Mechanical forces induce an asthma gene signature in healthy airway epithelial cells

被引:0
作者
Ayşe Kılıç
Asher Ameli
Jin-Ah Park
Alvin T. Kho
Kelan Tantisira
Marc Santolini
Feixiong Cheng
Jennifer A. Mitchel
Maureen McGill
Michael J. O’Sullivan
Margherita De Marzio
Amitabh Sharma
Scott H. Randell
Jeffrey M. Drazen
Jeffrey J. Fredberg
Scott T. Weiss
机构
[1] Brigham and Women’s Hospital,Channing Division of Network Medicine, Department of Medicine
[2] Northeastern University,Department of Physics
[3] Harvard TH Chan School of Public Health,Program in Molecular Integrative Phyisological Sciences, Department of Environmental Health
[4] Boston Children’s Hospital,Computational Health Informatics Program
[5] Centre for Research and Interdisciplinarity (CRI),Genomic Medicine Institute, Lerner Research Institute
[6] Cleveland Clinic,Department of Molecular Medicine, Cleveland Clinic Lerner College of Medicine
[7] Case Western Reserve University,Case Comprehensive Cancer Center
[8] Case Western Reserve University School of Medicine,Marsico Lung Institute/Cystic Fibrosis Center
[9] University of North Carolina,undefined
来源
Scientific Reports | / 10卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Bronchospasm compresses the bronchial epithelium, and this compressive stress has been implicated in asthma pathogenesis. However, the molecular mechanisms by which this compressive stress alters pathways relevant to disease are not well understood. Using air-liquid interface cultures of primary human bronchial epithelial cells derived from non-asthmatic donors and asthmatic donors, we applied a compressive stress and then used a network approach to map resulting changes in the molecular interactome. In cells from non-asthmatic donors, compression by itself was sufficient to induce inflammatory, late repair, and fibrotic pathways. Remarkably, this molecular profile of non-asthmatic cells after compression recapitulated the profile of asthmatic cells before compression. Together, these results show that even in the absence of any inflammatory stimulus, mechanical compression alone is sufficient to induce an asthma-like molecular signature.
引用
收藏
相关论文
共 50 条
[31]   Patterns of gene expression in human airway epithelial cells [J].
Willey, JC ;
Frampton, MW ;
Utell, MJ ;
Apostolakos, MJ ;
Coy, EL ;
Olson, DE ;
Hammersley, JR ;
Matteson, D ;
Thilly, WG .
CHEST, 1997, 111 (06) :S83-S83
[32]   MECHANICAL FORCES ATTENUATE ANTI-VIRAL IMMUNITY IN PRIMARY HUMAN AIRWAY EPITHELIAL CELLS FROM ASTHMATIC DONORS [J].
Veerati, Punnam ;
Bartlett, Nathan ;
Parsons, Kristy ;
Moheimani, Fatemeh ;
Wark, Peter ;
Knight, Darryl ;
Grainge, Chris .
RESPIROLOGY, 2017, 22 :37-37
[33]   Mechanical forces suppress antiviral innate immune responses from asthmatic airway epithelial cells following rhinovirus infection [J].
Veerati, Punnam Chander ;
Reid, Andrew T. ;
Nichol, Kristy S. ;
Wark, Peter A. B. ;
Knight, Darryl A. ;
Bartlett, Nathan W. ;
Grainge, Christopher L. .
AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 2023, 325 (02) :L206-L214
[34]   Rhinoviral infection and asthma: the detection and management of rhinoviruses by airway epithelial cells [J].
Parker, L. C. ;
Stokes, C. A. ;
Sabroe, I. .
CLINICAL AND EXPERIMENTAL ALLERGY, 2014, 44 (01) :20-28
[35]   The Strength of Mechanical Forces Determines the Differentiation of Alveolar Epithelial Cells [J].
Li, Jiao ;
Wang, Zheng ;
Chu, Qiqi ;
Jiang, Kewu ;
Li, Juan ;
Tang, Nan .
DEVELOPMENTAL CELL, 2018, 44 (03) :297-+
[36]   MICE DEFICIENT IN AN ASTHMA CANDIDATE GENE HAVE INCREASED EPITHELIAL DENUDATION, REMODELING AND AIRWAY HYPERRESPONSIVENESS IN A MODEL OF AIRWAY EPITHELIAL DAMAGE [J].
Royce, Simon G. ;
Lopez, Christie ;
Li, Xuelei ;
Judd, Louise M. ;
Giraud, Andy S. ;
Samuel, Chrishan S. ;
Tang, Mimi L. K. .
WOUND REPAIR AND REGENERATION, 2012, 20 (05) :A109-A109
[37]   Kaempferol Suppresses Eosionphil Infiltration and Airway Inflammation in Airway Epithelial Cells and in Mice with Allergic Asthma [J].
Gong, Ju-Hyun ;
Shin, Daekeun ;
Han, Seon-Young ;
Kim, Jung-Lye ;
Kang, Young-Hee .
JOURNAL OF NUTRITION, 2012, 142 (01) :47-56
[38]   Copper oxide nanoparticles induce oxidative stress and cytotoxicity in airway epithelial cells [J].
Fahmy, Baher ;
Cormier, Stephania A. .
TOXICOLOGY IN VITRO, 2009, 23 (07) :1365-1371
[39]   Neutrophil Extracellular DNA Traps Induce Autoantigen Production by Airway Epithelial Cells [J].
Choi, Youngwoo ;
Le Duy Pham ;
Lee, Dong-Hyun ;
Ban, Ga-Young ;
Lee, Ji-Ho ;
Kim, Seung-Hyun ;
Park, Hae-Sim .
MEDIATORS OF INFLAMMATION, 2017, 2017
[40]   Senescent human bronchial epithelial cells induce small airway fibrosis in mice [J].
Saito, Nayuta ;
Ines Hernandez, Fernanda ;
Pietrocola, Federico ;
Serrano, Manuel .
EUROPEAN RESPIRATORY JOURNAL, 2021, 58