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Biophysical Mechanisms Underlying The Generation And Maintenance Of Rule-Learning Engram

Kundu, S.; Keren, D.; Zidan, S.; Kumar, A.; Schiller, J.; Barkai, E.

2025-08-13 neuroscience
10.1101/2025.08.12.670009 bioRxiv
Show abstract

Training rodents in a particularly difficult olfactory-discrimination task results with acquisition of high skill to perform the task superbly, termed rule-learning. We show that rule-learning occurs abruptly, in a "light bulb moment". Using whole-cell patch-clamp recordings in the piriform cortex of Fos2A-iCreER/TRAP2 mice, we targeted activated neurons, expressing immediate early genes (IEG). From the onset of training, IEG-positive neurons from trained animals display enhanced intrinsic excitability. Subsequently, synaptic excitation and inhibition is enhanced in these neurons, in a coordinated, cell-wide process. In parallel, the density of IEG-expressing neurons sharply declines. Double labeling with TRAP and c-Fos reveals that nearly two-thirds of the rule-memory engram neurons were engaged from the beginning of training. Silencing TRAP-expressing neurons using DREADDs leads to a complete loss of rule memory. We propose that rule learning occurs at a discrete moment, and is developed through a gradual process that stabilizes the memory of the rule.

Published in Communications Biology (predicted rank #20) · training set

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