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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
21

Význam exosomů a ektosomů pro virulenci Trichomonas vaginalis. / Role of exosomes and ectosomes in Trichomonas vaginalis virulence

Göblová, Rebeka January 2020 (has links)
Trichomonas vaginalis is a causative agent of the most common non-viral sexually transmitted disease with approximately 275 mil new cases annually. Virulence of this parasitic depends on at least four factors: cell shape transformation, cytoadherence, secretion of cysteine proteases, and presence of endosymbionts. Over the past decades, extracellular vesicles appeared being another important player in the host-parasite interaction. It was discovered that T. vaginalis is one of the protists that can shed the extracellular vesicles such as exosomes and ectosomes. These vesicles are possibly involved in host-parasite communications, however limited information is available about their function. To investigate a possible role of exosomes in T. vaginalis virulence, we first selected suitable strain, which is free of endosymbionts (TV 17-2MI). Next we prepared six clones of TV 17-2MI strain to test whether the strain is homogenous concerning the virulence, or there are differences in virulence among individual cells. Mouse intraperitoneal virulence tests revealed that the clones displayed significant differences in virulence level, particularly in abscess formation and mortality of infected animals. Thus, for the first time we demonstrated heterogeneity of cells derived from a single T. vaginalis strain...
22

Udržování integrity chromosomů na modelu Giardia Intestinalis. / Maintenance of chromosomes integrity in Giardia intestinails as a model organism.

Uzlíková, Magdalena January 2019 (has links)
Giardia intestinalis is a protozoan causing diarrhea worldwide. Beside its medical importance, it is evolutionary distant protist with two nuclei within a cell adapted for parasitic life in the environment poor of oxygen. Its genome is small and compact in term of gene content and size. It is therefore an attractive model organism for studies of minimal requirements for cellular processes. Present work brings new partial information on different levels of chromosome integrity maintenance of this parasite. Our study presents characteristics of chromosome termini and their protection. We localized telomeres during all stages of the trophozoite cell cycle and determined the length of Giardia telomeres ranging from 0.5 to 2.5 kb, we proved an existence of an active telomerase enzyme synthesizing telomeric repeats in in this parasite, despite the fact that giardial telomerase is structurally divergent. Present data support the view that the chromosomal termini in Giardia are maintained in a conservative manner that is common to other eukaryotes. We described effects of commonly used drug for treatment of anaerobic infections, metronidazole, on DNA and cell cycle progression in susceptible and resistant cell lines. Incubation of cells with this drug causes phosphorylation of histone H2A in cell nuclei...
23

Diversité et processus de colonisation microbienne sur des substrats minéraux / Diversity and microbial colonization process in biofilms on mineral substractes

