Rare De Novo Missense Variants in RNA Helicase DDX6 Cause Intellectual Disability and Dysmorphic Features and Lead to

Chris Balak1, Marianne Benard2, Elise Schaefer3

  • 1Translational Genomics Research Institute, Neurogenomics Division, Phoenix, AZ 85004, USA; Translational Genomics Research Institute's Center for Rare Childhood Disorders, Phoenix, AZ 85012, USA.

Insights

Rare variants in the DDX6 gene cause a new neurodevelopmental syndrome. These DDX6 gene mutations disrupt RNA metabolism and processing body assembly, leading to intellectual disability and developmental delays in affected individuals.

Area of Science:

  • Genetics
  • Molecular Biology
  • Neurodevelopmental Disorders

Background:

  • The human RNA helicase DDX6 is crucial for processing bodies (PBs), organelles involved in mRNA metabolism and translational repression.
  • While DDX6 dysfunction is linked to cellular issues, its clinical impact and human pathogenesis remain largely undescribed.

Purpose of the Study:

  • To investigate the clinical consequences and molecular mechanisms of DDX6 variants in humans.
  • To identify genetic variants in DDX6 associated with neurodevelopmental disorders.

Main Methods:

  • Clinical evaluation of probands with intellectual disability and developmental delay.
  • Identification and characterization of de novo missense variants in the DDX6 gene.
  • Functional studies including P-body assembly assays, immunoprecipitation, and protein structure modeling.

Main Results:

  • Five rare de novo missense variants in DDX6 were identified in individuals with intellectual disability, developmental delay, and specific dysmorphic features.
  • These variants, located in conserved RNA-binding and helicase activity domains, significantly impaired PB assembly and disrupted protein-partner interactions.
  • Complementation assays confirmed the detrimental effects of additional variants on PB assembly.

Conclusions:

  • Pathogenic missense variants in DDX6 cause a distinct neurodevelopmental syndrome characterized by intellectual disability and developmental delay.
  • DDX6-associated disorders represent an emerging class of neurodevelopmental disorders linked to RNA helicases, alongside DDX3X and DHX30.

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