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Splicing factor SRSF6 mediates pleural fibrosis

Pleural fibrosis is defined as an excessive deposition of extracellular matrix that results in destruction of the normal pleural tissue architecture and compromised function. Tuberculous pleurisy, asbestos injury, and rheumatoid pleurisy are main causes of pleural fibrosis. Pleural mesothelial cells...

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Autores principales: Liang, Li-Mei, Xiong, Liang, Cheng, Pei-Pei, Chen, Shuai-Jun, Feng, Xiao, Zhou, Ya-Ya, Niu, Qian, Wang, Meng, Chen, Qianlan, Song, Lin-Jie, Yu, Fan, He, Xin-Liang, Xiang, Fei, Wang, Xiaorong, Ye, Hong, Ma, Wan-Li
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8262297/
https://www.ncbi.nlm.nih.gov/pubmed/33905374
http://dx.doi.org/10.1172/jci.insight.146197
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author Liang, Li-Mei
Xiong, Liang
Cheng, Pei-Pei
Chen, Shuai-Jun
Feng, Xiao
Zhou, Ya-Ya
Niu, Qian
Wang, Meng
Chen, Qianlan
Song, Lin-Jie
Yu, Fan
He, Xin-Liang
Xiang, Fei
Wang, Xiaorong
Ye, Hong
Ma, Wan-Li
author_facet Liang, Li-Mei
Xiong, Liang
Cheng, Pei-Pei
Chen, Shuai-Jun
Feng, Xiao
Zhou, Ya-Ya
Niu, Qian
Wang, Meng
Chen, Qianlan
Song, Lin-Jie
Yu, Fan
He, Xin-Liang
Xiang, Fei
Wang, Xiaorong
Ye, Hong
Ma, Wan-Li
author_sort Liang, Li-Mei
collection PubMed
description Pleural fibrosis is defined as an excessive deposition of extracellular matrix that results in destruction of the normal pleural tissue architecture and compromised function. Tuberculous pleurisy, asbestos injury, and rheumatoid pleurisy are main causes of pleural fibrosis. Pleural mesothelial cells (PMCs) play a key role in pleural fibrosis. However, detailed mechanisms are poorly understood. Serine/arginine-rich protein SRSF6 belongs to a family of highly conserved RNA-binding splicing-factor proteins. Based on its known functions, SRSF6 should be expected to play a role in fibrotic diseases. However, the role of SRSF6 in pleural fibrosis remains unknown. In this study, SRSF6 protein was found to be increased in cells of tuberculous pleural effusions (TBPE) from patients, and decellularized TBPE, bleomycin, and TGF-β1 were confirmed to increase SRSF6 levels in PMCs. In vitro, SRSF6 mediated PMC proliferation and synthesis of the main fibrotic protein COL1A2. In vivo, SRSF6 inhibition prevented mouse experimental pleural fibrosis. Finally, activated SMAD2/3, increased SOX4, and depressed miRNA-506-3p were associated with SRSF6 upregulation in PMCs. These observations support a model in which SRSF6 induces pleural fibrosis through a cluster pathway, including SRSF6/WNT5A and SRSF6/SMAD1/5/9 signaling. In conclusion, we propose inhibition of the splicing factor SRSF6 as a strategy for treatment of pleural fibrosis.
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spelling pubmed-82622972021-07-13 Splicing factor SRSF6 mediates pleural fibrosis Liang, Li-Mei Xiong, Liang Cheng, Pei-Pei Chen, Shuai-Jun Feng, Xiao Zhou, Ya-Ya Niu, Qian Wang, Meng Chen, Qianlan Song, Lin-Jie Yu, Fan He, Xin-Liang Xiang, Fei Wang, Xiaorong Ye, Hong Ma, Wan-Li JCI Insight Research Article Pleural fibrosis is defined as an excessive deposition of extracellular matrix that results in destruction of the normal pleural tissue architecture and compromised function. Tuberculous pleurisy, asbestos injury, and rheumatoid pleurisy are main causes of pleural fibrosis. Pleural mesothelial cells (PMCs) play a key role in pleural fibrosis. However, detailed mechanisms are poorly understood. Serine/arginine-rich protein SRSF6 belongs to a family of highly conserved RNA-binding splicing-factor proteins. Based on its known functions, SRSF6 should be expected to play a role in fibrotic diseases. However, the role of SRSF6 in pleural fibrosis remains unknown. In this study, SRSF6 protein was found to be increased in cells of tuberculous pleural effusions (TBPE) from patients, and decellularized TBPE, bleomycin, and TGF-β1 were confirmed to increase SRSF6 levels in PMCs. In vitro, SRSF6 mediated PMC proliferation and synthesis of the main fibrotic protein COL1A2. In vivo, SRSF6 inhibition prevented mouse experimental pleural fibrosis. Finally, activated SMAD2/3, increased SOX4, and depressed miRNA-506-3p were associated with SRSF6 upregulation in PMCs. These observations support a model in which SRSF6 induces pleural fibrosis through a cluster pathway, including SRSF6/WNT5A and SRSF6/SMAD1/5/9 signaling. In conclusion, we propose inhibition of the splicing factor SRSF6 as a strategy for treatment of pleural fibrosis. American Society for Clinical Investigation 2021-05-24 /pmc/articles/PMC8262297/ /pubmed/33905374 http://dx.doi.org/10.1172/jci.insight.146197 Text en © 2021 Liang et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Liang, Li-Mei
Xiong, Liang
Cheng, Pei-Pei
Chen, Shuai-Jun
Feng, Xiao
Zhou, Ya-Ya
Niu, Qian
Wang, Meng
Chen, Qianlan
Song, Lin-Jie
Yu, Fan
He, Xin-Liang
Xiang, Fei
Wang, Xiaorong
Ye, Hong
Ma, Wan-Li
Splicing factor SRSF6 mediates pleural fibrosis
title Splicing factor SRSF6 mediates pleural fibrosis
title_full Splicing factor SRSF6 mediates pleural fibrosis
title_fullStr Splicing factor SRSF6 mediates pleural fibrosis
title_full_unstemmed Splicing factor SRSF6 mediates pleural fibrosis
title_short Splicing factor SRSF6 mediates pleural fibrosis
title_sort splicing factor srsf6 mediates pleural fibrosis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8262297/
https://www.ncbi.nlm.nih.gov/pubmed/33905374
http://dx.doi.org/10.1172/jci.insight.146197
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