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Ovezgeldiyev, D.

Publications and source records attributed to Ovezgeldiyev, D..

2 recordsLinked to original sources

Natural microbial exposure imposes layered constraints on epithelial and type 2 immunity

The tuft cell-ILC2 amplification circuit has emerged as a central paradigm of anti-helminth immunity in laboratory animals, driving the so-called weep and sweep response, required for parasite expulsion. Yet soil-transmitted helminths (STHs) commonly establish chronic infections in humans. Whether tuft cell expansion is required for parasite clearance under naturalistic conditions remains unknown. Here, using wildlings, a naturalized mouse model exposed from birth to complex microbial communities and pathogens, we re-investigated anti-STH immunity in the context of ecological realism. Following infection with Nippostrongylus brasiliensis, specific pathogen-free (SPF) mice mounted markedly amplified type 2 responses in both lung and intestine compared to wildlings. In the intestine, SPF mice mounted robust tuft cell expansion, IL-25 production, ILC2 accumulation, and goblet cell hyperplasia. In contrast, infected wildlings exhibited delayed parasite expulsion, limited tuft cell expansion, reduced IL-25 and ILC2 responses, and attenuated goblet cell expansion. Wildling tuft cells, but not goblet cells, displayed markedly reduced expansion in response to succinate or exogenous IL-13, indicating selective hypo-responsiveness of the epithelial sensory compartment. Microbial transfer into adult SPF mice selectively conferred tuft cell hypo-responsiveness without impairing ILC2 accumulation or goblet cell expansion. Tuft cell hypo-responsiveness in wildlings and FMT recipients was associated with enrichment of fermentative bacteria and increased levels of the short chain fatty acids acetate and propionate. Together, these findings indicate that ecological microbial exposure imprints systemic type 2 immunity during early-life, whereas epithelial responsiveness remains plastic and microbiome-dependent, thereby revealing regulatory constraints not evident under SPF conditions. One Sentence SummaryOur findings reveal that in a naturalized immune-microbiome context, intestinal tuft cells are surprisingly hypo-responsive, highlighting how environmental microbial exposure can calibrate type 2 immunity and helminth resistance.

immunology↗

Screening of the Pathogen box reveals novel anti blood-feeding compounds

Soil-transmitted helminth (STH) infections such as Necator americanus infect millions globally, and are a major cause of anemia and developmental stunting in low and middle income countries. Blood-feeding hookworms in particular rely on the digestion of host erythrocytes for nutrition and therefore detoxify heme as a byproduct of their parasitism. This dependency on blood feeding and subsequent detoxification renders this pathway as a vulnerable target for therapeutic intervention, particularly as it is the cause of morbidity in those infected. Here we described the continued development and application of a high-throughput in vitro assay using the so-called rodent hookworm Nippostrongylus brasiliensis, a model that shares key traits with N. americanus including blood feeding and hemozoin-like pigment formation. We optimized a fluorescence-based screening cascade to utilise GelGreen as a cost-effective viability stain and screened 400 compounds from the MMV Pathogen Box. Multiple compounds displayed enhanced activity in the presence of blood, suggesting interference with blood-feeding or blood-feeding-induced development. Five hits were selected for further validation, and as proof-of-principle of this screening cascade, all five were well tolerated in vivo at low doses in a murine model. This study therefore demonstrates this method can be used as a tractable and biologically relevant screening approach to identify compounds active against blood-feeding nematodes. Future work can further develop such compounds into lead drug candidates, and be leveraged for comparative parasitology approaches to identify pan-anthelmintic drugs.

microbiology↗