吞噬作用
间充质干细胞
炎症
细胞生物学
活性氧
微生物学
生物
NADPH氧化酶
败血症
免疫学
巨噬细胞
化学
体外
生物化学
作者
R. Rabani,Allen Volchuk,Mirjana Jerkić,Lindsay Ormesher,Linda Garcés‐Ramírez,Johnathan Canton,Claire Masterson,Stéphane Gagnon,Kate Tatham,John C. Marshall,Sergio Grinstein,John G. Laffey,Katalin Szászi,Gerard F. Curley
出处
期刊:The European respiratory journal
[European Respiratory Society]
日期:2018-03-08
卷期号:51 (4): 1702021-1702021
被引量:64
标识
DOI:10.1183/13993003.02021-2017
摘要
Human mesenchymal stem/stromal cells (MSCs) have been reported to produce an M2-like, alternatively activated phenotype in macrophages. In addition, MSCs mediate effective bacterial clearance in pre-clinical sepsis models. Thus, MSCs have a paradoxical antimicrobial and anti-inflammatory response that is not understood. Here, we studied the phenotypic and functional response of monocyte-derived human macrophages to MSC exposure in vitro . MSCs induced two distinct, coexistent phenotypes: M2-like macrophages (generally elongated morphology, CD163 + , acute phagosomal acidification, low NOX2 expression and limited phagosomal superoxide production) and M1-like macrophages characterised by high levels of phagosomal superoxide production. Enhanced phagosomal reactive oxygen species production was also observed in alveolar macrophages from a rodent model of pneumonia-induced sepsis. The production of M1-like macrophages was dependent on prostaglandin E 2 and phosphatidylinositol 3-kinase. MSCs enhanced human macrophage phagocytosis of unopsonised bacteria and enhanced bacterial killing compared with untreated macrophages. Bacterial killing was significantly reduced by blockade of NOX2 using diphenyleneiodonium, suggesting that M1-like cells are primarily responsible for this effect. MSCs also enhanced phagocytosis and polarisation of M1-like macrophages derived from patients with severe sepsis. The enhanced antimicrobial capacity (M1-like) and inflammation resolving phenotype (M2-like) may account for the paradoxical effect of these cells in sepsis in vivo .
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