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Determining the Likelihood of Variant Pathogenicity Using Amino Acid-level Signal-to-Noise Analysis of Genetic Variation
Published on: January 16, 2019
The multiple de novo copy number variant (MdnCNV) phenomenon presents with peri-zygotic DNA mutational signatures and
Haowei Du1, Angad Jolly1,2, Christopher M Grochowski1
1Department of Molecular and Human Genetics, Baylor College of Medicine, One Baylor Plaza, Houston, TX, 77030, USA.
Background:
The multiple de novo copy number variant (MdnCNV) phenotype is described by having four or more constitutional de novo CNVs (dnCNVs) arising independently throughout the human genome within one generation. It is a rare peri-zygotic mutational event, previously reported to be seen once in every 12,000 individuals referred for genome-wide chromosomal microarray analysis due to congenital abnormalities. These rare families provide a unique opportunity to understand the genetic factors of peri-zygotic genome instability and the impact of dnCNV on human diseases.
Methods:
Chromosomal microarray analysis (CMA), array-based comparative genomic hybridization, short- and long-read genome sequencing (GS) were performed on the newly identified MdnCNV family to identify de novo mutations including dnCNVs, de novo single-nucleotide variants (dnSNVs), and indels. Short-read GS was performed on four previously published MdnCNV families for dnSNV analysis. Trio-based rare variant analysis was performed on the newly identified individual and four previously published MdnCNV families to identify potential genetic etiologies contributing to the peri-zygotic genomic instability. Lin semantic similarity scores informed quantitative human phenotype ontology analysis on three MdnCNV families to identify gene(s) driving or contributing to the clinical phenotype.
Results:
In the newly identified MdnCNV case, we revealed eight de novo tandem duplications, each ~ 1 Mb, with microhomology at 6/8 breakpoint junctions. Enrichment of de novo single-nucleotide variants (SNV; 6/79) and de novo indels (1/12) was found within 4 Mb of the dnCNV genomic regions. An elevated post-zygotic SNV mutation rate was observed in MdnCNV families. Maternal rare variant analyses identified three genes in distinct families that may contribute to the MdnCNV phenomenon. Phenotype analysis suggests that gene(s) within dnCNV regions contribute to the observed proband phenotype in 3/3 cases. CNVs in two cases, a contiguous gene duplication encompassing PMP22 and RAI1 and another duplication affecting NSD1 and SMARCC2, contribute to the clinically observed phenotypic manifestations.
Conclusions:
Characteristic features of dnCNVs reported here are consistent with a microhomology-mediated break-induced replication (MMBIR)-driven mechanism during the peri-zygotic period. Maternal genetic variants in DNA repair genes potentially contribute to peri-zygotic genomic instability. Variable phenotypic features were observed across a cohort of three MdnCNV probands, and computational quantitative phenotyping revealed that two out of three had evidence for the contribution of more than one genetic locus to the proband's phenotype supporting the hypothesis of de novo multilocus pathogenic variation (MPV) in those families.
Insights
Multiple de novo copy number variants (MdnCNVs) result from peri-zygotic instability, potentially linked to maternal DNA repair gene variants. These events can cause complex genetic disorders and impact patient phenotypes.
Area of Science:
- Genetics
- Genomics
- Human Molecular Genetics
Background:
- The multiple de novo copy number variant (MdnCNV) phenotype involves four or more constitutional de novo CNVs (dnCNVs) arising independently within one generation.
- This rare peri-zygotic mutational event offers insights into genome instability and its impact on human diseases.
Purpose of the Study:
- To identify de novo mutations and understand the genetic factors contributing to peri-zygotic genomic instability in MdnCNV families.
- To analyze the impact of dnCNVs and de novo variants on the clinical phenotype.
Main Methods:
- Utilized chromosomal microarray analysis (CMA), array-based comparative genomic hybridization, and short- and long-read genome sequencing (GS).
- Performed trio-based rare variant analysis and quantitative human phenotype ontology analysis on MdnCNV families.
- Investigated de novo single-nucleotide variants (dnSNVs) and indels in affected individuals and their parents.
Main Results:
- Identified eight de novo tandem duplications (~1 Mb each) with microhomology at breakpoint junctions in a new MdnCNV case.
- Observed enrichment of de novo SNVs and indels near dnCNVs, and an elevated post-zygotic SNV mutation rate in MdnCNV families.
- Found potential maternal genetic contributions to MdnCNV and identified specific gene duplications (e.g., PMP22/RAI1, NSD1/SMARCC2) linked to observed phenotypes.
Conclusions:
- The MdnCNV phenotype is likely driven by a microhomology-mediated break-induced replication (MMBIR) mechanism during the peri-zygotic period.
- Maternal genetic variants in DNA repair genes may predispose individuals to peri-zygotic genomic instability.
- Phenotype analysis supports the hypothesis of de novo multilocus pathogenic variation (MPV) contributing to MdnCNV phenotypes in some cases.
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