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Kerekes, P.

Publications and source records attributed to Kerekes, P..

2 recordsLinked to original sources

The medial entorhinal spatial map is built on excitatory-inhibitory network motifs defined by their functional cell type and theta modulation

The medial entorhinal cortex (mEC) contains functionally specific neurons crucial for spatial memory and navigation, including grid, border, spatial, head direction, and cue cells. However, how these neurons interact to build spatial maps remains unclear. Here, using simultaneous recordings from hundreds of functionally defined mEC neurons in mice navigating virtual tracks with varying numbers of visual landmarks, we uncovered connectivity motifs that define the mEC functional network architecture and link it to the principles governing allocentric map formation. We found that connectivity between cells was cell-type-specific and grouped into subnetworks based on their function and theta modulation, with theta-modulated connections dominating over non-theta. Functionally distinct neurons preferentially connected to their own type, and their interactions were coordinated by a shared inhibitory pool of interneurons, with a higher proportion of excitatory-to-inhibitory connections than between excitatory cells. This was accompanied by the number of fields formed across all mEC cell types increasing sublinearly with the number of available cues. Grid cells showed the strongest relative connectivity to interneurons regardless of their theta modulation, linking otherwise largely isolated theta and non-theta streams. Grid cells were also least likely to form a field in response to cues. Together, these findings reveal an mEC network architecture organised by cell type and theta dependency, in which inhibitory interactions, with grid cells as the strongest hub, play a central role in building the mEC allocentric map.

neuroscience↗

Simultaneous representation of multiple time horizons by entorhinal grid cells and CA1 place cells

Grid cells and place cells constitute the basic building blocks of the medial entorhinal-hippocampal spatial cognitive map by representing the spatiotemporal continuum of an animals past, present and future locations. However, the spatiotemporal relationship between these different cell types is unclear. Here we co-recorded grid and place cells in freely foraging rats. We show that average time shifts in grid cells tend to be prospective and are proportional to their spatial scale, providing a nearly instantaneous readout of a spectrum of progressively increasing time horizons ranging hundreds of milliseconds. Average time shifts of place cells are generally larger compared to grid cells and also increase with place field sizes. Moreover, time shifts displayed nonlinear modulation by the animals trajectories in relation to the local boundaries and locomotion cues. Finally, long and short time shifts occurred at different parts of the theta cycle, which may facilitate their readout. Together, these findings suggest that progressively increasing time horizons of grid and place cells may provide a basis for calculating animal trajectories essential for goal-directed navigation and planning.

neuroscience↗