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Chisholm, S. A.

Publications and source records attributed to Chisholm, S. A..

2 recordsLinked to original sources

Characterisation of Two Plasmodium Virulence Factors Important for Lipid Metabolism and Disease Progression In Vivo

Malaria is caused by Plasmodium parasites and claims 610,000 deaths annually. Parasite invasion of red blood cells (RBCs) involves secretion of multiple proteins from specialised apical organelles (micronemes, rhoptries, and dense granules). These collectively facilitate host cell entry, establish a protective parasitophorous vacuole (PV), and directly and indirectly mediate interactions between the infected RBC (iRBC) and the endothelial wall. The cytoadherence of iRBCs results in sequestration within organs and plays a critical role in pathogenesis and virulence, but the function of many secreted parasite proteins remains poorly characterised. Here, we leverage spatial proteomics from Plasmodium falciparum to identify two novel Plasmodium berghei orthologue proteins containing hydrolase domains (MAP1, PBANKA_1425900, and RhoSH, PBANKA_1001500). Ultrastructure expansion microscopy reveals their localisation to the rhoptries in late schizogony, where co-immunoprecipitation assays show they interact with each other. In vivo studies demonstrate that these proteins help the parasite evade spleen-mediated clearance and contribute to disease progression. Deletion of both genes disrupts lipid metabolism and PV membrane morphology, suggesting a role in establishing or maintaining the protective PV membrane. Loss of map1 reduces sequestration of P. berghei iRBCs to adipose tissue, and conditional knockdown of the P. falciparum map1 orthologue results in reduced CD36-mediated cytoadhesion, suggesting a cross-species role in sequestration and cytoadherence. Our findings identify MAP1 and RhoSH as key mediators of Plasmodium virulence.

microbiology↗

The spatial proteome of the Plasmodium falciparum schizont illuminates the composition and evolutionary trajectories of its organelles

Malaria is caused by apicomplexan parasites of the genus Plasmodium, with all malaria symptoms and pathology caused by parasite stages that develop within, or transit between, host erythrocytes. The ability of Plasmodium cells to parasitise erythrocytes depends on distinctive intracellular compartments associated with invasion, as well as the development of unique cellular niches within the infected host cell. However, our understanding of the biology of the malaria parasite is limited by the fact that a large proportion of the parasites proteome has no known cellular location or function. To address this problem, we have generated comprehensive high-resolution maps of protein subcellular localisation for the invasive stage of the erythrocytic life cycle of Plasmodium falciparum, the major cause of malaria mortality. Using the spatial proteomics technique hyperplexed Localisation of Organelle Proteins by Isotopic Tagging (hyperLOPIT) we generated data for 3000 P. falciparum proteins expressed in late schizont stages. Our hyperLOPIT data resolved 24 distinct cellular niches, and using supervised machine-learning we can classify 1646 proteins into one of these compartments including exported sites within the host cell. Through comparative genomic analyses our data resolve the spatial patterns of cell evolution that have shaped the development of Plasmodium species and ongoing adaptive pressures and responses that challenge our efforts to manage these major disease-causing organisms.

microbiology↗