Fear engrams and NPYergic circuit in the dorsal dentate gyrus determine remote fear memory generalization.
Raza, S. A.; Klinger, K.; del Angel, M.; Emre Demiray, Y.; Caliskan, G.; R. Kreutz, M.; Stork, O.
Show abstract
Generalization is a critical feature of aversive memories and significantly contributes to post-traumatic stress disorder (PTSD) pathogenesis. While fear memories over time tend to generalize across differences in the contextual background and even to novel contextual settings, this effect can be counteracted by exposure to controlled reminder sessions even at remote time points. Using Pavlovian fear conditioning in mice, we show that generalization to a novel context of remote memory is associated with a loss of cellular engram activation in the dorsal dentate gyrus (dDG) and can be effectively counteracted by a preceding contextual reminder session. In addition to engram cells activation in response to a novel context, the reminder session also leads to a recovery of neuropeptide Y (NPY) function in the dDG and dDG-CA3 neurotransmission. In line with a proposed role of NPY as a resilience factor, we found that chronic viral knockdown of NPY in the dDG and blockage of its activity-dependent expression in NPYergic dDG interneurons with dominant-negative CREBS133A both increase remote memory generalization. With chemogenetic silencing of these interneurons, we could localize their critical involvement to a time window during and immediately following the fear memory acquisition. Together, these findings suggest that NPYergic interneurons of the dDG, shaping the memory engram during fear learning and early consolidation, determine fear generalization.
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