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Effects of Synaptic Activity on Dendritic Spine Motility of Developing Cortical Layer V Pyramidal Neurons

机译:突触活动对发育中的皮质V层锥体神经元树突棘活动的影响。

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摘要

It is increasingly clear that dendritic spines play an important role in compartmentalizing post-synaptic signals and that their dynamic morphological properties have functional consequences. Here, we examine this issue using two-photon microscopy to characterize spine motility on layer V pyramidal neurons in acute slices of the developing mouse cortex. In this system, all spine classes except filopodia become less dynamic as development proceeds. General manipulations of activity (TTX or KCl treatment) do not alter spine dynamics, although increased glutamatergic transmission (AMPA or NMDA treatment) stabilizes developing cortical spines. These effects on spine dynamics do not appear to be related to AMPA or NMDA receptor expression as assessed with immunolabeling, as there is no correlation between spine motility and AMPA (GluR1/2) or NMDA (NR1/NR2B) receptor subunit expression on a spine by spine basis. These results indicate that activity through glutamatergic synapses is important for regulating spine motility in the developing mouse cortex, and that the relative complement of receptors, while different across morphological classifications, cannot account for differences in dynamic structural changes in dendritic spines.
机译:越来越清楚的是,树突棘在分隔突触后信号中起着重要作用,并且它们的动态形态学特性具有功能性后果。在这里,我们使用双光子显微镜检查这个问题,以表征发育中的小鼠皮层的急性切片中V层锥体神经元的脊柱运动。在此系统中,除拟足动物外,所有脊柱类别都随着发展的发展而变得不那么动态。尽管增加的谷氨酸能传递(AMPA或NMDA处理)稳定了发育中的皮质棘,但一般的活动操纵(TTX或KCl处理)不会改变脊柱动力学。通过免疫标记评估,这些对脊柱动力学的影响似乎与AMPA或NMDA受体表达无关,因为脊柱动力与脊柱上的AMPA(GluR1 / 2)或NMDA(NR1 / NR2B)受体亚基表达之间没有相关性根据脊柱。这些结果表明,通过谷氨酸能突触进行的活性对于调节发育中的小鼠皮质中的脊柱运动很重要,并且受体的相对补体虽然在形态学分类上有所不同,但不能解释树突棘动态结构变化的差异。

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  • 来源
    《Cerebral Cortex》 |2006年第5期|730-741|共12页
  • 作者单位

    Department of Brain and Cognitive Sciences Massachusetts Institute of Technology Cambridge MA 02139 USA and;

    Picower Center for Learning and Memory Massachusetts Institute of Technology Cambridge MA 02139 USA;

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  • 正文语种 eng
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