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April 27, 2026npj Genomic Medicine0 citationsOpen Access

Genetic variants in Rps4x cause intellectual disability with dysmorphic features, microcephaly, and autism

CMCourtney Matheny-RabunLHLynda HollowayKCKen Corning

Key Points

  • To identify genetic causes of a new condition related to X-linked intellectual disability (XLID).
  • Genetic testing of two male siblings with dysmorphic features and autism.
  • Molecular studies in patient fibroblasts and zebrafish to assess the pathogenicity of RPS4X variants.
  • Identification of additional individuals through GeneMatcher and the 100,000 Genomes project.
  • RPS4X variant identified in two male siblings with microcephaly and autism.
  • Pathogenic functional findings in fibroblasts and zebrafish models observed.
  • Four additional individuals with intellectual disability found to have RPS4X variants.

Abstract

X-linked intellectual disability (XLID) comprises a group of heterogeneous disorders associated with impaired cognitive function and developmental delays. It has been estimated that 10% of the genes on the X-chromosome are associated with at least one form of intellectual disability. To date, genetic variants in 172 genes have been associated with XLID. Clinically, these disorders are highly variable, with some exhibiting multi-system involvement and others limited only to intellectual impairment. Here we describe a new XLID condition caused by defects in RPS4X, which encodes a component of the small (40S) subunit of the ribosome. Genetic testing of two male siblings with dysmorphic facial features, microcephaly, global developmental delay, and autism revealed a maternally inherited missense variant in RPS4X. Studies in patient fibroblasts and zebrafish indicate this RPS4X variant is pathogenic, with functional findings consistent with the clinical presentation. Four additional individuals with intellectual disability were identified through the GeneMatcher and the 100,000 Genomes project that also bear RPS4X variants. Together, these data support RPS4X as a new XLID-associated gene, expanding the involvement of ribosomal components in genetic disease.

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Cite This Study

Matheny-Rabun et al. (2026) studied this question.

synapsesocial.com/papers/69eefcaefede9185760d3a26https://doi.org/10.1038/s41525-026-00573-0
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