Impaired angiogenic supportive capacity and altered gene expression profile of CD146+ mesenchymal stromal cells isolated from hyperoxia-injured neonatal rat lungs

J. Collins, M. Lithopoulos, C. D. Santos, N. Issa, M. Moebius, C. Ito, S. Zhong, A. Vadivel, B. Thébaud
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引用次数: 1

Abstract

Background: Bronchopulmonary dysplasia (BPD), a common adverse outcome of extreme preterm birth, can be caused by oxygen-related lung injury and is characterized by arrested alveolar development. Mesenchymal stromal cells (MSCs) have lung protective effects. Conversely, BPD is associated with increased MSCs in tracheal aspirates. This apparent discrepancy is unexplored. We hypothesized that endogenous lung (L-)MSCs are perturbed in an oxygen-induced rat model mimicking BPD. Methods: Rat pups were exposed to 21% or 95% O2 from postnatal day 0 to 10. On day 12, CD146+ L-MSCs were isolated and characterized. Epithelial and vascular repair potential were tested by scratch assay and endothelial network formation respectively, immune function by mixed lymphocyte reaction assay. Microarray analysis was performed using GSEA software. Results: L-MSCs isolated from hyperoxia rat pups had decreased CD73 expression and inhibited lung endothelial network formation. L-MSCs indiscriminately promoted epithelial wound healing and limited T-cell proliferation. Expression of anti-angiogenic genes of the axonal guidance cue pathway was increased after in vivo hyperoxia, whereas genes of the anti-inflammatory JAK/STAT and lung/vascular growth promoting FGF pathways were decreased. Conclusions: In vivo hyperoxia exposure alters the pro-angiogenic effects and FGF expression of L-MSCs. Additionally, decreased CD73 and JAK/STAT expression suggest decreased immune function. L-MSC function may be perturbed and contribute to BPD pathogenesis. These findings may lead to improvements in manufacturing exogenous MSCs with superior repair capabilities.
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高氧损伤新生大鼠肺分离的CD146+间充质间质细胞的血管生成支持能力受损和基因表达谱改变
背景:支气管肺发育不良(BPD)是极端早产的常见不良后果,可由氧相关性肺损伤引起,其特征是肺泡发育受阻。间充质间质细胞(MSCs)具有肺保护作用。相反,BPD与气管吸出物中MSCs的增加有关。这种明显的差异还没有被研究过。我们假设内源性肺(L-)间充质干细胞在模拟BPD的氧诱导大鼠模型中受到干扰。方法:大鼠幼仔在出生后0 ~ 10天暴露于21%或95%的氧气环境中。第12天,分离并鉴定CD146+ L-MSCs。分别用划痕法和内皮网络形成法检测上皮和血管修复电位,用混合淋巴细胞反应法检测免疫功能。使用GSEA软件进行微阵列分析。结果:从高氧大鼠幼崽中分离的L-MSCs可降低CD73的表达,抑制肺内皮网络的形成。L-MSCs不分青红皂白地促进上皮伤口愈合和限制t细胞增殖。体内高氧后,轴突引导信号通路的抗血管生成基因表达增加,而抗炎的JAK/STAT和促进肺/血管生长的FGF通路的基因表达减少。结论:体内高氧暴露改变了L-MSCs的促血管生成作用和FGF的表达。CD73和JAK/STAT表达降低提示免疫功能下降。L-MSC功能紊乱可能与BPD发病有关。这些发现可能导致制造外源性间充质干细胞具有优越的修复能力的改进。
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