Institute of Neurobiology, Eberhard Karls University of Tübingen, Tübingen, Germany.
Werner-Reichardt Centre for Integrative Neuroscience, University of Tübingen, Tübingen, Germany.
Hippocampus. 2024 Oct;34(10):528-539. doi: 10.1002/hipo.23623. Epub 2024 Aug 6.
The hippocampus is considered essential for several forms of declarative memory, including spatial and social memory. Despite the extensive research of the classic subfields of the hippocampus, the fasciola cinerea (FC)-a medially located structure within the hippocampal formation-has remained largely unexplored. In the present study, we performed a morpho-functional characterization of principal neurons in the mouse FC. Using in vivo juxtacellular recording of single neurons, we found that FC neurons are distinct from neighboring CA1 pyramidal cells, both morphologically and electrophysiologically. Specifically, FC neurons displayed non-pyramidal morphology and granule cell-like apical dendrites. Compared to neighboring CA1 pyramidal neurons, FC neurons exhibited more regular in vivo firing patterns and a lower tendency to fire spikes at short interspike intervals. Furthermore, tracing experiments revealed that the FC receives inputs from the lateral but not the medial entorhinal cortex and CA3, and it provides a major intra-hippocampal projection to the septal CA2 and sparser inputs to the distal CA1. Overall, our results indicate that the FC is a morphologically and electrophysiologically distinct subfield of the hippocampal formation; given the established role of CA2 in social memory and seizure initiation, the unique efferent intra-hippocampal connectivity of the FC points to possible roles in social cognition and temporal lobe epilepsy.
海马体被认为对几种类型的陈述性记忆至关重要,包括空间记忆和社会记忆。尽管对经典海马体亚区进行了广泛的研究,但 fasciola cinerea(FC)——海马结构内位于中间的结构——在很大程度上仍未被探索。在本研究中,我们对小鼠 FC 中的主要神经元进行了形态功能特征分析。通过对单个神经元的活体共聚焦记录,我们发现 FC 神经元在形态和电生理上都与邻近的 CA1 锥体神经元不同。具体来说,FC 神经元表现出非锥体神经元的形态和颗粒细胞样的顶树突。与邻近的 CA1 锥体神经元相比,FC 神经元表现出更规则的体内放电模式,并且短时间间隔内爆发尖峰的趋势较低。此外,示踪实验表明,FC 接收来自外侧而非内侧的内嗅皮层和 CA3 的输入,并且它向隔 CA2 提供主要的海马内投射,而向远端 CA1 的投射则较稀疏。总体而言,我们的结果表明 FC 是海马体形态和电生理学上不同的亚区;鉴于 CA2 在社会记忆和癫痫发作启动中的既定作用,FC 独特的海马内传出连接可能在社会认知和颞叶癫痫中发挥作用。