Redox Homeostasis in Well-differentiated Primary Human Nasal Epithelial Cells.

Ayaho Yamamoto, Peter D Sly, Anna Henningham, Nelufa Begum, Abrey J Yeo, Emmanuelle Fantino
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引用次数: 1

Abstract

Oxidative stress (OS) in the airway epithelium is associated with inflammation, cell damage, and mitochondrial dysfunction that may initiate or worsen respiratory disease. Redox regulation maintains the equilibrium of pro-oxidant/antioxidant reactions but can be disturbed by environmental exposures. The mechanism(s) underlying the induction and impact of OS on airway epithelium and how these influences on respiratory disease is poorly understood. The aim of this study was to develop a stress response model in primary human nasal epithelial cells (NECs) grown at the air-liquid interface (ALI) into a well-differentiated epithelium and to use this model to investigate the mechanisms underlying OS. Hydrogen peroxide (H2O2) was used to induce acute OS and the responses were measured with trans epithelial electrical resistance (TEER), membrane permeability, cell death (LDH release), mitochondrial reactive oxygen species (mtROS) generation, redox status (GSH/GSSG ratio), cellular ATP, and signaling pathways (SIRT1, FOXO3, p53, p21, PINK1, PARKIN, NRF2). Following 25 mM (sensitive) or 50mM (resistant) H2O2 exposure, cell integrity decreased (p<0.05), GSH/GSSG ratio reduced (p<0.05), and ATP production declined by 83% (p<0.05) in the sensitive and 55% (p<0.05) in the resistant group; mtROS production increased 3.4-fold (p<0.001). Significant inter-individual differences between healthy humans with regards to susceptibility to OS, and differential activation of various pathways (FOXO3, PARKIN) were observed. These intra-individual differences in susceptibility to OS may be attributed to resistant individuals having more mitochondria or greater mitochondrial function.

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分化良好的原代人鼻上皮细胞的氧化还原稳态。
气道上皮氧化应激(OS)与炎症、细胞损伤和线粒体功能障碍相关,可引发或加重呼吸道疾病。氧化还原调节维持促氧化/抗氧化反应的平衡,但可能受到环境暴露的干扰。OS对气道上皮的诱导和影响的机制以及这些影响如何影响呼吸系统疾病尚不清楚。本研究的目的是建立在气液界面(ALI)培养的原代人鼻上皮细胞(NECs)向分化良好的上皮细胞的应激反应模型,并利用该模型研究OS的机制。使用过氧化氢(H2O2)诱导急性OS,并通过跨上皮电阻(TEER)、膜通透性、细胞死亡(LDH释放)、线粒体活性氧(mtROS)生成、氧化还原状态(GSH/GSSG比率)、细胞ATP和信号通路(SIRT1、FOXO3、p53、p21、PINK1、PARKIN、NRF2)来测量反应。在25 mM(敏感)或50mM(耐)H2O2暴露后,细胞完整性下降(ppppp)
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