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Topolnik, D.

Publications and source records attributed to Topolnik, D..

2 recordsLinked to original sources

Median raphe input to dorsal CA1 shapes VIP interneuron recruitment and novelty-guided spatial memory

Vasoactive intestinal peptide-expressing interneurons (VIP-INs) gate hippocampal inhibition during novel experience, but the long-range signals that engage these cells remain poorly understood. Here we identify median raphe (MnR) projections as a brainstem pathway that tunes dorsal CA1 VIP-IN recruitment through coordinated glutamatergic and serotonergic mechanisms. Anatomical mapping and optogenetic recordings showed that MnR axons innervate multiple VIP-IN subtypes, while transcriptomic and pharmacological analyses revealed fast glutamatergic excitation together with serotonin receptor-dependent modulation of synaptic and intrinsic responsiveness. In vivo calcium imaging showed that novelty preferentially recruited a speed-coupled VIP-IN ensemble, and inhibition of MnR input selectively reduced the magnitude of this response. A hippocampal circuit model linked this pathway to dendritic disinhibition and place-cell recruitment. Behaviorally, inhibition of MnR input preserved exploratory engagement but disrupted the organization of spatial sampling and impaired object-location memory. Thus, MnR input organizes hippocampal disinhibition to support novelty-guided exploration and memory encoding.

neuroscience↗

Altered firing output of VIP interneurons and early dysfunctions in CA1 hippocampal circuits in the 3xTg mouse model of Alzheimer's disease

Alzheimers disease (AD) leads to progressive memory decline, and alterations in hippocampal function are among the earliest pathological features observed in human and animal studies. GABAergic interneurons (INs) within the hippocampus coordinate network activity, among which type 3 interneuron-specific (I-S3) cells expressing vasoactive intestinal polypeptide and calretinin play a crucial role. These cells provide primarily disinhibition to principal excitatory cells (PCs) in the hippocampal CA1 region, regulating incoming inputs and memory formation. However, it remains unclear whether AD pathology induces changes in the activity of I-S3 cells, impacting the hippocampal network motifs. Here, using young adult 3xTg-AD mice, we found that while the density and morphology of I-S3 cells remain unaffected, there were significant changes in their firing output. Specifically, I-S3 cells displayed elongated action potentials and decreased firing rates, which was associated with a reduced inhibition of CA1 INs and their higher recruitment during spatial decision-making and object exploration tasks. Furthermore, the activation of CA1 PCs was also impacted, signifying early disruptions in CA1 network functionality. These findings suggest that altered firing patterns of I-S3 cells might initiate early-stage dysfunction in hippocampal CA1 circuits, potentially influencing the progression of AD pathology. SignificanceThis study examines VIP interneurons in the CA1 hippocampus affected by Alzheimers disease (AD) pathology. While these cells maintain their structural integrity, they exhibit altered firing patterns in young adult 3xTg-AD mice. These changes might correlate with enhanced CA1 inhibition and impact the activation of principal cells. These findings shed light on early dysfunction in hippocampal circuits as a potential mechanism of AD pathology and offer insights into prospective therapeutic targets.

neuroscience↗