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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.
Abstract:
The human RNA helicase DDX6 is an essential component of membrane-less organelles called processing bodies (PBs). PBs are involved in mRNA metabolic processes including translational repression via coordinated storage of mRNAs. Previous studies in human cell lines have implicated altered DDX6 in molecular and cellular dysfunction, but clinical consequences and pathogenesis in humans have yet to be described. Here, we report the identification of five rare de novo missense variants in DDX6 in probands presenting with intellectual disability, developmental delay, and similar dysmorphic features including telecanthus, epicanthus, arched eyebrows, and low-set ears. All five missense variants (p.His372Arg, p.Arg373Gln, p.Cys390Arg, p.Thr391Ile, and p.Thr391Pro) are located in two conserved motifs of the RecA-2 domain of DDX6 involved in RNA binding, helicase activity, and protein-partner binding. We use functional studies to demonstrate that the first variants identified (p.Arg373Gln and p.Cys390Arg) cause significant defects in PB assembly in primary fibroblast and model human cell lines. These variants' interactions with several protein partners were also disrupted in immunoprecipitation assays. Further investigation via complementation assays included the additional variants p.Thr391Ile and p.Thr391Pro, both of which, similarly to p.Arg373Gln and p.Cys390Arg, demonstrated significant defects in P-body assembly. Complementing these molecular findings, modeling of the variants on solved protein structures showed distinct spatial clustering near known protein binding regions. Collectively, our clinical and molecular data describe a neurodevelopmental syndrome associated with pathogenic missense variants in DDX6. Additionally, we suggest DDX6 join the DExD/H-box genes DDX3X and DHX30 in an emerging class of neurodevelopmental disorders involving RNA helicases.
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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