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Bott, J.-B.

Publications and source records attributed to Bott, J.-B..

2 recordsLinked to original sources

Navigational Frames of Reference as Critical Regulators of Hippocampal Interneuron Coding Properties

Efficient spatial navigation relies on the hippocampus integrating local (proximal) and global (distal) cues, collectively called frames of reference, to guide behavior and support memory. Although these cues control the anchoring of principal cell fields, how these frames tune interneuron functions remains unknown. Traditionally, interneurons such as O-LM and VIP cells have been viewed primarily as speed encoders, although some also encode spatial information or respond to discrete stimuli. Using calcium imaging in freely behaving mice performing a new spatial learning task that differentiates between reference frames, we demonstrate that O-LM cells displayed a striking bimodal activity pattern, altering both their speed and spatial encoding properties. In contrast, VIP interneurons were largely unaffected by changes in the frame of reference, instead correlating with familiarization. Notably, linear decoding using speed scores revealed that only O-LM interneurons provide an accurate readout of the dominant reference frame, enabling prediction of the animals navigation strategy. These findings highlight that hippocampal interneurons can flexibly adapt their functions depending on cognitive factors such as the reference frames used to guide behavior.

neuroscience↗

Medial septum glutamate neurons are essential for spatial goal-directed memory

The medial septum (MS), a brain region containing acetylcholine, GABA and glutamate neurons, is essential for learning and memory. However, whether MS glutamate neurons contribute to memory is unknown. Here, we use calcium imaging and optogenetic silencing to determine the function of MS glutamate neurons in mice performing a spatial allocentric memory navigation task. While MS glutamate neurons appeared randomly active during free exploration, two groups of glutamate neurons emerged during training in a five-arm star maze, distinguished by their peak activity. The largest group was predominantly activated before locomotion whereas the other was primarily active when mice reached the reward site. Both populations were preferentially activated for correct over incorrect trajectories. Interestingly, optogenetic silencing of MS glutamate neurons immediately before mice start navigating, induced significant spatial memory impairments. Together these results demonstrate that MS glutamate neurons heterogeneously encode navigationally relevant information and are essential for spatial learning.

neuroscience↗