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A Familial Hypercholesterolemia Human Liver Chimeric Mouse Model Using Induced Pluripotent Stem Cell-derived Hepatocytes
Published on: September 15, 2018
Three patients with homozygous familial hypercholesterolemia: Genomic sequencing and kindred analysis
Karen H Y Wong1, Michal Levy-Sakin1, Walfred Ma1
1Cardiovascular Research Institute, University of California, San Francisco, CA, USA.
Insights
Genetic defects causing Homozygous Familial Hypercholesterolemia (HoFH) were identified using whole exome sequencing and linked-read whole genome sequencing. A novel LDLR exon 1 deletion was detected, highlighting the utility of WGS for identifying structural variants in HoFH.
Area of Science:
- Genetics
- Molecular Biology
- Medical Diagnostics
Background:
- Homozygous Familial Hypercholesterolemia (HoFH) is a severe inherited condition characterized by extremely high LDL cholesterol levels.
- It is typically caused by mutations in the LDL receptor (LDLR) gene, presenting diagnostic challenges due to genetic heterogeneity.
Observation:
- Whole exome sequencing (WES) and 10x Genomics (10xG) Linked-Reads whole genome sequencing (WGS) were employed to investigate genetic defects in pediatric HoFH cases.
- A PCR-based screening assay was developed to detect LDLR structural variants in a larger patient cohort.
Findings:
- Two compound heterozygous LDLR variants, including a novel 3kb exon 1 deletion, were identified in a Caucasian kindred.
- A homozygous frameshift LDLR variant (p.E113fs) was found in a Mexican kindred.
- The exon 1 deletion was traced to a Russian ancestor.
Implications:
- WES is cost-effective for identifying genetic causes of HoFH but may miss structural variants.
- Linked-Read WGS demonstrates broader utility for detecting structural variants in clinical settings, particularly for undiagnosed HoFH cases.
- Accurate genetic diagnosis is crucial for managing HoFH and understanding its genetic basis.
Background:
Homozygous Familial Hypercholesterolemia (HoFH) is an inherited recessive condition associated with extremely high levels of low-density lipoprotein (LDL) cholesterol in affected individuals. It is usually caused by homozygous or compound heterozygous functional mutations in the LDL receptor (LDLR). A number of mutations causing FH have been reported in literature and such genetic heterogeneity presents great challenges for disease diagnosis.
Objective:
We aim to determine the likely genetic defects responsible for three cases of pediatric HoFH in two kindreds.
Methods:
We applied whole exome sequencing (WES) on the two probands to determine the likely functional variants among candidate FH genes. We additionally applied 10x Genomics (10xG) Linked-Reads whole genome sequencing (WGS) on one of the kindreds to identify potentially deleterious structural variants (SVs) underlying HoFH. A PCR-based screening assay was also established to detect the LDLR structural variant in a cohort of 641 patients with elevated LDL.
Results:
In the Caucasian kindred, the FH homozygosity can be attributed to two compound heterozygous LDLR damaging variants, an exon 12 p.G592E missense mutation and a novel 3kb exon 1 deletion. By analyzing the 10xG phased data, we ascertained that this deletion allele was most likely to have originated from a Russian ancestor. In the Mexican kindred, the strikingly elevated LDL cholesterol level can be attributed to a homozygous frameshift LDLR variant p.E113fs.
Conclusions:
While the application of WES can provide a cost-effective way of identifying the genetic causes of FH, it often lacks sensitivity for detecting structural variants. Our finding of the LDLR exon 1 deletion highlights the broader utility of Linked-Read WGS in detecting SVs in the clinical setting, especially when HoFH patients remain undiagnosed after WES.
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