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Identification of New Genetic Determinants in Pediatric Patients with Familial Hypercholesterolemia Using a Custom
Lena Rutkowska1, Kinga Sałacińska1, Dominik Salachna1
1Department of Genetics, Polish Mother's Memorial Hospital-Research Institute, 93-338 Lodz, Poland.
Insights
Next-generation sequencing identified pathogenic variants in familial hypercholesterolemia (FH) pediatric patients from Poland. A novel LDLR gene mutation was discovered, expanding FH genetic knowledge.
Area of Science:
- Genetics
- Molecular Biology
- Pediatrics
Background:
- Familial hypercholesterolemia (FH) is an inherited lipid disorder characterized by high LDL cholesterol, tendon xanthomas, and premature cardiovascular disease (CVD).
- Known genetic causes include mutations in LDLR, APOB, and PCSK9 genes, but candidate genes may also contribute to FH pathogenesis.
- Identifying causative mutations is crucial for genetic counseling and management of FH patients.
Purpose of the Study:
- To identify disease-causing mutations in FH-related and candidate genes in pediatric patients from Poland using next-generation sequencing (NGS).
- To expand the spectrum of known variants associated with familial hypercholesterolemia loci.
Main Methods:
- A custom NGS panel was designed to cover 21 genes linked to primary dyslipidemia.
- Targeted NGS was performed on 57 pediatric patients diagnosed with FH using Simon Broome criteria.
- Sequencing data were analyzed to identify pathogenic and possibly pathogenic variants.
Main Results:
- Pathogenic and possibly pathogenic variants were found in 33 out of 57 children, affecting genes including LDLR, APOB, ABCG5, and LPL.
- A novel pathogenic 7bp frameshift deletion (c.373_379delCAGTTCG) in the LDLR gene was identified.
- A double heterozygous carrier of an LDLR frameshift insertion and an APOB missense variant was identified, with the LDLR variant confirmed as pathogenic through cosegregation.
Conclusions:
- The custom NGS panel is an effective tool for identifying genetic variants in the genetically heterogeneous disease, familial hypercholesterolemia.
- The study expands the spectrum of known FH-associated variants and provides valuable information for genetic counseling.
- The findings highlight the importance of comprehensive genetic analysis in pediatric FH cases to uncover novel mutations and understand disease mechanisms.
Abstract:
The most common form of inherited lipid disorders is familial hypercholesterolemia (FH). It is characterized primarily by high concentrations of the clinical triad of low-density lipoprotein cholesterol, tendon xanthomas and premature CVD. The well-known genetic background are mutations in LDLR, APOB and PCSK9 gene. Causative mutations can be found in 60−80% of definite FH patients and 20−30% of those with possible FH. Their occurrence could be attributed to the activity of minor candidate genes, whose causal mechanism has not been fully discovered. The aim of the conducted study was to identify disease-causing mutations in FH-related and candidate genes in pediatric patients from Poland using next generation sequencing (NGS). An NGS custom panel was designed to cover 21 causative and candidate genes linked to primary dyslipidemia. Recruitment was performed using Simon Broome diagnostic criteria. Targeted next generation sequencing was performed on a MiniSeq sequencer (Illumina, San Diego, CA, USA) using a 2 × 150 bp paired-end read module. Sequencing data analysis revealed pathogenic and possibly pathogenic variants in 33 out of 57 studied children. The affected genes were LDLR, APOB, ABCG5 and LPL. A novel pathogenic 7bp frameshift deletion c.373_379delCAGTTCG in the exon 4 of the LDLR gene was found. Our findings are the first to identify the c.373_379delCAGTTCG mutation in the LDLR gene. Furthermore, the double heterozygous carrier of frameshift insertion c.2416dupG in the LDLR gene and missense variant c.10708C>T in the APOB gene was identified. The c.2416dupG variant was defined as pathogenic, as confirmed by its cosegregation with hypercholesterolemia in the proband’s family. Although the APOB c.10708C>T variant was previously detected in hypercholesterolemic patients, our data seem to demonstrate no clinical impact. Two missense variants in the LPL gene associated with elevated triglyceride plasma level (c.106G>A and c.953A>G) were also identified. The custom NGS panel proved to be an effective research tool for identifying new causative aberrations in a genetically heterogeneous disease as familial hypercholesterolemia (FH). Our findings expand the spectrum of variants associated with the FH loci and will be of value in genetic counseling among patients with the disease.
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