5 research outputs found

    Serum biochemical parameters and cytokine profiles associated with natural African trypanosome infections in cattle.

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    BACKGROUND: Animal African trypanosomiasis (AAT) greatly affects livestock production in sub-Saharan Africa. In Ghana prevalence of AAT is estimated to range between 5 and 50%. Studies have reported serum biochemical aberrations and variability in cytokine profiles in animals during infection. However, information regarding the biochemical parameters and cytokine profiles associated with natural infections are limited. This study was therefore aimed at investigating changes in the levels of serum biochemical parameters and inflammatory cytokines during a natural infection. METHODS: Nested internal transcribed spacer (ITS)-based PCR and sequencing were used to characterise trypanosome infection in cattle at two areas in Ghana (Adidome and Accra) of different endemicities. The cattle were sampled at four to five-week intervals over a period of six months. Levels of serum biochemical parameters, including creatinine, cholesterol, alkaline phosphatase (ALP), alanine aminotransferase (ALT), total bilirubin and total protein and cytokines (interleukin 10, interleukin 4, interleukin 12, interferon gamma and tumor necrosis factor alpha) were measured in serum samples and then compared between infected cattle and uninfected controls. RESULTS: The predominant trypanosome species detected in Accra (non-endemic) and Adidome (endemic) were Trypanosoma theileri and Trypanosoma vivax, respectively. Serum biochemical parameters were similar between infected and uninfected cattle in Accra. Infected cattle at Adidome however, had significantly higher levels of ALP, creatinine, total protein and total bilirubin (P < 0.05) and significantly lower levels of cholesterol (P < 0.05) at specific time points. At basal levels and during infection, significantly higher pro-inflammatory to anti-inflammatory (Th1/Th2) cytokine ratios were observed in cattle at Adidome compared to Accra (P < 0.05), indicating a shift towards Th1 immune response in Adidome. Levels of IL-10 were, however, significantly elevated in infected cattle in Accra (P < 0.05), suggesting high anti-inflammatory cytokine response in Accra. CONCLUSION: These results suggests that cattle in an endemic area repeatedly infected with trypanosomes of different species or different antigenic types demonstrate high pro-inflammatory (Th1) immune response and biochemical alterations whereas cattle in a non-endemic area with predominantly chronic T. theileri infections demonstrate high anti-inflammatory response and no biochemical alterations

    Regulation der Expression des variable Oberflächen- Glykoprotein (VSG) und Charakterisierung des nukleolären DExD/H box Protein Hel66 in TrypanosomaTrypanosoma bruceibrucei

