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Yu-Ping-Feng Formula Ameliorates Alveolar-Capillary Barrier Injury Induced by Exhausted-Exercise via Regulation of Cytoskeleton

Background: Yu-ping-feng powder (YPF) is a compound traditional Chinese medicine extensively used in China for respiratory diseases. However, the role of YPF in alveolar-capillary barrier dysfunction remains unknown. This study aimed to explore the effect and potential mechanism of YPF on alveolar-c...

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Autores principales: Wang, Di, Li, Quan, Pan, Chun-Shui, Yan, Li, Sun, Kai, Wang, Xiao-Yi, Anwaier, Gulinigaer, Liao, Qian-Zan, Xie, Ting-Ting, Fan, Jing-Yu, Huo, Xin-Mei, Wang, Yuan, Han, Jing-Yan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9263595/
https://www.ncbi.nlm.nih.gov/pubmed/35814249
http://dx.doi.org/10.3389/fphar.2022.891802
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author Wang, Di
Li, Quan
Pan, Chun-Shui
Yan, Li
Sun, Kai
Wang, Xiao-Yi
Anwaier, Gulinigaer
Liao, Qian-Zan
Xie, Ting-Ting
Fan, Jing-Yu
Huo, Xin-Mei
Wang, Yuan
Han, Jing-Yan
author_facet Wang, Di
Li, Quan
Pan, Chun-Shui
Yan, Li
Sun, Kai
Wang, Xiao-Yi
Anwaier, Gulinigaer
Liao, Qian-Zan
Xie, Ting-Ting
Fan, Jing-Yu
Huo, Xin-Mei
Wang, Yuan
Han, Jing-Yan
author_sort Wang, Di
collection PubMed
description Background: Yu-ping-feng powder (YPF) is a compound traditional Chinese medicine extensively used in China for respiratory diseases. However, the role of YPF in alveolar-capillary barrier dysfunction remains unknown. This study aimed to explore the effect and potential mechanism of YPF on alveolar-capillary barrier injury induced by exhausted exercise. Methods: Male Sprague–Dawley rats were used to establish an exhausted-exercise model by using a motorized rodent treadmill. YPF at doses of 2.18 g/kg was administrated by gavage before exercise training for 10 consecutive days. Food intake-weight/body weight, blood gas analysis, lung water percent content, BALF protein concentration, morphological observation, quantitative proteomics, real-time PCR, and Western blot were performed. A rat pulmonary microvascular endothelial cell line (PMVEC) subjected to hypoxia was applied for assessing the related mechanism. Results: YPF attenuated the decrease of food intake weight/body weight, improved lung swelling and hemorrhage, alleviated the increase of lung water percent content and BALF protein concentration, and inhibited the impairment of lung morphology. In addition, YPF increased the expression of claudin 3, claudin 18, occludin, VE-cadherin, and β-catenin, attenuated the epithelial and endothelial hyperpermeability in vivo and/or in vitro, and the stress fiber formation in PMVECs after hypoxia. Quantitative proteomics discovered that the effect of YPF implicated the Siah2-ubiquitin-proteasomal pathway, Gng12-PAK1-MLCK, and RhoA/ROCK, which was further confirmed by Western blot. Data are available via ProteomeXchange with identifier PXD032737. Conclusion: YPF ameliorated alveolar-capillary barrier injury induced by exhausted exercise, which is accounted for at least partly by the regulation of cytoskeleton.
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spelling pubmed-92635952022-07-09 Yu-Ping-Feng Formula Ameliorates Alveolar-Capillary Barrier Injury Induced by Exhausted-Exercise via Regulation of Cytoskeleton Wang, Di Li, Quan Pan, Chun-Shui Yan, Li Sun, Kai Wang, Xiao-Yi Anwaier, Gulinigaer Liao, Qian-Zan Xie, Ting-Ting Fan, Jing-Yu Huo, Xin-Mei Wang, Yuan Han, Jing-Yan Front Pharmacol Pharmacology Background: Yu-ping-feng powder (YPF) is a compound traditional Chinese medicine extensively used in China for respiratory diseases. However, the role of YPF in alveolar-capillary barrier dysfunction remains unknown. This study aimed to explore the effect and potential mechanism of YPF on alveolar-capillary barrier injury induced by exhausted exercise. Methods: Male Sprague–Dawley rats were used to establish an exhausted-exercise model by using a motorized rodent treadmill. YPF at doses of 2.18 g/kg was administrated by gavage before exercise training for 10 consecutive days. Food intake-weight/body weight, blood gas analysis, lung water percent content, BALF protein concentration, morphological observation, quantitative proteomics, real-time PCR, and Western blot were performed. A rat pulmonary microvascular endothelial cell line (PMVEC) subjected to hypoxia was applied for assessing the related mechanism. Results: YPF attenuated the decrease of food intake weight/body weight, improved lung swelling and hemorrhage, alleviated the increase of lung water percent content and BALF protein concentration, and inhibited the impairment of lung morphology. In addition, YPF increased the expression of claudin 3, claudin 18, occludin, VE-cadherin, and β-catenin, attenuated the epithelial and endothelial hyperpermeability in vivo and/or in vitro, and the stress fiber formation in PMVECs after hypoxia. Quantitative proteomics discovered that the effect of YPF implicated the Siah2-ubiquitin-proteasomal pathway, Gng12-PAK1-MLCK, and RhoA/ROCK, which was further confirmed by Western blot. Data are available via ProteomeXchange with identifier PXD032737. Conclusion: YPF ameliorated alveolar-capillary barrier injury induced by exhausted exercise, which is accounted for at least partly by the regulation of cytoskeleton. Frontiers Media S.A. 2022-06-24 /pmc/articles/PMC9263595/ /pubmed/35814249 http://dx.doi.org/10.3389/fphar.2022.891802 Text en Copyright © 2022 Wang, Li, Pan, Yan, Sun, Wang, Anwaier, Liao, Xie, Fan, Huo, Wang and Han. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Pharmacology
Wang, Di
Li, Quan
Pan, Chun-Shui
Yan, Li
Sun, Kai
Wang, Xiao-Yi
Anwaier, Gulinigaer
Liao, Qian-Zan
Xie, Ting-Ting
Fan, Jing-Yu
Huo, Xin-Mei
Wang, Yuan
Han, Jing-Yan
Yu-Ping-Feng Formula Ameliorates Alveolar-Capillary Barrier Injury Induced by Exhausted-Exercise via Regulation of Cytoskeleton
title Yu-Ping-Feng Formula Ameliorates Alveolar-Capillary Barrier Injury Induced by Exhausted-Exercise via Regulation of Cytoskeleton
title_full Yu-Ping-Feng Formula Ameliorates Alveolar-Capillary Barrier Injury Induced by Exhausted-Exercise via Regulation of Cytoskeleton
title_fullStr Yu-Ping-Feng Formula Ameliorates Alveolar-Capillary Barrier Injury Induced by Exhausted-Exercise via Regulation of Cytoskeleton
title_full_unstemmed Yu-Ping-Feng Formula Ameliorates Alveolar-Capillary Barrier Injury Induced by Exhausted-Exercise via Regulation of Cytoskeleton
title_short Yu-Ping-Feng Formula Ameliorates Alveolar-Capillary Barrier Injury Induced by Exhausted-Exercise via Regulation of Cytoskeleton
title_sort yu-ping-feng formula ameliorates alveolar-capillary barrier injury induced by exhausted-exercise via regulation of cytoskeleton
topic Pharmacology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9263595/
https://www.ncbi.nlm.nih.gov/pubmed/35814249
http://dx.doi.org/10.3389/fphar.2022.891802
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