VestibVis · Visual and vestibular processing in secondary visual cortex
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2017-03-01 → 2019-02-28
- EU contribution
- €183,455
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Visual and vestibular processing in secondary visual cortex
Spatial navigation requires the coordinated interaction of several cerebral tasks, including visuo-spatial processing, spatial cognition and episodic memory. While navigating within a complex environment, one constantly needs to estimate self-motion relative to the surroundings. Visual cues related to object motion during navigation can provide information about direction, but these cues signal a mixture of information relative to the motion of both object and observer, which may be ambiguous. Despite evidence in primates and rodents that using visual cues in combination with vestibular information improves self-motion perception, the neuronal circuitry and cellular mechanisms supporting this multisensory representation of space remain elusive. We are studying how mice combine visual and vestibular information with their internal representation of space and study the underlying neuronal networks, in a neuronal population at the intersection of sensory input and internal models of space. Virtual reality (VR) environments are a key tool for this type of research, as by controlling the external, sensory information allows us to interfere with processes to build a mechanistic, causal understanding of how the brain works. One drawback of current VR systems is the lack of vestibular stimulation during navigation thus disabling the brain’s internal compass (the head-direction system). We have developed a novel VR system prototype which overcomes this fundamental limitation. The outcome of this study is important for society because the ability to navigate within a complex environment is compromised by a range of neuronal dysfunctions. These involve damage to central brain regions, which can occur following strokes, tumours, during ageing, or in Alzheimer’s disease, which frequently leave patients experiencing spatial disorientation. A better understanding of the physiological underpinnings of the neural circuits involved in these phenomenons is a crucial step to understand what goes wrong following injury or diseases. Our objectives were: - to characterize the functional responses of this cell population to visual and vestibular input, - to study their activity during spatial navigation - to develop the appropriate novel tools to this end
Data: CORDIS, © European Union
Project objective
Spatial navigation requires the integration of visual and vestibular inputs to build a representation of space. Connectivity studies have shown that the secondary visual cortex (V2) of mice receives bottom-up inputs from primary visual cortex and anterior thalamus, conveying respectively visual and vestibular information, and feedback top-down inputs from the retrosplenial cortex. The aims of this project are to determine the visual and vestibular tuning of layer 5 pyramidal neurons in V2, how these inputs are recruited and interact when the mouse is engaged in a spatial navigation task, and how they are modulated by retrosplenial inputs. This will be accomplished using a combination of population calcium imaging or whole-cell patch-clamp recordings of layer 5 neurons, coupled with sensory stimulation and optogenetic activation or inhibition of sensory or top-down inputs and behavioural experiments.
Original text from CORDIS.
Participants
- THE FRANCIS CRICK INSTITUTE LIMITED · LondonCoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
