Macrophage polarisation associated with atherosclerosis differentially affects their capacity to handle lipids

被引:26
|
作者
Baidzajevas, Kajus [1 ,2 ]
Hadadi, Eva [1 ,2 ]
Lee, Bernett [2 ]
Lum, Josephine [2 ]
Shihui, Foo [2 ]
Sudbery, Ian [3 ]
Kiss-Toth, Endre [1 ]
Wong, Siew Cheng [2 ]
Wilson, Heather L. [1 ]
机构
[1] Univ Sheffield, Dept Infect Immun & Cardiovasc Dis, Beech Hill Rd, Sheffield S10 2RX, S Yorkshire, England
[2] ASTAR, Singapore Immunol Network SIgN, 8A Biomed Grove,Level 4, Singapore 138648, Singapore
[3] Univ Sheffield, Dept Mol Biol & Biotechnol, Western Bank, Sheffield S10 2TN, S Yorkshire, England
关键词
Inflammation; Atherosclerosis; Macrophage; Innate; FOAM CELL-FORMATION; ALTERNATIVE ACTIVATION; DENSITY-LIPOPROTEINS; SCAVENGER RECEPTORS; CHOLESTEROL EFFLUX; INFLAMMATION; EXPRESSION; TRANSCRIPTOME; ACCUMULATION; HOMEOSTASIS;
D O I
10.1016/j.atherosclerosis.2020.05.003
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background and aims: Lipid-rich foam cell macrophages drive atherosclerosis via several mechanisms, including inflammation, lipid uptake, lipid deposition and plaque vulnerability. The atheroma environment shapes mac-rophage function and phenotype; anti-inflammatory macrophages improve plaque stability while pro -in-flammatory macrophages promote rupture. Current evidence suggests a variety of macrophage phenotypes occur in atherosclerotic plaques with local lipids, cytokines, oxidised phospholipids and pathogenic stimuli altering their phenotype. In this study, we addressed differential functioning of macrophage phenotypes via a systematic analysis of in vitro polarised, human monocyte-derived macrophage phenotypes, focussing on molecular events that regulate foam-cell formation. Methods: We examined transcriptomes, protein levels and functionally determined lipid handling and foam cell formation capacity in macrophages polarised with IFN gamma+LPS, IL-4, IL-10, oxPAPC and CXCL4. Results: RNA sequencing of differentially polarised macrophages revealed distinct gene expression changes, with enrichment in atherosclerosis and lipid-associated pathways. Analysis of lipid processing activity showed IL-4 and IL-10 macrophages have higher lipid uptake and foam cell formation activities, while inflammatory and oxPAPC macrophages displayed lower foam cell formation. Inflammatory macrophages showed low lipid uptake, while higher lipid uptake in oxPAPC macrophages was matched by increased lipid efflux capacity. Conclusions: Atherosclerosis-associated macrophage polarisation dramatically affects lipid handling capacity underpinned by major transcriptomic changes and altered protein levels in lipid-handling gene expression. This leads to phenotype-specific differences in LDL uptake, cellular cholesterol levels and cholesterol efflux, in-forming how the plaque environment influences atherosclerosis progression by influencing macrophage phe-notypes.
引用
收藏
页码:10 / 18
页数:9
相关论文
共 50 条
  • [31] Macrophage-Associated Lipin-1 Contributes to Atherosclerosis
    Vozenilek, Aimee E.
    Navratil, Aaron R.
    Finck, Brian
    Orr, A. W.
    Woolard, Matthew D.
    ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2017, 37
  • [32] Fatmass and obesity-associated protein attenuates lipid accumulation in macrophage foam cells and alleviates atherosclerosis in apolipoprotein E-deficientmice
    Mo, Chunfen
    Yang, Ming
    Han, Xiaojuan
    Li, Junhong
    Gao, Guangping
    Tai, Haoran
    Huang, Ning
    Xiao, Hengyi
    JOURNAL OF HYPERTENSION, 2017, 35 (04) : 810 - 821
  • [33] Complete and Partial Lecithin:Cholesterol Acyltransferase Deficiency Is Differentially Associated With Atherosclerosis
    Oldoni, Federico
    Baldassarre, Damiano
    Castelnuovo, Samuela
    Ossoli, Alice
    Amato, Mauro
    van Capelleveen, Julian
    Hovingh, G. Kees
    De Groot, Eric
    Bochem, Andrea
    Simonelli, Sara
    Barbieri, Simone
    Veglia, Fabrizio
    Franceschini, Guido
    Kuivenhoven, Jan Albert
    Holleboom, Adriaan G.
    Calabresi, Laura
    CIRCULATION, 2018, 138 (10) : 1000 - 1007
  • [34] TIM-3-driven macrophage polarisation is associated to recalcitrant chronic rhinosinusitis with nasal polyps
    Jiang, Tao
    Yu, Tao
    Jiang, Lu
    Tong, Zongjing
    ACTA OTORHINOLARYNGOLOGICA ITALICA, 2024, 44 (04) : 242 - 251
  • [35] M2 macrophage polarisation is associated with alveolar formation during postnatal lung development
    Christina V Jones
    Timothy M Williams
    Kenneth A Walker
    Hayley Dickinson
    Samy Sakkal
    Bree A Rumballe
    Melissa H Little
    Graham Jenkin
    Sharon D Ricardo
    Respiratory Research, 14
  • [36] Carbon dioxide differentially affects the cytokine release of macrophage subpopulations exclusively via alteration of extracellular pH
    M. Kos
    J. F. Kuebler
    N. K. Jesch
    G. Vieten
    N. M. Bax
    D. C. van der Zee
    R. Busche
    B. M. Ure
    Surgical Endoscopy And Other Interventional Techniques, 2006, 20 : 570 - 576
  • [37] Carbon dioxide differentially affects the cytokine release of macrophage subpopulations exclusively via alteration of extracellular pH
    Kos, M
    Kuebler, JF
    Jesch, NK
    Vieten, G
    Bax, NM
    van der Zee, DC
    Busche, R
    Ure, BM
    SURGICAL ENDOSCOPY AND OTHER INTERVENTIONAL TECHNIQUES, 2006, 20 (04): : 570 - 576
  • [38] Data showing atherosclerosis-associated differentially methylated regions are often at enhancers
    Lacey, Michelle
    Baribault, Carl
    Ehrlich, Kenneth C.
    Ehrlich, Melanie
    DATA IN BRIEF, 2019, 23
  • [39] Vitamin E differentially affects short term exercise induced changes in oxidative stress, lipids, and inflammatory markers
    Garelnabi, M.
    Veledar, E.
    White-Welkley, J.
    Santanam, N.
    Abramson, J.
    Weintraub, W.
    Parthasarathy, S.
    NUTRITION METABOLISM AND CARDIOVASCULAR DISEASES, 2012, 22 (10) : 907 - 913
  • [40] In vitro differentiated embryonic stem cell macrophages - A model system for studying atherosclerosis-associated macrophage functions
    Moore, KJ
    Fabunmi, RP
    Andersson, LP
    Freeman, MW
    ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 1998, 18 (10) : 1647 - 1654