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LDLR dysfunction induces LDL accumulation and promotes pulmonary fibrosis

Treatments for pulmonary fibrosis (PF) are ineffective because its molecular pathogenesis and therapeutic targets are unclear. Here, we show that the expression of low‐density lipoprotein receptor (LDLR) was significantly decreased in alveolar type II (ATII) and fibroblast cells, whereas it was incr...

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Autores principales: Shi, Xiangguang, Chen, Yahui, Liu, Qingmei, Mei, Xueqian, Liu, Jing, Tang, Yulong, Luo, Ruoyu, Sun, Dayan, Ma, Yanyun, Wu, Wenyu, Tu, Wenzhen, Zhao, Yinhuan, Xu, Weihong, Ke, Yuehai, Jiang, Shuai, Huang, Yan, Zhang, Rui, Wang, Lei, Chen, Yuanyuan, Xia, Jingjing, Pu, Weilin, Zhu, Honglin, Zuo, Xiaoxia, Li, Yisha, Xu, Jinhua, Gao, Fei, Wei, Dong, Chen, Jingyu, Yin, Wenguang, Wang, Qingwen, Dai, Huaping, Yang, Libing, Guo, Gang, Cui, Jimin, Song, Nana, Zou, Hejian, Zhao, Shimin, Distler, Jörg H.W., Jin, Li, Wang, Jiucun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8792399/
https://www.ncbi.nlm.nih.gov/pubmed/35083881
http://dx.doi.org/10.1002/ctm2.711
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author Shi, Xiangguang
Chen, Yahui
Liu, Qingmei
Mei, Xueqian
Liu, Jing
Tang, Yulong
Luo, Ruoyu
Sun, Dayan
Ma, Yanyun
Wu, Wenyu
Tu, Wenzhen
Zhao, Yinhuan
Xu, Weihong
Ke, Yuehai
Jiang, Shuai
Huang, Yan
Zhang, Rui
Wang, Lei
Chen, Yuanyuan
Xia, Jingjing
Pu, Weilin
Zhu, Honglin
Zuo, Xiaoxia
Li, Yisha
Xu, Jinhua
Gao, Fei
Wei, Dong
Chen, Jingyu
Yin, Wenguang
Wang, Qingwen
Dai, Huaping
Yang, Libing
Guo, Gang
Cui, Jimin
Song, Nana
Zou, Hejian
Zhao, Shimin
Distler, Jörg H.W.
Jin, Li
Wang, Jiucun
author_facet Shi, Xiangguang
Chen, Yahui
Liu, Qingmei
Mei, Xueqian
Liu, Jing
Tang, Yulong
Luo, Ruoyu
Sun, Dayan
Ma, Yanyun
Wu, Wenyu
Tu, Wenzhen
Zhao, Yinhuan
Xu, Weihong
Ke, Yuehai
Jiang, Shuai
Huang, Yan
Zhang, Rui
Wang, Lei
Chen, Yuanyuan
Xia, Jingjing
Pu, Weilin
Zhu, Honglin
Zuo, Xiaoxia
Li, Yisha
Xu, Jinhua
Gao, Fei
Wei, Dong
Chen, Jingyu
Yin, Wenguang
Wang, Qingwen
Dai, Huaping
Yang, Libing
Guo, Gang
Cui, Jimin
Song, Nana
Zou, Hejian
Zhao, Shimin
Distler, Jörg H.W.
Jin, Li
Wang, Jiucun
author_sort Shi, Xiangguang
collection PubMed
description Treatments for pulmonary fibrosis (PF) are ineffective because its molecular pathogenesis and therapeutic targets are unclear. Here, we show that the expression of low‐density lipoprotein receptor (LDLR) was significantly decreased in alveolar type II (ATII) and fibroblast cells, whereas it was increased in endothelial cells from systemic sclerosis‐related PF (SSc‐PF) patients and idiopathic PF (IPF) patients compared with healthy controls. However, the plasma levels of low‐density lipoprotein (LDL) increased in SSc‐PF and IPF patients. The disrupted LDL–LDLR metabolism was also observed in four mouse PF models. Upon bleomycin (BLM) treatment, Ldlr‐deficient (Ldlr−/−) mice exhibited remarkably higher LDL levels, abundant apoptosis, increased fibroblast‐like endothelial and ATII cells and significantly earlier and more severe fibrotic response compared to wild‐type mice. In vitro experiments revealed that apoptosis and TGF‐β1 production were induced by LDL, while fibroblast‐like cell accumulation and ET‐1 expression were induced by LDLR knockdown. Treatment of fibroblasts with LDL or culture medium derived from LDL‐pretreated endothelial or epithelial cells led to obvious fibrotic responses in vitro. Similar results were observed after LDLR knockdown operation. These results suggest that disturbed LDL–LDLR metabolism contributes in various ways to the malfunction of endothelial and epithelial cells, and fibroblasts during pulmonary fibrogenesis. In addition, pharmacological restoration of LDLR levels by using a combination of atorvastatin and alirocumab inhibited BLM‐induced LDL elevation, apoptosis, fibroblast‐like cell accumulation and mitigated PF in mice. Therefore, LDL–LDLR may serve as an important mediator in PF, and LDLR enhancing strategies may have beneficial effects on PF.
