Effects of Aerobic Exercise on Molecular Aspects of Asthma: Involvement of SOCS-JAK-STAT

Authors

  • A. R. Almeida-Oliveira Nove de Julho University, Rua Vergueiro 235/249, Liberdade, São Paulo – SP, Brazil, 01504-001 Author
  • J. C. J. Aquino-Junior Nove de Julho University, Rua Vergueiro 235/249, Liberdade, São Paulo – SP, Brazil, 01504-001 Author
  • A. Abbasi Division of Respiratory & Critical Care Physiology & Medicine, Department of Medicine, Los Angeles Biomedical Research Institute at Harbor-UCLA Medical Center, Torrance, CA 90502, USA Author
  • A. Santos-Dias Brazilian Institute of Teaching and Research in Pulmonary and Exercise Immunology (IBEPIPE). Rua Pedro Ernesto 240, São José dos Campos – SP, Brazil, 12245-520 Author
  • M. C. Oliveira-Junior Brazilian Institute of Teaching and Research in Pulmonary and Exercise Immunology (IBEPIPE). Rua Pedro Ernesto 240, São José dos Campos – SP, Brazil, 12245-520 Author
  • R. W. Alberca-Custodio Brazilian Institute of Teaching and Research in Pulmonary and Exercise Immunology (IBEPIPE). Rua Pedro Ernesto 240, São José dos Campos – SP, Brazil, 12245-520 Author
  • N. C. Rigonato-Oliveira Nove de Julho University, Rua Vergueiro 235/249, Liberdade, São Paulo – SP, Brazil, 01504-001 Author
  • L. P. Salley-Dias Universidade Brasil, Post-graduation Program in Bioengineering and in Biomedical Engineering, Campus Itaquera, Rua Carolina Fonseca 235, São Paulo – SP, Brazil, 08230-030 Author
  • N. R. Damaceno-Rodrigues University of Sao Paulo, School of Medicine, Department of Pathology, Laboratory of Cell Biology (LIM 59), Avenida Doutor Arnaldo 455, Cerqueira Cesar, São Paulo – SP, Brazil, 01246-903 Author
  • E. G. Caldini University of Sao Paulo, School of Medicine, Department of Pathology, Laboratory of Cell Biology (LIM 59), Avenida Doutor Arnaldo 455, Cerqueira Cesar, São Paulo – SP, Brazil, 01246-903 Author
  • F. M. Arantes-Costa University of Sao Paulo, School of Medicine, Department of Clinical Medicine, Laboratory of Experimental Therapeutics (LIM 20), Avenida Doutor Arnaldo 455, Cerqueira Cesar, São Paulo – SP, Brazil, 01246-903 Author
  • A. P. Ligeiro-Oliveira Nove de Julho University, Rua Vergueiro 235/249, Liberdade, São Paulo – SP, Brazil, 01504-001 Author
  • M. G. Belvisi Respiratory Pharmacology Group, Airway Disease, National Heart and Lung Institute, Imperial College London, London, UK Author
  • Rodolfo Paula Vieira Universidade Brasil, Post-graduation Program in Bioengineering and in Biomedical Engineering, Campus Itaquera, Rua Carolina Fonseca 235, São Paulo – SP, Brazil, 08230-030 Author

DOI:

https://doi.org/10.22029/eir.2019.1729

Keywords:

QUALITY-OF-LIFE, AIRWAY INFLAMMATION, INDUCED BRONCHOCONSTRICTION, LUNG INFLAMMATION, DENDRITIC CELLS, CYTOKINE, MODEL, DISEASE, SUPPRESSOR, CONTRIBUTES

Abstract

Background: Aerobic training (AT) decreases airway inflammation in asthma, but the underlying cellular and molecular mechanisms are not completely understood. Thus, this study evaluated the participation of SOCS-JAK-STAT signaling in the effects of AT on airway inflammation, remodeling and hyperresponsiveness in a model of allergic airway inflammation. Methods: C57Bl/6 mice were divided into Control (Co), Exercise (Ex), HDM (HDM), and HDM+ Exercise (HDM+ Ex). Dermatophagoides pteronyssinus (100ug/mouse) were administered oro-tracheally on days 0, 7, 14, 21, 28, 35, 42 and 49. AT was performed in a treadmill during 4 weeks in moderate intensity, from day 24 until day 52. Results: AT inhibited HDM-induced total cells (p<0.001), eosinophils (p<0.01), neutrophils (p<0.01) and lymphocytes (p<0.01) in BAL, and eosinophils (p<0.01), neutrophils (p<0.01) and lymphocytes (p<0.01) in peribronchial space. AT also reduced BAL levels of IL-4 (p<0.001), IL-5 (p<0.001), IL-13 (p<0.001), CXCL1 (p<0.01), IL-17 (p<0.01), IL-23 (p<0.05), IL-33 (p<0.05), while increased IL-10 (p<0.05). Airway collagen fibers (p<0.01), elastic fibers p<0.01) and mucin (p<0.01) were also reduced by AT. AT also inhibited HDM-induced airway hyperresponsiveness (AHR) to methacholine 6,25mg/ml (p<0.01), 12,5mg/mL (p<0.01), 25mg/mL (p<0.01) and 50mg/mL (p<0.01). Mechanistically, AT reduced the expression of STAT6 (p<0.05), STAT3 (p<0.001), STAT5 (p<0.01) and JAK2 (p<0.001), similarly by peribronchial leukocytes and by airway epithelial cells. SOCS1 expression (p<0.001) was upregulated in leukocytes and in epithelial cells, SOCS2 (p<0.01) was upregulated in leukocytes and SOCS3 down-regulated in leukocytes (p<0.05) and in epithelial cells (p<0.001). Conclusions: AT reduces asthma phenotype involving SOCS-JAK-STAT signaling.

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Published

2019-12-31

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