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Updated: Dec 11, 2025

Cholesterol Efflux Assay
Published on: March 6, 2012
Diabetes Impairs Cellular Cholesterol Efflux From ABCA1 to Small HDL Particles
Yi He1, Graziella E Ronsein2, Chongren Tang1
1Department of Medicine, University of Washington, Seattle (Y.H., C.T., G.P.J., V.K., K.E.B., J.W.H.).
Insights
High-density lipoprotein (HDL) cholesterol efflux capacity is impaired in type 2 diabetes, particularly in small HDL particles. Lower levels of SERPINA1 protein in small HDL likely contribute to this impairment and increase cardiovascular disease risk.
Area of Science:
- Cardiovascular Science
- Metabolic Disorders
- Lipid Metabolism
Background:
- High-density lipoprotein (HDL) is cardioprotective by accepting cholesterol from macrophages via ABCA1 and ABCG1 transporters.
- HDL's ABCA1-specific cholesterol efflux capacity (CEC) is a strong negative predictor of cardiovascular disease (CVD) risk.
- The impact of diabetes mellitus on HDL's cholesterol efflux capacity remains unclear.
Purpose of the Study:
- To investigate if HDL's cholesterol efflux capacity is impaired in individuals with type 2 diabetes mellitus.
- To determine the role of specific HDL subfractions and associated proteins in this potential impairment.
Main Methods:
- A case-control study comparing 19 subjects with type 2 diabetes mellitus and 20 controls.
- Isolation of small, medium, and large HDL particles using size exclusion chromatography.
- Assessment of ABCA1 and ABCG1 cholesterol efflux capacity (CEC) of HDL particles and quantification of SERPINA1 protein levels.
Main Results:
- Small HDL particles were responsible for nearly all ABCA1 CEC.
- ABCA1 CEC of small HDL was significantly lower in subjects with type 2 diabetes compared to controls.
- Lower concentrations of SERPINA1 were found in small HDL from diabetic subjects, and SERPINA1 enrichment enhanced ABCA1 CEC.
Conclusions:
- The ABCA1 CEC of small HDL is selectively impaired in type 2 diabetes, likely due to reduced SERPINA1 levels.
- SERPINA1's amphipathic α-helices are crucial for phospholipid binding and promoting ABCA1 activity.
- Impaired small HDL ABCA1 activity in diabetes, linked to SERPINA1 deficiency, may elevate CVD risk.
Rationale:
HDL (high-density lipoprotein) may be cardioprotective because it accepts cholesterol from macrophages via the cholesterol transport proteins ABCA1 (ATP-binding cassette transporter A1) and ABCG1 (ATP-binding cassette transporter G1). The ABCA1-specific cellular cholesterol efflux capacity (ABCA1 CEC) of HDL strongly and negatively associates with cardiovascular disease risk, but how diabetes mellitus impacts that step is unclear.
Objective:
To test the hypothesis that HDL's cholesterol efflux capacity is impaired in subjects with type 2 diabetes mellitus.
Methods And Results:
We performed a case-control study with 19 subjects with type 2 diabetes mellitus and 20 control subjects. Three sizes of HDL particles, small HDL, medium HDL, and large HDL, were isolated by high-resolution size exclusion chromatography from study subjects. Then we assessed the ABCA1 CEC of equimolar concentrations of particles. Small HDL accounted for almost all of ABCA1 CEC activity of HDL. ABCA1 CEC-but not ABCG1 CEC-of small HDL was lower in the subjects with type 2 diabetes mellitus than the control subjects. Isotope dilution tandem mass spectrometry demonstrated that the concentration of SERPINA1 (serpin family A member 1) in small HDL was also lower in subjects with diabetes mellitus. Enriching small HDL with SERPINA1 enhanced ABCA1 CEC. Structural analysis of SERPINA1 identified 3 amphipathic α-helices clustered in the N-terminal domain of the protein; biochemical analyses demonstrated that SERPINA1 binds phospholipid vesicles.
Conclusions:
The ABCA1 CEC of small HDL is selectively impaired in type 2 diabetes mellitus, likely because of lower levels of SERPINA1. SERPINA1 contains a cluster of amphipathic α-helices that enable apolipoproteins to bind phospholipid and promote ABCA1 activity. Thus, impaired ABCA1 activity of small HDL particles deficient in SERPINA1 could increase cardiovascular disease risk in subjects with diabetes mellitus.
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