bioRxiv · 10.1101/2025.11.10.687666
Brain-wide single-neuron bases of working memory for sounds in humans
Abstract
In order to understand the constantly changing acoustic world our brains must maintain elements of auditory scenes in memory. The neural mechanisms for this fundamental process remain unclear. Here, we report human intracranial recordings of 1269 single neurons while participants performed a non-verbal auditory working memory task that required adjustment of a tone frequency to match a target. We found neurons within hippocampus, insula and cingulate cortex, for which firing rates were modulated at different phases of the task, particularly during maintenance and adjustment. For the majority of the neurons modulated during maintenance there was a striking suppression of activity rather than increased activity. Across the entire neuronal population, state-space analysis demonstrated attractor-like states corresponding to different task phases. Behaviorally, more neurons were modulated at the beginning of the maintenance phase in trials when participants performed better. State-space analysis was consistent with greater attractor-like activity during the adjustment phase supporting better performance. These data support the existence of a widely distributed neural code for auditory working memory that determines related behavior based on attractor-like states.
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Berger, J. I., Billig, A. J., Gander, P. E., Kovach, C. K., Rhone, A. E., Calmus, R. M., Garcia, C. M., Kumar, S., Kawasaki, H., Howard, M. A., Griffiths, T. D.. 2025-11-11. Brain-wide single-neuron bases of working memory for sounds in humans. https://doi.org/10.1101/2025.11.10.687666
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