| Literature DB >> 28464879 |
Keigo Kainuma1,2, Tetsu Kobayashi3, Corina N D'Alessandro-Gabazza2, Masaaki Toda2, Taro Yasuma2, Kota Nishihama2, Hajime Fujimoto3, Yu Kuwabara1,2, Koa Hosoki1,2, Mizuho Nagao1, Takao Fujisawa1, Esteban C Gabazza4.
Abstract
BACKGROUND: Epithelial-mesenchymal transition is currently recognized as an important mechanism for the increased number of myofibroblasts in cancer and fibrotic diseases. We have already reported that epithelial-mesenchymal transition is involved in airway remodeling induced by eosinophils. Procaterol is a selective and full β2 adrenergic agonist that is used as a rescue of asthmatic attack inhaler form and orally as a controller. In this study, we evaluated whether procaterol can suppress epithelial-mesenchymal transition of airway epithelial cells induced by eosinophils.Entities:
Keywords: Asthma; Eosinophils; Epithelial cells; Integrins
Mesh:
Substances:
Year: 2017 PMID: 28464879 PMCID: PMC5414161 DOI: 10.1186/s12931-017-0563-4
Source DB: PubMed Journal: Respir Res ISSN: 1465-9921
Fig. 1EMT induced by EoL-1 is inhibited by procaterol. a Control and BEAS-2B cells co-cultured with EoL-1 in the presence or absence of procaterol (original magnifications, ×400). b Gene expression of E-cadherin and vimentin in BEAS-2B cells co-cultured with EoL-1 in the presence (10−9 M ~ 10−6 M) or absence of procaterol as evaluated by RT-PCR. c Granulocyte-macrophage colony-stimulating factor (GM-CSF) and transforming growth factor (TGF-β1) levels in the supernatant after co-culture in the presence (10−9 M ~ 10−6 M) or absence of procaterol. Bars indicate mean ± SEM. Scale bars indicate 100 μm. The data are the representative of a single experiment performed in triplicates. Two independent experiments were performed. *p < 0.0001 vs procaterol 0 group; **p < 0.001 and ¶p < 0.05 vs EoL-1(+)/procaterol (−) group. Statistics by analysis of variance with Dunnett’s test
Fig. 2EMT induced by primary human eosinophils is inhibited by procaterol. a Control and BEAS-2B cells co-cultured with primary human eosinophils in the presence or absence of procaterol (original magnifications, ×400). b Gene expression of E-cadherin and vimentin as assessed by RT-PCR. c Granulocyte-macrophage colony-stimulating factor (GM-CSF) and transforming growth factor (TGF-β1) levels in the supernatant. d Representative immunofluorescence staining of E-cadherin (green) and α-SMA (red) in BEAS-2B cell with saline or eosinophils or eosinophils pre-treated with procaterol. e Quantification by densitometry. Bars indicate mean ± SEM. Scale bars indicate 100 μm. The data are the representative of a single experiment performed in triplicates. Two independent experiments were performed. *p < 0.001 vs procaterol (−) group; **p < 0.001 and ¶p < 0.05 vs eosinophils (+)/procaterol (−) group. Statistics by analysis of variance with Dunnett’s test
Fig. 3A specific β2 adrenergic receptor inhibitor blocks the effect of procaterol. a Control and BEAS-2B cells co-cultured with human eosinophils in the presence or absence of procaterol and butoxamine (original magnifications, ×400). b Gene expression of E-cadherin and vimentin as evaluated by RT-PCR. c Granulocyte-macrophage colony-stimulating factor (GM-CSF) and transforming growth factor (TGF-β1) levels in the supernatant. Bars indicate mean ± SEM. Scale bars indicate 100 μm. The data are the representative of a single experiment performed in triplicates. Three independent experiments were performed. *p < 0.005 vs butoxamine (−)/procaterol (−) group; **p < 0.005 vs butoxamine (−)/procaterol (+) group. Statistics by analysis of variance with Dunnett’s test
