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Dual role of RACK1 in airway epithelial mesenchymal transition and apoptosis

Airway epithelial apoptosis and epithelial mesenchymal transition (EMT) are two crucial components of asthma pathogenesis, concomitantly mediated by TGF‐β1. RACK1 is the downstream target gene of TGF‐β1 shown to enhancement in asthma mice in our previous study. Balb/c mice were sensitized twice and...

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Autores principales: Pu, Yue, Liu, Yuan‐qi, Zhou, Yan, Qi, Yi‐fan, Liao, Shi‐ping, Miao, Shi‐kun, Zhou, Li‐ming, Wan, Li‐hong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7131927/
https://www.ncbi.nlm.nih.gov/pubmed/32064783
http://dx.doi.org/10.1111/jcmm.15061
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author Pu, Yue
Liu, Yuan‐qi
Zhou, Yan
Qi, Yi‐fan
Liao, Shi‐ping
Miao, Shi‐kun
Zhou, Li‐ming
Wan, Li‐hong
author_facet Pu, Yue
Liu, Yuan‐qi
Zhou, Yan
Qi, Yi‐fan
Liao, Shi‐ping
Miao, Shi‐kun
Zhou, Li‐ming
Wan, Li‐hong
author_sort Pu, Yue
collection PubMed
description Airway epithelial apoptosis and epithelial mesenchymal transition (EMT) are two crucial components of asthma pathogenesis, concomitantly mediated by TGF‐β1. RACK1 is the downstream target gene of TGF‐β1 shown to enhancement in asthma mice in our previous study. Balb/c mice were sensitized twice and challenged with OVA every day for 7 days. Transformed human bronchial epithelial cells, BEAS‐2B cells were cultured and exposed to recombinant soluble human TGF‐β1 to induced apoptosis (30 ng/mL, 72 hours) and EMT (10 ng/mL, 48 hours) in vitro, respectively. siRNA and pharmacological inhibitors were used to evaluate the regulation of RACK1 protein in apoptosis and EMT. Western blotting analysis and immunostaining were used to detect the protein expressions in vivo and in vitro. Our data showed that RACK1 protein levels were significantly increased in OVA‐challenged mice, as well as TGF‐β1‐induced apoptosis and EMT of BEAS‐2B cells. Knockdown of RACK1 (siRACK1) significantly inhibited apoptosis and decreased TGF‐β1 up‐regulated EMT related protein levels (N‐cadherin and Snail) in vitro via suppression of JNK and Smad3 activation. Moreover, siSmad3 or siJNK impaired TGF‐β1‐induced N‐cadherin and Snail up‐regulation in vitro. Importantly, JNK gene silencing (siERK) also impaired the regulatory effect of TGF‐β1 on Smad3 activation. Our present data demonstrate that RACK1 is a concomitant regulator of TGF‐β1 induces airway apoptosis and EMT via JNK/Smad/Snail signalling axis. Our findings may provide a new insight into understanding the regulation mechanism of RACK1 in asthma pathogenesis.
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spelling pubmed-71319272020-04-06 Dual role of RACK1 in airway epithelial mesenchymal transition and apoptosis Pu, Yue Liu, Yuan‐qi Zhou, Yan Qi, Yi‐fan Liao, Shi‐ping Miao, Shi‐kun Zhou, Li‐ming Wan, Li‐hong J Cell Mol Med Original Articles Airway epithelial apoptosis and epithelial mesenchymal transition (EMT) are two crucial components of asthma pathogenesis, concomitantly mediated by TGF‐β1. RACK1 is the downstream target gene of TGF‐β1 shown to enhancement in asthma mice in our previous study. Balb/c mice were sensitized twice and challenged with OVA every day for 7 days. Transformed human bronchial epithelial cells, BEAS‐2B cells were cultured and exposed to recombinant soluble human TGF‐β1 to induced apoptosis (30 ng/mL, 72 hours) and EMT (10 ng/mL, 48 hours) in vitro, respectively. siRNA and pharmacological inhibitors were used to evaluate the regulation of RACK1 protein in apoptosis and EMT. Western blotting analysis and immunostaining were used to detect the protein expressions in vivo and in vitro. Our data showed that RACK1 protein levels were significantly increased in OVA‐challenged mice, as well as TGF‐β1‐induced apoptosis and EMT of BEAS‐2B cells. Knockdown of RACK1 (siRACK1) significantly inhibited apoptosis and decreased TGF‐β1 up‐regulated EMT related protein levels (N‐cadherin and Snail) in vitro via suppression of JNK and Smad3 activation. Moreover, siSmad3 or siJNK impaired TGF‐β1‐induced N‐cadherin and Snail up‐regulation in vitro. Importantly, JNK gene silencing (siERK) also impaired the regulatory effect of TGF‐β1 on Smad3 activation. Our present data demonstrate that RACK1 is a concomitant regulator of TGF‐β1 induces airway apoptosis and EMT via JNK/Smad/Snail signalling axis. Our findings may provide a new insight into understanding the regulation mechanism of RACK1 in asthma pathogenesis. John Wiley and Sons Inc. 2020-02-17 2020-03 /pmc/articles/PMC7131927/ /pubmed/32064783 http://dx.doi.org/10.1111/jcmm.15061 Text en © 2020 The Authors. Journal of Cellular and Molecular Medicine published by Foundation for Cellular and Molecular Medicine and John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Pu, Yue
Liu, Yuan‐qi
Zhou, Yan
Qi, Yi‐fan
Liao, Shi‐ping
Miao, Shi‐kun
Zhou, Li‐ming
Wan, Li‐hong
Dual role of RACK1 in airway epithelial mesenchymal transition and apoptosis
title Dual role of RACK1 in airway epithelial mesenchymal transition and apoptosis
title_full Dual role of RACK1 in airway epithelial mesenchymal transition and apoptosis
title_fullStr Dual role of RACK1 in airway epithelial mesenchymal transition and apoptosis
title_full_unstemmed Dual role of RACK1 in airway epithelial mesenchymal transition and apoptosis
title_short Dual role of RACK1 in airway epithelial mesenchymal transition and apoptosis
title_sort dual role of rack1 in airway epithelial mesenchymal transition and apoptosis
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7131927/
https://www.ncbi.nlm.nih.gov/pubmed/32064783
http://dx.doi.org/10.1111/jcmm.15061
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