Streptococcus pneumoniae–Induced Oxidative Stress in Lung Epithelial Cells Depends on Pneumococcal Autolysis and Is Reversible by Resveratrol

溶血素 氧化应激 肺炎链球菌 微生物学 生物 过氧化氢酶 白藜芦醇 呼吸上皮 免疫学 上皮 药理学 生物化学 遗传学 抗生素
作者
Janine Zahlten,Yeji Kim,Jan-Moritz Doehn,T Pribýl,Andreas C. Hocke,Pedro Garcı́a,Sven Hammerschmidt,Norbert Suttorp,Stefan Hippenstiel,Ralf‐Harto Hübner
出处
期刊:The Journal of Infectious Diseases [Oxford University Press]
卷期号:211 (11): 1822-1830 被引量:60
标识
DOI:10.1093/infdis/jiu806
摘要

Background. Streptococcus pneumoniae is the most common cause of community-acquired pneumonia worldwide. During pneumococcal pneumonia, the human airway epithelium is exposed to large amounts of H2O2 as a product of host and pathogen oxidative metabolism. Airway cells are known to be highly vulnerable to oxidant damage, but the pathophysiology of oxidative stress induced by S. pneumoniae and the role of nuclear factor erythroid 2–related factor 2 (Nrf2)–mediated antioxidant systems of the host are not well characterized. Methods. For gluthation/gluthathion disulfide analysis BEAS-2B cells, primary broncho-epithelial cells (pBEC), explanted human lung tissue and mouse lungs were infected with different S. pneumoniae strains (D39, A66, R6x, H2O2/pneumolysin/LytA- deficient mutants of R6x). Cell death was proven by LDH assay and cell viability by IL-8 ELISA. The translocation of Nrf2 and the expression of catalase were shown via Western blot. The binding of Nrf2 at the catalase promoter was analyzed by ChIP. Results. We observed a significant induction of oxidative stress induced by S. pneumoniae in vivo, ex vivo, and in vitro. Upon stimulation, the oxidant-responsive transcription factor Nrf2 was activated, and catalase was upregulated via Nrf2. The pneumococci-induced oxidative stress was independent of S. pneumoniae–derived H2O2 and pneumolysin but depended on the pneumococcal autolysin LytA. The Nrf2 inducer resveratrol, as opposed to catalase, reversed oxidative stress in lung epithelial cells. Conclusions. These observations indicate a H2O2-independent induction of oxidative stress in lung epithelial cells via the release of bacterial factors of S. pneumoniae. Resveratrol might be an option for prevention of acute lung injury and inflammatory responses observed in pneumococcal pneumonia.
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