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Updated: Jun 30, 2026

In vivo Imaging of Transgenic Leishmania Parasites in a Live Host
Published on: July 27, 2010
Host M-CSF induced gene expression drives changes in susceptible and resistant mice-derived BMdMs upon Leishmania
Cyrine Bouabid1,2, Sameh Rabhi1, Kristina Thedinga3
1Laboratory of Medical Parasitology, Biotechnology and Biomolecules (PMBB), Institut Pasteur de Tunis, Tunis, Tunisia.
Abstract:
Leishmaniases are a group of diseases with different clinical manifestations. Macrophage-Leishmania interactions are central to the course of the infection. The outcome of the disease depends not only on the pathogenicity and virulence of the parasite, but also on the activation state, the genetic background, and the underlying complex interaction networks operative in the host macrophages. Mouse models, with mice strains having contrasting behavior in response to parasite infection, have been very helpful in exploring the mechanisms underlying differences in disease progression. We here analyzed previously generated dynamic transcriptome data obtained from Leishmania major (L. major) infected bone marrow derived macrophages (BMdMs) from resistant and susceptible mouse. We first identified differentially expressed genes (DEGs) between the M-CSF differentiated macrophages derived from the two hosts, and found a differential basal transcriptome profile independent of Leishmania infection. These host signatures, in which 75% of the genes are directly or indirectly related to the immune system, may account for the differences in the immune response to infection between the two strains. To gain further insights into the underlying biological processes induced by L. major infection driven by the M-CSF DEGs, we mapped the time-resolved expression profiles onto a large protein-protein interaction (PPI) network and performed network propagation to identify modules of interacting proteins that agglomerate infection response signals for each strain. This analysis revealed profound differences in the resulting responses networks related to immune signaling and metabolism that were validated by qRT-PCR time series experiments leading to plausible and provable hypotheses for the differences in disease pathophysiology. In summary, we demonstrate that the host's gene expression background determines to a large degree its response to L. major infection, and that the gene expression analysis combined with network propagation is an effective approach to help identifying dynamically altered mouse strain-specific networks that hold mechanistic information about these contrasting responses to infection.
Insights
Host gene expression significantly influences leishmaniasis outcomes. Analyzing gene expression and protein-protein interaction networks reveals distinct immune and metabolic responses in resistant versus susceptible mice infected with Leishmania major.
Area of Science:
- Immunology
- Genetics
- Parasitology
Background:
- Leishmaniases exhibit diverse clinical outcomes, heavily influenced by macrophage-parasite interactions.
- Host factors, including genetic background and macrophage activation, critically determine disease progression.
- Mouse models with contrasting infection responses are vital for dissecting disease mechanisms.
Purpose of the Study:
- To analyze dynamic transcriptome data from Leishmania major-infected macrophages of resistant and susceptible mice.
- To identify host-specific gene expression profiles and their impact on infection response.
- To explore infection-induced biological processes using network propagation on protein-protein interaction networks.
Main Methods:
- Differential gene expression analysis of M-CSF differentiated bone marrow-derived macrophages (BMdMs) from resistant and susceptible mice.
- Mapping time-resolved expression profiles onto a protein-protein interaction (PPI) network.
- Network propagation to identify infection-responsive modules and validation via qRT-PCR.
Main Results:
- Identified a differential basal transcriptome profile in macrophages, with 75% of genes related to the immune system, independent of Leishmania infection.
- Network propagation revealed distinct immune signaling and metabolism network modules between resistant and susceptible strains.
- Validated strain-specific network differences using time-series qRT-PCR experiments.
Conclusions:
- The host's intrinsic gene expression background significantly dictates the response to Leishmania major infection.
- Combining gene expression analysis with network propagation effectively identifies dynamically altered, strain-specific networks.
- This approach provides mechanistic insights into contrasting host responses and disease pathophysiology.
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