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Transcriptomic signatures of hippocampal active place avoidance memory maintenance.
Isaac Vingan1, Shwetha Phatarpekar2, Victoria Sook Keng Tung3
1School of Graduates Studies, Program in Neural and Behavioral Sciences, State University of New York, Downstate Health Sciences University, Brooklyn, NY, United States.
Frontiers in Cellular Neuroscience
|June 3, 2026
Summary
Gene expression changes during memory maintenance reveal regional synaptic function shifts and reduced metabolic activity in the hippocampus. This study sheds light on the molecular underpinnings of long-term memory storage in mice.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Gene expression changes during memory acquisition, consolidation, and reconsolidation are well-understood in the hippocampus.
- However, the molecular changes during the offline maintenance of memory remain largely uncharacterized.
- Understanding these changes is crucial for comprehending long-term memory persistence.
Purpose of the Study:
- To investigate gene expression alterations in the dorsal hippocampus during the offline maintenance of a learned memory.
- To identify specific molecular changes in memory-associated neurons.
- To explore the transcriptomic landscape of hippocampal subregions during memory recall.
Main Methods:
- Spatial transcriptomics was employed on the dorsal hippocampus of mice 3 days after memory consolidation.
- The Arc-Cre/flox-eYFP transgenic mouse line was used to tag immediate early gene-expressing neurons.
- Single nuclear RNA sequencing was performed for high-resolution analysis of gene expression in specific neuronal populations.
Main Results:
- Spatially regionalized gene expression was observed, with specific functions enriched in CA1 (post-synaptic), CA3 (synaptic vesicle transport), and DG (neuronal differentiation).
- These enrichments were not found in the tagged memory-associated neurons (eYFP positive).
- Hippocampal neurons showed downregulated expression of genes involved in ATP synthesis and cytoplasmic translation, indicating reduced metabolic activity.
Conclusions:
- Offline memory maintenance involves distinct transcriptomic patterns, including regionally specific synaptic gene expression and reduced metabolic activity.
- Memory-associated neuronal ensembles may be sparsely distributed, despite regional gene expression changes.
- These findings provide novel insights into the molecular mechanisms underlying stable memory storage in the hippocampus.

