。 KCC2表达的时空调节核对抑制性胃果瘤的发育转变和谷氨酰胺突变的形成。 KCC2在Synapse的角色在不同的大脑区域中是否相似是未知的。首先,我们发现KCC2亚细胞定位,但不是总体KCC2表达水平,在第一个后一周内的皮质和海马之间不同。我们在kcc2 cDNA的子宫电穿孔中进行了特异性特异性,以靶向海马CA1或躯体感染术锥形神经元。我们发现KCC2的过早表达在CA1神经元中显着降低了脊柱密度,而在皮质神经元中具有相反的效果。这些效果是细胞自主,因为海马kcc2的单细胞生物学过度表达分别诱导了树枝状脊柱密度的减少和增加。此外,我们发现其过早表达对脊柱密度的影响依赖于BDNF水平。最后,我们表明KCC2对树突脊柱的影响依赖于海马中的氯化物转运蛋白功能,与皮质中观察到的反应。总之,这些结果表明,树突脊柱发育的KCC2调节及其潜在机制是特异性的脑区。

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