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Updated: May 25, 2026

An Automated Culture System for Use in Preclinical Testing of Host-Directed Therapies for Tuberculosis
Published on: August 16, 2021
Phagosomal rupture by Mycobacterium tuberculosis results in toxicity and host cell death
Roxane Simeone1, Alexandre Bobard, Juliane Lippmann
1Institut Pasteur, Unit for Integrated Mycobacterial Pathogenomics, Paris, France.
Abstract:
Survival within macrophages is a central feature of Mycobacterium tuberculosis pathogenesis. Despite significant advances in identifying new immunological parameters associated with mycobacterial disease, some basic questions on the intracellular fate of the causative agent of human tuberculosis in antigen-presenting cells are still under debate. To get novel insights into this matter, we used a single-cell fluorescence resonance energy transfer (FRET)-based method to investigate the potential cytosolic access of M. tuberculosis and the resulting cellular consequences in an unbiased, quantitative way. Analysis of thousands of THP-1 macrophages infected with selected wild-type or mutant strains of the M. tuberculosis complex unambiguously showed that M. tuberculosis induced a change in the FRET signal after 3 to 4 days of infection, indicating phagolysosomal rupture and cytosolic access. These effects were not seen for the strains M. tuberculosisΔRD1 or BCG, both lacking the ESX-1 secreted protein ESAT-6, which reportedly shows membrane-lysing properties. Complementation of these strains with the ESX-1 secretion system of M. tuberculosis restored the ability to cause phagolysosomal rupture. In addition, control experiments with the fish pathogen Mycobacterium marinum showed phagolysosomal translocation only for ESX-1 intact strains, further validating our experimental approach. Most importantly, for M. tuberculosis as well as for M. marinum we observed that phagolysosomal rupture was followed by necrotic cell death of the infected macrophages, whereas ESX-1 deletion- or truncation-mutants that remained enclosed within phagolysosomal compartments did not induce such cytotoxicity. Hence, we provide a novel mechanism how ESX-1 competent, virulent M. tuberculosis and M. marinum strains induce host cell death and thereby escape innate host defenses and favor their spread to new cells. In this respect, our results also open new research directions in relation with the extracellular localization of M. tuberculosis inside necrotic lesions that can now be tackled from a completely new perspective.
Insights
Mycobacterium tuberculosis escapes host defenses by rupturing macrophage phagolysosomes, leading to cell death. This process, mediated by the ESX-1 secretion system, allows virulent bacterial strains to spread to new cells.
Area of Science:
- Microbiology
- Immunology
- Cell Biology
Background:
- Survival within macrophages is crucial for Mycobacterium tuberculosis pathogenesis.
- The intracellular fate of M. tuberculosis in antigen-presenting cells remains incompletely understood.
- Investigating bacterial interactions with host cells provides insights into disease mechanisms.
Purpose of the Study:
- To investigate the cytosolic access of M. tuberculosis within macrophages.
- To quantitatively assess the cellular consequences of M. tuberculosis infection.
- To elucidate the role of the ESX-1 secretion system in bacterial pathogenesis.
Main Methods:
- Utilized a single-cell fluorescence resonance energy transfer (FRET)-based method.
- Infected THP-1 macrophages with wild-type and mutant strains of M. tuberculosis complex.
- Conducted control experiments with Mycobacterium marinum.
Main Results:
- M. tuberculosis induced phagolysosomal rupture and cytosolic access after 3-4 days of infection.
- Strains lacking the ESX-1 secreted protein ESAT-6 did not cause phagolysosomal rupture.
- Phagolysosomal rupture was followed by necrotic cell death of infected macrophages.
- ESX-1 intact strains of M. tuberculosis and M. marinum induced host cell death.
Conclusions:
- The ESX-1 secretion system is essential for M. tuberculosis to induce phagolysosomal rupture and subsequent host cell death.
- This mechanism allows virulent mycobacteria to escape innate host defenses and promote cell-to-cell spread.
- Findings offer new perspectives on the extracellular survival of M. tuberculosis in necrotic lesions.
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