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对突触传递的转基因抑制揭示了CA3输出在海马体学习中的作用。

Transgenic inhibition of synaptic transmission reveals role of CA3 output in hippocampal learning.

作者信息

Nakashiba Toshiaki, Young Jennie Z, McHugh Thomas J, Buhl Derek L, Tonegawa Susumu

机构信息

Picower Institute for Learning and Memory, Howard Hughes Medical Institute, RIKEN-MIT Neuroscience Research Center, Department of Biology and Department of Brain and Cognitive Sciences, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Science. 2008 Feb 29;319(5867):1260-4. doi: 10.1126/science.1151120. Epub 2008 Jan 24.


DOI:10.1126/science.1151120
PMID:18218862
Abstract

The hippocampus is an area of the brain involved in learning and memory. It contains parallel excitatory pathways referred to as the trisynaptic pathway (which carries information as follows: entorhinal cortex --> dentate gyrus --> CA3 --> CA1 --> entorhinal cortex) and the monosynaptic pathway (entorhinal cortex --> CA1 --> entorhinal cortex). We developed a generally applicable tetanus toxin-based method for transgenic mice that permits inducible and reversible inhibition of synaptic transmission and applied it to the trisynaptic pathway while preserving transmission in the monosynaptic pathway. We found that synaptic output from CA3 in the trisynaptic pathway is dispensable and the short monosynaptic pathway is sufficient for incremental spatial learning. In contrast, the full trisynaptic pathway containing CA3 is required for rapid one-trial contextual learning, for pattern completion-based memory recall, and for spatial tuning of CA1 cells.

摘要

海马体是大脑中参与学习和记忆的一个区域。它包含被称为三突触通路(其携带信息如下:内嗅皮质→齿状回→CA3→CA1→内嗅皮质)的平行兴奋性通路和单突触通路(内嗅皮质→CA1→内嗅皮质)。我们为转基因小鼠开发了一种基于破伤风毒素的通用方法,该方法允许对突触传递进行诱导性和可逆性抑制,并将其应用于三突触通路,同时保留单突触通路中的传递。我们发现,三突触通路中CA3的突触输出是可有可无的,短的单突触通路足以进行渐进性空间学习。相比之下,包含CA3的完整三突触通路对于快速一次性情境学习、基于模式完成的记忆回忆以及CA1细胞的空间调谐是必需的。

相似文献

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Transgenic inhibition of synaptic transmission reveals role of CA3 output in hippocampal learning.

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[2]
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[3]
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[10]
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