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Crouzols, A.

Publications and source records attributed to Crouzols, A..

2 recordsLinked to original sources

The establishment of variant surface glycoprotein monoallelic expression revealed by single-cell RNA-seq of Trypanosoma brucei in the tsetse fly salivary glands.

The long and complex Trypanosoma brucei development in the tsetse fly vector culminates when parasites gain mammalian infectivity in the salivary glands. A key step in this process is the establishment of monoallelic variant surface glycoprotein (VSG) expression and the formation of the VSG coat. The establishment of VSG monoallelic expression is complex and poorly understood, due to the multiple parasite stages present in the salivary glands. Therefore, we sought to further our understanding of this phenomenon by performing single-cell RNA-sequencing (scRNA-seq) on these trypanosome populations. We were able to capture the developmental program of trypanosomes in the salivary glands, identifying populations of epimastigote, gamete, pre-metacyclic and metacyclic cells. Our results show that parasite metabolism is dramatically remodeled during development in the salivary glands, with a shift in transcript abundance from tricarboxylic acid metabolism to glycolytic metabolism. Analysis of VSG gene expression in pre-metacyclic and metacyclic cells revealed a dynamic VSG gene activation program. Strikingly, we found that pre-metacyclic cells contain transcripts from multiple VSG genes, which resolves to singular VSG gene expression in mature metacyclic cells. Single molecule RNA fluorescence in situ hybridisation (smRNA-FISH) of VSG gene expression following in vitro metacyclogenesis confirmed this finding. Our data demonstrate that multiple VSG genes are transcribed before a single gene is chosen. We propose a transcriptional race model governs the initiation of monoallelic expression.

molecular biology

FLAgellum Member 8 modulates extravascular trypanosome distribution in the mammalian host

The African trypanosome flagellum is an essential organelle in multiple aspects of the parasites development. Here, we investigated the role of a flagellar protein termed FLAgellar Member 8 (FLAM8) that is specifically distributed along the entire flagellum in trypanosomes stages of the vertebrate host. Analyses of knockdown and knockout trypanosomes demonstrated that FLAM8 is not essential in vitro for survival, growth, motility and slender to stumpy differentiation. Functional investigations in experimental infections showed that FLAM8-deprived trypanosomes are able to establish and maintain the infection in the blood circulation, and to differentiate into insect transmissible forms. However, quantitative bioluminescence imaging revealed that FLAM8-null parasites exhibit an impaired dissemination in the extravascular compartment, that is partially restored by the addition of a single rescue copy of FLAM8. Interestingly, among all dissected organs scrutinized individually, only the skin of mice infected with FLAM8-deprived parasites showed a significant reduction in extravascular trypanosome population as compared to mice infected with parental controls. To our knowledge, FLAM8 is the first example of a flagellar protein that modulates T. brucei parasite distribution in the host tissues, contributing to the maintenance of extravascular parasite populations in mammalian anatomical niches, especially in the skin. Take awayO_LIFLAM8 is dispensable in vitro for survival, growth, motility and differentiation of T. brucei. C_LIO_LIFLAM8 depletion does not affect parasitemia and bloodstream form differentiation in vivo. C_LIO_LIFLAM8 modulates the extravascular dissemination of trypanosomes in the mammalian host, especially in the skin. C_LI

microbiology