Fig. 4Procaterol inhibits the expression of adhesion molecules from BEAS-2B cells co-cultured with EoL-1 cells. a The expression of ICAM-1 and VCAM-1 on BEAS-2B cells co-cultured with EoL-1 cells in the presence or absence of procaterol as analyzed by flow-cytometry. b Quantification by MFI. Bars indicate mean ± SEM. The data are the representa tive of a single experiment performed in triplicates. Two independent experiments were performed.*p < 0.001 vs EoL-1 (−)/procaterol (−) group; **p < 0.05 vs EoL-1 (+)/procaterol (−) group. Statistics by analysis of variance with Dunnett’s test
Fig. 5Procaterol inhibits the expression of adhesion molecules on human eosinophils co-cultured with BEAS-2B cells. a The expression of αM (CD11b), β2 (CD18), α4 (CD49d), β1 (CD29) integrin subunits on eosinophils as analyzed by flow cytometry after co-culture with BEAS-2B cells and eosinophils in the presence or absence of procaterol. b Quantification by MFI. Bars indicate mean ± SEM. The data are the representative of a single experiment performed in triplicates. Two independent experiments were performed. *p < 0.05 vs BEAS-2B (−)/procaterol (−) group; **p < 0.05 vs BEAS-2B (+)/procaterol (−) group. Statistics by analysis of variance with Dunnett’s test
Fig. 6EMT induced by eosinophils is suppressed by anti-integrin antibodies. a BEAS-2B cells co-cultured with human eosinophils in the presence of anti-integrin antibodies (anti-CD18 Ab and/or anti-CD29 Ab). b Gene expression of E-cadherin and vimentin in BEAS-2B cells co-cultured with human eosinophils in the presence or absence of anti-integrin antibodies (anti-CD18 Ab and/or anti-CD29 Ab). Bars indicate mean ± SEM. Scale bars indicate 100 μm. The data are the representative of a single experiment performed in triplicates. Two independent experiments were performed. *p < 0.01 vs eosinophils (−)/anti-CD29 (−)/anti-CD18 group; **p < 0.05 vs eosinophils (+)/anti-CD29 (−)/anti-CD18 group. Statistics by analysis of variance with Dunnett’s test
Fig. 7EMT is suppressed by anti-integrin antibody and/or anti-adhesion molecule antibody. a BEAS-2B cells co-cultured with human eosinophils in the presence of anti-integrin antibodies and/or anti-ICAM-1 antibodies (anti-CD18 Ab and/or anti-CD54 Ab). b Granulocyte-macrophage colony-stimulating factor (GM-CSF) and transforming growth factor (TGF-β1) levels in the supernatant. Bars indicate mean ± SEM. c Scale bars indicate 100 μm. The data are the representative of a single experiment performed in triplicates. Two independent experiments were performed. Gene expression of E-cadherin, and vimentin in BEAS-2B cells co-cultured with eosinophils. *p < 0.01 vs eosinophils (−)/anti-CD54 (−)/anti-CD18 group; **p < 0.05 vs eosinophils (+)/anti-CD54 (−)/anti-CD18 group. Statistics by analysis of variance with Dunnett’s test
Fig. 8Forskolin and procaterol have similar effects. a, b Human eosinophils were pre-treated with procaterol or forskolin for 30 min and then co-cultured with serum-starved BEAS-2B for 24 h before analyzing integrin expression by flow cytometry. c BEAS-2B cells were collected to evaluate the mRNA expression of E-cadherin and vimentin. d Co-culture supernatants were collected to evaluate the levels of transforming growth factor (TGF-β1) and granulocyte-macrophage colony-stimulating factor (GM-CSF). e EMT of BEAS-2B cells were evaluated in each treatment group. Bars indicate mean ± SEM. Scale bars indicate 100 μm. The data are the representative of a single experiment performed in triplicates. *p < 0.05 vs control groups; **p < 0.05 vs eosinophils co-cultured with BEAS-2B in the absence of both procaterol and forskolin. Statistics by analysis of variance with Dunnett’s test