| Literature DB >> 24014686 |
Maneesh Bhargava1, Sanjoy Dey, Trisha Becker, Michael Steinbach, Baolin Wu, Sang Mee Lee, LeeAnn Higgins, Vipin Kumar, Peter B Bitterman, David H Ingbar, Christine H Wendt.
Abstract
In rodent model systems, the sequential changes in lung morphology resulting from hyperoxic injury are well characterized and are similar to changes in human acute respiratory distress syndrome. In the injured lung, alveolar type two (AT2) epithelial cells play a critical role in restoring the normal alveolar structure. Thus characterizing the changes in AT2 cells will provide insights into the mechanisms underpinning the recovery from lung injury. We applied an unbiased systems-level proteomics approach to elucidate molecular mechanisms contributing to lung repair in a rat hyperoxic lung injury model. AT2 cells were isolated from rat lungs at predetermined intervals during hyperoxic injury and recovery. Protein expression profiles were determined by using iTRAQ with tandem mass spectrometry. Of the 959 distinct proteins identified, 183 significantly changed in abundance during the injury-recovery cycle. Gene ontology enrichment analysis identified cell cycle, cell differentiation, cell metabolism, ion homeostasis, programmed cell death, ubiquitination, and cell migration to be significantly enriched by these proteins. Gene set enrichment analysis of data acquired during lung repair revealed differential expression of gene sets that control multicellular organismal development, systems development, organ development, and chemical homeostasis. More detailed analysis identified activity in two regulatory pathways, JNK and miR 374. A novel short time-series expression miner algorithm identified protein clusters with coherent changes during injury and repair. We concluded that coherent changes occur in the AT2 cell proteome in response to hyperoxic stress. These findings offer guidance regarding the specific molecular mechanisms governing repair of the injured lung.Entities:
Keywords: acute respiratory distress syndrome; alveolar epithelial cell proteome; bioinformatics; hyperoxia
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Year: 2013 PMID: 24014686 PMCID: PMC3840279 DOI: 10.1152/ajplung.00079.2013
Source DB: PubMed Journal: Am J Physiol Lung Cell Mol Physiol ISSN: 1040-0605 Impact factor: 5.464