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1.
BMC Vet Res ; 15(1): 344, 2019 Oct 16.
Artigo em Inglês | MEDLINE | ID: mdl-31619238

RESUMO

BACKGROUND: African animal trypanosomosis remains the major constraint of livestock production and livelihood of pastoral communities in Cameroon. Despite several decades of vector and parasite control efforts, it has not been eradicated. Alternative and sustainable control strategies require a sound knowledge of the local species, strains and vectors. In the Sudano-Sahelian and Guinea Savannah of Cameroon the prevalence and genetic diversity of trypanosomes infecting cattle was investigated by microscopy of cattle blood buffy coat and molecular methods using generic primers targeting parts of the internal transcribed spacer 1 (ITS-1) and encoded glycosomal glyceraldehyde 3-phosphate dehydrogenase-gene (gGAPDH). RESULTS: A total of 1176 randomly chosen cattle from five divisions in the Sudano-Sahelian and Guinea Savannah of Cameroon were examined. The overall prevalence of trypanosomes by microscopy was 5.9% (56/953) in contrast to 53.2% (626/1176) when molecular tools were used. This indicated a limited sensitivity of microscopy in subclinical infections with frequently low parasitemia. Three trypanosome species were identified by light microscopy: T. vivax (2.3%), T. brucei (3.7%) and T. congolense (3.0%), whereas five were identified by PCR, namely T. grayi/T. theileri (30.8%), T. vivax (17.7%), T. brucei (14.5%) and T. congolense (5.1%). Unexpected cases of T. grayi (n = 4) and T. theileri (n = 26) were confirmed by sequencing. Phylogenetic analysis of the gGAPDH revealed the presence of T. vivax, clade A and T. vivax clade C, which were co-endemic in the Faro et Deo division. T. grayi/T. theileri were the predominant species infecting cattle in tsetse free areas. In contrast, T. vivax, T. brucei and T. congolense were more abundant in areas where the Glossina-vectors were present. CONCLUSIONS: The abundance of pathogenic trypanosomes in tsetse infested areas is alarming and even more, the occurrence of T. vivax, T. brucei, T. congolense, T. theileri and T. grayi in tsetse-free areas implies that tsetse control alone is not sufficient to control trypanosomosis in livestock. To implement control measures that reduce the risk of spread in tsetse free areas, close monitoring using molecular tools and a thorough search for alternative vectors of trypanosomes is recommended.


Assuntos
Doenças dos Bovinos/epidemiologia , Trypanosoma/isolamento & purificação , Tripanossomíase Africana/epidemiologia , Animais , Buffy Coat/parasitologia , Camarões/epidemiologia , Bovinos , Doenças dos Bovinos/parasitologia , Feminino , Genes de Protozoários , Insetos Vetores , Masculino , Prevalência , Trypanosoma/classificação , Trypanosoma/genética , Tripanossomíase Africana/parasitologia , Tripanossomíase Africana/prevenção & controle , Moscas Tsé-Tsé
2.
Parasit Vectors ; 12(1): 481, 2019 Oct 14.
Artigo em Inglês | MEDLINE | ID: mdl-31610794

RESUMO

BACKGROUND: Trypanosomes cause disease in humans and livestock in sub-Saharan Africa and rely on tsetse flies as their main insect vector. Nigeria is the most populous country in Africa; however, only limited information about the occurrence and diversity of trypanosomes circulating in the country is available. METHODS: Tsetse flies were collected from five different locations in or adjacent to protected areas, i.e. national parks and game reserves, in Nigeria. Proboscis and gut samples were analysed for trypanosome DNA by molecular amplification of the internal transcribed spacer 1 (ITS1) region and part of the trypanosome specific glycosomal glyceraldehyde-3-phosphate dehydrogenase (gGAPDH) gene. RESULTS: The most abundant Trypanosoma species found in the tsetse gut was T. grayi, a trypanosome infecting crocodiles. It was ubiquitously distributed throughout the country, accounting for over 90% of all cases involving trypanosomes. Trypanosoma congolense was detected in gut samples from all locations except Cross River National Park, but not in the proboscis, while T. brucei (sensu lato) was not detected at all. In proboscis samples, T. vivax was the most prominent. The sequence diversity of gGAPDH suggests that T. vivax and T. grayi represent genetically diverse species clusters. This implies that they are highly dynamic populations. CONCLUSIONS: The prevalence of animal pathogenic trypanosomes throughout Nigeria emphasises the role of protected areas as reservoirs for livestock trypanosomes. The genetic diversity observed within T. vivax and T. grayi populations might be an indication for changing pathogenicity or host range and the origin and consequences of this diversity has to be further investigated.


Assuntos
Variação Genética , Insetos Vetores/parasitologia , Trypanosoma/genética , Tripanossomíase Africana/parasitologia , Moscas Tsé-Tsé/parasitologia , Animais , DNA Intergênico/química , DNA Intergênico/isolamento & purificação , DNA de Protozoário/isolamento & purificação , Humanos , Insetos Vetores/classificação , Nigéria/epidemiologia , Filogenia , Reação em Cadeia da Polimerase , Prevalência , Especificidade da Espécie , Trypanosoma/classificação , Trypanosoma/isolamento & purificação , Trypanosoma congolense/classificação , Trypanosoma congolense/genética , Trypanosoma congolense/isolamento & purificação , Trypanosoma vivax/classificação , Trypanosoma vivax/genética , Trypanosoma vivax/isolamento & purificação , Tripanossomíase Africana/epidemiologia , Tripanossomíase Africana/transmissão , Moscas Tsé-Tsé/classificação
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