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Zanditenas, E.

Publications and source records attributed to Zanditenas, E..

3 recordsLinked to original sources

The gut microbiota-derived metabolite indole regulates cytoskeletal functions and virulence in Entamoeba histolytica

Entamoeba histolytica is a pathogenic amoeba that inhabits the human large intestine and causes amoebiasis. E. histolytica interacts with both the intestinal microbiota and the metabolites they produce. These bacterial metabolites play a crucial role in shaping the virulence and stress resistance of E. histolytica. One such metabolite, indole, is synthesized by bacteria from tryptophan and functions as a key signaling molecule. In this study, we investigated the impact of indole on E. histolytica by incubating trophozoites with the metabolite and performing proteomic analyses under various conditions, including trophozoites adapted to indole. Our results show that indole is toxic to E. histolytica, with an inhibitory concentration (IC) of 1.2 mM; however, the parasite can adapt to this concentration. Proteomic analyses reveal that indole-adapted trophozoites display enhanced resistance to oxidative stress (OS), upregulation of cytoskeletal proteins, and increased virulence. These trophozoites exhibit increased F-actin formation, smaller cell size, stronger adhesion to HeLa cells, enhanced migratory capacity, and more effective colonization of the mouse cecum compared to non-adapted trophozoites. Thus, indole exerts a dual effect on E. histolytica physiology. While indole is initially toxic to the parasite, adaptation to indole confers enhanced resistance to OS and promotes a more virulent phenotype. This duality underscores the complex role of microbiota-derived metabolites in modulating parasite behavior and highlights indole as a key microbial signal. Author summaryEntamoeba histolytica is a unicellular parasite living in the human large intestine and can cause a disease called amoebiasis. Inside the intestine, E. histolytica interacts with the microbiota and with the metabolites they produce. One such metabolite is indole, which is produced by gut bacteria from tryptophan and used by human cells and trophozoites. In this study, we explored how indole affects E. histolytica. We found that indole is toxic to the parasite at first, but over time, the amoeba can adapt and survive in its presence. Using protein analysis techniques, we discovered that indole-adapted amoebas become more resistant to stress and more virulent. They produce more F-actin, leading to improved mobility, degrade more HeLa cells, and colonize the gut of mice more efficiently than wild-type amoebas (WT). These results show that, while indole initially harms the parasite, it also triggers changes that make it more resistant to stress and more virulent. Our work highlights how metabolites produced by bacteria in the large intestine can influence the behavior of E. histolytica.

microbiology↗

Differential coping strategies exerted by biofilm and planktonic cells of the beneficial bacterium B. subtilis in response to the protozoan predator Entamoeba histolytica.

The human protozoan parasite Entamoeba histolytica causes amebiasis and interacts with both beneficial and harmful members of the microbiome. In previous studies, it was shown that E. histolytica can break down pre-established biofilms of B. subtilis in a time- and dose-dependent manner. Inhibiting parasitic cysteine proteases impairs biofilm degradation. However, it is still unknown whether bacteria can sense this process and respond to the degradation of the biofilms. Here, our research demonstrates a multi-layered response of probiotic bacteria to the parasite, which differs between planktonic bacteria and pre-established biofilms. Sensing the activity of cysteine proteases from E. histolytica, the bacteria activate the general stress response and, to a lesser extent, the cell wall stress response, making the surviving biofilm members more resistant to mild stressors. On the other hand, planktonic cells exposed to the predators lysate deactivate the expression of genes associated with biofilm formation while inducing their motility to avoid predation. Overall, our results indicate that bacteria have evolved to recognize amoeba predators. Furthermore, the partially digested biofilm cells may have unexpected disadvantages over bacteria that did not encounter a predator. These findings may be useful in developing more efficient probiotic strains that are resilient to amoebiasis.

microbiology↗

Digestive exophagy of Bacterial Biofilms by an Amoeba Predator is Mediated by Specific Biofilm Recognition

The human protozoan parasite Entamoeba histolytica is responsible for amebiasis, a disease endemic to developing countries. E. histolytica trophozoites are released from the cysts to colonize the large intestine, where they primarily feed on bacterial cells. In these scenarios, bacterial cells form aggregates or structured communities too large for phagocytosis. Our results show that E. histolytica can degrade pre-established biofilms of Bacillus subtilis and Escherichia coli in a dose- and time-dependent manner. Surprisingly, trophozoites incubated with B. subtilis biofilm exhibit a unique transcriptome signature compared to those incubated with planktonic cells or without bacteria. Biofilm-induced genes include cysteine proteases (CPs), and the general inhibition of CPs by E64D or by the use of specific small-RNA (sRNA)-based RNA interference impairs the degradation of biofilms by E. histolytica. The degradation of B. subtilis extracellular matrix (ECM) protein TasA by CPs is associated with partial biofilm digestion and activation of the stress response in the interacting B. subtilis cells. The interaction with B. subtilis biofilms was also associated with lower levels of oxidoreductases. Oxidoreductase downregulation can be a readout of the embedding of E. histolytica trophozoites within the biofilm-produced extracellular matrix, reducing their exposure to oxidative stress (OS). Our results indicate that parasites may digest biofilms by a controlled mechanism of digestive exophagy as secretion of digestive enzymes as a conserved mechanism for biofilm degradation allows phagocytic digestion of biofilm cells. Furthermore, the partially digested biofilms can serve as an unexpected shield protecting parasites from oxidative environments and thereby may regulate the persistence and virulence of the parasite.

microbiology↗