Jul 2026· Journal of Neuroscience· Vol 46, pp. e2001252026· 0 citations· 73 references
Medicine
TL;DR
It is suggested that the DG preferentially responds to social stimuli at the network level, providing novel insights into how spatial and nonspatial information is processed in the DG.
Abstract
The dentate gyrus (DG) is thought to play a key role in the formation of dissociable memory representations for similar contexts. Neurons in the DG receive highly processed spatial and nonspatial sensory information from the medial and lateral entorhinal cortices, respectively. Changes in spatially tuned firing patterns of DG place cells occur after spatial changes to an environment, but the degree to which DG place cells respond to ethologically relevant nonspatial stimuli is largely unknown. Spatial and nonspatial information is thought to be transmitted to the DG during discrete local field potential events called dentate spikes. Here, we tested the extent to which different spatial and nonspatial stimuli modulate place cell firing patterns and dentate spike dynamics. We performed extracellular recordings of DG place cells and local field potentials in rats of both sexes exploring a familiar spatial environment, in which social stimuli and nonsocial odors of varying ethological relevance were presented, and a novel spatial environment. As expected, DG place cells exhibited different firing patterns between familiar and novel environments. Significant changes in firing were not observed, however, with any of the nonspatial stimuli. Surprisingly, the occurrence of dentate spikes associated with lateral entorhinal cortex input increased during exploration of ethologically relevant stimuli, and this increase was greater for social stimuli. Altogether, these results suggest that the DG preferentially responds to social stimuli at the network level, providing novel insights into how spatial and nonspatial information is processed in the DG.
A multitude of studies have confirmed the essential role of the hippocampus in the acquisition and updating of associative experience. In rodents, spatial memories are dependent on hippocampal information processing and encoding. The role of the dorsal hippocampal pole is well documented, but information about the role...
Decision-making requires the coordinated integration of sensory information, internal states, and learned rules across time. While the medial prefrontal cortex (mPFC) is known to contribute to this process, how population-level neural activity in the mPFC is temporally organized during decision-making remains unclear....
Takeru Suzuki, Daisuke Joho, Hiroyuki Okuno et al.· Journal of Neuroscience· 0 citations
The hippocampus is essential for spatial learning, yet how its principal output structure, the subiculum, encodes behaviorally relevant information during navigation remains poorly understood. Because subicular neurons exhibit prominent burst firing, understanding how this bursting arises during behavior is critical. U...
A. Bhatia, M. Adel, Christine Grienberger· Cell Reports· 1 citation
Place and time cells are widely thought to provide complementary representations of spatial location and elapsed time in the hippocampus. Recent experiments reported CA1 neurons whose place and time fields shift systematically with running speed, suggesting that representations of space and time are integrated and comp...
The hippocampus is known for spatial mapping through place cells, but much less is understood about the cognitive map that integrates task and reward information. Recent work has identified elements of this map as "reward" cells that encode distance relative to rewards. However, their detailed characteristics, regulato...
Zahra M. Dhanerawala, Bo Jiang, Gerardo Molina et al.· Current Biology· 1 citation
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.