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Mauro, L.

Publications and source records attributed to Mauro, L..

2 recordsLinked to original sources

Associative memory formation reshapes the learning trajectory of a novel cognitive map

Learning never occurs on a blank slate, as each experience an animal encounters in its daily life is encoded by circuits already shaped by previous ones. During such experiences, the hippocampus builds place-cell-based cognitive maps of the environments explored, and encodes ensemble-based memories for associations among events that occur within them. These spatial and mnemonic representations draw on neurons embedded within the same network. However, whether forming an associative memory of an experience unfolding in one context changes how the same hippocampal network maps a different one is unknown. Here, we longitudinally imaged CA3 neurons as mice familiarized with one environment, encoded either an associative fear memory or a context-only memory in a different environment, and then explored a novel one. Across separate experiences, neuronal recruitment into cognitive maps and memory ensembles followed structured, partially orthogonal allocation rules that were consistent across fear and neutral memories, with ensemble membership and place-cell identity showing no reciprocal enrichment. Fear memory encoding left the properties of the familiar map unchanged, while altering those of the novel one. From first exposure, the novel map already recruited a familiar-like fraction of place cells and supported spatial decoding with near-familiar precision, and its population activity occupied a latent subspace that aligned with the familiar map while remaining context-specific. Yet this novel map failed to undergo the experience-dependent refinement of decoding precision and across-day latent alignment that normally accompanies familiarization, even though place cells continued to gain spatial information and to remap. Associative memory encoding therefore shifts CA3 into a distinct representational regime, decoupling the immediate precision of a new cognitive map from the experience-dependent refinement of its context-specific population embedding.

neuroscience↗

The Reinstatement of a Forgotten Infantile Memory

Infantile memories present a striking paradox: while early-life experiences are typically forgotten, reflecting the phenomenon of infantile amnesia, traumatic events from infancy can profoundly shape adult cognition and behavior. How do memories that are seemingly inaccessible persistently influence cognitive processes and behaviors throughout life? Rodent studies have demonstrated that forgotten infantile memories remain encoded as latent "infantile memory engrams" (iEngrams) within neuronal circuits, capable of memory reinstatement under artificial experimental conditions. Still, the network mechanisms underpinning the natural reinstatement of a forgotten infantile memory are unknown. Here, we show that infantile memories, though physiologically irretrievable in adults, remain stored within hippocampal circuits and their engrams contribute to hippocampal network dynamics. Crucially, reinstating these memories requires a carefully orchestrated network process. An initial contextual reminder primes the hippocampal network to increase activity of the iEngram during a subsequent aversive reminder, which tags iEngram neurons for offline reactivation. This reactivation facilitates the integration of previously latent infantile memories with novel neuronal ensembles, reinstating behavior consistent with the original memory. These findings critically advance our understanding of the neuronal mechanisms underlying physiological memory encoding, retrieval, and reinstatement across development. Furthermore, they delineate the temporal boundaries and underlying physiological substrate of the process by which a latent representation becomes associated with a novel neuronal substrate, suggesting potential interventions to prevent the maladaptive reinstatement of traumatic infantile memories.

neuroscience↗