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Published on: October 12, 2017
Relationships between HDL subpopulation proteome and HDL function in overweight/obese people with and without
Tomas Vaisar1, Ilona Babenko1, Katalin V Horvath2
1UW Medicine Diabetes Institute, Department of Medicine, University of Washington, Seattle, WA, USA.
Insights
High-density lipoprotein (HDL) particle protein composition differs between coronary heart disease (CHD) patients and controls. Specific proteins like APOA2 and APOE correlate with HDL functionality, offering insights into HDL
Area of Science:
- Cardiovascular Science
- Proteomics
- Lipid Metabolism
Background:
- High-density lipoprotein (HDL) subpopulations and their structure-function relationships remain poorly understood.
- Investigating HDL proteome and functionality in coronary heart disease (CHD) is crucial for understanding disease mechanisms.
Purpose of the Study:
- To examine the interrelationships between HDL particle proteome and HDL functionality.
- To compare HDL subpopulations between subjects with and without CHD.
Main Methods:
- Isolated 5 HDL subpopulations from CHD patients and controls based on size, charge, and apolipoprotein A1 (APOA1) content.
- Quantified HDL-associated proteins using liquid chromatography tandem mass spectrometry (LC-MS/MS).
- Assessed HDL particle functionality.
Main Results:
- Quantified 110 proteins across 5 HDL subpopulations; protein concentrations varied significantly.
- Identified distinct protein compositions in largest (α-1) and smallest (preβ-1) HDL particles.
- Observed altered protein composition in HDL subpopulations from CHD patients, particularly in preβ-1 and α-1 particles.
- Found APOA2 concentration positively correlated with preβ-1 HDL functionality and APOE inversely correlated with large HDL functionality.
Conclusions:
- HDL subpopulations exhibit altered protein compositions in CHD patients.
- Specific proteins, APOA2 and APOE, are linked to the functionality of small and large HDL particles, respectively.
- Distinct HDL subspecies and their associated proteins offer novel insights into HDL's role in CHD.
Background And Aims:
The structure-function relationships of high-density lipoprotein (HDL) subpopulations are not well understood. Our aim was to examine the interrelationships between HDL particle proteome and HDL functionality in subjects with and without coronary heart disease (CHD).
Methods:
We isolated 5 different HDL subpopulations based on charge, size, and apolipoprotein A1 (APOA1) content from the plasma of 33 overweight/obese CHD patients and 33 age-and body mass index (BMI)-matched CHD-free subjects. We measured the relative molar concentration of HDL-associated proteins by liquid chromatography tandem mass spectrometry (LC-MS/MS) and assessed particle functionality.
Results:
We quantified 110 proteins associated with the 5 APOA1-containing HDL subpopulations. The relative molar concentration of these proteins spanned five orders of magnitude. Only 10 proteins were present in >1% while 73 were present in <0.1% concentration. Only 6 of the 10 most abundant proteins were apolipoproteins. Interestingly, the largest (α-1) and the smallest (preβ-1) HDL particles contained the most diverse proteomes. The protein composition of each HDL subpopulation was altered in CHD cases as compared to controls with the most prominent differences in preβ-1 and α-1 particles. APOA2 concentration was positively correlated with preβ-1 particle functionality (ABCA1-CEC/mg APOA1 in preβ-1) (R2 = 0.42, p = 0.005), while APOE concentration was inversely correlated with large-HDL particle functionality (SRBI-CEC/mg APOA1 in α-1+α-2) (R2 = 0.18, p = 0.01).
Conclusions:
The protein composition of the different HDL subpopulations was altered differentially in CHD patients. The functionality of the small and large HDL particles correlated with the protein content of APOA2 and APOE, respectively. Our data indicate that distinct particle subspecies and specific particle associated proteins provide new information about the role of HDL in CHD.
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