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spelling pubmed-87923992022-02-04 LDLR dysfunction induces LDL accumulation and promotes pulmonary fibrosis Shi, Xiangguang Chen, Yahui Liu, Qingmei Mei, Xueqian Liu, Jing Tang, Yulong Luo, Ruoyu Sun, Dayan Ma, Yanyun Wu, Wenyu Tu, Wenzhen Zhao, Yinhuan Xu, Weihong Ke, Yuehai Jiang, Shuai Huang, Yan Zhang, Rui Wang, Lei Chen, Yuanyuan Xia, Jingjing Pu, Weilin Zhu, Honglin Zuo, Xiaoxia Li, Yisha Xu, Jinhua Gao, Fei Wei, Dong Chen, Jingyu Yin, Wenguang Wang, Qingwen Dai, Huaping Yang, Libing Guo, Gang Cui, Jimin Song, Nana Zou, Hejian Zhao, Shimin Distler, Jörg H.W. Jin, Li Wang, Jiucun Clin Transl Med Research Articles Treatments for pulmonary fibrosis (PF) are ineffective because its molecular pathogenesis and therapeutic targets are unclear. Here, we show that the expression of low‐density lipoprotein receptor (LDLR) was significantly decreased in alveolar type II (ATII) and fibroblast cells, whereas it was increased in endothelial cells from systemic sclerosis‐related PF (SSc‐PF) patients and idiopathic PF (IPF) patients compared with healthy controls. However, the plasma levels of low‐density lipoprotein (LDL) increased in SSc‐PF and IPF patients. The disrupted LDL–LDLR metabolism was also observed in four mouse PF models. Upon bleomycin (BLM) treatment, Ldlr‐deficient (Ldlr−/−) mice exhibited remarkably higher LDL levels, abundant apoptosis, increased fibroblast‐like endothelial and ATII cells and significantly earlier and more severe fibrotic response compared to wild‐type mice. In vitro experiments revealed that apoptosis and TGF‐β1 production were induced by LDL, while fibroblast‐like cell accumulation and ET‐1 expression were induced by LDLR knockdown. Treatment of fibroblasts with LDL or culture medium derived from LDL‐pretreated endothelial or epithelial cells led to obvious fibrotic responses in vitro. Similar results were observed after LDLR knockdown operation. These results suggest that disturbed LDL–LDLR metabolism contributes in various ways to the malfunction of endothelial and epithelial cells, and fibroblasts during pulmonary fibrogenesis. In addition, pharmacological restoration of LDLR levels by using a combination of atorvastatin and alirocumab inhibited BLM‐induced LDL elevation, apoptosis, fibroblast‐like cell accumulation and mitigated PF in mice. Therefore, LDL–LDLR may serve as an important mediator in PF, and LDLR enhancing strategies may have beneficial effects on PF. John Wiley and Sons Inc. 2022-01-26 /pmc/articles/PMC8792399/ /pubmed/35083881 http://dx.doi.org/10.1002/ctm2.711 Text en © 2022 The Authors. Clinical and Translational Medicine published by John Wiley & Sons Australia, Ltd on behalf of Shanghai Institute of Clinical Bioinformatics https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Shi, Xiangguang
Chen, Yahui
Liu, Qingmei
Mei, Xueqian
Liu, Jing
Tang, Yulong
Luo, Ruoyu
Sun, Dayan
Ma, Yanyun
Wu, Wenyu
Tu, Wenzhen
Zhao, Yinhuan
Xu, Weihong
Ke, Yuehai
Jiang, Shuai
Huang, Yan
Zhang, Rui
Wang, Lei
Chen, Yuanyuan
Xia, Jingjing
Pu, Weilin
Zhu, Honglin
Zuo, Xiaoxia
Li, Yisha
Xu, Jinhua
Gao, Fei
Wei, Dong
Chen, Jingyu
Yin, Wenguang
Wang, Qingwen
Dai, Huaping
Yang, Libing
Guo, Gang
Cui, Jimin
Song, Nana
Zou, Hejian
Zhao, Shimin
Distler, Jörg H.W.
Jin, Li
Wang, Jiucun
LDLR dysfunction induces LDL accumulation and promotes pulmonary fibrosis
title LDLR dysfunction induces LDL accumulation and promotes pulmonary fibrosis
title_full LDLR dysfunction induces LDL accumulation and promotes pulmonary fibrosis
title_fullStr LDLR dysfunction induces LDL accumulation and promotes pulmonary fibrosis
title_full_unstemmed LDLR dysfunction induces LDL accumulation and promotes pulmonary fibrosis
title_short LDLR dysfunction induces LDL accumulation and promotes pulmonary fibrosis
title_sort ldlr dysfunction induces ldl accumulation and promotes pulmonary fibrosis
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8792399/
https://www.ncbi.nlm.nih.gov/pubmed/35083881
http://dx.doi.org/10.1002/ctm2.711
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