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May 26, 2026Behavioural Brain Research0 citationsOpen Access

SHANK2A Overexpression in Forebrain Neurons Induces Early-Life Communication Deficits in Mice

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CCChristian CasteelMercer UniversityAPArya Pravinkumar PrajapatiMercer UniversityCPClaudia PitzerHeidelberg University

Key Points

  • This research aims to explore the effects of SHANK2A overexpression in forebrain neurons on early communication in mice.
  • Examined ultrasonic vocalizations in forebrain-specific SHANK2A-overexpressing mice using a pup isolation paradigm at P8 and P12.
  • Assessed vocal output, call production, and temporal organization of vocalizations.
  • Analyzed call structure and syntax for developmental changes.
  • At P8, SHANK2A-overexpressing pups showed increased vocal output with elevated call production.
  • By P12, the quantitative differences in vocal output were no longer evident, but subtle alterations in call structure persisted.
  • SHANK2A overexpression led to lasting changes in vocal syntax, indicating disrupted neural circuit maturation relevant to autism.

Abstract

SHANK2 is a postsynaptic scaffolding protein critical for excitatory synapse organization, and alterations in SHANK2 dosage are strongly associated with autism spectrum disorder (ASD). While SHANK2 loss-of-function rodent models have been extensively studied, the impact of increased SHANK2 expression on early-life communication remains unclear. Here, we examined ultrasonic vocalizations (USVs) in forebrain-specific SHANK2A-overexpressing (SH-WT) mice using the pup isolation paradigm at P8 and P12, a sensitive developmental window for assessing early social communication. SH-WT pups exhibited a transient increase in vocal output at P8, characterized by elevated call production and altered temporal organization, while fundamental acoustic features remained largely unchanged. By P12, these quantitative differences were no longer evident, indicating developmental normalization. However, SH-WT pups showed subtle alterations in call structure and composition, along with persistent changes in vocal syntax, reflected by more centralized and less diverse transition networks. Together, these findings indicate that SHANK2A overexpression transiently enhances early vocal output while inducing lasting alterations in the organization and flexibility of vocal behavior, suggesting disrupted maturation of communication-related neural circuits relevant to ASD.

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Cite This Study

Casteel et al. (2026) studied this question.

synapsesocial.com/papers/6a153a88b5d9c58d83e8d22ehttps://doi.org/10.1016/j.bbr.2026.116295
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