Completed Brain & Nervous System Psychology & Behaviour

The cellular basis of information processing in a cerebellar microcircuit

In plain English

AI plain-English summary

Every time you tap a key or catch a falling cup, a tiny patch of brain tissue called the cerebellar cortex is processing streams of sensory data and coordinating your muscles to act. This research aims to crack the code of how that tissue works at the level of individual cells and their connections. The problem is that we know the cerebellum is essential for smooth movement and learning, but we have almost no idea how its neurons actually represent and transform sensory information into motor commands. Without this fundamental understanding, we cannot explain why strokes, ataxia, or other neurological disorders disrupt coordination so severely. The team will use a custom-built microscope that can image hundreds of neurons firing in real time while mice perform sensory tasks. They will combine this with genetic tools to pinpoint which synapses and cell types are doing the work, then build computer models that simulate the circuit’s input-output logic. This is fundamental science. It will not produce a drug or a device tomorrow. But understanding how a compact, well-defined neural circuit processes information could eventually inform treatments for movement disorders, brain-computer interfaces, or even artificial neural networks that learn more like a real brain.

View original technical description
Our ability to interpret sensory input and to coordinate movements is often taken for granted, but impairment in these functions during neurological disorders has debilitating effects. How neural circuits perform these functions is poorly understood. The aim of this research is to elucidate how the synaptic and cellular properties of a circuit enable populations of neurons to represent, transform and distinguish sensorimotor information, which is critical for understanding how downstream neurons learn sequences, interpret sensory input and coordinate movements. We will use the powerful new methods that we have recently developed to study information processing in the cerebellar cortex, a well-defined neural circuit involved in coordinating movements. By combining dual-channel 3D acousto-optic lens two-photon imaging with genetically encoded indicators, we will measure signalling in identified populations of synaptic inputs, inhibitory interneurons and granule cells during sensory stimuli and behavioural tasks. We will then identify the biophysical properties of the synapses and neurons involved with optogenetic approaches, imaging and electrophysiology in vitro. Using network models, we will quantify how the cellular properties underlie the network input-output relationship measured in vivo. This will advance the field by linking synaptic and cellular properties to population coding and processing in neural circuits.

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Researchers

Robin Angus Silver (EPMC Awardee)

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Synaptic Neurology

Original classification

Principal Research Fellowship Renewal

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