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Beltran, C. G. G.

Publications and source records attributed to Beltran, C. G. G..

2 recordsLinked to original sources

Mycobacterium tuberculosis ESX-T7SS impacts the 3D architecture of tuberculous lesion in susceptible mice

Tuberculosis (TB) is characterized by the formation of heterogenous, immune-rich granulomas present in various forms in the lungs. Both host and pathogen contribute to this heterogeneity however the molecular and cellular drivers of within-host granuloma heterogeneity remain to be fully elucidated. This knowledge gap is due to a lack of experimental approaches that can fully capture the complex dynamics of the lung architecture, dynamics of host-pathogen interplay and pathogenesis. Here, we developed an approach that combines PACT-based clearing with light sheet fluorescent microscopy for visualizing lesion architecture development and lung involvement in M. tuberculosis-infected C3HeB/FeJ susceptible mice. This 3D modelling of whole lung lobes approach revealed critical architectural features in lesion development and lung involvement that were not apparent using traditional thin section imaging. Wild type M. tuberculosis infection triggered a clear and well-organized granulomatous-like organization with substantial growth throughout the infection period that invaded a high percentage of the total lung volume. In contrast, infection with the avirulent ESX-1 deletion mutant strain Mtb {Delta}RD1 showed an altered growth pattern with diffuse and sparsely organized CD11b recruitment to sites of infection. Moreover, most of the Mtb {Delta}RD1-triggered lesions were present in the periphery of the lungs and did not display any formal organization. We further provide a novel way of interrogating PACT-cleared tissue for high ultrastructural content using volumetric correlative light and electron microscopy, allowing individual immune cell populations to be tracked and their fate within the granuloma captured. Ultimately, the combination of both modalities allowed an unprecedented view of the architectural distribution of M. tuberculosis in the lungs and the progression of lesion development over time. Our data highlight that ESX-1 from M. tuberculosis is required for lesion architecture progression in a susceptible mouse model of TB.

microbiology↗

Establishment of a Patient-Derived, Magnetic Levitation-Based, 3D Spheroid Granuloma Model for Human Tuberculosis.

Tuberculous granulomas that develop in response to Mycobacterium tuberculosis (M.tb) infection are highly dynamic entities shaped by the host immune response and disease kinetics. Within this microenvironment, immune cell recruitment, polarization and activation is driven not only by co-existing cell types and multi-cellular interactions, but also by M.tb-mediated changes involving metabolic heterogeneity, epigenetic reprogramming and rewiring of the transcriptional landscape of host cells. There is an increased appreciation of the in vivo complexity, versatility and heterogeneity of the cellular compartment that constitutes the tuberculosis (TB) granuloma, and the difficulty in translating findings from animal models to human disease. Here we describe a novel biomimetic in vitro 3-dimentional (3D) human lung granuloma model, resembling early "innate" and "adaptive" stages of the TB granuloma spectrum, and present results of histological architecture, host transcriptional characterization, mycobacteriological features, cytokine profiles and spatial distribution of key immune cells. A range of manipulations of immune cell populations in these granulomas will allow the study of host/pathogen pathways involved in the outcome of infection, as well as pharmacological interventions. IMPORTANCETuberculosis is a highly infectious disease, with granulomas as its hallmark. Granulomas play an important role in the control of M.tb infection and as such are crucial indicators for our understanding of host resistance to TB. Correlates of risk and protection to M.tb are still elusive, and the granuloma provides the perfect environment in which to study the immune response to infection and broaden our understanding thereof; however, human granulomas are difficult to obtain, and animal models are costly and do not always faithfully mimic human immunity. In fact, most TB research is conducted in vitro on immortalized or primary immune cells and cultured in 2D on flat, rigid plastic, which does not reflect in vivo characteristics. We have therefore conceived a 3D, human in vitro granuloma model which allows researchers to study features of granuloma-forming diseases, in an 3D structural environment resembling in vivo granuloma architecture and cellular orientation.

immunology↗