Active Brain & Nervous System Psychology & Behaviour

Distributed sensorimotor processing in the cortico-cerebellar system

In plain English

AI plain-English summary

The brain's neocortex and cerebellum—two regions traditionally studied in isolation—must work together for the brain to learn skilled movements, predict sensory outcomes, and make decisions, yet how they communicate at the level of neural populations remains unknown. This project addresses a fundamental gap: while anatomical studies show the neocortex and cerebellum are densely interconnected, forming multiple closed loops, researchers have rarely recorded from both simultaneously during behaviour. Without this, we cannot understand how the brain coordinates distributed processing across regions. The team will record neural activity in both structures at once, using widefield brain imaging, high-resolution 3D two-photon microscopy, and optogenetics to play back specific activity patterns. They will also build multiscale models linking cellular mechanisms to population-level dynamics. This is fundamental science. If successful, it will reveal core principles of how neural circuits learn sensorimotor associations—knowledge that could eventually inform treatments for conditions where this coordination breaks down, such as ataxia, dyspraxia, or certain movement disorders. Past discoveries in cerebellar and cortical circuit function have already shaped brain-computer interfaces and rehabilitation strategies.

View original technical description
Sensory perception, cognition and motor function all rely on neural processing that is distributed across brain regions. Much of this processing is carried out by the neocortex and cerebellar cortex, which anatomical studies show are highly interconnected, forming multiple closed loops. But the neocortex and cerebellum have traditionally been studied separately. To understand how they work together as a system to form associations, learn motor tasks, predict the sensory consequences of movement and make decisions, it is critical to study how information is represented and communicated between these structures – at the neural population level. We will record neural population dynamics in the neocortex and cerebellar cortex, simultaneously, during reward-based behavioural tasks. We will use widefield whole brain imaging, high resolution dual region 3D two-photon imaging and optogenetic approaches. These will enable us to record and play back specific patterns of neuronal activity thereby testing hypotheses on cortico-cerebellar communication and cerebellar function. This will be complemented with multiscale models that link cellular mechanisms to population level properties. Elucidating fundamental principles of communication, distributed processing and learning will reveal how neural populations in the neocortical and cerebellar circuits work together to learn sensorimotor associations and perform skilled motor tasks.

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Researchers

Robin Angus Silver (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Interrogating cerebellar contributions to cortical computations during goal-directed behaviour
The cellular basis of information processing in a cerebellar microcircuit
Organization and dynamics of multiregional circuits for goal-directed behaviour
Cerebellar mechanisms for governing goal-directed and social behaviours
Cerebro-cerebellar interactions during learning of cognitive tasks

Original classification

Principal Research Fellowship Renewal

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