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Schmitz, Y.

Publications and source records attributed to Schmitz, Y..

2 recordsLinked to original sources

A PROPPIN links V-ATPase assembly to endocytic membrane dynamics in malaria parasites

Malaria parasites replicate inside red blood cells, degrading hemoglobin within a specialized digestive vacuole. Efficient hemoglobin processing is essential for parasite survival and influences antimalarial drug susceptibility. The vacuole constantly fuses with incoming hemoglobin-filled vesicles, yet the mechanisms that balance cargo influx with membrane homeostasis remain unclear. Here, using conditional reverse genetics, quantitative live-cell imaging, and 3D electron microscopy, we characterize the autophagy-related protein 18 of Plasmodium falciparum (PfATG18) as a key regulator of vacuolar membrane dynamics. Loss of PfATG18 caused vacuole fragmentation, accumulation of hemoglobin-filled vesicles, and parasite death. These defects were preceded by broad architectural destabilization of the parasites V-ATPase, a proton pump controlling organelle acidification and the vacuoles fusion-fission equilibrium. Direct interference with its membrane sector phenocopied PfATG18 deficiency. We found that PfATG18 does not interact directly with the proton pump but instead associates with a putative V-ATPase assembly factor and with complexes regulating phosphoinositide balance and vesicle trafficking. The breadth of these interactions indicates a multifaceted role at the vacuolar membrane and a regulatory influence on V-ATPase mediated through associated protein machinery. Although a point mutation in PfATG18 has been linked to artemisinin resistance, its complete knockout did not decrease sensitivity, but rather hypersensitized ring-stage parasites to dihydroartemisinin. Together, these findings establish PfATG18 as a central regulator of endocytic membrane homeostasis, essential for V-ATPase function and asexual parasite proliferation in the human blood.

microbiology↗

Redefining the role of the Plasmodium heme detoxification protein: From hemozoin formation to mitochondrial protein synthesis

Throughout their intraerythrocytic development, malaria parasites digest up to 80% of the host cells hemoglobin within a specialized degradative compartment known as the digestive vacuole. This process releases heme, which is detoxified by sequestration into bioinert hemozoin crystals. Although heme biomineralization is essential for blood-stage survival and a validated drug target, its underlying mechanisms remain unclear. Initially identified as a potent inducer of {beta}-hematin crystallization in vitro, the parasites Heme Detoxification Protein (HDP) has been proposed to execute a similar role in the formation of hemozoin crystals in cellulo. Here, we investigate the function of HDP in live Plasmodium falciparum parasites, integrating experimental genetic approaches with quantitative microscopy, cellular bioenergetics and whole-proteome profiling. Endogenous tagging revealed that HDP localizes to the mitochondrion rather than the digestive vacuole. Conditional inactivation of HDP resulted in a gradual loss of mitochondrial membrane potential, preceding developmental arrest. Bypassing the essential role of the respiratory chain in pyrimidine biosynthesis - either through exogenous electron acceptors or expression of a ubiquinone-independent dihydroorotate dehydrogenase - rescued HDP-deficient parasites, indicating a role in maintaining respiratory chain activity. Consistent with this, electron flow through complex IV was abolished in rescued HDP-null parasites, rendering them hypersensitive to proguanil, an antimalarial that synergizes with respiratory chain inhibitors. We found that loss of HDP leads to a marked reduction of complexes III and IV, whose integrity depends on mitochondrial protein biosynthesis. Integration of quantitative proteomic data with structure-guided homology modelling supports a role for HDP as part of the large mitoribosomal subunit at the inter-subunit contact site. By contrast, HDP loss did not affect the quantity of hemozoin or other heme species, crystal morphology, or sensitivity to the hemozoin-targeting drug chloroquine. Together, these findings challenge previous models linking HDP to hemozoin formation and instead reveal an essential role for HDP in mitochondrial protein biosynthesis.

microbiology↗