The in vitro effect of myeloperoxidase oxidized LDL on THP-1 derived macrophages

Author:

Jeradeh Elias1,Frangie Christian2,Bazzi Samer3,Daher Jalil1ORCID

Affiliation:

1. Department of Biology, Faculty of Arts and Sciences, University of Balamand, El-Koura, Lebanon

2. Department of Molecular Biology, Institute of Biology and Molecular Medicine, IBMM, Université Libre de Bruxelles, Gosselies Campus, Gosselies, Belgium

3. Department of Biomedical Sciences, Faculty of Medicine and Medical Science, University of Balamand, El-Koura, Lebanon

Abstract

Cardiovascular diseases (CVDs) linked to atherosclerosis remains the leading cause of death worldwide. Atherosclerosis is primarily caused by the accumulation of oxidized forms of low density lipoprotein (LDL) in macrophages (MΦs) in the subendothelial layer of arteries leading to foam cell and fatty streak formation. Many studies suggest that LDL that is modified by myeloperoxidase (MPO) is a key player in the development of atherosclerosis. MΦs can adopt a variety of functional phenotypes that include mainly the proinflammatory M1 and the anti-inflammatory M2 MΦ phenotypes which are both implicated in the process of atherogenesis. In fact, MΦs that reside in atherosclerostic lesions were shown to express a variety of phenotypes ranging between the M1- and M2 MΦ types. Recently, we pointed out the involvement of MPO oxidized-LDL (Mox-LDL) in increasing inflammation in MΦs by reducing their secretion of IL-10. Since little is known about Mox-LDL-mediated pro-atherosclerostic responses in MΦs, our study aimed at analyzing the in vitro effects of Mox-LDL at this level through making use of the well-established model of human THP-1-derived Mφs. Our results demonstrate that Mox-LDL has no effect on apoptosis, reactive oxygen species (ROS) generation and cell death in our cell model; yet, interestingly, our results show that Mox-LDL is significantly engulfed at a higher rate in the different MΦ subtypes supporting its key role in foam cell formation during the progression of the disease as well as previous data that were generated using another primary MΦ cell model of atherosclerosis.

Funder

University of Balamand

Publisher

SAGE Publications

Reference38 articles.

1. Atherosclerosis

2. The Molecular Basis of Predicting Atherosclerotic Cardiovascular Disease Risk

3. Manjunath CN, Rawal JR, Irani PM, et al. Atherogenic dyslipidemia. 2013.

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