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Lyall, E.

Publications and source records attributed to Lyall, E..

2 recordsLinked to original sources

Engineering a Multilayer Microfluidic Airway-On-A-Chip with Tunable GelMA Hydrogel for Physiologically Relevant Aerosol Exposure Studies

Climate change-driven increases in forest fires pose a major global health risk due to exposure to smoke containing hazardous gases and fine particulates, emphasizing the need for physiologically relevant in vitro airway models for studying smoke-induced responses. Microfluidic lung-on-a-chip technologies provide a strong foundation for in vitro airway modeling and ongoing developments are expanding their ability to incorporate multicellular organization, extracellular matrix complexity, and physiologically relevant exposure methods. This work presents the optimization and integration of a photopolymerizable gelatin methacrylate (GelMA)-based hydrogel into a microfluidic airway-on-a-chip that models the human small conducting airways and supports controlled aerosol exposure to wood smoke. The GelMA hydrogel was optimized to support fibroblast encapsulation, endothelial, and epithelial adhesion and robust mechanical stability. The device combines the hydrogel with a compartmentalized microchannel layout, and sacrificial molding to create a 3D organotypic airway culture featuring a multilayer architecture, 3D stromal matrix, and a perfusable vasculature-like lumen. Coupling the platform with a custom aerosol exposure system enables precise, biomimetic exposure to whole wood smoke. Proof-of-concept studies using transforming growth factor beta1 (TGF-{beta}1) and whole wood smoke elicited expected inflammatory and fibrotic responses, validating the platforms physiological relevance for inhalation studies and investigating smoke-induced airway remodeling and inflammation.

bioengineering↗

Osmotic conditions shape fitness gains and resistance mechanisms during E. coli and T4 phage co-evolution

Environmental conditions strongly influence interactions between bacteria and bacterio-phages (phages). Here, we examined how osmolality (solute concentration) shapes the in vitro co-evolution of T4 phage and its host Escherichia coli during serial passage. When evolved independently, we observed substantial fitness gains in both bacteria and phages, particularly in high osmotic conditions. During co-evolution, however, fitness gains were limited, bacterial populations consistently evolved phage resistance, and several phage populations went extinct. Furthermore, the resistance mechanisms varied by osmolality. In lower osmolalities, mutations disrupted phage binding sites, conferring strong resistance. In higher osmolalities, mutations led to increased colonic acid production, producing a mucoid phenotype with weaker resistance. Because mucoidy has been associated with increased bacterial virulence, these findings suggest that gut-relevant osmotic conditions may constrain evolutionary trajectories, favoring resistance strategies that are less effective against phage but potentially more virulent, with important implications for phage therapy design. SignificancePhages offer a promising alternative to antibiotics, but their safety and efficacy strongly depends on the environmental conditions where the bacteria and phages interact. In the human gut, for instance, solute concentrations can vary widely due to factors like food intolerances or laxative use. In this study, we show that such variations significantly impact how bacteria and phages co-evolve. In particular, we find that in higher osmolalities, bacteria evolve phage resistance through mucoidy - a phenotype linked with increased bacterial virulence - rather than receptor loss. This highlights the need to consider environmental factors when developing phage therapies.

microbiology↗