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Protein expression profile of rat type two alveolar epithelial cells during hyperoxic stress and recovery.大鼠 II 型肺泡上皮细胞在高氧应激及复氧过程中的蛋白表达谱。
Am J Physiol Lung Cell Mol Physiol. 2013 Nov 1;305(9):L604-14. doi: 10.1152/ajplung.00079.2013. Epub 2013 Sep 6.
2
Epithelial to mesenchymal transition is increased in patients with COPD and induced by cigarette smoke.COPD 患者的上皮间质转化增加,并且由香烟烟雾诱导。
Thorax. 2013 May;68(5):410-20. doi: 10.1136/thoraxjnl-2012-201761. Epub 2013 Jan 7.
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Hyperoxic acute lung injury.高氧性急性肺损伤。
Respir Care. 2013 Jan;58(1):123-41. doi: 10.4187/respcare.01963.
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Regenerative activity of the lung after epithelial injury.上皮损伤后肺的再生活性。
Biochim Biophys Acta. 2013 Jul;1832(7):922-30. doi: 10.1016/j.bbadis.2012.11.020. Epub 2012 Dec 5.
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Mitochondrial reactive oxygen species regulate transforming growth factor-β signaling.线粒体活性氧调节转化生长因子-β信号通路。
J Biol Chem. 2013 Jan 11;288(2):770-7. doi: 10.1074/jbc.M112.431973. Epub 2012 Nov 30.
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Tumor necrosis factor superfamily member LIGHT induces epithelial-mesenchymal transition in A549 human alveolar epithelial cells.肿瘤坏死因子超家族成员 LIGHT 诱导 A549 人肺泡上皮细胞发生上皮-间充质转化。
Biochem Biophys Res Commun. 2012 Nov 30;428(4):451-7. doi: 10.1016/j.bbrc.2012.10.097. Epub 2012 Nov 3.
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Isolation and culture of alveolar epithelial Type I and Type II cells from rat lungs.从大鼠肺中分离和培养I型和II型肺泡上皮细胞。
Methods Mol Biol. 2013;945:145-59. doi: 10.1007/978-1-62703-125-7_10.
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Induction of epithelial-mesenchymal transition by flagellin in cultured lung epithelial cells.鞭毛蛋白诱导培养的肺上皮细胞发生上皮-间充质转化。
Am J Physiol Lung Cell Mol Physiol. 2012 Dec 15;303(12):L1057-69. doi: 10.1152/ajplung.00096.2012. Epub 2012 Oct 12.
9
Genesis of the myofibroblast in lung injury and fibrosis.肌成纤维细胞在肺损伤和纤维化中的发生机制。
Proc Am Thorac Soc. 2012 Jul;9(3):148-52. doi: 10.1513/pats.201201-011AW.
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Epithelial responses to lung injury: role of the extracellular matrix.上皮细胞对肺损伤的反应:细胞外基质的作用。
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高氧诱导肺泡上皮-间充质细胞转化。

Hyperoxia induces alveolar epithelial-to-mesenchymal cell transition.

机构信息

2015 Uppergate Dr. NE, Atlanta, GA 30322.

出版信息

Am J Physiol Lung Cell Mol Physiol. 2014 Feb 15;306(4):L326-40. doi: 10.1152/ajplung.00074.2013. Epub 2013 Dec 27.

DOI:10.1152/ajplung.00074.2013
PMID:24375795
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3920228/
Abstract

Myofibroblast accumulation is a pathological feature of lung diseases requiring oxygen therapy. One possible source for myofibroblasts is through the epithelial-to-mesenchymal transition (EMT) of alveolar epithelial cells (AEC). To study the effects of oxygen on alveolar EMT, we used RLE-6TN and ex vivo lung slices and found that hyperoxia (85% O2, H85) decreased epithelial proteins, presurfactant protein B (pre-SpB), pro-SpC, and lamellar protein by 50% and increased myofibroblast proteins, α-smooth muscle actin (α-SMA), and vimentin by over 200% (P < 0.05). In AEC freshly isolated from H85-treated rats, mRNA for pre-SpB and pro-SpC was diminished by ∼50% and α-SMA was increased by 100% (P < 0.05). Additionally, H85 increased H2O2 content, and H2O2 (25-50 μM) activated endogenous transforming growth factor-β1 (TGF-β1), as evident by H2DCFDA immunofluorescence and ELISA (P < 0.05). Both hyperoxia and H2O2 increased SMAD3 phosphorylation (260% of control, P < 0.05). Treating cultured cells with TGF-β1 inhibitors did not prevent H85-induced H2O2 production but did prevent H85-mediated α-SMA increases and E-cadherin downregulation. Finally, to determine the role of TGF-β1 in hyperoxia-induced EMT in vivo, we evaluated AEC from H85-treated rats and found that vimentin increased ∼10-fold (P < 0.05) and that this effect was prevented by intraperitoneal TGF-β1 inhibitor SB-431542. Additionally, SB-431542 treatment attenuated changes in alveolar histology caused by hyperoxia. Our studies indicate that hyperoxia promotes alveolar EMT through a mechanism that is dependent on activation of TGF-β1 signaling.

摘要

成肌纤维细胞的积累是需要氧疗的肺部疾病的一个病理特征。成肌纤维细胞的一个可能来源是通过肺泡上皮细胞 (AEC) 的上皮-间充质转化 (EMT)。为了研究氧对肺泡 EMT 的影响,我们使用 RLE-6TN 和离体肺切片,发现高氧 (85% O2,H85) 使上皮蛋白、前表面活性蛋白 B (pre-SpB)、前 SpC 和板层蛋白减少 50%,并使成肌纤维蛋白、α-平滑肌肌动蛋白 (α-SMA) 和波形蛋白增加超过 200% (P < 0.05)。在刚从 H85 处理的大鼠中分离的 AEC 中,pre-SpB 和 pro-SpC 的 mRNA 减少了约 50%,α-SMA 增加了 100% (P < 0.05)。此外,H85 增加了 H2O2 的含量,并且 H2O2 (25-50 μM) 激活了内源性转化生长因子-β1 (TGF-β1),这可以通过 H2DCFDA 免疫荧光和 ELISA 检测到 (P < 0.05)。高氧和 H2O2 均增加了 SMAD3 磷酸化 (比对照增加 260%,P < 0.05)。用 TGF-β1 抑制剂处理培养细胞并不能阻止 H85 诱导的 H2O2 产生,但可以阻止 H85 介导的 α-SMA 增加和 E-钙黏蛋白下调。最后,为了确定 TGF-β1 在高氧诱导的 EMT 中的作用,我们评估了来自 H85 处理大鼠的 AEC,发现波形蛋白增加了约 10 倍 (P < 0.05),而腹腔内给予 TGF-β1 抑制剂 SB-431542 可以预防这种作用。此外,SB-431542 治疗可减轻高氧引起的肺泡组织学改变。我们的研究表明,高氧通过依赖 TGF-β1 信号通路激活的机制促进肺泡 EMT。