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Echinococcus granulosus is a zoonotic parasitic helminth responsible for a long-term infection known as cystic echinococcosis1. In intermediate hosts, such as livestock and humans, the parasite infection primarily affects the liver and lungs, where the larval stage develops as fluid-filled cysts or metacestodes containing protoscoleces (a larva itself). Like all cestodes, this parasite lacks both digestive and excretory systems and has, therefore, evolved active endocytic and exocytic cellular processes to regulate the uptake and excretion of metabolites as well as the release of extracellular vesicles2,3. Extracellular vesicles (EVs) are lipid bilayer-enclosed particles secreted by apparently all cell types. In particular, small extracellular vesicles (sEVs), defined as EVs smaller than 200 nm regardless of their biogenesis origin4, can act as intercellular immune mediators. This function is especially significant in parasites, which rely on host immunomodulation to ensure their survival3. Immune manipulation is achieved through the uptake of sEVs by host dendritic cells, the only cells capable of activating naive T cells in vivo and initiating an adaptive immune response that will lead to chronic infection by these parasitic worms. Dendritic cells, professional antigen-presenting cells of the innate immune system, process and load antigenic peptides onto Major Histocompatibility Complex Class I and Class II (MHC I and MHC II) and exhibit them on their membranes for exclusive naïve T cell priming (CD8+ and CD4+ T cells, respectively)5. Following dendritic cells induce their maturation by induction of expression of the co-stimulatory markers CD80/CD86 and CD40 and MHC-II and migrate from peripheral tissues to secondary lymphoid organs upon recognizing foreign antigens, loading them for exclusive naïve T cell priming6. Thus, the overall goal of this protocol is to study the helminth parasite-host communication in a realistic manner, analyzing the packaging and delivery of parasitic components in the form of sEVs, which, upon reaching the host immune cells, influence the development of infection and the progression of the chronic parasitic disease.
Addressing the analysis of the helminth-host interface through the study of sEVs has several advantages. First, the tegument, the outer covering of flatworms, is a double membrane structure that constitutes a major crossing point between the parasite and its host, allowing sEVs to be readily generated or permeated from this structure7. Second, sEVs are highly loaded with protein antigens from all stages of the parasite life cycle, representing the natural way through which the host immune system samples antigens during worm infection8,9. Due to their biological production, ease of purification (without requiring tissue disruption or protein fractionation), and direct interaction with host cells, helminth sEVs enable the development of in vitro experiments to simulate the in vivo conditions of parasite-host interaction. Finally, sEVs represent the possibility of having parasitic structures that can be phagocytosed or internalized by host cells, overcoming the impossibility of doing so with whole parasites, particularly in cases of encysted worms.
Considering the advantages mentioned and the fact that helminthiases are prevalent and typically chronic diseases in which parasites presumably manipulate the host immune system as a survival strategy, the isolation of parasite-derived EVs and their study in interaction with dendritic cells provides a valuable framework to explore this immunomodulation10. In this sense, it has been described that the internalization of EVs from helminths, including nematodes and platyhelminths such as Schistosoma mansoni, Fasciola hepatica, Brugia malayi, and E. granulosus, induces the maturation and activation of dendritic cells9,11,12,13,14,15.
The isolation of helminth-derived EVs not only enables the study of immunological interactions, potentially leading to the development of protective vaccines or immunotherapeutic agents for allergic or autoimmune diseases, but also facilitates the exploration of other biological interactions and functions8,16,17. In this context, EVs, which play a role in the natural history of parasitic infections, could be utilized to investigate parasite development and interactions with specific host cells. Moreover, they could have potential applications as early or differential biomarkers for the diagnosis of parasitic diseases, monitoring therapeutic responses, and contributing to the control and management of parasitic infections17,18.
In addition, as previously demonstrated, the larval stage of E. granulosus is susceptible to changes in cytosolic calcium concentration, which, besides playing a role in parasite viability, also controls the exocytosis rate19,20. In this context, and knowing that intracellular calcium elevation enhances EV release, using an intracellular calcium enhancer as loperamide could be a crucial strategy to increase the number of EVs. This approach is particularly interesting for cellular systems that require large populations to generate an adequate quantity of EVs for cargo and functional analysis11,21,22. The current protocol (Figure 1) details the methods for obtaining pure cultures of E. granulosus larval stage and the conditions that enhance sEV production. It also describes the workflow for the isolation and characterization of these vesicles, as well as their uptake by murine dendritic cells, an essential step in the initial study of host immune system modulation.