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Atchou, K.

Publications and source records attributed to Atchou, K..

2 recordsLinked to original sources

Post-translational modifications of microtubules are crucial for malaria parasite transmission

Microtubules, composed of - and {beta}-tubulin polymers, are essential components of the eukaryotic cytoskeleton. They maintain cellular shape and structural integrity and play critical roles in cell division and in intracellular vesicular transport. In Plasmodium, the parasite that causes malaria, nuclear replication during the liver stage is among the fastest known in eukaryotic cells and relies heavily on microtubules for DNA segregation and cytoskeletal organization. Despite their importance, the role of microtubules in liver stage development remains largely unexplored. Here, we investigated microtubule dynamics during liver stage development using a combination of cell and molecular biology techniques, expansion microscopy, and live-cell imaging. By employing antibodies specific for -tubulin post-translational modifications (PTMs), we found that the Plasmodium sporozoites subpellicular microtubules (SSPM) persist during liver infection, giving rise to liver stage parasite microtubule bundles (LSPMB). These LSPMB form multimeric tubulin structures within hepatocytes and are redistributed to the hemi-spindle poles of parasite nuclei during schizogony. Deletion of the C-terminal region encompassing all known Plasmodium -tubulin PTM sites prevented sporozoite migration from the mosquito midgut to the salivary glands, effectively blocking parasite transmission. Using Plasmodium microtubule-specific depolymerisation drugs, we found that while LSPMB are stable in sporozoites, they exhibit dynamic behavior during hepatocyte infection. Given the regulatory role of PTMs in microtubule dynamics, we generated parasite mutants by substituting and deleting key -tubulin C-terminal residues involved in PTMs. Substitution of the polyglutamylation site with alanine and deletion of the C-terminal tyrosination/detyrosination motifs impaired parasite growth during liver infection. Together, our findings reveal extensive microtubule remodeling during liver stage development and establish -tubulin C-terminal modifications as critical regulators of both intracellular development and parasite transmission of Plasmodium parasites.

cell biology↗

Pre-gelation staining expansion microscopy (PS-ExM) for visualization of the Plasmodium liver stage

Fluorescence and light microscopy are important tools in the history of natural science. However, the resolution of microscopes is limited by the diffraction of light. One possible method to circumvent this physical restriction is the recently developed expansion microscopy (ExM). By physically expanding the sample in a swellable hydrogel, biomolecules are separated in space allowing to image molecules that are otherwise difficult to study due to their size or complexity. Furthermore, the improved resolution is useful to study protein localization and interactions. However, the original ultrastructure ExM (U-ExM) protocol is very time-consuming, and some epitopes are lost during the process. In this study, we developed a shortened pre-gelation staining ExM (PS-ExM) protocol and tested it to investigate the Plasmodium liver stage. The protocol presented in this study allows expanding pre-stained samples, which results in shorter incubation times, better preservation of some epitopes, and the advantage that non-expanded controls can be performed alongside using the same staining protocol. The protocol applicability was accessed throughout the Plasmodium liver stage showing isotropic five-fold expansion. Furthermore, we used PS-ExM to visualize the association of lysosomes to the parasitophorous vacuole membrane (PVM) as an example of visualizing host-pathogen interaction. We are convinced that this new tool will be helpful for a deeper understanding of the biology of the Plasmodium liver stage.

cell biology↗