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Plasminogen promotes cholesterol efflux by the ABCA1 pathway
Nathalie Pamir, Patrick M. Hutchins, Graziella E. Ronsein, Hao Wei, Chongren Tang, Riku Das, Tomas Vaisar, Edward Plow, Volker Schuster, Marlys L. Koschinsky, Catherine A. Reardon, Richard Weinberg, David A. Dichek, Santica Marcovina, Godfrey S. Getz, Jay W. Heinecke
Nathalie Pamir, Patrick M. Hutchins, Graziella E. Ronsein, Hao Wei, Chongren Tang, Riku Das, Tomas Vaisar, Edward Plow, Volker Schuster, Marlys L. Koschinsky, Catherine A. Reardon, Richard Weinberg, David A. Dichek, Santica Marcovina, Godfrey S. Getz, Jay W. Heinecke
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Research Article Endocrinology Metabolism

Plasminogen promotes cholesterol efflux by the ABCA1 pathway

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Abstract

Using genetic and biochemical approaches, we investigated proteins that regulate macrophage cholesterol efflux capacity (CEC) and ABCA1-specific CEC (ABCA1 CEC), 2 functional assays that predict cardiovascular disease (CVD). Macrophage CEC and the concentration of HDL particles were markedly reduced in mice deficient in apolipoprotein A-I (APOA1) or apolipoprotein E (APOE) but not apolipoprotein A-IV (APOA4). ABCA1 CEC was markedly reduced in APOA1-deficient mice but was barely affected in mice deficient in APOE or APOA4. High-resolution size-exclusion chromatography of plasma produced 2 major peaks of ABCA1 CEC activity. The early-eluting peak, which coeluted with HDL, was markedly reduced in APOA1- or APOE-deficient mice. The late-eluting peak was modestly reduced in APOA1-deficient mice but little affected in APOE- or APOA4-deficient mice. Ion-exchange chromatography and shotgun proteomics suggested that plasminogen (PLG) accounted for a substantial fraction of the ABCA1 CEC activity in the peak not associated with HDL. Human PLG promoted cholesterol efflux by the ABCA1 pathway, and PLG-dependent efflux was inhibited by lipoprotein(a) [Lp(a)]. Our observations identify APOA1, APOE, and PLG as key determinants of CEC. Because PLG and Lp(a) associate with human CVD risk, interplay among the proteins might affect atherosclerosis by regulating cholesterol efflux from macrophages.

Authors

Nathalie Pamir, Patrick M. Hutchins, Graziella E. Ronsein, Hao Wei, Chongren Tang, Riku Das, Tomas Vaisar, Edward Plow, Volker Schuster, Marlys L. Koschinsky, Catherine A. Reardon, Richard Weinberg, David A. Dichek, Santica Marcovina, Godfrey S. Getz, Jay W. Heinecke

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Figure 4

Quantification of plasminogen’s (PLG’s) ability to promote radiolabeled cholesterol efflux from ABCA1-expressing BHK cells and cholesterol accumulation in medium of macrophages.

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Quantification of plasminogen’s (PLG’s) ability to promote radiolabeled ...
(A–C) Cholesterol efflux capacity was quantified using [3H]cholesterol-labeled BHK cells with or without induced expression of human ABCA1. Cells were incubated with the indicated concentrations of PLG or APOA1 in serum-free medium for 4 hours. Cholesterol efflux was calculated as the percentage of radiolabel in the medium of the cells at the end of the incubation divided by the total radioactivity of the medium and cells. ABCA1-specific cholesterol efflux was monitored as the difference in cholesterol efflux of cells with and without induction of ABCA1. (D) Macrophages were harvested from peritonea of wild-type mice 4 days after thioglycolate injection. (E) Macrophages were derived using M-CSF from bone marrow cells of wild-type (Abca1+/+) mice, mice heterozygous for ABCA1 expression (Abca1+/–), or mice deficient in ABCA1 (Abca1–/–). Macrophages were loaded with cholesterol by incubating them with 2% serum from LDL receptor–deficient mice that were fed a high-fat high-cholesterol diet for 16 weeks. (D and E) Cholesterol accumulation in the medium of macrophages was quantified by mass spectrometric analysis after a 4-hour incubation. CEC, cholesterol efflux capacity.

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