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Farias, G. B.

Publications and source records attributed to Farias, G. B..

2 recordsLinked to original sources

Characterization of Host Cell Cytosol-filled Vesicles in the Human Malaria Parasite Plasmodium falciparum

Endocytosis of host cell cytosol is a key process in malaria blood stages. The endocytosed material consists mostly of haemoglobin (Hb) and is transported to the parasite's digestive vacuole (DV), where it is degraded. However, the endosomal transport pathway of the parasite is not well defined. A number of proteins are known that - when inactivated - lead to the appearance of Hb-filled vesicles (HbVs) in the parasite cytoplasm and prevent Hb from arriving in the DV, indicating they play a role in endosomal transport. However, despite the prominence of these HbVs, their morphology, molecular composition, and relationship to the endosomal transport pathway remain poorly understood. Here we carried out a morphological and surface proteome study of HbVs. CryoET showed HbVs are coatless, double membraned vesicles with a very narrow inter-membrane space devoid of larger protein densities. HbV surface proteomes generated by BioIDs most prominently detected DV proteases. Halo-based tracking of one of these DV protease confirmed it as a bona fide HbV cargo. The BioID also identified a number of vesicle trafficking proteins, including PfTBC8 and Rab11 proteins. Functional analysis of PfTBC8 showed its importance for the transport of Hb to the DV. This was due to a novel phenotype characterized by accumulation of diverse Hb-filled structures in the parasite cytosol and gradual decline of DV protease trafficking. PfTBC8 DiQ-BioID detected Rab11a and PfTBC8 inactivation altered Rab11a localization, suggesting it may be a Rab11a effector and that the new endosomal transport phenotype may result from a recycling defect. Together with the detection of VPS35 in the BioID and evidence from the CryoET of a disrupted inner HbV membrane in a proportion of vesicles, these findings support a model in which HbVs undergo maturation prior to fusion with the DV. Overall, our findings define morphological and molecular features of HbVs, identify protein cargo transported through this pathway, and reveal a previously unrecognized Rab-regulatory component required for endosomal trafficking in blood-stage P. falciparum parasites.

microbiology↗

Malaria parasite HOPS/CORVET complexes are critical for endocytosis and invasion organelles function

The tethering complexes HOPS/CORVET are central for vesicular fusion through the eukaryotic endolysosomal system, but the functions of these complexes in the intracellular development of malaria parasites are unknown. Here we show that early inactivation of core HOPS/CORVET complex subunits in Plasmodium falciparum leads to developmental arrest and accumulation of cytosolic vesicles, indicating a role of HOPS/CORVET in parasite endocytosis and fusion of endosomes to the digestive vacuole membrane. Late inactivation of the core HOPS/CORVET subunits led to the mislocalization of luminal rhoptry and microneme proteins, and to a severe defect in merozoite invasion. Ultra-expansion microscopy revealed a reduced rhoptry volume and the accumulation of numerous vesicles, further supporting a role of HOPS/CORVET in protein trafficking to the apical organelles. Malaria parasites have therefore repurposed HOPS/CORVET to perform dual functions consistent with a canonical endocytosis pathway for delivery of host cell material to the digestive vacuole in trophozoite stages and a parasite specific role in trafficking of protein cargo to the apical organelles required for invasion in schizont stages.

cell biology↗