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Heimburg, F.

Publications and source records attributed to Heimburg, F..

2 recordsLinked to original sources

Distributed burst activity in the thalamocortical system encodes reward contingencies during learning

Neuronal bursts are distinct high-frequency firing patterns that are present ubiquitously throughout mammalian brain circuits. Although bursts are considered part of a universal neural code, the information they convey has long been a subject of debate. In this study, we investigated neuronal activity in simultaneously recorded regions of the thalamocortical system in freely moving mice as they learned stimulus-outcome associations in a go/no-go task. We discovered that, in parallel with learning, populations of neurons emerge in cortical, thalamic, and extrathalamic regions of the somatosensory system that encode task-relevant stimulus features via the presence or absence of bursts. These burst-coder neurons (BCNs) increase in number with task proficiency and exhibit burstiness that scales with stimulus valence rather than physical stimulus identity. Notably, BCNs consistently track stimulus-outcome associations--even after multiple rule switches--by inverting their burst encoding of the physical stimuli, indicating that burst coding is driven by outcome associations rather than by inherent stimulus properties. Although burst coding emerges throughout the thalamocortical system, only cortical units retain significant burst coding after devaluation, while other regions lose their discriminative burst patterns. Furthermore, decoding of stimulus properties and behavior achieves maximal accuracy when bursts or BCNs are used as input. Overall, these results provide direct experimental evidence linking neuronal bursting to learning, supporting a novel perspective of bursts as context encoders and teaching signals.

neuroscience↗

A tactile discrimination task to study neuronal dynamics in freely-moving mice

Sensory discrimination tasks are valuable tools to study neuronal mechanisms of perception and learning. Most discrimination tasks for electrophysiological and imaging studies in rodents require the animals to be head-fixed. However, implementing neurophysiological recordings into more ethologically realistic settings with unrestrained animals has been challenging. Here, we introduce a whisker-dependent discrimination task for freely moving mice, integrating electrophysiology and calcium imaging with cellular resolution. In this go/no-go paradigm, male mice learned to discriminate aperture widths within days while foraging on a linear platform. The setups versatility enables exploration into diverse behavioral aspects, including tactile discrimination thresholds, valence-dependent behavior, and cognitive flexibility following repeated task rule reversals. Rule learning was highly stereotypical, fast and reproducible across individual mice. Electrophysiological recordings revealed distributed tactile processing across the thalamocortical system, with subsets of units encoding both movement- and stimulus-related features. Sensory encoding was strongly modulated by behavioral state, with neurons tuned to locomotion, whisking, whisker angle and phase, head angle, and spatial position. By enabling simultaneous extracellular recordings and calcium imaging within the same freely moving paradigm, this approach allows for precise synchronization of neural activity with multiple behavioral readouts. This paradigm provides a versatile tool to elucidate neural mechanisms of cognition and sensory processing in naturalistic conditions.

neuroscience↗