Cargando…

Acetyl oxygen benzoate engeletin ester promotes KLF4 degradation leading to the attenuation of pulmonary fibrosis via inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway

Pulmonary fibrosis is a common pulmonary interstitial disease of pathogenesis without effective drugs for treatment. Therefore, discovering new and effective drugs is urgently needed. In the present study, we prepared a novel compound named acetyl oxygen benzoate engeletin ester (AOBEE), investigate...

Descripción completa

Detalles Bibliográficos
Autores principales: Shen, Ke, Li, Ruiqiong, Zhang, Xiaoli, Qu, Guiwu, Li, Rongrong, Wang, Youlei, Liu, Bo, Lv, Changjun, Li, Minge, Song, Xiaodong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8202900/
https://www.ncbi.nlm.nih.gov/pubmed/33929970
http://dx.doi.org/10.18632/aging.202975
_version_ 1783708059107852288
author Shen, Ke
Li, Ruiqiong
Zhang, Xiaoli
Qu, Guiwu
Li, Rongrong
Wang, Youlei
Liu, Bo
Lv, Changjun
Li, Minge
Song, Xiaodong
author_facet Shen, Ke
Li, Ruiqiong
Zhang, Xiaoli
Qu, Guiwu
Li, Rongrong
Wang, Youlei
Liu, Bo
Lv, Changjun
Li, Minge
Song, Xiaodong
author_sort Shen, Ke
collection PubMed
description Pulmonary fibrosis is a common pulmonary interstitial disease of pathogenesis without effective drugs for treatment. Therefore, discovering new and effective drugs is urgently needed. In the present study, we prepared a novel compound named acetyl oxygen benzoate engeletin ester (AOBEE), investigated its effect on experimental pulmonary fibrosis, and proposed a long non-coding RNA (lncRNA)-mediated mechanism of its action. Bleomycin-induced pulmonary fibrosis in mice exhibited that AOBEE improved forced vital capacity (FVC) and alveolar structure and inhibited α-SMA, vimentin, and collagen expression. TGFβ1-stimulated fibroblast L929 cells showed that AOBEE reduced these fibrotic proteins expression and inhibited the activated-fibroblast proliferation and migration. Whole transcriptome sequencing was performed to screen out lncRNA-lnc865 and lnc556 with high expression under bleomycin treatment, but AOBEE caused a considerable decrease in lnc865 and lnc556. Mechanistic study elucidated that AOBEE alleviated pulmonary fibrosis through lnc865- and lnc556-mediated mechanism, in which both lnc865 and lnc556 sponged miR-29b-2-5p to target signal transducer and activator of transcription 3 (STAT3). Further signal pathway inhibitors and the Cignal Finder 45-pathway reporter array illustrated that the up- and downstream pathways were TGFβ1–smad2/3 and p38MAPK, and Krüppel-like factor 4 (KLF4), respectively. In conclusion, AOBEE promoted KLF4 degradation leading to the attenuation of pulmonary fibrosis by inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway. We hope this work will provide valuable information to design new drugs and therapeutic targets of lncRNAs for pulmonary fibrosis treatment.
format Online
Article
Text
id pubmed-8202900
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Impact Journals
record_format MEDLINE/PubMed
spelling pubmed-82029002021-06-15 Acetyl oxygen benzoate engeletin ester promotes KLF4 degradation leading to the attenuation of pulmonary fibrosis via inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway Shen, Ke Li, Ruiqiong Zhang, Xiaoli Qu, Guiwu Li, Rongrong Wang, Youlei Liu, Bo Lv, Changjun Li, Minge Song, Xiaodong Aging (Albany NY) Research Paper Pulmonary fibrosis is a common pulmonary interstitial disease of pathogenesis without effective drugs for treatment. Therefore, discovering new and effective drugs is urgently needed. In the present study, we prepared a novel compound named acetyl oxygen benzoate engeletin ester (AOBEE), investigated its effect on experimental pulmonary fibrosis, and proposed a long non-coding RNA (lncRNA)-mediated mechanism of its action. Bleomycin-induced pulmonary fibrosis in mice exhibited that AOBEE improved forced vital capacity (FVC) and alveolar structure and inhibited α-SMA, vimentin, and collagen expression. TGFβ1-stimulated fibroblast L929 cells showed that AOBEE reduced these fibrotic proteins expression and inhibited the activated-fibroblast proliferation and migration. Whole transcriptome sequencing was performed to screen out lncRNA-lnc865 and lnc556 with high expression under bleomycin treatment, but AOBEE caused a considerable decrease in lnc865 and lnc556. Mechanistic study elucidated that AOBEE alleviated pulmonary fibrosis through lnc865- and lnc556-mediated mechanism, in which both lnc865 and lnc556 sponged miR-29b-2-5p to target signal transducer and activator of transcription 3 (STAT3). Further signal pathway inhibitors and the Cignal Finder 45-pathway reporter array illustrated that the up- and downstream pathways were TGFβ1–smad2/3 and p38MAPK, and Krüppel-like factor 4 (KLF4), respectively. In conclusion, AOBEE promoted KLF4 degradation leading to the attenuation of pulmonary fibrosis by inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway. We hope this work will provide valuable information to design new drugs and therapeutic targets of lncRNAs for pulmonary fibrosis treatment. Impact Journals 2021-04-30 /pmc/articles/PMC8202900/ /pubmed/33929970 http://dx.doi.org/10.18632/aging.202975 Text en Copyright: © 2021 Shen et al. https://creativecommons.org/licenses/by/3.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/3.0/) (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Shen, Ke
Li, Ruiqiong
Zhang, Xiaoli
Qu, Guiwu
Li, Rongrong
Wang, Youlei
Liu, Bo
Lv, Changjun
Li, Minge
Song, Xiaodong
Acetyl oxygen benzoate engeletin ester promotes KLF4 degradation leading to the attenuation of pulmonary fibrosis via inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway
title Acetyl oxygen benzoate engeletin ester promotes KLF4 degradation leading to the attenuation of pulmonary fibrosis via inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway
title_full Acetyl oxygen benzoate engeletin ester promotes KLF4 degradation leading to the attenuation of pulmonary fibrosis via inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway
title_fullStr Acetyl oxygen benzoate engeletin ester promotes KLF4 degradation leading to the attenuation of pulmonary fibrosis via inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway
title_full_unstemmed Acetyl oxygen benzoate engeletin ester promotes KLF4 degradation leading to the attenuation of pulmonary fibrosis via inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway
title_short Acetyl oxygen benzoate engeletin ester promotes KLF4 degradation leading to the attenuation of pulmonary fibrosis via inhibiting TGFβ1–smad/p38MAPK–lnc865/lnc556–miR-29b-2-5p–STAT3 signal pathway
title_sort acetyl oxygen benzoate engeletin ester promotes klf4 degradation leading to the attenuation of pulmonary fibrosis via inhibiting tgfβ1–smad/p38mapk–lnc865/lnc556–mir-29b-2-5p–stat3 signal pathway
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8202900/
https://www.ncbi.nlm.nih.gov/pubmed/33929970
http://dx.doi.org/10.18632/aging.202975
work_keys_str_mv AT shenke acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway
AT liruiqiong acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway
AT zhangxiaoli acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway
AT quguiwu acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway
AT lirongrong acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway
AT wangyoulei acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway
AT liubo acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway
AT lvchangjun acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway
AT liminge acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway
AT songxiaodong acetyloxygenbenzoateengeletinesterpromotesklf4degradationleadingtotheattenuationofpulmonaryfibrosisviainhibitingtgfb1smadp38mapklnc865lnc556mir29b25pstat3signalpathway