Search bioRxivSearch

Biology subjects

John, A. E.

Publications and source records attributed to John, A. E..

2 recordsLinked to original sources

Lysyl oxidase-like 2 (LOXL2) is Increased in Asthma and Contributes to Asthmatic Airway Remodelling

Airway smooth muscle cells (ASM) are fundamental to asthma pathogenesis, influencing bronchoconstriction, airway hyper-responsiveness, and airway remodelling. Extracellular matrix (ECM) can influence tissue remodelling pathways, however, to date no study has investigated the effect of ASM ECM stiffness and crosslinking on the development of asthmatic airway remodelling. We hypothesised that TGF{beta} activation by ASM is influenced by ECM in asthma and sought to investigate the mechanisms involved. This study combines in vitro and in vivo approaches: human ASM cells were used in vitro to investigate basal TGF{beta} activation and expression of ECM crosslinking enzymes. Human bronchial biopsies from asthmatic and non-asthmatic donors were used to confirm LOXL2 expression ASM. A chronic ovalbumin model of asthma was used to study the effect of LOXL2 inhibition on airway remodelling. We found that ASM cells from asthmatics activated more TGF{beta} basally than non-asthmatic controls and that diseased cell-derived ECM influences levels of TGF{beta} activated. Our data demonstrate that the ECM crosslinking enzyme LOXL2 is increased in asthmatic ASM cells and in bronchial biopsies. Crucially, we show that LOXL2 inhibition reduces ECM stiffness and TGF{beta} activation in vitro, and can reduce subepithelial collagen deposition and ASM thickness, two features of airway remodelling, in an ovalbumin mouse model of asthma. These data are the first to highlight a role for LOXL2 in the development of asthmatic airway remodelling and suggest that LOXL2 inhibition warrants further investigation as a potential therapy to reduce remodelling of the airways in severe asthma.

cell biology

Stretch Regulates Alveologenesis Via Mesenchymal Gαq/11-Mediated TGFβ2 Activation

Alveolar development and repair require tight spatiotemporal regulation of numerous signalling pathways that are influenced by chemical and mechanical stimuli. Mesenchymal cells play key roles in numerous developmental processes. Transforming growth factor-{beta} (TGF{beta}) is essential for alveologenesis and lung repair, and the G protein subunits Gq and G11 (Gq/11) transmit mechanical and chemical signals to activate TGF{beta} in epithelial cells. To understand the role of mesenchymal Gq/11 in lung development, we generated constitutive (Pdgfrb-Cre+/-;Gnaqfl/fl;Gna11-/-) and inducible (Pdgfrb-Cre/ERT2+/-;Gnaqfl/fl;Gna11-/-) mesenchymal Gq/11 deleted mice. Mice with constitutive Gq/11 gene deletion exhibited abnormal alveolar development, with suppressed myofibroblast differentiation, altered mesenchymal cell synthetic function, and reduced lung TGF{beta}2 deposition, as well as kidney abnormalities. Tamoxifen-induced mesenchymal Gq/11 gene deletion in adult mice resulted in emphysema associated with reduced TGF{beta}2 and elastin deposition. Cyclical mechanical stretch-induced TGF{beta} activation required Gq/11 signalling and serine protease activity, but was independent of integrins, suggesting an isoform-specific role for TGF{beta}2. These data highlight a previously undescribed mechanism of cyclical stretch-induced Gq/11-dependent TGF{beta}2 signalling in mesenchymal cells, which is imperative for normal alveologenesis and maintenance of lung homeostasis. Summary statementMesenchymal cell Gq/11 signalling regulates myofibroblast function and stretch-mediated TGF{beta}2 signalling, which are important for alveologenesis and organ homeostasis. These mechanisms are relevant to both developmental and adult lung disease.

developmental biology