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Cubillan-Marin, J.

Publications and source records attributed to Cubillan-Marin, J..

2 recordsLinked to original sources

A new class of lipid transfer proteins is required for the recycling of lipids from the P. falciparum digestive vacuole

Malaria parasites endocytose large quantities of hemoglobin from the host erythrocyte, a process critical for parasite survival, leading to extensive membrane internalization. While hemoglobin degradation in the digestive vacuole (DV) is well studied, how the parasite deals with the membranes arriving within the DV is unknown. Here we identified PfTUPA, a previously uncharacterized lipid transfer protein in the DV membrane that is needed for this function. PfTUPA contains a soluble TULIP-like lipid transport domain exposed to the DV lumen and a transmembrane lipid transfer domain of bacterial origin (PqiA) in the DV membrane. Structural comparisons revealed proteins with various PqiA and TULIP-like domain combinations across distant eukaryotic clades, indicating this is a frequent functional partnership. Hence, PfTUPA belongs to a new class of eukaryotic lipid transfer proteins that in malaria parasites is needed for a key function of its biology.

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↗