Literature DB >> 28263300

A distinct entorhinal cortex to hippocampal CA1 direct circuit for olfactory associative learning.

Yiding Li1,2,3, Jiamin Xu4, Yafeng Liu5, Jia Zhu1,3, Nan Liu2, Wenbo Zeng6, Ning Huang7, Malte J Rasch2, Haifei Jiang6, Xiang Gu2, Xiang Li2, Minhua Luo6, Chengyu Li1, Junlin Teng7, Jianguo Chen7, Shaoqun Zeng5, Longnian Lin4, Xiaohui Zhang2.   

Abstract

Lateral and medial parts of entorhinal cortex (EC) convey nonspatial 'what' and spatial 'where' information, respectively, into hippocampal CA1, via both the indirect EC layer 2→ hippocampal dentate gyrus→CA3→CA1 and the direct EC layer 3→CA1 paths. However, it remains elusive how the direct path transfers distinct information and contributes to hippocampal learning functions. Here we report that lateral EC projection neurons selectively form direct excitatory synapses onto a subpopulation of morphologically complex, calbindin-expressing pyramidal cells (PCs) in the dorsal CA1 (dCA1), while medial EC neurons uniformly innervate all dCA1 PCs. Optogenetically inactivating the distinct lateral EC-dCA1 connections or the postsynaptic dCA1 calbindin-expressing PC activity slows olfactory associative learning. Moreover, optetrode recordings reveal that dCA1 calbindin-expressing PCs develop more selective spiking responses to odor cues during learning. Thus, our results identify a direct lateral EC→dCA1 circuit that is required for olfactory associative learning.

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Year:  2017        PMID: 28263300     DOI: 10.1038/nn.4517

Source DB:  PubMed          Journal:  Nat Neurosci        ISSN: 1097-6256            Impact factor:   24.884


  53 in total

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