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Burette, A.

Publications and source records attributed to Burette, A..

3 recordsLinked to original sources

Galectin-3 recruitment at the Mycobacterium tuberculosis-containing phagosome is critical in macrophage but dispensable in epithelial cells

Mycobacterium tuberculosis (Mtb) virulence relies in part on its ability to induce phagosomal membrane rupture, enabling bacterial access to the host cell cytosol. This process is largely mediated by the ESX-1 secretion system, which is present in Mtb but absent from the vaccine strain BCG. Galectin-3 (Gal3), a {beta}-galactoside-binding lectin, is recruited to damaged endomembranes and functions as a cytosolic sensor of membrane disruption. However, the kinetics and quantitative features of Gal3 recruitment to Mtb-containing vacuoles have remained poorly characterized. Here, we performed a longitudinal quantitative imaging study of Gal3 recruitment in human macrophages over a five-day infection period. Gal3 was recruited to mycobacteria-containing vacuoles shortly after infection with both live and heat-killed Mtb. Differences between the two conditions emerged from day 1 post-infection and persisted until macrophage death. A similar kinetic profile was observed with recombinant BCG::ESX-1, whereas parental BCG failed to induce Gal3 recruitment, confirming the requirement for ESX-1-dependent membrane damage. Cytoplasmic Gal3 levels were higher in bystander macrophages than in infected cells and were comparable to non-infected controls, suggesting that diffuse cytoplasmic Gal3 is associated with cells lacking intracellular mycobacteria. Functional studies revealed that Gal3 silencing enhanced long-term intracellular Mtb replication, demonstrating a role for Gal3 in restricting bacterial growth. Importantly, Gal3 recruitment was not observed in alveolar epithelial cells. This cell-type specificity was confirmed in a microfluidic alveolus-on-chip model. Together, these findings identify sustained Gal3 recruitment to the mycobacteria-containing vacuole as a robust quantitative marker of ESX-1-dependent phagosomal rupture and Mtb virulence.

microbiology↗

Development of a cost-effective Alveolus-on-Chip for studying Mycobacterium tuberculosis infection.

We developed a cost-effective human alveolus-on-chip based on 3D printing molds (3DP-Lung) to study early events of Mycobacterium tuberculosis (Mtb) infection in a physiologically human relevant microenvironment. This organ-on-chip platform is compatible with advanced imaging and recreates the alveolar-capillary interface by co-culturing primary human alveolar epithelial cells, endothelial cells and macrophages. We show that epithelial-only models display limited susceptibility to Mtb infection, whereas the integration of macrophages significantly enhances infection levels of the alveolar barrier and supports intracellular bacterial replication. Quantitative imaging reveals that macrophages act as a permissive niche, promoting Mtb infection of both epithelial and endothelial compartments. This accessible organ-on-chip platform enables robust modeling of early events of host-respiratory pathogen interactions and provides a valuable tool for studying tuberculosis pathogenesis in human-relevant conditions. More broadly, it lowers technical and economic barriers to accelerate the adoption of organ-on-chip technologies for studying human specific infection. SummaryA cost-effective human alveolus-on-chip enables physiologically relevant modeling of early host pathogen interaction and revealing a key role of macrophages in Mycobacterium tuberculosis infection

microbiology↗

Gut-on-Chip Methodology Based on 3D-Printed Molds: A Cost-Effective and Accessible Approach

1Gut-on-chips (GoC) represent a disruptive technology with great potential to understand the underlying mechanisms of gut health and pathology. Researchers who want to implement this approach, can either use expensive commercial microfluidic chips or build them from scratch in their lab. However, the design of such devices demands specific technical skills and expertise in computer assisted design (CAD). Additionally, the fabrication of the master molds for the chip production is very costly, time consuming and requires dedicated microfabrication facilities. Thus, the diffusion of these models in biology and health research laboratories remains limited due to this technological complexity and lack of affordability. In order to break these two bottlenecks, we present here the 3DP-{micro}Gut with open access designs and a simple fabrication approach based on a commercial 3D printer intended for general users. To ensure a good reproducibility with a sufficient number of available replicates for biological experiments, the method has been optimized to allow the production of multiple GoC per batch. The chips were also improved for confocal live imaging microscopy analyses. The chips are designed to be compatible with different types of microfluidics pumps, from stand-alone to completely integrated instrumentation. As a proof of concept, Caco-2 cells were seeded inside the fabricated GoC to validate their biocompatibility and functionality. After 7 days of maturation, cells self-differentiated in a 3D epithelium resembling in vivo expected structures. In summary we proposed a low-cost and open access GoC design and fabrication method with medium throughput. These results demonstrate the advantage of using 3D SLA printing to accelerate GoC implementation for gut physiopathology research.

bioengineering↗