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      LOX-1: Regulation, Signaling and Its Role in Atherosclerosis

      review-article
      1 , 2 , 2 , *
      Antioxidants
      MDPI
      LOX-1, ox-LDL, atherogenesis, atherosclerosis, oxidative stress

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          Abstract

          Atherosclerosis has long been known to be a chronic inflammatory disease. In addition, there is intense oxidative stress in atherosclerosis resulting from an imbalance between the excess reactive oxygen species (ROS) generation and inadequate anti-oxidant defense forces. The excess of the oxidative forces results in the conversion of low-density lipoproteins (LDL) to oxidized LDL (ox-LDL), which is highly atherogenic. The sub-endothelial deposition of ox-LDL, formation of foamy macrophages, vascular smooth muscle cell (VSMC) proliferation and migration, and deposition of collagen are central pathophysiologic steps in the formation of atherosclerotic plaque. Ox-LDL exerts its action through several different scavenger receptors, the most important of which is LOX-1 in atherogenesis. LOX-1 is a transmembrane glycoprotein that binds to and internalizes ox-LDL. This interaction results in variable downstream effects based on the cell type. In endothelial cells, there is an increased expression of cellular adhesion molecules, resulting in the increased attachment and migration of inflammatory cells to intima, followed by their differentiation into macrophages. There is also a worsening endothelial dysfunction due to the increased production of vasoconstrictors, increased ROS, and depletion of endothelial nitric oxide (NO). In the macrophages and VSMCs, ox-LDL causes further upregulation of the LOX-1 gene, modulation of calpains, macrophage migration, VSMC proliferation and foam cell formation. Soluble LOX-1 (sLOX-1), a fragment of the main LOX-1 molecule, is being investigated as a diagnostic marker because it has been shown to be present in increased quantities in patients with hypertension, diabetes, metabolic syndrome and coronary artery disease. LOX-1 gene deletion in mice and anti-LOX-1 therapy has been shown to decrease inflammation, oxidative stress and atherosclerosis. LOX-1 deletion also results in damage from ischemia, making LOX-1 a promising target of therapy for atherosclerosis and related disorders. In this article we focus on the different mechanisms for regulation, signaling and the various effects of LOX-1 in contributing to atherosclerosis.

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          Most cited references56

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          Scavenger receptors class A-I/II and CD36 are the principal receptors responsible for the uptake of modified low density lipoprotein leading to lipid loading in macrophages.

          Modification of low density lipoprotein (LDL) can result in the avid uptake of these lipoproteins via a family of macrophage transmembrane proteins referred to as scavenger receptors (SRs). The genetic inactivation of either of two SR family members, SR-A or CD36, has been shown previously to reduce oxidized LDL uptake in vitro and atherosclerotic lesions in mice. Several other SRs are reported to bind modified LDL, but their contribution to macrophage lipid accumulation is uncertain. We generated mice lacking both SR-A and CD36 to determine their combined impact on macrophage lipid uptake and to assess the contribution of other SRs to this process. We show that SR-A and CD36 account for 75-90% of degradation of LDL modified by acetylation or oxidation. Cholesteryl ester derived from modified lipoproteins fails to accumulate in macrophages taken from the double null mice, as assessed by histochemistry and gas chromatography-mass spectrometry. These results demonstrate that SR-A and CD36 are responsible for the preponderance of modified LDL uptake in macrophages and that other scavenger receptors do not compensate for their absence.
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            Cross-talk between LOX-1 and PCSK9 in vascular tissues.

            Lectin-like ox-LDL receptor-1 (LOX-1) plays an important role in inflammatory diseases, such as atherosclerosis. Proprotein convertase subtilisin/kexin type 9 (PCSK9) modulates LDL receptor degradation and influences serum LDL levels. The present study was designed to investigate the possible interaction between PCSK9 and LOX-1.
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              Protective roles of SIRT1 in atherosclerosis.

              SIRT1 is a NAD (+) -dependent class III histone deacetylase (HDAC) that mediates the effects of caloric restriction on lifespan and metabolic pathways in various organisms. It deacetylates both histone and non-histone proteins, and targets proteins with diverse cellular and tissue functions. In the vasculature of rodent models SIRT1 mediates vasodilatation via eNOS-derived nitric oxide (NO) and scavenging reactive oxygen species (ROS). Recent studies demonstrated further protective roles of SIRT1 in vascular biology and atherosclerosis. In endothelial cells and macrophages SIRT1 has anti-inflammatory functions by downregulating the expression of various pro-inflammatory cytokines by interfering with the NF-kB signaling pathway. Deacetylation of RelA/p65-NF-kB by SIRT1 in macrophages also suppresses the expression of Lox-1, a scavenger receptor for oxidized low-density lipoproteins (oxLDL), thereby preventing macrophage foam cell formation. Moreover, SIRT1 has been shown to regulate the activity of Liver X-receptor (LXR), thereby promoting ABCA1-driven reverse cholesterol transport in plaque macrophages. Finally, SIRT1 suppresses the expression of endothelial tissue factor (coagulation factor III) and hence exerts anti-thrombotic properties. These findings indicate atheroprotective effects of SIRT1 in atherogenesis and highlight the need for translational research from bench-to-bedside. Indeed, SIRT1 activators are available for experimental research and undergo clinical testing. Taken together, these studies suggest SIRT1 activation as a promising therapeutic approach in atherosclerosis. Further studies are necessary to better understand the exact role of SIRT1 in the protagonist cells orchestrating atherogenesis and to identify the specificity, target effects and putative off-target effects of these promising SIRT1 activators.
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                Author and article information

                Journal
                Antioxidants (Basel)
                Antioxidants (Basel)
                antioxidants
                Antioxidants
                MDPI
                2076-3921
                11 July 2019
                July 2019
                : 8
                : 7
                : 218
                Affiliations
                [1 ]Division of Cardiology, John H. Stroger, Jr. Hospital of Cook County, Chicago, IL 60612, USA
                [2 ]Division of Cardiology, Central Arkansas Veterans Healthcare System and the University of Arkansas for Medical Sciences, Little Rock, AR 72205, USA
                Author notes
                [* ]Correspondence: MehtaJL@ 123456uams.edu ; Tel.: +1-501-296-1426
                Author information
                https://orcid.org/0000-0003-4517-4197
                https://orcid.org/0000-0003-0384-2097
                Article
                antioxidants-08-00218
                10.3390/antiox8070218
                6680802
                31336709
                618f270f-75d0-4619-9f58-20f85cabd756
                © 2019 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 16 May 2019
                : 08 July 2019
                Categories
                Review

                lox-1,ox-ldl,atherogenesis,atherosclerosis,oxidative stress
                lox-1, ox-ldl, atherogenesis, atherosclerosis, oxidative stress

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