Cargando…

The Inhibition of Macrophage Foam Cell Formation by 9-Cis β-Carotene Is Driven by BCMO1 Activity

Atherosclerosis is a major cause of morbidity and mortality in developed societies, and begins when activated endothelial cells recruit monocytes and T-cells from the bloodstream into the arterial wall. Macrophages that accumulate cholesterol and other fatty materials are transformed into foam cells...

Descripción completa

Detalles Bibliográficos
Autores principales: Zolberg Relevy, Noa, Bechor, Sapir, Harari, Ayelet, Ben-Amotz, Ami, Kamari, Yehuda, Harats, Dror, Shaish, Aviv
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4309590/
https://www.ncbi.nlm.nih.gov/pubmed/25629601
http://dx.doi.org/10.1371/journal.pone.0115272
_version_ 1782354724813537280
author Zolberg Relevy, Noa
Bechor, Sapir
Harari, Ayelet
Ben-Amotz, Ami
Kamari, Yehuda
Harats, Dror
Shaish, Aviv
author_facet Zolberg Relevy, Noa
Bechor, Sapir
Harari, Ayelet
Ben-Amotz, Ami
Kamari, Yehuda
Harats, Dror
Shaish, Aviv
author_sort Zolberg Relevy, Noa
collection PubMed
description Atherosclerosis is a major cause of morbidity and mortality in developed societies, and begins when activated endothelial cells recruit monocytes and T-cells from the bloodstream into the arterial wall. Macrophages that accumulate cholesterol and other fatty materials are transformed into foam cells. Several epidemiological studies have demonstrated that a diet rich in carotenoids is associated with a reduced risk of heart disease; while previous work in our laboratory has shown that the 9-cis β-carotene rich alga Dunaliella inhibits atherogenesis in mice. The effect of 9-cis β-carotene on macrophage foam cell formation has not yet been investigated. In the present work, we sought to study whether the 9-cis β-carotene isomer, isolated from the alga Dunaliella, can inhibit macrophage foam cell formation upon its conversion to retinoids. The 9-cis β-carotene and Dunaliella lipid extract inhibited foam cell formation in the RAW264.7 cell line, similar to 9-cis retinoic acid. Furthermore, dietary enrichment with the algal powder in mice resulted in carotenoid accumulation in the peritoneal macrophages and in the inhibition of foam cell formation ex-vivo and in-vivo. We also found that the β-carotene cleavage enzyme β-carotene 15,15’-monooxygenase (BCMO1) is expressed and active in macrophages. Finally, 9-cis β-carotene, as well as the Dunaliella extract, activated the nuclear receptor RXR in hepa1-6 cells. These results indicate that dietary carotenoids, such as 9-cis β-carotene, accumulate in macrophages and can be locally cleaved by endogenous BCMO1 to form 9-cis retinoic acid and other retinoids. Subsequently, these retinoids activate the nuclear receptor RXR that, along with additional nuclear receptors, can affect various metabolic pathways, including those involved in foam cell formation and atherosclerosis.
format Online
Article
Text
id pubmed-4309590
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-43095902015-02-06 The Inhibition of Macrophage Foam Cell Formation by 9-Cis β-Carotene Is Driven by BCMO1 Activity Zolberg Relevy, Noa Bechor, Sapir Harari, Ayelet Ben-Amotz, Ami Kamari, Yehuda Harats, Dror Shaish, Aviv PLoS One Research Article Atherosclerosis is a major cause of morbidity and mortality in developed societies, and begins when activated endothelial cells recruit monocytes and T-cells from the bloodstream into the arterial wall. Macrophages that accumulate cholesterol and other fatty materials are transformed into foam cells. Several epidemiological studies have demonstrated that a diet rich in carotenoids is associated with a reduced risk of heart disease; while previous work in our laboratory has shown that the 9-cis β-carotene rich alga Dunaliella inhibits atherogenesis in mice. The effect of 9-cis β-carotene on macrophage foam cell formation has not yet been investigated. In the present work, we sought to study whether the 9-cis β-carotene isomer, isolated from the alga Dunaliella, can inhibit macrophage foam cell formation upon its conversion to retinoids. The 9-cis β-carotene and Dunaliella lipid extract inhibited foam cell formation in the RAW264.7 cell line, similar to 9-cis retinoic acid. Furthermore, dietary enrichment with the algal powder in mice resulted in carotenoid accumulation in the peritoneal macrophages and in the inhibition of foam cell formation ex-vivo and in-vivo. We also found that the β-carotene cleavage enzyme β-carotene 15,15’-monooxygenase (BCMO1) is expressed and active in macrophages. Finally, 9-cis β-carotene, as well as the Dunaliella extract, activated the nuclear receptor RXR in hepa1-6 cells. These results indicate that dietary carotenoids, such as 9-cis β-carotene, accumulate in macrophages and can be locally cleaved by endogenous BCMO1 to form 9-cis retinoic acid and other retinoids. Subsequently, these retinoids activate the nuclear receptor RXR that, along with additional nuclear receptors, can affect various metabolic pathways, including those involved in foam cell formation and atherosclerosis. Public Library of Science 2015-01-28 /pmc/articles/PMC4309590/ /pubmed/25629601 http://dx.doi.org/10.1371/journal.pone.0115272 Text en © 2015 Zolberg Relevy et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Zolberg Relevy, Noa
Bechor, Sapir
Harari, Ayelet
Ben-Amotz, Ami
Kamari, Yehuda
Harats, Dror
Shaish, Aviv
The Inhibition of Macrophage Foam Cell Formation by 9-Cis β-Carotene Is Driven by BCMO1 Activity
title The Inhibition of Macrophage Foam Cell Formation by 9-Cis β-Carotene Is Driven by BCMO1 Activity
title_full The Inhibition of Macrophage Foam Cell Formation by 9-Cis β-Carotene Is Driven by BCMO1 Activity
title_fullStr The Inhibition of Macrophage Foam Cell Formation by 9-Cis β-Carotene Is Driven by BCMO1 Activity
title_full_unstemmed The Inhibition of Macrophage Foam Cell Formation by 9-Cis β-Carotene Is Driven by BCMO1 Activity
title_short The Inhibition of Macrophage Foam Cell Formation by 9-Cis β-Carotene Is Driven by BCMO1 Activity
title_sort inhibition of macrophage foam cell formation by 9-cis β-carotene is driven by bcmo1 activity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4309590/
https://www.ncbi.nlm.nih.gov/pubmed/25629601
http://dx.doi.org/10.1371/journal.pone.0115272
work_keys_str_mv AT zolbergrelevynoa theinhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT bechorsapir theinhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT harariayelet theinhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT benamotzami theinhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT kamariyehuda theinhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT haratsdror theinhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT shaishaviv theinhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT zolbergrelevynoa inhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT bechorsapir inhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT harariayelet inhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT benamotzami inhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT kamariyehuda inhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT haratsdror inhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity
AT shaishaviv inhibitionofmacrophagefoamcellformationby9cisbcaroteneisdrivenbybcmo1activity