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Updated: Jan 7, 2026

Using a Bacterial Pathogen to Probe for Cellular and Organismic-level Host Responses
Published on: February 22, 2019
Intralysosomal pathogens differentially influence the proteolytic potential of their niche
Lauren E Bird1,2, Bangyan Xu3, David R Thomas2
1Department of Microbiology and Immunology at the Peter Doherty Institute for Infection and Immunity, The University of Melbourne, Melbourne, Victoria, Australia.
Abstract:
Avoiding lysosomal degradation is vital to the success of intracellular pathogens. The Gram-negative bacterium Coxiella burnetii and protozoan parasites of the Leishmania genus are unique in being able to replicate within the mature phagolysosomal compartment of host cells, though the exact mechanisms utilized to withstand this hostile environment are not clearly defined. We recently reported that C. burnetii removes the lysosomal protease cathepsin B during infection of mammalian cells. Here, we aimed to determine if this virulence strategy was also employed by the intralysosomal pathogen, Leishmania mexicana. In contrast to C. burnetii, decreases in the activity of specific cathepsins were not detected in L. mexicana-infected host cells as determined using immunoblotting and protease activity-based probes. Co-infection of THP-1 macrophage-like cells with both pathogens resulted in a proteolytic and secretory phenotype consistent with C. burnetii infection, suggesting that C. burnetii-induced remodeling of the lysosome is not influenced by L. mexicana. The host cell proteome and secretome of L. mexicana-infected cells were defined using mass spectrometry. This confirmed that, unlike C. burnetii, L. mexicana does not induce increased abundance of lysosomal proteins either intracellularly or in the extracellular milieu. Collectively, this study reveals that although C. burnetii and L. mexicana reside in a phagolysosomal intracellular niche, they employ divergent mechanisms to survive within this hostile compartment.
Insights
Intracellular pathogens like Leishmania mexicana and Coxiella burnetii survive in host cells. Unlike C. burnetii, L. mexicana does not manipulate host cell lysosomes to avoid degradation.
Area of Science:
- Microbiology
- Cell Biology
- Pathogen-Host Interactions
Background:
- Intracellular pathogens must evade host cell degradation for survival.
- Coxiella burnetii and Leishmania species are unique pathogens that replicate within host cell phagolysosomes.
- C. burnetii was previously shown to remove cathepsin B, a lysosomal protease, during infection.
Purpose of the Study:
- To investigate if Leishmania mexicana employs a similar strategy to C. burnetii by manipulating host cell lysosomes.
- To compare the survival mechanisms of L. mexicana and C. burnetii within the phagolysosomal compartment.
Main Methods:
- Immunoblotting and protease activity-based probes were used to assess cathepsin activity in L. mexicana-infected cells.
- Mass spectrometry was employed to analyze the host cell proteome and secretome.
- Co-infection experiments were conducted using THP-1 macrophage-like cells.
Main Results:
- L. mexicana infection did not lead to decreased cathepsin activity, unlike C. burnetii.
- Co-infection showed that L. mexicana does not influence C. burnetii-induced lysosomal remodeling.
- Mass spectrometry confirmed L. mexicana does not increase lysosomal protein abundance intracellularly or extracellularly.
Conclusions:
- C. burnetii and L. mexicana utilize distinct mechanisms to survive within the hostile phagolysosomal environment.
- L. mexicana does not employ lysosomal protease removal as a virulence strategy.
- Pathogen survival strategies within the same intracellular niche can be divergent.
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