6533b7d9fe1ef96bd126c4b7

RESEARCH PRODUCT

Evidence for pleural epithelial-mesenchymal transition in murine compensatory lung growth

Akira TsudaMaximilian AckermannAlexandra B. YsasiAndrew B. ServaisRobert D. BennettCristian D. ValenzuelaArne KienzleSteven J. MentzerWilli L. WagnerWilli L. Wagner

subject

MaleB VitaminsThin-Layer Chromatography0301 basic medicinePathologyOrganogenesismedicine.medical_treatmentVimentinBiochemistryMiceSpectrum Analysis Techniques0302 clinical medicineMedicine and Health SciencesElectron MicroscopyRespiratory System ProceduresPneumonectomyLungImage CytometryMicroscopyMultidisciplinarybiologyOrganic CompoundsChromatographic TechniquesQRVitaminsrespiratory systemChemistryPhenotypemedicine.anatomical_structureThoracotomySpectrophotometry030220 oncology & carcinogenesisPhysical SciencesPleuraMedicineScanning Electron MicroscopyMyofibroblastResearch Articlemedicine.medical_specialtyEpithelial-Mesenchymal TransitionImaging TechniquesScienceCompensatory growth (organ)BiotinSurgical and Invasive Medical ProceduresResearch and Analysis Methods03 medical and health sciencesPneumonectomyFluorescence ImagingmedicineAnimalsVimentinEpithelial–mesenchymal transitionLungSurgical ExcisionFluorimetryOrganic ChemistryChemical CompoundsBiology and Life SciencesProteinsrespiratory tract diseasesMice Inbred C57BLCytoskeletal ProteinsPlanar ChromatographyB vitamins030104 developmental biologybiology.proteinMesothelial Cell

description

In many mammals, including rodents and humans, removal of one lung results in the compensatory growth of the remaining lung; however, the mechanism of compensatory lung growth is unknown. Here, we investigated the changes in morphology and phenotype of pleural cells after pneumonectomy. Between days 1 and 3 after pneumonectomy, cells expressing α-smooth muscle actin (SMA), a cytoplasmic marker of myofibroblasts, were significantly increased in the pleura compared to surgical controls (p < .01). Scanning electron microscopy of the pleural surface 3 days post-pneumonectomy demonstrated regions of the pleura with morphologic features consistent with epithelial-mesenchymal transition (EMT); namely, cells with disrupted intercellular junctions and an acquired mesenchymal (rounded and fusiform) morphotype. To detect the migration of the transitional pleural cells into the lung, a biotin tracer was used to label the pleural mesothelial cells at the time of surgery. By post-operative day 3, image cytometry of post-pneumonectomy subpleural alveoli demonstrated a 40-fold increase in biotin+ cells relative to pneumonectomy-plus-plombage controls (p < .01). Suggesting a similar origin in space and time, the distribution of cells expressing biotin, SMA, or vimentin demonstrated a strong spatial autocorrelation in the subpleural lung (p < .001). We conclude that post-pneumonectomy compensatory lung growth involves EMT with the migration of transitional mesothelial cells into subpleural alveoli.

https://doi.org/10.1371/journal.pone.0177921