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Kostygov, A. Y.

Publications and source records attributed to Kostygov, A. Y..

3 recordsLinked to original sources

Uncovering parasite diversity in Ecuadorian wildlife: new trypanosomatid species and novel reservoir hosts for Leishmania amazonensis

Wildlife hosts play important roles in the ecology and transmission of vector-borne parasites, yet information on host associations remains scarce in many biodiverse tropical regions. Within a One Health framework, characterizing parasite diversity in wildlife can improve understanding of ecosystem health and disease emergence. Road-killed animals provide a non-invasive opportunity to investigate host-parasite interactions while minimizing disturbance to natural habitats. We screened 127 liver and intestinal tissue samples obtained from 76 road-killed vertebrates collected near protected areas in two Ecuadorian biodiversity hotspots, the Tropical Andes and Choco-Darien, for trypanosomatids and other vector-borne microorganisms. Molecular analyses targeted the 18S rRNA and cytochrome b genes of trypanosomatids and included additional screening for Trypanosoma cruzi, Trypanosoma rangeli, Rickettsia spp., and piroplasmids. Twenty-nine samples were positive for kinetoplastids. We detected diverse trypanosomatids representing the genera Leishmania, Porcisia, Trypanosoma, Phytomonas, Blastocrithidia, and Obscuromonas, as well as free-living kinetoplastids of the order Neobodonida. The most frequently detected species was Leishmania amazonensis, identified in 17 samples from at least 13 species of birds, reptiles, and caecilians, predominantly in liver tissue, suggesting previously unrecognized host associations. We also identified a putatively novel species of Porcisia and three potentially undescribed avian trypanosomes belonging to the subgenus Ornithotrypanum. No evidence of T. cruzi, T. rangeli, Rickettsia spp., or piroplasmids was found. Our findings identify birds, reptiles, and caecilians as potential reservoir hosts of L. amazonensis. In addition, we substantially expanded current knowledge of kinetoplastid diversity in Ecuadorian wildlife. This study demonstrates the value of road-killed animals as a practical, non-invasive resource for wildlife pathogen surveillance and highlights the importance of integrating biodiversity research into One Health approaches to better understand parasite transmission dynamics in rapidly changing tropical ecosystems. Author summaryMany parasites that affect humans circulate naturally in wildlife, but identifying their animal hosts is often difficult in remote, biodiverse regions. We used road-killed animals as a non-invasive source of biological material to investigate parasites in wildlife from two biodiversity hotspots in Ecuador. By analyzing tissues from birds, reptiles, amphibians, and mammals, we found a remarkable diversity of kinetoplastid flagellates, a group that includes the agents of Chagas disease and leishmaniasis. Although we did not detect human-infective trypanosomes, we repeatedly identified Leishmania amazonensis (a species causing human disease) in birds, reptiles, and caecilians. These vertebrate groups have not previously been recognized as potential hosts of this parasite. We also discovered several undescribed trypanosomatid species, emphasizing how little is known about parasite diversity in tropical wildlife. Our results show that road-killed animals can provide valuable information on host-parasite interactions without disturbing living populations. Such surveillance contributes to One Health efforts by improving our understanding of how environmental change, wildlife, and human health are interconnected.

microbiology↗

The first RNA viruses detected in a trypanosome: novel narnaviruses and a leishmaniavirus in the gecko parasite Trypanosoma platydactyli

BackgroundTrypanosomatids are parasitic flagellates best known for human pathogens causing sleeping sickness, Chagas disease, and leishmaniasis. RNA viruses infecting these protists have recently gained attention for their role in disease severity. While numerous such viruses have been described in Leishmania and several other trypanosomatid genera, none have previously been documented in the iconic genus Trypanosoma. ResultsWe report the first discovery and molecular characterization of RNA viruses in trypanosomes, identifying a leishmaniavirus and two narnaviruses in a single strain of Trypanosoma platydactyli, a parasite of the common wall gecko. The leishmaniavirus genome revealed a conserved organization, including a putative ribosomal frameshift site and a hairpin-like secondary structure typical of the genus. Phylogenetic inference indicates that it is closely related to leishmaniaviruses from Old World Leishmania spp., consistent with shared vector ecology. The two narnaviruses have distinct origins, although both cluster with viruses of other trypanosomatids, suggesting historical exchanges among co-infecting parasites. ConclusionsOur study expands both the known diversity of RNA viruses in trypanosomatids and the range of trypanosomatid genera that host these viruses, providing guidance for future screening. We suggest that vector ecology--particularly feeding behavior--may influence viral acquisition by trypanosomes, explaining the previous absence of viral reports from intensively studied trypanosomes of medical relevance vectored by tsetse flies or kissing bugs. Therefore, overlooked species transmitted by Nematocera represent promising candidates for future viral discovery. This concept extends beyond trypanosomatids, providing a general framework for understanding the conditions that permit viral host switching by viruses among microeukaryotes.

microbiology↗

Genomic evidence for co-evolution and sporadic host shifts in leishmaniaviruses

The association between Leishmania parasites and the double-stranded RNA virus, Leishmaniavirus (LRV), significantly impacts human health by modulating disease severity. Despite its clinical importance, the evolutionary history of this symbiosis remains largely unknown. This study presents one of the first formal investigations of their co-phylogenetic history across different taxonomic hierarchical levels; based on total RNA sequencing of cultivated isolates, simultaneously capturing the parasite`s transcriptome and the viral genome. We found strong support for phylogenetic congruence between Leishmania and LRV at both the subgenus and species level; based on genetic distance correlations and formal co-phylogenetic statistics. Focusing on the interactions of L. (V.) braziliensis and L. (V.) guyanensis with LRV1, we observed weaker co-phylogenetic signals though frequent instances of intraspecific host switching. Together, our findings indicate that LRV has been a persistent evolutionary partner of Leishmania, providing a framework for understanding the emergence and maintenance of virus-mediated disease phenotypes.

evolutionary biology↗