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    The variant surface glycoprotein (VSG) of African trypanosomes plays an essential role in protecting the parasites from host immune factors. These trypanosomes undergo antigenic variation resulting in the expression of a single VSG isoform out of a repertoire of around 2000 genes. The molecular mechanism central to the expression and regulation of the VSG is however not fully understood. Gene expression in trypanosomes is unusual due to the absence of typical RNA polymerase II promoters and the polycistronic transcription of genes. The regulation of gene expression is therefore mainly post-transcriptional. Regulatory sequences, mostly present in the 3´ UTRs, often serve as key elements in the modulation of the levels of individual mRNAs. In T. brucei VSG genes, a 100 % conserved 16mer motif within the 3´ UTR has been shown to modulate the stability of VSG transcripts and hence their expression. As a stability-associated sequence element, the absence of nucleotide substitutions in the motif is however unusual. It was therefore hypothesised that the motif is involved in other essential roles/processes besides stability of the VSG transcripts. In this study, it was demonstrated that the 100 % conservation of the 16mer motif is not essential for cell viability or for the maintenance of functional VSG protein levels. It was further shown that the intact motif in the active VSG 3´ UTR is neither required to promote VSG silencing during switching nor is it needed during differentiation from bloodstream forms to procyclic forms. Crosstalk between the VSG and procyclin genes during differentiation to the insect vector stage is also unaffected in cells with a mutated 16mer motif. Ectopic overexpression of a second VSG however requires the intact motif to trigger silencing and exchange of the active VSG, suggesting a role for the motif in transcriptional VSG switching. The 16mer motif therefore plays a dual role in VSG in situ switching and stability of VSG transcripts. The additional role of the 16mer in the essential process of antigenic variation appears to be the driving force for the 100 % conservation of this RNA motif. A screen aimed at identifying candidate RNA-binding proteins interacting with the 16mer motif, led to the identification of a DExD/H box protein, Hel66. Although the protein did not appear to have a direct link to the 16mer regulation of VSG expression, the DExD/H family of proteins are important players in the process of ribosome biogenesis. This process is relatively understudied in trypanosomes and so this candidate was singled out for detailed characterisation, given that the 16mer story had reached a natural end point. Ribosome biogenesis is a major cellular process in eukaryotes involving ribosomal RNA, ribosomal proteins and several non-ribosomal trans-acting protein factors. The DExD/H box proteins are the most important trans-acting protein factors involved in the biosynthesis of ribosomes. Several DExD/H box proteins have been directly implicated in this process in yeast. In trypanosomes, very few of this family of proteins have been characterised and therefore little is known about the specific roles they play in RNA metabolism. Here, it was shown that Hel66 is involved in rRNA processing during ribosome biogenesis. Hel66 localises to the nucleolus and depleting the protein led to a severe growth defect. Loss of the protein also resulted in a reduced rate of global translation and accumulation of rRNA processing intermediates of both the small and large ribosomal subunits. Hel66 is therefore an essential nucleolar DExD/H protein involved in rRNA processing during ribosome biogenesis. As very few protein factors involved in the processing of rRNAs have been described in trypanosomes, this finding represents an important platform for future investigation of this topic.Das variable Oberflächen-Glykoprotein (“varaint surface glycoprotein“, VSG) der Afrikanischen Trypanosomen schützt den Parasiten vor Immunfaktoren des Wirtes. Trypanosomen beherrschen die antigene Variation und expremieren nur eine einzige VSG Isoform aus einem Repertoire von ungefähr 2000 Genen. Der molekulare Mechanismus der die Expression dieser VSG Gene reguliert ist nicht komplett bekannt. Die Genexpression ist in Trypanosomen sehr ungewöhnlich. Es gibt keine typischen Promotoren für RNA Polymerase II und Gene werden polycistronisch transkribiert. Daher ist die Regulation der Genexpression hauptsächlich posttranskriptional. Die Expression individueller mRNAs wird durch regulatorische Sequenzen reguliert, die sich häufig in den 3´ UTRs befinden. In den VSG Genen von T. brucei moduliert ein zu 100% konserviertes 16mer Motiv in der 3´ UTR die Stabilität der VSG Transkripte und damit deren Expression. Für eine Sequenz, die die Stabilität der mRNA reguliert, ist das Fehlen von Nukleotid Substitutionen sehr ungewöhnlich. Es wurde deshalb spekuliert, dass das 16mer Motiv neben der Stabilisierung des VSG Transkriptes noch an anderen essentiellen Prozessen beteiligt ist. In dieser Arbeit wurde gezeigt, dass die 100%ige Konservierung des 16mer Motives weder für das Überleben der Zellen, noch für den Erhalt der Expression des VSG Protein in funktioneller Menge notwendig ist. Außerdem wurde gezeigt dass das intakte Motiv in der 3´UTR des aktiven VSGs weder für das „VSG silencing“ während des VSG Austausches („switching“) noch für die Differenzierung von Blutbahnformen zu prozyklischen Formen benötigt wird. Auch die Interaktionen („crosstalk“), die während der Differenzierung zum Insekten Stadium zwischen den VSG und Prozyklin Genen stattfinden, sind in Zellen mit mutiertem 16mer Motiv noch funktionell. Die ektopische Überexpression eines zweiten VSGs benötigt allerdings das intakte Motiv, um das aktive VSG zu inaktivieren und auszutauschen: dies suggeriert eine Rolle des Motivs im transkriptionalen „VSG switching“. Das 16mer Motif spielt daher eine Doppelrolle bei der Regulation der Stabilität der VSG Transkripte und im VSG in situ „switching“. Letzteres, die Rolle im essentiellen Prozess der antigenen Variation, ist dabei offensichtlich die treibende Kraft hinter der 100%igen Konservierung des RNA Motives. Eine Suche nach möglichen RNA bindenden Proteinen, die mit dem 16mer interagieren, führte zur Identifikation des DExD/H box Proteins Hel66. Obwohl das Protein wohl nicht direkt an der Regulation der VSG Expression über das 16mer beteiligt ist, spielen Mitglieder der DexD/H Proteinfamilie eine wichtige Rolle in der Biogenese von Ribosomen. Dieser Prozess ist in Trypanosomen noch nicht komplett verstanden und daher wurde das Protein für eine nähere Analyse ausgewählt, auch weil die 16mer Story ohne weitere Kandidaten zu einem Ende gekommen war. Die Biogenese von Ribosomen ist ein wichtiger zellulärer Prozess in Eukaryoten und benötigt ribosomale RNA, ribosomale Proteine sowie einige nicht-ribosomale, trans-agierende Protein Faktoren. Proteine der DExD/H box Familie sind die wichtigsten trans- agierenden Proteinfaktoren, die an der Biogenese der Ribosomen beteiligt sind. In der Hefe sind mehrere DExD/H box Proteine bekannt, die eine direkte Rolle in diesem Prozess spielen. In Trypanosomen sind erst sehr wenige Proteine aus dieser Familie untersucht worden und es ist daher kaum bekannt, welche spezifische Rollen sie im RNA Metabolismus spielen. In dieser Arbeit wurde gezeigt, dass Hel66 an der rRNA Prozessierung während der Biogenese der Ribosomen beteiligt ist. Hel66 ist im Nukleolus lokalisiert und die Reduktion des Proteins durch RNAi führte zu einem schweren Wachstumsphänotyp. Reduktion von Hel66 führte auch zu einer globalen Reduktion der Translation sowie zur Akkumulation von Synthese- Zwischenstadien der rRNAs sowohl der kleinen und als auch der großen ribosomalen Untereinheit. Hel66 ist daher ein essentielles nukleoläres DExD/H Protein dass an der Prozessierung der rRNA während der Biogenese der Ribosomen beteiligt ist. Da bisher erst wenige Proteine bekannt sind, die in Trypanosomen an diesem Prozess beteiligt sind, sind diese Ergebnisse ein sehr wichtiger Ausgangspunkt für weitere Untersuchungen in der Zukunft

