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SEGARD, A.

Publications and source records attributed to SEGARD, A..

2 recordsLinked to original sources

Development of microsatellite markers with the SSR-seq method on Glossina palpalis gambiensis, and G. p. palpalis, and analysis of corresponding field samples from three sleeping sickness foci: Boffa, Dubreka (Guinea), and Bonon (Cote d'Ivoire).

Tsetse flies are strictly found is sub-Saharan Africa where they are responsible for the transmission and maintenance of African trypanosomiases in humans (HAT) and animals (AAT). Vector control has been recognized as an essential tool to fight against these diseases. Nevertheless, it requires the best possible knowledge of the biology of the targeted population. Population genetics tools can prove very useful to obtain such information but require the use of polymorphic and reliable genetic markers. In this paper we present the development of microsatellite markers using a new high-throughput sequencing based technology (SSRseq). We applied it on two species of tsetse flies from three HAT foci and obtained more accurate results as compared to microsatellite loci developed with classic methods. We could indeed use 9 to 14 SSRseq loci without the several problems generally met with classic microsatellites, as all were located in autosomes, without short allele dominance or stuttering and very few null alleles. SSRseq loci appeared much more polymorphic in tsetse flies as compared to other species (fungi, trees, bees, or fishes), which suggested much higher effective population sizes, much higher mutation rates of the genome or both, suggesting high capacities for evolutionary adaptation. With the 9-14 loci kept, we confirmed the propensity of these flies to move almost freely in the whole zones investigated, and also highlighted the possible evolutionary response of one of the unkept loci regarding vector control devices used in these HAT foci, which will require further studies. We suggest for further population structure studies to use only loci with less than 1% missing data, which proved being a good and fast selection strategy to get the most reliable results.

genomics↗

Trypanosoma brucei from pigs in sleeping sickness foci from Cote Ivoire is structured into clonal and strongly subdivided populations

Human African trypanosomiasis (HAT), or sleeping sickness, is currently targeted for elimination. The etiologic agent of HAT is a trypanosome belonging to the species Trypanosoma brucei (Tb) s.l., a unicellular parasite transmitted by tsetse flies. Tb s.l. consists of three subspecies: T. b. brucei (Tbb), T. b. gambiense (Tbg) and T. b. rhodesiense (Tbr). These subspecies are morphologically indistinguishable and classified according to host in which they are found, type of disease and geographical distribution. During the last few decades, there has been considerable effort to genetically characterize Tb s.l. isolated from domestic and wild animals in order to better evaluate the impact of animal reservoirs on the epidemiology of HAT. To assess genetic diversity of Tb s.l. strains circulating in three endemic or historical HAT foci in Cote Ivoire, we conducted a population genetics study of these parasites. Biological and isolated stock samples collected from pigs and reference stocks were tested with the primers of the Trypanosoma gambiense-specific-glycoprotein gene (TgsGP) and were genetically characterized with eighteen microsatellite primers. TgsGP positive samples did not fit into Tbg as regard to their microsatellite profile. We also found that in Ivoirian foci, Tbb populations (animal trypanosomes) were structured as several strongly isolated units that propagate clonally. This is in variance with other published data on that subspecies. This study confirms the need to develop better tools to explore the relationships between Tbb and Tbg and to study the epidemiological role of potential animal reservoir for Tbg.

genetics↗