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Author Spotlight: AI-Driven Trypanosome Species Detection from Microscopic Images
Published on: October 27, 2023
Trypanosoma brucei cattle infections contain cryptic transmission-adapted bloodstream forms at low parasitaemia
Stephen D Larcombe1, Edith Paxton2, Christina Vrettou2
1Institute for Immunology and Infection Research, School of Biological Sciences, Ashworth Laboratories, University of Edinburgh, Edinburgh, UK.
Abstract:
Tsetse-transmitted Trypanosoma parasites infect a wide host range and cause Human African Trypanosomiasis and Animal African Trypanosomosis. The dominant hosts of Trypanosoma brucei sensu lato are non-human mammals, including agriculturally important cattle. In rodent infections, T. brucei transitions from proliferative slender to tsetse-transmissible stumpy forms at high parasitaemia in a density-dependent quorum sensing-type process. However, chronic bovine infections are characterised by markedly lower blood parasitaemia levels; mostly substantially below the density assumed to trigger slender-to-stumpy differentiation. This challenges the current (rodent-based) assumptions and quantitative parameter estimations around stumpy form generation in the bloodstream. By combining scRNA-seq and microscopy we observe mixed populations of parasites with both slender- and stumpy-associated transcriptomes in cattle blood. The appearance of the latter coincides with fewer detectably dividing parasites and parasites with shortened flagellum indicative of differentiation, despite the absence of stumpy morphology or developmental marker protein expression. Comparisons with murine infections and in vitro culture demonstrates conserved transcriptomic signatures for both slender- and stumpy-like forms, as well as host specific differences, including a subpopulation of slender-like parasites upregulating pyruvate metabolism and TCA cycle transcripts in cattle samples. These similarities and differences are key to understanding parasite development and transmission in its natural host.
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