Abstract
Touch is essential for interacting with the world, and atypical tactile experience is a core feature of autism that profoundly affects daily life. However, we do not know the neural mechanisms of low-level tactile perception and their alterations in autism. Using a translational forepaw-based perceptual task, we recapitulate the multifaceted tactile features of autistic individuals in the Fmr1−/y mouse model of autism, showing reduced detection of low-level vibrotactile stimuli, interindividual variability, and unreliable responses. We reveal that impaired detection decoding in Fmr1−/y-hyposensitive mice stems from diminished single-neuron signal-to-noise ratio within layers 2/3 of the primary somatosensory cortex that contributes to weak population encoding of the tactile stimulus and its detection. This manifests as reduced stimulus-dependent neural recruitment, impaired response precision, and disrupted ensemble dynamics. Decreasing neuronal excitability strengthens sensory encoding and restores tactile perception. This work provides a translational framework for probing neuronal-perceptual changes in neurodevelopmental conditions, reveals inter-individual variability in preclinical models, and uncovers the neural basis of tactile hyposensitivity in autism.
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Semelidou, O., Gauvrit, T., Vandromme, C., Cornier, A., Saint-Jean, A., Feuvre, Y. L., … Frick, A. (2026). Diminished Signal-to-Noise Ratio Disrupts Somatosensory Population Encoding and Drives Tactile Hyposensitivity in the Fmr1−/y Autism Model. Advanced Science, 13(28). https://doi.org/10.1002/advs.202519479
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