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Opazo, P.

Publications and source records attributed to Opazo, P..

3 recordsLinked to original sources

Deleting learning-induced dendritic spines disrupts the memory they encode

Long-term memory is widely thought to depend on activity-dependent synaptic plasticity and the structural remodeling that accompanies it, yet direct causal evidence that this remodeling is required for memory storage has been lacking. A case in point is the formation of dendritic spines: new spines appear following learning, but whether they constitute a physical substrate of memory remains unresolved. To address this, we developed the New Spine Elimination Tool (NSET), a chemical-genetic strategy, that ablates dendritic spines formed within a defined window of synaptic plasticity. NSET combines inducible expression of a degradable form of the actin-binding protein Drebrin with ligand-triggered proteasomal degradation. Because mainly nascent spines incorporate the degradable proteins into their cytoskeleton, ligand application eliminates them while sparing pre-existing ones. In hippocampal slice cultures, NSET eliminated recently formed spines without altering overall spine density or affecting pre-existing spines. Applied in vivo in the mouse basolateral amygdala, selective removal of learning-induced spines disrupted auditory fear memory, whereas consolidated memories and the capacity for new learning remained intact. These findings provide direct causal evidence that newly formed dendritic spines are required for long-term memory storage.

neuroscience↗

Direct Evidence for Dendritic Spine Compensation and Regeneration in Alzheimer Disease Models

Dendritic spine loss in Alzheimers disease (AD) strongly correlates with cognitive decline, whereas spine preservation is associated to cognitive resilience. Yet, whether and how neurons compensate for spine loss in AD remains largely unknown. Using a chromophore-assisted light inactivation approach (CALI), we developed a tool to selectively eliminate dendritic spines to model this key feature of AD. Using in vivo and in vitro two-photon imaging, we discovered that the artificial elimination of spines triggers a two-stage compensatory response: rapid enlargement of remaining spines followed by delayed spine regeneration. Remarkably, similar structural plasticity was observed across multiple {beta}-amyloid-driven models of synapse loss, including the APP/PS1 mouse and following intracortical delivery of oligomeric {beta}-amyloid. Mechanistically, compensatory spine enlargement required NMDA receptor activation and de novo protein synthesis. These findings suggest that neurons retain an intrinsic capacity to reverse early synaptic loss in AD, potentially contributing to cognitive resilience.

neuroscience↗

Resting-state network hubs are causally required in memory consolidation

Memory consolidation after learning involves spontaneous, brain-wide network reorganization during rest and sleep, but how this is achieved is still poorly understood. Current theory suggests that the hippocampus is pivotal for reshaping the connectivity. Here we identify that a different set of spontaneous networks and their hubs are instrumental in consolidating memory during post-learning rest. We found that two types of spatial memory training invoke distinct functional connections, but a network of the sensory cortex and subcortical areas is common for both tasks. Furthermore, learning increased brain-wide network integration, with the prefrontal, striatal and thalamic areas being influential for this network-level reconfiguration. Chemogenetic suppression of each hub identified after learning resulted in retrograde amnesia, confirming the behavioral significance. These results demonstrate the causal and functional roles of resting-state network hubs in memory consolidation and suggest a distributed network beyond the hippocampus subserving this process.

animal behavior and cognition↗