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Apolipoproteins E and CIII interact to regulate HDL metabolism and coronary heart disease risk
Allyson M Morton1, Manja Koch1, Carlos O Mendivil1,2,3
1Department of Nutrition, Harvard T.H. Chan School of Public Health, Boston, Massachusetts, USA.
Insights
Apolipoprotein E (apoE) on HDL protects against heart disease, but only when apolipoprotein CIII (apoCIII) is absent. ApoCIII diminishes apoE's beneficial effects on HDL metabolism and coronary heart disease risk.
Area of Science:
- Lipid metabolism
- Cardiovascular disease research
- Apolipoprotein function
Background:
- High-density lipoprotein (HDL) subspecies contain apolipoprotein E (apoE) and/or apolipoprotein CIII (apoCIII).
- The roles of these apolipoproteins in HDL metabolism and their relation to coronary heart disease (CHD) risk are not fully understood.
Purpose of the Study:
- To investigate the distinct metabolic roles of HDL subspecies defined by apoE and apoCIII presence.
- To determine how these HDL subspecies influence the risk of coronary heart disease (CHD).
Main Methods:
- Utilized stable isotope labeling ([D3]L-leucine) to trace endogenous HDL proteins in 18 participants.
- Separated HDL into subspecies based on apoE and apoCIII content and size for metabolic rate determination.
- Measured apoE concentrations in HDL subspecies in a prospective study of 1,949 incident CHD cases.
Main Results:
- HDL with apoE but without apoCIII showed distinct secretion, expansion, and clearance patterns, suggesting a role in reverse cholesterol transport.
- ApoCIII present on HDL significantly attenuated the metabolic actions of HDL apoE.
- In epidemiological data, HDL apoE was linked to lower CHD risk exclusively in subspecies lacking apoCIII.
Conclusions:
- Apolipoprotein E and CIII on HDL interact to influence HDL metabolism and CHD risk.
- ApoE promotes reverse cholesterol transport and lowers CHD risk, but these benefits are abolished by coexisting apoCIII.
- Metabolic differences in HDL subspecies significantly reflect variations in CHD risk association.
Background:
Subspecies of HDL contain apolipoprotein E (apoE) and/or apoCIII. Both proteins have properties that could affect HDL metabolism. The relation between HDL metabolism and risk of coronary heart disease (CHD) is not well understood.
Methods:
Eighteen participants were given a bolus infusion of [D3]L-leucine to label endogenous proteins on HDL. HDL was separated into subspecies containing apoE and/or apoCIII and then into 4 sizes. Metabolic rates for apoA-I in HDL subspecies and sizes were determined by interactive modeling. The concentrations of apoE in HDL that contain or lack apoCIII were measured in a prospective study in Denmark including 1,949 incident CHD cases during 9 years.
Results:
HDL containing apoE but not apoCIII is disproportionately secreted into the circulation, actively expands while circulating, and is quickly cleared. These are key metabolic steps in reverse cholesterol transport, which may protect against atherosclerosis. ApoCIII on HDL strongly attenuates these metabolic actions of HDL apoE. In the epidemiological study, the relation between HDL apoE concentration and CHD significantly differed depending on whether apoCIII was present. HDL apoE was associated significantly with lower risk of CHD only in the HDL subspecies lacking apoCIII.
Conclusions:
ApoE and apoCIII on HDL interact to affect metabolism and CHD. ApoE promotes metabolic steps in reverse cholesterol transport and is associated with lower risk of CHD. ApoCIII, when coexisting with apoE on HDL, abolishes these benefits. Therefore, differences in metabolism of HDL subspecies pertaining to reverse cholesterol transport are reflected in differences in association with CHD.
Trial Registration:
Clinicaltrials.gov NCT01399632.
Funding:
This work was supported by NIH grant R01HL095964 to FMS and by a grant to the Harvard Clinical and Translational Science Center (8UL1TR0001750) from the National Center for Advancing Translational Science.
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