4.7 Article

Hypertonic Saline Primes Activation of the p53-p21 Signaling Axis in Human Small Airway Epithelial Cells That Prevents Inflammation Induced by Pro-inflammatory Cytokines

期刊

JOURNAL OF PROTEOME RESEARCH
卷 15, 期 10, 页码 3813-3826

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jproteome.6b00602

关键词

metabolomics; proteomics; RNaseq; mitochondria; osmotic stress

资金

  1. National Institute of General Medical Sciences of the National Institutes of Health under NIGMS, NIH [P50GM049222, T32GM008315, P50 GM049222]

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Uncontrolled inflammatory responses underlie the etiology of acute lung injury and acute distress respiratory syndrome, the most common late complications in trauma, the leading cause of death under the age of 59. Treatment with HTS decreases lung injury in clinical trials, rat models of trauma and hemorrhagic shock and inflammation in lung cell lines, although the mechanisms underlying these responses are still incompletely understood. Transcriptomics (RNaseq), proteomics, and U-C-13-glucose tracing metabolomics experiments were performed to investigate the mechanisms of cellular responses to HTS treatment in primary small airway epithelial cells in the presence of absence of inflammatory injury mediated by a cocktail of cytokines (10 ng/mL of IFN gamma, IL-1 beta, and TNF alpha). Modestly hyperosmolar. HTS has an anti-inflammatory effect, triggers the p53-p21 signaling axis, and deregulates mitochondrial metabolism while inducing minimal apoptosis in response to a second hit by cytokines. Decreased transcription of pro-inflammatory cytokines suggested a role for the tumor suppressor protein p53 in mediating the beneficial effects of the HTS treatment. The anti-inflammatory mechanisms induced by HTS involves p53 gene regulation, promotes cell cycle arrest, and prevents ROS formation and mitochondria depolarization. Pharmaceutical targeting of the p53-p21 axis may mimic or reinforce the beneficial effects mediated by HTS when sustained hypertonicity cannot be maintained.

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