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In Vivo Functional Study of Disease-associated Rare Human Variants Using Drosophila
Published on: August 20, 2019
Systematic analysis of variants escaping nonsense-mediated decay uncovers candidate Mendelian diseases
Rebecca I Torene1, Maria J Guillen Sacoto2, Francisca Millan2
1GeneDx, Gaithersburg, MD, USA; Geisinger, Danville, PA, USA.
Abstract:
Protein-truncating variants (PTVs) near the 3' end of genes may escape nonsense-mediated decay (NMD). PTVs in the NMD-escape region (PTVescs) can cause Mendelian disease but are difficult to interpret given their varying impact on protein function. Previously, PTVesc burden was assessed in an epilepsy cohort, but no large-scale analysis has systematically evaluated these variants in rare disease. We performed a retrospective analysis of 29,031 neurodevelopmental disorder (NDD) parent-offspring trios referred for clinical exome sequencing to identify PTVesc de novo mutations (DNMs). We identified 1,376 PTVesc DNMs and 133 genes that were significantly enriched (binomial p < 0.001). The PTVesc-enriched genes included those with PTVescs previously described to cause dominant Mendelian disease (e.g., SEMA6B, PPM1D, and DAGLA). We annotated ClinVar variants for PTVescs and identified 948 genes with at least one high-confidence pathogenic variant. Twenty-two known Mendelian PTVesc-enriched genes had no prior evidence of PTVesc-associated disease. We found 22 additional PTVesc-enriched genes that are not well established to be associated with Mendelian disease, several of which showed phenotypic similarity between individuals harboring PTVesc variants in the same gene. Four individuals with PTVesc mutations in RAB1A had similar phenotypes including NDD and spasticity. PTVesc mutations in IRF2BP1 were found in two individuals who each had severe immunodeficiency manifesting in NDD. Three individuals with PTVesc mutations in LDB1 all had NDD and multiple congenital anomalies. Using a large-scale, systematic analysis of DNMs, we extend the mutation spectrum for known Mendelian disease-associated genes and identify potentially novel disease-associated genes.
Insights
Protein-truncating variants escaping nonsense-mediated decay (NMD) can cause rare diseases. This study identified new disease-associated genes by analyzing these variants in neurodevelopmental disorder trios.
Area of Science:
- Genetics
- Genomics
- Human Genetics
Background:
- Protein-truncating variants (PTVs) near gene 3' ends may evade nonsense-mediated decay (NMD).
- These NMD-escaping PTVs (PTVescs) can cause Mendelian diseases, but their interpretation is challenging due to variable effects on protein function.
- Previous studies on PTVesc burden were limited, necessitating a large-scale evaluation in rare diseases.
Purpose of the Study:
- To systematically identify and analyze PTVesc de novo mutations (DNMs) in a large cohort of individuals with neurodevelopmental disorders (NDDs).
- To identify genes significantly enriched for PTVescs and evaluate their role in Mendelian diseases.
- To expand the spectrum of known disease-associated genes and discover novel genes linked to PTVescs.
Main Methods:
- Retrospective analysis of 29,031 NDD parent-offspring trios from clinical exome sequencing data.
- Identification and statistical enrichment analysis of PTVesc DNMs.
- Annotation of ClinVar variants for PTVescs and phenotypic correlation in affected individuals.
Main Results:
- Identified 1,376 PTVesc DNMs and 133 significantly enriched genes (binomial p < 0.001).
- Confirmed known disease genes (e.g., SEMA6B, PPM1D, DAGLA) and identified 22 known Mendelian genes with no prior PTVesc evidence.
- Discovered 22 novel PTVesc-enriched genes, with phenotypic similarities observed in individuals with variants in RAB1A, IRF2BP1, and LDB1.
Conclusions:
- This large-scale analysis extends the mutation spectrum of known Mendelian disease genes.
- Identified novel candidate genes associated with PTVescs, providing new insights into rare genetic disorders.
- Highlights the importance of considering PTVescs in the genetic diagnosis of NDDs and other rare diseases.
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