Ragon, Marie 30 September 2011 (has links)
Mes travaux de recherche ont eu pour but d’analyser la diversité des microorganismes des trois domaines du vivant présents dans des biofilms phototrophes exposés à l’air, se développant sur des substrats minéraux divers, afin d’essayer, d’une part, de répondre à des questions de diversité et de biogéographie et, d’autre part, d’étudier le processus de colonisation par le biais d’expériences d’exposition contrôlées.J’ai ainsi caractérisé, essentiellement par des approches moléculaires basées sur l'analyse des banques des gènes d'ARNr de la petite sous-unité (SSU rDNAs) et sur des analyses d'empreintes communautaires, la diversité microbienne (procaryote et eucaryote) formant des biofilms matures (exposés depuis plusieurs années) dans plusieurs sites géographiques en Irlande du Nord, en France et en Ukraine, dans la région de Chernobyl. Dans ces biofilms soumis à forte pression sélective, nous avons mis en évidence beaucoup de microorganismes hétérotrophes et phototrophes, mais avec une diversité relativement restreinte en comparaison à d’autres milieux comme les sols ou les systèmes aquatiques. Les archées étaient absentes. Les conditions environnementales auxquelles ce type de biofilm est constamment exposé comme l’irradiation, la dessiccation et la limitation des nutriments sélectionnent des microorganismes qui développent des stratégies pour s’adapter comme, entre autres, la production de pigments. Ce sont des microorganismes fréquemment retrouvés dans des milieux désertiques extrêmes et résistants aussi aux radiations ionisantes qui ont ainsi été identifiés, notamment des Deinococcales et des Actinobacteria, ou encore des champignons ascomycètes (Ascomycota). Parmi les organismes phototrophes, nous avons dénombré des Cyanobacteria, des algues vertes (Chlorophyta) et des Streptophyta. Nous avons mis en évidence que les facteurs environnementaux influencent la composition des biofilms. Toutefois, tandis que la composition de la communauté bactérienne est fortement dépendante de la nature du substrat ou elle se développe, la composition des communautés microbiennes eucaryotes dépend de la distance géographique. Nous avons également mené des expériences de colonisation en exposant un même substrat minéral dans trois sites géographiques en Irlande du Nord et en France. L'analyse de la diversité microbienne lors du processus de colonisation a révélé des changements importants dans la composition des communautés, que ce soit pour les procaryotes ou pour les eucaryotes avec, cependant, des comportements différents de ces deux groupes de microorganismes. Dans le cas des bactéries, on observe une transition des Gammaproteobacteria, qui dominent les temps 0-6 mois et qui correspondent vraisemblablement aux cellules inactives en dispersion, vers des Betaproteobacteria, Bacteroidetes, Alphaproteobacteria et Actinobacteria dans des phases successives de formation du biofilm. Par contre, dès leur détection sur le substrat minéral, les eucaryotes sont massivement dominés par des champignons ascomycètes et basidiomycètes, des algues vertes ainsi que d'autres composantes minoritaires comme des ciliés, étant détectées dans des stades plus tardifs. Nos résultats montrent que les organismes hétérotrophes sont pionniers dans la formation de ces biofilms, ce qui permet d'émettre l'hypothèse qu'ils facilitent l'installation des cyanobactéries et surtout des algues vertes. Ils montrent aussi que le processus d'assemblage des communautés bactériennes dépend du temps de colonisation, alors que le site géographique détermine celui des microorganismes eucaryotes. Ces différences majeures de comportement pourraient être expliquées par des modes de vie différents entre les organismes de ces deux grands groupes. / The major objective of my PhD work was the analysis of the diversity of microorganisms from the three domains of life associated with phototrophic biofilms developing on different mineral substrates exposed outdoors. These studies aimed at answering questions about microbial diversity and biogeography and also at studying the colonization process through controlled exposure experiments. I have thus characterized, essentially by molecular methods based on small subunit (SSU) rRNA gene libraries and fingerprinting analyses the diversity of prokaryote and eukaryote microorganisms forming mature biofilms (exposed for several years) in various geographic sites in Northern Ireland, France and Ukraine, in the Chernobyl area. In these biofilms, subjected to strong selective pressure, we found many heterotrophic and phototrophic microorganisms, but their diversity was limited when compared to that of other environments such as soils or aquatic systems. Archaea were absent from all biofilms. The environmental conditions to which these biofilms are constantly exposed, such as irradiation, desiccation and nutrient limitation select for organisms that develop particular adaptive strategies including, among others, pigment production. The microorganisms identified in these biofilms are also frequently found in extreme, desert environments and are known for their resistance also to ionizing radiation, such as Deinococcales and Actinobacteria or ascomycete fungi (Ascomycota). Among phototrophic lineages, we identified Cyanobacteria, Chlorophyta (green algae) and sometimes Streptophyta. We showed that environmental parameters influenced biofilm microbial communities. However, whereas the bacterial community composition depends on the nature of the substrate, the microbial eukaryotic community composition depends on the geographic distance. We also carried out colonization experiences exposing outdoors the same mineral substrate in three different sites in Northern Ireland and France. The analysis of microbial diversity along the colonization process revealed important changes in community composition both for prokaryotes and eukaryotes, although the behavior of the two groups was different. In the case of bacteria, we observed a transition from Gammaproteobacteria, which dominated the initial 0-6 months and which likely corresponded to inactive dispersive cells, towards Betaproteobacteria, Bacteroidetes, Alphaproteobacteria and Actinobacteria in successive steps of biofilm formation. By contrast, since their detection on mineral substrates, eukaryotes were massively dominated by ascomycete and basidiomycete fungi, green algae and other minor components such as ciliates were detected in later stages of biofilm formation. Our results show that heterotrophic organisms are pioneers in the formation of these biofilms, leading to the hypothesis that they facilitate the settlement of Cyanobacteria and, especially, of green algae. They also show that the process of bacteria community assembly depends on colonization time whereas the geographic site determines that of eukaryotic microorganisms. These major differences might be explained by different lifestyles between organisms of the two groups
24

Encystace a životní cyklus volně žijících améb rodu Acanthamoeba spp. / Encystation and life cycle of free living amoebae of the genus Acanthamoeba spp.

Bínová, Eva January 2021 (has links)
Amoebae of the genus Acanthamoeba spp. are free-living unicellular organisms found in disparate ecosystems all over the world. Due to their ability to invade human body, evade its defensive mechanisms and cause extensive tissue damage, Acanthamoeba infection can lead to serious, if rare, diseases, affecting most commonly the eye and the central nervous system. Specific therapy for Acanthamoeba infections is not available. A major reason for therapeutic failure in ameobiasis is the ability of the protist to differentiate into resistant stages. These are cysts, known to be formed under prolonged unfavorable conditions, both in the environment and the infected tissues, and the pseudocysts, less durable but rapidly formed under acute stress. The present thesis focuses on as yet unexplored mechanisms of resistance of cysts and pseudocysts. Moreover, further characteristics distinguishing cysts and pseudocysts as well as the processes involved in their formation are investigated. One of the issues addressed is a presence of protective carbohydrate compounds mannitol and trehalose that participate in defensive reactions against abiotic stress in many organisms. Although putative genes for enzymes of the trehalose and mannitol synthetic pathways are present in the genome of Acanthamoeba, only one of the...

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