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Updated: Jul 26, 2025

Testing Sensory and Multisensory Function in Children with Autism Spectrum Disorder
Published on: April 22, 2015
Impaired cerebellar plasticity hypersensitizes sensory reflexes in SCN2A-associated ASD
Chenyu Wang1, Kimberly D Derderian2, Elizabeth Hamada2
1Neuroscience Graduate Program, University of California, San Francisco, San Francisco, CA, USA.
Insights
Autism spectrum disorder (ASD) often involves sensory hypersensitivity. This study found altered cerebellar function and synaptic plasticity in mice lacking the SCN2A gene, impacting a key reflex and offering therapeutic targets.
Area of Science:
- Neuroscience
- Genetics
- Developmental Biology
Background:
- Children with autism spectrum disorder (ASD) frequently exhibit sensory hypersensitivity, leading to distress.
- This hypersensitivity is a significant factor contributing to the challenges associated with ASD.
Conclusions:
- Deficits in cerebellar synaptic plasticity due to SCN2A dysfunction contribute to VOR hypersensitivity in ASD models.
- Targeting SCN2A expression offers a potential therapeutic strategy for sensory processing issues in ASD.
- Simple reflexes can serve as quantitative measures for evaluating therapeutic interventions in ASD.
Abstract:
Children diagnosed with autism spectrum disorder (ASD) commonly present with sensory hypersensitivity, or abnormally strong reactions to sensory stimuli. Such hypersensitivity can be overwhelming, causing high levels of distress that contribute markedly to the negative aspects of the disorder. Here, we identify the mechanisms that underlie hypersensitivity in a sensorimotor reflex found to be altered in humans and in mice with loss-of-function in the ASD risk-factor gene SCN2A. The cerebellum-dependent vestibulo-ocular reflex (VOR), which helps maintain one's gaze during movement, was hypersensitized due to deficits in cerebellar synaptic plasticity. Heterozygous loss of SCN2A-encoded NaV1.2 sodium channels in granule cells impaired high-frequency transmission to Purkinje cells and long-term potentiation, a form of synaptic plasticity important for modulating VOR gain. VOR plasticity could be rescued in adolescent mice via a CRISPR-activator approach that increases Scn2a expression, highlighting how evaluation of simple reflexes can be used as quantitative readout of therapeutic interventions.
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