Literatura científica selecionada sobre o tema "Virulence du paludisme"
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Artigos de revistas sobre o assunto "Virulence du paludisme"
Ayala, Stephen C., e Guillermo Sarmiento. "Plasmodium en los animales y el hombre". Actualidades Biológicas 5, n.º 17 (25 de janeiro de 2018): 55–61. http://dx.doi.org/10.17533/udea.acbi.330491.
Texto completo da fonteLeón Vegas, Milagros. "Las crisis de tifus epidémico y paludismo en la Andalucía del siglo XVIII". Cuadernos Dieciochistas 24 (1 de outubro de 2023): 41–60. http://dx.doi.org/10.14201/cuadieci2023244160.
Texto completo da fonteBustos González, Álvaro, e Nany Katrini Castilla Herrera. "Malaria en niños: una breve actualización". Revista Pediátrica de Panamá, 1 de abril de 2019, 35–37. http://dx.doi.org/10.37980/im.journal.rspp.20191570.
Texto completo da fonteTeses / dissertações sobre o assunto "Virulence du paludisme"
Jurzynski, Christophe. "Cytoadhérence de P. Falciparum : nouveaux facteurs de virulence et modifications des cellules endothéliales". Aix-Marseille 2, 2008. http://www.theses.fr/2008AIX20657.
Texto completo da fonteBayibeki, Ngano Albert. "Résistance des moustiques vs virulence du parasite : étude des interactions génétiques entre le parasite humain Plasmodium falciparum et les vecteurs Anopheles gambiae et Anopheles coluzzii en conditions naturelles". Thesis, Strasbourg, 2018. http://www.theses.fr/2018STRAJ036.
Texto completo da fonteAnopheles coluzzii mosquitoes are vectors of human malaria in sub-Saharan Africa. Still, even within a vector species, the ability of mosquitoes to carry malaria parasites varies extensively between individuals, with some mosquitoes that eliminate all parasites, and are therefore unable to transmit the disease. Polymorphism in the complement-like protein TEP1 was shown to contribute to determine mosquito susceptibility to the murine malaria parasite P. berghei (Blandin et al., 2009) as well as to the human malaria parasite P. falciparum (White et al., 2010). Still, we demonstrated that TEP1 alone could not fully explain mosquito resistance and we set up to identify additional genetic factors that determine mosquito vector competence in the Ngousso line that was recently colonised in Cameroon and whose phenotype range varies extensively when exposed to P. berghei infection. To be independent from variations in the TEP1 locus, we first selected a parental line homozygous for a single TEP1 allele, TEP1*S1, that was previously linked to mosquito susceptibility. We then created isofemale families and selected them according to their phenotype upon infection with the murine malaria parasite P. berghei over several generations to create two lines carrying either many (S1high) or few (S1low) parasites. To identify the regions of the genomes that are linked to this phenotypic difference, we performed crosses and QTL mapping. To test whether the phenotypic difference selected upon P. berghei infections was conserved for P. falciparum, we subjected our two lines to blood meals infected with natural isolates of the human parasite collected in Cameroon. Results of the selection process and field infections will be presented
Cellier-Holzem, Elise. "Ecologie évolutive de la malaria aviaire : approches expérimentales des relations entre Plasmodium relictum et le canari domestique". Phd thesis, Université de Bourgogne, 2010. http://tel.archives-ouvertes.fr/tel-00665065.
Texto completo da fonte