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Updated: Jun 20, 2026

Cell-free Biochemical Fluorometric Enzymatic Assay for High-throughput Measurement of Lipid Peroxidation in High Density Lipoprotein
Published on: October 12, 2017
Modification of high density lipoprotein by myeloperoxidase generates a pro-inflammatory particle
Arundhati Undurti1, Ying Huang, Joseph A Lupica
1Department of Cell Biology, Cleveland Clinic, Cleveland, Ohio 44195, USA.
Abstract:
High density lipoprotein (HDL) is the major atheroprotective particle in plasma. Recent studies demonstrate that myeloperoxidase (MPO) binds to HDL in vivo, selectively targeting apolipoprotein A1 (apoA1) of HDL for oxidative modification and concurrent loss in cholesterol efflux and lecithin cholesterol acyl transferase activating activities, generating a "dysfunctional HDL" particle. We now show that (patho)physiologically relevant levels of MPO-catalyzed oxidation result in loss of non-cholesterol efflux activities of HDL including anti-apoptotic and anti-inflammatory functions. One mechanism responsible is shown to involve the loss of modified HDL binding to the HDL receptor, scavenger receptor B1, and concurrent acquisition of saturable and specific binding to a novel unknown receptor independent of scavenger receptors CD36 and SR-A1. HDL modification by MPO is further shown to confer pro-inflammatory gain of function activities as monitored by NF-kappaB activation and surface vascular cell adhesion molecule levels on aortic endothelial cells exposed to MPO-oxidized HDL. The loss of non-cholesterol efflux activities and the gain of pro-inflammatory functions requires modification of the entire particle and can be recapitulated by oxidation of reconstituted HDL particles comprised of apoA1 and nonoxidizable phosphatidylcholine species. Multiple site-directed mutagenesis studies of apoA1 suggest that the pro-inflammatory activity of MPO-modified HDL does not involve methionine, tyrosine, or tryptophan, oxidant-sensitive residues previously mapped as sites of apoA1 oxidation within human atheroma. Thus, MPO-catalyzed oxidation of HDL results not only in the loss of classic atheroprotective reverse cholesterol transport activities of the lipoprotein but also both the loss of non-cholesterol efflux related activities and the gain of pro-inflammatory functions.
Insights
Myeloperoxidase (MPO) oxidizes high-density lipoprotein (HDL), causing it to lose protective functions and gain pro-inflammatory properties. This MPO-modified HDL promotes inflammation and alters cellular interactions, contributing to atherosclerosis.
Area of Science:
- Cardiovascular Biology
- Lipid Metabolism
- Inflammation Research
Background:
- High-density lipoprotein (HDL) is crucial for preventing atherosclerosis.
- Myeloperoxidase (MPO) modification of HDL (apoA1) generates dysfunctional HDL.
- Dysfunctional HDL exhibits altered cholesterol efflux and enzymatic activities.
Purpose of the Study:
- To investigate the impact of MPO-catalyzed HDL oxidation on non-cholesterol efflux functions.
- To identify the mechanisms underlying HDL dysfunction induced by MPO.
- To determine if MPO-modified HDL gains pro-inflammatory properties.
Main Methods:
- Oxidation of HDL and reconstituted HDL particles using MPO.
- Assessment of cholesterol efflux and non-cholesterol efflux activities (anti-apoptotic, anti-inflammatory).
- Analysis of HDL binding to scavenger receptor B1 (SR-B1) and novel receptors.
- Evaluation of pro-inflammatory effects (NF-kappaB activation, VCAM-1 expression) on endothelial cells.
Main Results:
- MPO-oxidized HDL loses anti-apoptotic and anti-inflammatory functions.
- Oxidized HDL exhibits altered binding, losing SR-B1 affinity and gaining novel receptor binding.
- MPO-modified HDL gains pro-inflammatory functions, inducing NF-kappaB activation and VCAM-1 expression.
- Modification of the entire particle, including apoA1, is necessary for these functional changes.
Conclusions:
- MPO-catalyzed HDL oxidation not only impairs reverse cholesterol transport but also abrogates protective non-cholesterol efflux activities.
- MPO-modified HDL acquires pro-inflammatory gain-of-function properties, promoting endothelial dysfunction.
- These findings highlight MPO-mediated HDL modification as a key event in atherogenesis, shifting HDL from a protective to a pro-inflammatory role.
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