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Wong-Ng, J.

Publications and source records attributed to Wong-Ng, J..

2 recordsLinked to original sources

Modeling viral and bacterial infections in human lung organotypic systems reveals strain specific host responses

In this study, we developed novel lung organoid-on-chip models that elucidate differential human tissue response to various strains of respiratory pathogens: Streptococcus pneumoniae and SARS-CoV-2. We show that human fetal-derived distal lung epithelial cells are readily expandable in 3D as organoids, thereby providing a highly sustainable source of lung progenitor cells. These 3D organoid progenitors can then be induced to produce airway and alveolar organoids on microfluidic devices. Upon challenge with Streptococcus pneumoniae, a bacterium known to cause pneumonia, a rapid and strain-dependent colonization was observed at the epithelial surface of alveolar chips. We also assessed SARS-CoV-2 infection in the alveoli-on-chip system and observed that the Delta variant exhibited greater infectivity as compared to the Omicron BA.5. Both SARS-CoV-2 variants induced potent interferon responses and triggered the expression of different interferon-stimulated genes. Our results demonstrate that strain-specific host defense mechanisms can be recapitulated in human-organoid-based microfluidic systems, paving the way for the use of such platforms for more targeted assessments of human response to novel emergent pathogen strains. HighlightsO_LIHuman fetal epithelial lung stem cells can be expanded as multipotent organoids and differentiated into both airway or alveolar organoids C_LIO_LIMultipotent lung organoids efficiently produce functional epithelia of small airway or alveoli when grown on-chip. C_LIO_LIStreptococcus pneumoniae inoculation in alveoli-on-chip mimics the early stages of bacterial colonization in lung epithelia C_LIO_LIAlveoli on-chip system recapitulates variant-specific interactions. SARS-CoV-2 Delta replicates but not Omicron BA.5. C_LIO_LIRobust interferon response upon SARS-CoV-2 infection shows Alveoli on-chip can model innate immune responses. C_LI

bioengineering↗

Infection-on-Chip: an in vitro human vessel to study Neisseria meningitidis colonization and vascular damages

Systemic infections leading to sepsis are life-threatening conditions that remain difficult to treat, and the limitations of current experimental models hamper the development of innovative therapies. Animal models are constrained by species-specific differences, while 2D cell culture systems fail to capture the complex pathophysiology of infection. To overcome these limitations, we developed a laser photoablation-generated, three-dimensional microfluidic model of meningococcal vascular colonization, a human-specific bacterium that causes sepsis and meningitis. Laser photoablation-generated hydrogel engineering allows the reproduction of vascular networks that are major infection target sites, and this model provides the relevant microenvironment reproducing the physiological endothelial integrity and permeability in vitro. By comparing with a human-skin xenograft mouse model, we show that the model system not only replicates in vivo key features of the infection, but also enables quantitative assessment with a higher spatiotemporal resolution of bacterial microcolony growth, endothelial cytoskeleton rearrangement, vascular E-selectin expression, and neutrophil response upon infection. Our device thus provides a robust solution bridging the gap between animal and 2D cellular models, paving the way for a better understanding of disease progression and developing innovative therapeutics.

synthetic biology↗