Skip to content

Topic: Head-direction cells

Seminar
3 seminars

Wed, Oct 27, 2021 · 16:00 UTC

Neural responses are variable: even under identical experimental conditions, single neuron and population responses typically differ from trial to trial and across time. Recent work has demonstrated that this variability has predictable structure, can be modulated by sensory input and behaviour, and bears critical signatures of the underlying network dynamics and computations. However, current methods for characterising neural variability are primarily geared towards sensory coding in the laboratory: they require trials with repeatable experimental stimuli and behavioural covariates. In additi

Seminar · Neuroscience

Locally-ordered representation of 3D space in the entorhinal cortex

Gily Ginosar · Ulanovsky lab, Weizmann Institute, Rehovot, Israel

Thu, Apr 29, 2021 · 16:00 UTC

When animals navigate on a two-dimensional (2D) surface, many neurons in the medial entorhinal cortex (MEC) are activated as the animal passes through multiple locations (‘firing fields’) arranged in a hexagonal lattice that tiles the locomotion-surface; these neurons are known as grid cells. However, although our world is three-dimensional (3D), the 3D volumetric representation in MEC remains unknown. Here we recorded MEC cells in freely-flying bats and found several classes of spatial neurons, including 3D border cells, 3D head-direction cells, and neurons with multiple 3D firing-fields. Man

Seminar · Brain Imaging

Slow global population dynamics propagating through the medial entorhinal cortex

Soledad Gonzalo Cogno · Moser lab, NTNU

Wed, Jan 27, 2021 · 17:35 UTC

The medial entorhinal cortex (MEC) supports the brain’s representation of space with distinct cell types whose firing is tuned to features of the environment (grid, border, and object-vector cells) or navigation (head-direction and speed cells). While the firing properties of these functionally-distinct cell types are well characterized, how they interact with one another remains unknown. To determine how activity self-organizes in the MEC network, we tested mice in a spontaneous locomotion task under sensory-deprived conditions. Using 2-photon calcium imaging, we monitored the activity of lar

We use essential cookies to run the site. Optional analytics and public-page session replay help us improve World Wide. Learn more.