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Parthier, D.

Publications and source records attributed to Parthier, D..

3 recordsLinked to original sources

Calbindin-containing CA1 pyramidal cells support cognitive flexibility in spatial task in mice

The hippocampus, and particularly the dorsal CA1, is essential for spatial memory consolidation through sharp-wave ripple events (SWRs) that enable the transfer of information to cortical areas. Within the dorsal CA1, distinct pyramidal cell sub-populations of the deep and superficial layer may play distinct roles in the processing and updating of spatial information. Using a Cre-dependent mouseline, we were able to precisely target the superficial, Calbindin (CALB1+) PCs of the CA1. This allowed us to gain a deeper understanding of the connectivity of CALB1+ CA1 PCs to their SWR-propagating excitatory output partners within the Subiculum (SUB), the burst-firing SUB PCs and their functional relevance in spatial memory consolidation and recall. Retrograde rabies tracing revealed heterogeneous innervation of the VGlut2+ bursting PCs by both CA1 PC sub-layers, and showed that the majority of presynaptic inputs are located in the superficial CA1 PC layer. We were able to observe that this anatomically confirmed connection between CALB1+ CA1 PCs and both SUB PC subtypes is able to induce spiking more reliably in burst- than regular-firing SUB PCs. CNO-induced inhibition in a Barnes Maze task revealed that the experimental group showed reduced cognitive flexibility and were slower to adapt to re-location of the goal when CALB1+ CA1 PCs were inhibited during the recall (test), while both groups behaved similarly when consolidation was manipulated (training). Inhibition did not impact overall learning, strategy development or locomotor control. This suggests that CALB1+ CA1 PCs preferentially connect to bursting SUB PCs, and support cognitive flexibility needed to adapt to a changing environment, adding further proof to the functional relevance of laminar segregation of the CA1 and the hippocampus in spatial memory processes.

neuroscience↗

Ultraslow serotonin oscillations in the hippocampus delineate substates across NREM and waking

Beyond the vast array of functional roles attributed to serotonin (5-HT) in the brain, changes in 5-HT levels have been shown to accompany changes in behavioral states, including WAKE, NREM and REM sleep. Whether 5-HT dynamics at shorter time scales can be seen to delineate substates within these larger brain states remains an open question. Here, we performed simultaneous recordings of extracellular 5-HT using a recently-developed G Protein-Coupled Receptor-Activation-Based 5-HT sensor (GRAB5-HT3.0) and local field potential (LFP) in the hippocampal CA1, which revealed the presence of prominent ultraslow (<0.05 Hz.) 5-HT oscillations both during NREM and WAKE states. Interestingly, the phase of these ultraslow 5-HT oscillations was found to distinguish substates both within and across larger behavioral states. Hippocampal ripples occurred preferentially on the falling phase of ultraslow 5-HT oscillations during both NREM and WAKE, with higher power ripples concentrating near the peak specifically during NREM. By contrast, hippocampal-cortical coherence was strongest and microarousals and intracranial EMG peaks were most prevalent during the rising phase in both wake and NREM. Overall, ultraslow 5-HT oscillations delineate substates within the larger behavioral states of NREM and WAKE, thus potentially temporally segregating internal memory consolidation processes from arousal-related functions.

neuroscience↗

The synapsin-dependent vesicle cluster is crucial for presynaptic plasticity at a glutamatergic synapse in male mice

Synapsins are highly abundant presynaptic proteins that play a crucial role in neurotransmission and plasticity via the clustering of synaptic vesicles. The synapsin III isoform is usually downregulated after development, but in hippocampal mossy fiber boutons it persists in adulthood. Mossy fiber boutons express presynaptic forms of short- and long-term plasticity, which are thought to underlie different forms of learning. Previous research on synapsins at this synapse focused on synapsin isoforms I and II. Thus, a complete picture regarding the role of synapsins in mossy fiber plasticity is still missing. Here, we investigated presynaptic plasticity at hippocampal mossy fiber boutons by combining electrophysiological field recordings and transmission electron microscopy in a mouse model lacking all synapsin isoforms. We found decreased short-term plasticity - i.e. decreased facilitation and post-tetanic potentiation - but increased long-term potentiation in male synapsin triple knockout mice. At the ultrastructural level, we observed more dispersed vesicles and a higher density of active zones in mossy fiber boutons from knockout animals. Our results indicate that all synapsin isoforms, including synapsin III, are required for fine regulation of short- and long-term presynaptic plasticity at the mossy fiber synapse. Significance statementSynapsins cluster vesicles at presynaptic terminals and shape presynaptic plasticity at giant hippocampal mossy fiber boutons. Deletion of all synapsin isoforms results in decreased short- but increased long-term plasticity.

neuroscience↗