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Myeloperoxidase-derived reactive chlorinating species from human monocytes target plasmalogens in low density
Arun K Thukkani1, Carolyn J Albert, Kristin R Wildsmith
1Department of Biochemistry and Molecular Biology, St. Louis University Health Sciences Center, St. Louis, Missouri 63104, USA.
Abstract:
A role for myeloperoxidase (MPO) in atherosclerosis has received considerable attention recently. To identify potential chlorinated lipid products in human low density lipoprotein (LDL), studies were designed to demonstrate that MPO-derived reactive chlorinating species (RCS) target the plasmalogen pool of LDL isolated from peripheral human blood in vitro. The vinyl ether bond of LDL plasmalogens was targeted by MPO-derived RCS, resulting in the release of the 16- and 18-carbon-containing alpha-chloro fatty aldehydes, 2-chlorohexadecanal and 2-chlorooctadecanal, respectively, from the plasmalogen glycerol backbone. Targeting of the LDL plasmalogen vinyl ether bond was dependent on the presence of MPO-derived RCS. Electrospray ionization mass spectrometric analysis of MPO-treated LDL demonstrated that a novel population of unsaturated lysophosphatidylcholine molecular species was produced by a phospholipase A2-independent mechanism. Unsaturated lysophosphatidylcholine molecular species elicited cyclic AMP response element binding protein phosphorylation in RAW 264.7 cells. Additionally, MPO-mediated targeting of both monocyte and LDL plasmalogen pools was demonstrated in phorbol myristate acetate-stimulated human monocytes, resulting in the production of both 2-chlorohexadecanal and 2-chlorooctadecanal. In contrast, alpha-chloro fatty aldehydes were not produced in phorbol myristate acetate-stimulated mouse monocytes. Collectively, the present studies demonstrate a novel MPO-specific mechanism that mediates the production of a novel group of unsaturated lysophosphatidylcholine molecular species and chlorinated aldehydes from both LDL and monocyte plasmalogen pools that may have important effects during inflammatory reactions mediated by monocytes, most notably atherosclerosis.
Insights
Myeloperoxidase (MPO) generates reactive chlorinating species that modify low-density lipoprotein (LDL) plasmalogens, producing chlorinated aldehydes and unsaturated lysophosphatidylcholine. This MPO-driven mechanism may contribute to inflammatory processes like atherosclerosis.
Area of Science:
- Biochemistry
- Immunology
- Cardiovascular Research
Background:
- Myeloperoxidase (MPO) plays a recognized role in atherosclerosis.
- Reactive chlorinating species (RCS) generated by MPO are implicated in oxidative stress.
Purpose of the Study:
- To investigate the interaction of MPO-derived RCS with plasmalogens in human low-density lipoprotein (LDL).
- To identify novel chlorinated lipid products formed by MPO activity in LDL and monocytes.
Main Methods:
- In vitro incubation of human LDL with MPO-derived RCS.
- Analysis of lipid products using electrospray ionization mass spectrometry.
- Stimulation of human and mouse monocytes with phorbol myristate acetate.
Main Results:
- MPO-derived RCS specifically targeted the vinyl ether bond of LDL plasmalogens, releasing 2-chlorohexadecanal and 2-chlorooctadecanal.
- A novel population of unsaturated lysophosphatidylcholine species was generated independently of phospholipase A2.
- MPO-mediated plasmalogen modification and chlorinated aldehyde production occurred in human monocytes but not mouse monocytes.
Conclusions:
- A novel MPO-specific pathway produces unsaturated lysophosphatidylcholine and chlorinated aldehydes from LDL and monocyte plasmalogens.
- These products may play a significant role in monocyte-mediated inflammatory conditions, particularly atherosclerosis.
- The findings highlight a new mechanism linking MPO activity to atherogenesis.