Submitted:
21 May 2026
Posted:
26 May 2026
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Study Context and Epidemiological Framework
2.2. Canine Population and Clinical Characterization
2.3. Molecular Detection of Leishmania spp.
2.4. Statistical Analysis of Natural Infection Data
2.5. Parasite Culture and Preparation for Ultrastructural Analysis
2.6. Macrophage Isolation and Infection Assays
2.7. Transmission Electron Microscopy (TEM)
2.8. Scanning Electron Microscopy (SEM)
2.9. Neutral-Lipid Staining
2.10. Nanoparticle Tracking Analysis (NTA)
3. Results
3.1. Epidemiological and Molecular Context of Natural Infections
3.2. Detection of Leishmania DNA in Different Biological Samples
3.3. Sensitivity of Molecular Markers
3.4. Genetic Variability Among Circulating Strains
3.5. Ultrastructure of Promastigotes
3.6. Ultrastructure of Intracellular Amastigotes
3.7. Neutral-Lipid Staining
3.8. Nanoparticle Tracking Analysis
4. Discussion
4.1. Lipid-Associated Structures in Promastigotes
4.2. Morphological Diversity of Intracellular Amastigotes
4.3. Integration with Natural Infection Data: Micro-Diversity and Morphotypes
4.4. Genetic Microdiversity as a Potential Driver of Morphological Heterogeneity
4.5. Epidemiological Heterogeneity and Ecological Pressures
4.6. Comparison with Host-Directed Lipid Studies
4.7. Methodological Considerations and Limitations
4.8. Future Directions
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| Abbreviation | Definition |
| BODIPY | Boron dipyrromethene |
| BOD | Biological Oxygen Demand (incubator) |
| CEUA | Ethics Committee on Animal Use (Comissão de Ética no Uso de Animais) |
| CONCEA | National Council for the Control of Animal Experimentation (Conselho Nacional de Controle de Experimentação Animal) |
| DAPI | 4′,6-Diamidino-2-phenylindole |
| DMEM | Dulbecco’s Modified Eagle Medium |
| DNA | Deoxyribonucleic acid |
| EM | Electron microscopy |
| EV | Extracellular vesicle |
| FBS | Fetal bovine serum |
| FP | Flagellar pocket |
| GPI | Glycosylphosphatidylinositol |
| IHMT-NOVA | Institute of Hygiene and Tropical Medicine, NOVA University of Lisbon |
| LD | Lipid droplet |
| LEV | Leishmania extracellular vesicle |
| MS | Mass spectrometry |
| NTA | Nanoparticle Tracking Analysis |
| PBS | Phosphate-buffered saline |
| PFA | Paraformaldehyde |
| RNA | Ribonucleic acid |
| SEM | Scanning electron microscopy |
| TEM | Transmission electron microscopy |
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| Aspect | Present Study (Zoonotic Dis., 2026) | Crotoxin Study (ACS Omega, 2025) [26]. |
|---|---|---|
| Primary focus | Descriptive ultrastructural characterization of lipid-rich and vesicle-like compartments in Leishmania promastigotes and intracellular amastigotes. | Functional modulation of macrophage lipid droplets during L. amazonensis infection under crotoxin treatment. |
| Biological target | Parasite-intrinsic structures (Golgi-associated LDs, flagellar-pocket vesicle-like profiles, vacuolar inclusions in amastigotes). | Host macrophage lipid metabolism, LD biogenesis, and inflammatory mediators (e.g., PGE2). |
| Interpretative framework | Strictly morphological; no inference of organelle identity, biogenesis, or function; adheres to MISEV2023 [22]. | Functional interpretation of LD dynamics in immunity, inflammation, and parasite control. |
| Ultrastructural findings | Promastigotes: classical LDs near Golgi and flagellar pocket; vesicle-like profiles in FP. Amastigotes: rounded inclusions within parasitophorous vacuoles, distinct from canonical LDs and compatible with lysosomal-related compartments. |
Macrophages: LDs of variable electron density near or within PVs; crotoxin increases LD formation and modulates inflammatory pathways. |
| Methodological scope | TEM, SEM, BODIPY® staining; descriptive NTA; no biochemical assays. | TEM, BODIPY®, flow cytometry, PGE2 quantification, functional assays. |
| Relevance to lipid biology | Establishes a morphological baseline for parasite-associated lipid-rich compartments across developmental stages. | Demonstrates host LD involvement in immunomodulation and parasite burden reduction. |
| Complementarity | Provides structural resolution necessary to distinguish parasite compartments from host-derived LDs. | Provides functional context for host lipid metabolism during infection. |
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