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Updated: Jan 16, 2026

In Vivo Functional Study of Disease-associated Rare Human Variants Using Drosophila
Published on: August 20, 2019
A cardiovascular, craniofacial, and neurodevelopmental disorder caused by loss-of-function variants in the eIF3
Esra Erkut1, Cherith Somerville2, Marci L B Schwartz3
1Program in Developmental, Stem Cell & Cancer Biology, The Hospital for Sick Children, Toronto, ON, Canada; Department of Molecular Genetics, University of Toronto, Toronto, ON, Canada.
Insights
Genetic variants in EIF3A and EIF3B cause a new neurodevelopmental syndrome. This condition is characterized by heart defects, facial differences, and developmental delays, impacting translation initiation crucial for development.
Area of Science:
- Genetics
- Developmental Biology
- Molecular Biology
Background:
- Syndromic cardiac malformations have complex genetic causes, with many cases remaining unexplained.
- Genome sequencing is crucial for identifying novel disease-associated genes in congenital anomalies.
Purpose of the Study:
- To investigate the role of EIF3A and EIF3B genes in syndromic congenital heart disease.
- To identify novel genetic etiologies for neurodevelopmental syndromes with cardiac and craniofacial defects.
Main Methods:
- International patient data analysis to identify individuals with de novo or loss-of-function variants in EIF3A and EIF3B.
- Generation of zebrafish models (eif3s10 and eif3ba) to study gene function and developmental impact.
- Clinical phenotyping of affected individuals, including cardiac, craniofacial, and developmental assessments.
Main Results:
- Eighteen individuals identified with pathogenic variants in EIF3A (n=4) or EIF3B (n=14).
- Common phenotypes include cardiac defects, craniofacial dysmorphisms, developmental delays, and behavioral issues.
- Zebrafish models exhibited cardiovascular and craniofacial developmental abnormalities, including embryonic lethality.
Conclusions:
- Pathogenic variants in EIF3A and EIF3B are associated with a distinct autosomal-dominant neurodevelopmental syndrome.
- The syndrome is characterized by cardiovascular and craniofacial manifestations, linked to the role of eIF3 complex in translation.
- EIF3B variants or microdeletions at 7p22.3 contribute to cardiac anomalies and neurodevelopmental deficits.
Abstract:
Syndromic cardiac malformations can result in morbidity, yet their genetic etiology is only understood for a subset of individuals. Genome sequencing efforts in congenital anomaly cohorts may identify disease-associated variants in previously unrecognized genes. Through international matchmaking efforts, we identified eighteen individuals in total with de novo or loss-of-function variants in EIF3A (n = 4) or EIF3B (n = 14). The clinical phenotype varied but predominantly included cardiac defects, craniofacial dysmorphisms, mild developmental delays, and behavioral abnormalities. These genes encode core subunits of the eukaryotic initiation factor 3 (eIF3) complex, which plays a critical role in binding mRNA transcripts to the 40S ribosomal subunit during translation initiation. Both genes are highly constrained against loss of function, and animal models have demonstrated that disruptions in the eIF3 complex result in a range of developmental defects, including cardiovascular malformations. Additionally, EIF3B is located within the minimally overlapping region implicated in cardiac anomalies associated with 7p22.3 microdeletions. We sought to further study the role of these genes in syndromic congenital heart disease. To explore their functional impact, we generated zebrafish models with mutations in the orthologous eif3s10 and eif3ba genes, which resulted in developmental abnormalities, including thin heart tubes, lack of craniofacial cartilage, and embryonic lethality. We propose that pathogenic variants in EIF3A, as well as pathogenic variants or microdeletions involving EIF3B, cause a distinct autosomal-dominant neurodevelopmental syndrome characterized by cardiovascular and craniofacial manifestations.
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