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Published on: April 4, 2018
Characterization of Two Variants at Met 1 of the Human LDLR Gene Encoding the Same Amino Acid but Causing Different
Rafael Graça1,2, Rafael Fernandes2,3, Ana Catarina Alves1,2
1Departamento de Promoção da Saúde e Prevenção de Doenças Não Transmissíveis, Instituto Nacional de Saúde Doutor Ricardo Jorge, 1600-609 Lisbon, Portugal.
Insights
Familial hypercholesterolemia (FH) variants at the LDLR gene
Area of Science:
- Genetics
- Molecular Biology
- Cardiovascular Disease
Background:
- Familial hypercholesterolemia (FH) is a prevalent genetic lipid disorder.
- It causes elevated LDL cholesterol, leading to premature atherosclerosis and heart disease.
- FH exhibits genetic heterogeneity and variable phenotypes.
Purpose of the Study:
- To characterize two missense substitutions at Methionine 1 of the human LDLR gene (c.1A>T/p.(Met1Leu) and c.1A>C/p.(Met1Leu)).
- To determine the impact of these variants on LDLR expression, activity, and synthesis.
- To improve FH diagnosis and patient management through variant classification.
Main Methods:
- Western blot analysis
- Flow cytometry
- Luciferase assays
Main Results:
- Both c.1A>T and c.1A>C variants initiate translation, but c.1A>T shows very low expression.
- Despite coding for the same amino acid (p.(Met1Leu)), variants exhibit differential impairment of LDLR function.
- Functional data support distinct translation initiation efficiencies at these non-canonical codons.
Conclusions:
- Functional characterization refines the ACMG classification for these LDLR variants.
- Improved variant classification enables personalized lipid-lowering treatment strategies.
- This approach can enhance dyslipidemia management and patient prognosis in FH.
Abstract:
Familial hypercholesterolemia (FH) is the most common genetic disorder of lipid metabolism, characterized by increased levels of total and LDL plasma cholesterol, which leads to premature atherosclerosis and coronary heart disease. FH phenotype has considerable genetic heterogeneity and phenotypic variability, depending on LDL receptor activity and lifestyle. To improve diagnosis and patient management, here, we characterized two single nucleotide missense substitutions at Methionine 1 of the human LDLR gene (c.1A>T/p.(Met1Leu) and c.1A>C/p.(Met1Leu)). We used a combination of Western blot, flow cytometry, and luciferase assays to determine the effects of both variants on the expression, activity, and synthesis of LDLR. Our data show that both variants can mediate translation initiation, although the expression of variant c.1A>T is very low. Both variants are in the translation initiation codon and codify for the same amino acid p.(Met1Leu), yet they lead to different levels of impairment on LDLR expression and activity, corroborating different efficiencies of the translation initiation at these non-canonical initiation codons. The functional data of these variants allowed for an improved American College of Medical Genetics (ACMG) classification for both variants, which can allow a more personalized choice of the lipid-lowering treatment and dyslipidemia management, ultimately improving patients' prognosis.
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