Related Experiment Video
Updated: Jan 1, 2026

Cell-free Biochemical Fluorometric Enzymatic Assay for High-throughput Measurement of Lipid Peroxidation in High Density Lipoprotein
Published on: October 12, 2017
Structural and functional basis for increased HDL-cholesterol levels due to the naturally occurring V19L mutation in
Christina Gkolfinopoulou1, Angeliki Bourtsala1, Angeliki Chroni1
1Institute of Biosciences and Applications, National Center for Scientific Research "Demokritos", Agia Paraskevi, Athens, Greece.
Insights
The apolipoprotein A-I V19L mutation increases HDL-cholesterol by enhancing lipid association and particle stability. This mutation may reduce coronary artery disease risk by improving cholesterol transport mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Cardiovascular Science
Background:
- Hereditary mutations in apolipoprotein A-I (apoA-I) are linked to altered HDL-cholesterol levels and coronary artery disease (CAD) risk.
- The apoA-I V19L mutation, found in Icelanders, is paradoxically associated with increased HDL-cholesterol and decreased CAD risk.
Purpose of the Study:
- To investigate the mechanistic link between the apoA-I V19L mutation and elevated HDL-cholesterol levels.
- To evaluate the impact of the V19L mutation on apoA-I's conformational integrity and functional properties in lipid-free and lipidated states.
Main Methods:
- Assessed thermodynamic stability of wild-type (WT) and V19L mutant apoA-I in lipid-free and reconstituted HDL (rHDL) forms.
- Evaluated apoA-I[V19L]'s capacity for phospholipid association and cholesterol efflux via ABCA1, ABCG1, and SR-BI pathways.
- Measured LCAT activation and SR-BI-mediated HDL-lipid uptake.
Main Results:
- ApoA-I[V19L] exhibits increased phospholipid association and thermodynamic destabilization in lipid-free form, but enhanced stability when associated with rHDL.
- The V19L mutation did not impair ABCA1-mediated cholesterol efflux or LCAT activation.
- While ABCG1-mediated efflux was normal, apoA-I[V19L]-containing rHDL showed a 45% increase in SR-BI-mediated cholesterol efflux capacity, with normal SR-BI-mediated HDL-lipid uptake.
Conclusions:
- The apoA-I V19L mutation does not hinder initial HDL biogenesis steps.
- Increased phospholipid association and enhanced stability of V19L-apoA-I on HDL particles, coupled with augmented SR-BI-mediated cholesterol acceptance, likely explain the elevated HDL-cholesterol levels in mutation carriers.
- These findings provide mechanistic insight into how a specific apoA-I mutation confers a cardioprotective lipid profile.
Abstract:
Several hereditary point mutations in human apolipoprotein A-I (apoA-I) have been associated with low HDL-cholesterol levels and/or increased coronary artery disease (CAD) risk. However, one apoA-I mutation, the V19L, recently identified in Icelanders, has been associated with increased HDL-cholesterol levels and decreased CAD risk. In an effort to gain mechanistic insight linking the presence of this mutation in apoA-I with the increase of HDL-cholesterol levels we evaluated the effect of V19L mutation on the conformational integrity and functional properties of apoA-I in lipid-free and lipidated form. ApoA-I[V19L] was found to be thermodynamically destabilized in lipid-free form and displays an increased capacity to associate with phospholipids compared to WT apoA-I. When associated to reconstituted HDL (rHDL), apoA-I[V19L] was more thermodynamically stabilized than WT apoA-I. ApoA-I[V19L] displayed normal capacity to promote ABCA1-mediated cholesterol efflux and to activate the enzyme LCAT, in lipid-free and rHDL-associated forms, respectively. Additionally, rHDL-associated apoA-I[V19L] showed normal capacity to promote ABCG1-mediated cholesterol efflux, but 45% increased capacity to promote SR-BI-mediated cholesterol efflux, while the SR-BI-mediated HDL-lipid uptake was normal. Overall, our findings show that the apoA-I V19L mutation does not affect the first steps of HDL biogenesis pathway. However, the increased capacity of apoA-I[V19L] to associate with phospholipids, in combination with the enhanced thermodynamic stability of lipoprotein-associated apoA-I[V19L] and increased capacity of apoA-I[V19L]-containing lipoprotein particles to accept additional cholesterol by SR-BI could account for the increased HDL-cholesterol levels observed in human carriers of the mutation.
Related Concept Videos
Cholesterol: Significance and Regulation
Considering cholesterol and...
Lipid-derived Compounds in the Human Body
Fat-soluble Vitamins
Fat-soluble vitamins, including vitamins A, D, E, and K, are required in minimal quantities, but their deficiencies can lead to severely abnormal physiological conditions. For example, vitamin A deficiency can cause night blindness, dry skin,...
Lipid Absorption
These breakdown products bind with bile salts and lecithin to form micelles, which quickly pass between microvilli to come in close contact with the apical...
Lipid Digestion
Atherosclerosis I: Introduction
Receptor-mediated Endocytosis

