Alive Pathogenic and Saprophytic Leptospires Enter and Exit Human and Mouse Macrophages With No Intracellular
Ignacio Santecchia1, Delphine Bonhomme1, Stylianos Papadopoulos1
1Institut Pasteur, Université Cité Paris, CNRS UMR6047, INSERM U1306, Unité de Biologie et Génétique de la Paroi Bactérienne, Paris, France.
Abstract:
Leptospira interrogans are pathogenic bacteria responsible for leptospirosis, a zoonosis impacting 1 million people per year worldwide. Leptospires can infect all vertebrates, but not all hosts develop similar symptoms. Human and cattle may suffer from mild to acute illnesses and are therefore considered as sensitive to leptospirosis. In contrast, mice and rats remain asymptomatic upon infection, although they get chronically colonized in their kidneys. Upon infection, leptospires are stealth pathogens that partially escape the recognition by the host innate immune system. Although leptospires are mainly extracellular bacteria, it was suggested that they could also replicate within macrophages. However, contradictory data in the current literature led us to reevaluate these findings. Using a gentamicin-protection assay coupled to high-content (HC) microscopy, we observed that leptospires were internalized in vivo upon peritoneal infection of C57BL/6J mice. Additionally, three different serotypes of pathogenic L. interrogans and the saprophytic L. biflexa actively infected both human (PMA differentiated) THP1 and mouse RAW264.7 macrophage cell lines. Next, we assessed the intracellular fate of leptospires using bioluminescent strains, and we observed a drastic reduction in the leptospiral intracellular load between 3 h and 6 h post-infection, suggesting that leptospires do not replicate within these cells. Surprisingly, the classical macrophage microbicidal mechanisms (phagocytosis, autophagy, TLR-mediated ROS, and RNS production) were not responsible for the observed decrease. Finally, we demonstrated that the reduction in the intracellular load was associated with an increase of the bacteria in the supernatant, suggesting that leptospires exit both human and murine macrophages. Overall, our study reevaluated the intracellular fate of leptospires and favors an active entrance followed by a rapid exit, suggesting that leptospires do not have an intracellular lifestyle in macrophages.
Insights
Leptospira interrogans, bacteria causing leptospirosis, enter macrophages but do not replicate. They actively exit these cells, suggesting they do not adopt an intracellular lifestyle.
Area of Science:
- Microbiology
- Immunology
- Infectious Diseases
Background:
- Leptospira interrogans causes leptospirosis, a global zoonosis affecting millions annually.
- Host response to Leptospira varies, with humans and cattle showing severe symptoms, while rodents remain asymptomatic carriers.
- Previous studies suggested Leptospira replicate within macrophages, but data were contradictory.
Purpose of the Study:
- To reevaluate the intracellular fate of Leptospira within macrophages.
- To determine if pathogenic and saprophytic Leptospira replicate intracellularly.
- To investigate the mechanisms of Leptospira's intracellular survival and egress from macrophages.
Main Methods:
- Gentamicin-protection assay and high-content microscopy to track Leptospira internalization in vivo and in vitro.
- Bioluminescent Leptospira strains to quantify intracellular bacterial load over time.
- Assessment of classical macrophage microbicidal mechanisms (phagocytosis, autophagy, ROS, RNS production).
Main Results:
- Leptospira were internalized by both murine and human macrophages in vitro and in vivo.
- No significant replication of Leptospira was observed within macrophages; intracellular load decreased rapidly.
- Macrophage microbicidal mechanisms did not account for the reduction in intracellular Leptospira.
- Leptospira actively exited macrophages, increasing bacterial presence in the supernatant.
Conclusions:
- Leptospira actively enter macrophages but do not replicate intracellularly.
- The bacteria undergo a rapid exit from macrophages, challenging the notion of an intracellular lifestyle.
- This study clarifies the interaction of Leptospira with macrophages, impacting our understanding of leptospirosis pathogenesis.
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