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Investigating the Phagocytosis of Leishmania using Confocal Microscopy
Published on: July 29, 2021
Lipid Droplet Formation, Their Localization and Dynamics during Leishmania major Macrophage Infection
Sameh Rabhi1,2, Imen Rabhi1,3, Bernadette Trentin4
1Institut Pasteur de Tunis, Laboratoire de Parasitologies médicales biotechnologies et Biomolecules, University of Tunis El Manar, 13, Place Pasteur - B. P. 74, 1002, Tunis-Belvedere, Tunisia.
Abstract:
Leishmania, the causative agent of vector-borne diseases, known as leishmaniases, is an obligate intracellular parasite within mammalian hosts. The outcome of infection depends largely on the activation status of macrophages, the first line of mammalian defense and the major target cells for parasite replication. Understanding the strategies developed by the parasite to circumvent macrophage defense mechanisms and to survive within those cells help defining novel therapeutic approaches for leishmaniasis. We previously showed the formation of lipid droplets (LDs) in L. major infected macrophages. Here, we provide novel insights on the origin of the formed LDs by determining their cellular distribution and to what extent these high-energy sources are directed to the proximity of Leishmania parasites. We show that the ability of L. major to trigger macrophage LD accumulation is independent of parasite viability and uptake and can also be observed in non-infected cells through paracrine stimuli suggesting that LD formation is from cellular origin. The accumulation of LDs is demonstrated using confocal microscopy and live-cell imagin in parasite-free cytoplasmic region of the host cell, but also promptly recruited to the proximity of Leishmania parasites. Indeed LDs are observed inside parasitophorous vacuole and in parasite cytoplasm suggesting that Leishmania parasites besides producing their own LDs, may take advantage of these high energy sources. Otherwise, these LDs may help cells defending against parasitic infection. These metabolic changes, rising as common features during the last years, occur in host cells infected by a large number of pathogens and seem to play an important role in pathogenesis. Understanding how Leishmania parasites and different pathogens exploit this LD accumulation will help us define the common mechanism used by these different pathogens to manipulate and/or take advantage of this high-energy source.
Insights
Leishmania parasites trigger host macrophages to accumulate lipid droplets (LDs). These energy sources are then utilized by the parasite, influencing leishmaniasis pathogenesis.
Area of Science:
- Immunology
- Cell Biology
- Parasitology
Background:
- Leishmania parasites cause leishmaniasis, a disease dependent on macrophage activation.
- Macrophages are key host cells targeted by Leishmania for replication.
- Understanding parasite evasion strategies is crucial for developing new leishmaniasis treatments.
Purpose of the Study:
- To investigate the origin and cellular distribution of lipid droplets (LDs) in Leishmania-infected macrophages.
- To determine if Leishmania parasites utilize host-derived LDs for their survival and replication.
- To explore the role of LDs in host-parasite interactions during leishmaniasis.
Main Methods:
- Confocal microscopy and live-cell imaging were used to visualize LDs in infected macrophages.
- Experiments assessed LD accumulation independent of parasite viability and uptake.
- Paracrine stimuli were used to investigate LD formation in non-infected cells.
Main Results:
- Leishmania major infection induces significant LD accumulation in host macrophages, originating from the host cell.
- LDs are found in both the cytoplasm of infected cells and within the parasitophorous vacuole, near the parasites.
- LD accumulation can be triggered by paracrine signals, suggesting a host-derived response.
- Parasite viability and uptake are not required for LD induction.
Conclusions:
- Leishmania parasites exploit host-derived lipid droplets as an energy source.
- LDs may play a dual role: supporting parasite growth and potentially aiding host defense.
- Investigating pathogen manipulation of host lipid metabolism offers insights into common pathogenic mechanisms.

