bioRxiv Science⌕ Search

Biology subjects

Mendoza Cavazos, C.

Publications and source records attributed to Mendoza Cavazos, C..

2 recordsLinked to original sources

Recapitulating the life cycle of the global pathogen Entamoeba in mice

There are several Entamoeba species that colonize humans, but only Entamoeba histolytica causes severe disease. E. histolytica is transmitted through the fecal-oral route to colonize the intestinal tract of 50 million people worldwide. The current mouse model to study E. histolytica intestinal infection directly delivers the parasite into the surgically exposed cecum, which circumvents the natural route of infection and does not produce infectious cysts. To develop a fecal-oral mouse model, we screened our vivarium for a natural murine Entamoeba colonizer via a pan-Entamoeba PCR targeting the 18S ribosomal gene. We determined that C57BL/6 mice were chronically colonized by Entamoeba muris. This amoeba is closely related to E. histolytica, as determined by 18S sequencing and cross-reactivity with an E. histolytica-specific antibody. In contrast, outbred Swiss Webster (SW) mice were not chronically colonized by E. muris. We orally challenged SW mice with 1x105 E. muris cysts and discovered they were susceptible to infection, with peak cyst shedding occurring between 5-7 days post-infection. Most infected SW mice did not lose weight significantly but trended toward decreased weight gain throughout the experiment when compared to mock-infected controls. Infected mice treated with paromomycin, an antibiotic used against non-invasive intestinal disease, do not become colonized by E. muris. Within the intestinal tract, E. muris localizes exclusively to the cecum and colon. Purified E. muris cysts treated with bovine bile in vitro excyst into mobile, pre-trophozoite stages. Overall, this work describes a novel fecal-oral mouse model for the important global pathogen E. histolytica. ImportanceInfection with parasites from the Entamoeba genus are significantly underreported causes of diarrheal disease that disproportionally impact tropical regions. There are several species of Entamoeba that infect humans to cause a range of symptoms from asymptomatic colonization of the intestinal tract to invasive disease with dissemination. All Entamoeba species are spread via the fecal-oral route in contaminated food and water. Studying the life cycle of Entamoeba, from host colonization to infectious fecal cyst production, can provide targets for vaccine and drug development. Because there is not an oral challenge rodent model, we screened for a mouse Entamoeba species and identified Entamoeba muris as a natural colonizer. We determine the peak of infection after an oral challenge, the efficacy of paromomycin treatment, the intestinal tract localization, and the cues that trigger excystation. This oral infection mouse model will be valuable for the development of novel therapeutic options for Entamoeba infections.

microbiology↗

A potential Toxoplasma gondii lipoxygenase is necessary for virulence and associated with the host immune response

While the asexual cycle of Toxoplasma gondii can occur in any warm-blooded animal, the sexual cycle is restricted to the feline intestine. We previously determined that because cats lack delta-6-desaturase activity in their intestines, they build up excess linoleic acid, which signals T. gondii to undergo sexual development. We hypothesized that T. gondii oxygenates linoleic acid to signal sexual development, so we examined the T. gondii genome for potential lipoxygenases (TgLOX) enzymes. We identified seven potential TgLOXs that were at least 100-fold more abundant in the cat intestinal versus the tissue culture tachyzoite stage. Parasites deleted in TgLOX1 (Tg{Delta}LOX1) had no significant growth differences in tissue culture fibroblast cells. Because the sexual development assay begins with brain cysts, we infected mice with Tg{Delta}LOX1 and were surprised to find that Tg{Delta}LOX1 had reduced virulence. The Tg{Delta}LOX1 parasitemia was reduced by 3 days postinfection and largely cleared by 7 days postinfection. At 3 days postinfection, the cytokines IFN{gamma}, IL-6, MCP-1, and TNF- were significantly reduced in Tg{Delta}LOX1-infected mice, which prompted us to examine Tg{Delta}LOX1 in IFN{gamma}KO mice. We found that IFN{gamma}KO mice infected with Tg{Delta}LOX1 succumbed to acute infection with the same kinetics as the parental and complemented strains, suggesting the role of TgLOX1 in mice was IFN{gamma} dependent. In tissue culture fibroblasts, TgLOX1 was localized within the parasite, but in leukocytes from infected mice and activated macrophages, TgLOX1 was localized in vesicular structures in the host cytoplasm. These results suggest that TgLOX1 in these vesicular structures modifies the host immune response. ImportanceLipoxygenases are enzymes that catalyze the dioxygenation of polyunsaturated fatty acids such as linoleic and arachidonic acid. These modifications create signaling molecules that are best characterized for modulating the immune response. Deletion of the first lipoxygenase characterized for Toxoplasma gondii (TgLOX1) generated a less virulent strain and infected mice showed a decreased immune response. This virulence defect was dependent on the mouse cytokine IFN{gamma}. TgLOX1 changes location from inside the parasite in tissue culture conditions to vesicular structures within the host immune cells during mouse infection. These results suggest that TgLOX1 plays a role in the modification of the host immune response in mice.

microbiology↗