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Claes, A.

Publications and source records attributed to Claes, A..

2 recordsLinked to original sources

Humanized mice for sustained Plasmodium vivax blood-stage infection and transmission

Plasmodium vivax is the most widespread human malaria parasite 1. The presence of extravascular reservoirs 2, the early circulation of infective stages (gametocytes), and relapsing infections arising from dormant liver stages 3 render this parasite particularly difficult to control and eliminate 4. Experimental research is limited by the lack of a continuous culture in vitro system that fulfills the parasites needs,5 namely its tropism for immature CD71+ red blood cells (RBCs). 5 Here, we report a humanized mice model, which upon engraftment of human hematopoietic progenitor and stem cells (HPSCs), exhibits efficient human erythropoiesis. Humanized HIS-HEry mice inoculated with cryopreserved P. vivax samples sustain long-lasting asexual parasite multiplication within CD71+ human RBCs and differentiation into mature gametocytes that can be efficiently transmitted to Anopheles mosquitoes, leading to formation salivary-gland sporozoites. Blood stages can be sequentially transferred to uninfected humanized mice by injection of fresh or frozen infected bone marrow cells, providing a unique murine model for the long-term maintenance of P. vivax isolates. This work offers a novel experimental platform to investigate the biology of RBC invasion and intraerythrocytic P. vivax development in vivo and evaluate new interventions against this elusive human parasite.

microbiology↗

An exon DNA element modulates heterochromatin spreading in the master regulator for sexual commitment in malaria parasites

Heterochromatin is essential in all eukaryotes to maintain genome integrity, long-term gene repression and to help chromosome segregation during mitosis. However, heterochromatin regions must be restricted by boundary elements to avoid its spreading over actively transcribed loci. In Plasmodium falciparum, facultative heterochromatin is important to regulate parasite virulence, antigenic variation and transmission. However, the underlying molecular mechanisms regulating repressive regions remain unknown. To investigate this topic, we chose the ap2-g gene, which forms a strictly delimited and independent heterochromatin island. Using electrophoretic motility shift assay (EMSA) we identified an ap2-g exon element at the 3 end binding nuclear protein complexes. Upon replacement of this region by a gfp gene, we observed a shift in the heterochromatin boundary resulting in HP1 (Heterochromatin Protein 1) spreading over [~]2 additional kb downstream. We used this DNA element to purify candidate proteins followed by proteomic analysis. The identified complexes were found to be enriched in RNA-binding proteins, pointing to a potential role of RNA in the regulation of the ap2-g 3 heterochromatin boundary. Our results provide insight into the unexplored topic of heterochromatin biology in P. falciparum and identify a DNA element within the master regulator of sexual commitment modulating heterochromatin spreading.

genetics↗