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Goodwin, A. T.

Publications and source records attributed to Goodwin, A. T..

2 recordsLinked to original sources

Differential remodelling in small and large murine airways revealed by novel whole lung airway analysis.

Airway remodelling occurs in chronic asthma leading to increased airway smooth muscle (ASM) mass and extra-cellular matrix (ECM) deposition. Whilst extensively studied in murine airways; studies report only selected larger airways at one time point meaning the spatial distribution and resolution of remodelling are poorly understood. Here we use a new method allowing comprehensive assessment of the spatial and temporal changes in ASM, ECM and epithelium in large numbers of murine airways after allergen challenge. Using image processing to analyse 20-50 airways from a whole lung section revealed increases in ASM and ECM after allergen challenge were greater in small and large rather than intermediate airways. ASM predominantly accumulated adjacent to the basement membrane whereas ECM was distributed across the airway wall. Epithelial hyperplasia was most marked in small and intermediate airways. Post challenge, ASM changes resolved over seven days whereas ECM and epithelial changes persisted. The new method suggests large and small airways remodel differently and the long-term consequences of airway inflammation may depend more on ECM and epithelial changes than ASM. The method reduces the number of animals needed, reveals important spatial differences in remodelling and could set new analysis standards for murine asthma models.

physiology↗

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↗