    The nucleolar DExD/H protein Hel66 is involved in ribosome biogenesis in Trypanosoma brucei

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    The biosynthesis of ribosomes is a complex cellular process involving ribosomal RNA, ribosomal proteins and several further trans-acting factors. DExD/H box proteins constitute the largest family of trans-acting protein factors involved in this process. Several members of this protein family have been directly implicated in ribosome biogenesis in yeast. In trypanosomes, ribosome biogenesis differs in several features from the process described in yeast. Here, we have identified the DExD/H box helicase Hel66 as being involved in ribosome biogenesis. The protein is unique to Kinetoplastida, localises to the nucleolus and its depletion via RNAi caused a severe growth defect. Loss of the protein resulted in a decrease of global translation and accumulation of rRNA processing intermediates for both the small and large ribosomal subunits. Only a few factors involved in trypanosome rRNA biogenesis have been described so far and our findings contribute to gaining a more comprehensive picture of this essential process

    A longitudinal two-year survey of the prevalence of trypanosomes in domestic cattle in Ghana by massively parallel sequencing of barcoded amplicons.

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    Funder: Cambridge-Africa Alborada Research FundBACKGROUND: Animal African Trypanosomiasis (AAT) is one of the most economically important diseases affecting livestock productivity in sub-Saharan Africa. The disease is caused by a broad range of Trypanosoma spp., infecting both wild and domesticated animals through cyclical and mechanical transmission. This study aimed to characterize trypanosomes present in cattle at regular intervals over two years in an AAT endemic and a non-endemic region of Ghana. METHODOLOGY/PRINCIPAL FINDINGS: Groups of cattle at Accra and Adidome were selected based on their geographical location, tsetse fly density, prevalence of trypanosomiasis and the breed of cattle available. Blood for DNA extraction was collected at approximately four to five-week intervals over a two-year period. Trypanosome DNA were detected by a sensitive nested PCR targeting the tubulin gene array and massively parallel sequencing of barcoded amplicons. Analysis of the data was a semi-quantitative estimation of infection levels using read counts obtained from the sequencing as a proxy for infection levels. Majority of the cattle were infected with multiple species most of the time [190/259 (73%) at Adidome and 191/324 (59%) at Accra], with T. vivax being the most abundant. The level of infection and in particular T. vivax, was higher in Adidome, the location with a high density of tsetse flies. The infection level varied over the time course, the timings of this variation were not consistent and in Adidome it appeared to be independent of prophylactic treatment for trypanosome infection. Effect of gender or breed on infection levels was insignificant. CONCLUSIONS/SIGNIFICANCE: Most cattle were infected with low levels of several trypanosome species at both study sites, with T. vivax being the most abundant. The measurements of infection over time provided insight to the importance of the approach in identifying cattle that could suppress trypanosome infection over an extended time and may serve as reservoir
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