小鼠内侧内皮层外层的 Vb 神经元可投射到海马齿状回。

IF 3.3 3区 医学 Q2 NEUROSCIENCES
Naoki Yamamoto, Jun Yokose, Kritika Ramesh, Takashi Kitamura, Sachie K Ogawa
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引用次数: 0

摘要

内黑质皮层(EC)-海马体(HPC)回路对学习和记忆至关重要。尽管传统上认为脑皮质浅层(II/III)主要向海马体投射,而深层(V/VI)则接收来自海马体的输入,但最近的研究强调了脑皮质Va层和VI层向海马体的重要投射。然而,EC中的Vb神经元是否向海马提供投射仍是未知数。在本研究中,我们使用 Vb 分子标记物和逆行追踪器发现,内侧 EC(MEC)外层的 Vb 神经元直接向背侧和腹侧海马齿状回(DG)投射,并明显偏向于腹侧 DG。与DG投射的Vb细胞的分布不同,丘脑前部投射的Vb细胞通过Vb的外层向内层分布。此外,双示踪剂注射显示,DG投射的Vb细胞和丘脑前部投射的Vb细胞是不同的细胞群。这些结果表明,MEC Vb神经元的作用不仅限于形成EC-HPC环路,而是有助于学习和记忆的多种神经过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Outer layer of Vb neurons in medial entorhinal cortex project to hippocampal dentate gyrus in mice.

Entorhinal cortical (EC)-hippocampal (HPC) circuits are crucial for learning and memory. Although it was traditionally believed that superficial layers (II/III) of the EC mainly project to the HPC and deep layers (V/VI) receive input from the HPC, recent studies have highlighted the significant projections from layers Va and VI of the EC into the HPC. However, it still remains unknown whether Vb neurons in the EC provide projections to the hippocampus. In this study, using a molecular marker for Vb and retrograde tracers, we identified that the outer layer of Vb neurons in the medial EC (MEC) directly project to both dorsal and ventral hippocampal dentate gyrus (DG), with a significant preference for the ventral DG. In contrast to the distribution of DG-projecting Vb cells, anterior thalamus-projecting Vb cells are distributed through the outer to the inner layer of Vb. Furthermore, dual tracer injections revealed that DG-projecting Vb cells and anterior thalamus-projecting Vb cells are distinct populations. These results suggest that the roles of MEC Vb neurons are not merely limited to the formation of EC-HPC loop circuits, but rather contribute to multiple neural processes for learning and memory.

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来源期刊
Molecular Brain
Molecular Brain NEUROSCIENCES-
CiteScore
7.30
自引率
0.00%
发文量
97
审稿时长
>12 weeks
期刊介绍: Molecular Brain is an open access, peer-reviewed journal that considers manuscripts on all aspects of studies on the nervous system at the molecular, cellular, and systems level providing a forum for scientists to communicate their findings. Molecular brain research is a rapidly expanding research field in which integrative approaches at the genetic, molecular, cellular and synaptic levels yield key information about the physiological and pathological brain. These studies involve the use of a wide range of modern techniques in molecular biology, genomics, proteomics, imaging and electrophysiology.
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