H2020Individual fellowship2019–2021

FindMEMO · Functional contribution of visual features to hippocampal memory encoding

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2019-09-01 → 2021-08-31
EU contribution
€173,076
Participants
1
Scheme
MSCA-IF

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Results in brief

Functional contribution of visual features to hippocampal memory encoding

Storing and recalling distinct memories are essential brain functions that play key roles in guiding our day-to-day behavior. For example, you may encounter your old school professor whom you have not seen in ten years. His hair is thinner and grayer, he wears different glasses, and has put on some weight. Nonetheless, your brain allows you to retrieve your old memories of this individual even though the inputs are altered. At the same time, you also want to create a distinct, new memory of the individual you have seen today. How can the brain allow both processes (neuronal discrimination and generalization) to occur simultaneously? A brain structure called the hippocampus is thought to be in charge of this task. However, it is still unclear how and where in the hippocampus distinct memories of similar events are formed, and surprisingly little is known about how these memory representations are then used to guide our behavior. In the reporting period of the project FindMEMO, I aimed to address this ambitious key question: How are distinct memories formed and used for behavior?

Data: CORDIS, © European Union

Project objective

One of the most intriguing complex functions of the brain is its ability to transform sensory information into distinct neural representations that can be used for perception and action. Sensory inputs mediated by visual, auditory, tactile and olfactory streams drive experience-dependent learning. In particular, to form memories of the perceived outside world, characteristic visual features of the environment need to be processed by the hippocampus, a brain region that is critical for episodic memory storage in mammals. However, it is still unclear how visual properties of different environments can drive the formation of separate memories. It has been suggested that the hippocampal dentate gyrus is required to produce distinct memories in a process termed pattern separation. In particular, newly generated granule cells, which are continuously incorporated into the existing adult neuronal network, appear to be essential for this process. To understand how visual features of similar stimuli are processed in the hippocampus to drive the formation and storage of distinct memories, I will combine novel optical methods to record the activity of newly generated and mature granule cells from the hippocampal dentate gyrus with simultaneous local field potential recordings from primary visual cortex. These experiments will be performed on head-fixed mice running in a linear virtual-reality environment while discriminating a visually-driven behavioural task, and will allow me to answer the following questions: i) How do distinct visual cues drive the formation of separate hippocampal representations? ii) In turn, how is hippocampus-dependent memory formation involved in visual experience-dependent learning? My results will provide fundamental insights into the cellular mechanisms of memory formation and will address a core question in neuroscience, how different brain regions interact to create the mental representation of the outside world.

Original text from CORDIS.

Participants

  • INSTITUT PASTEUR · ParisCoordinatorFrance

Links

Data: CORDIS, © European Union