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Al-Qatabi, N.

Publications and source records attributed to Al-Qatabi, N..

2 recordsLinked to original sources

Ist2 promotes lipid transfer by Osh6 via its membrane tethering and lipid scramblase activities

Lipid transfer proteins (LTPs) are required for the uneven distribution of lipids between cellular membranes, which is essential for many cell functions. In yeast, Osh6 is an LTP that exchanges phosphatidylserine (PS) with phosphatidylinositol 4-phosphate (PI(4)P) between the endoplasmic reticulum (ER) and the plasma membrane (PM), promoting the enrichment of PS in the PM. Here, we address why, to function optimally, Osh6 must bind to Ist2, an ER-resident lipid scramblase able to connect the ER to the PM via an intrinsically disordered region (IDR). We determined in vitro that Osh6 binds to the Ist2 IDR with micromolar affinity, whether empty or bound to its lipid ligands. Moreover, we found that Osh6 efficiently transfers PS at ER-PM contact sites if the Ist2 IDR has a minimal length and its binding site in the IDR is sufficiently removed from the ER surface. Next, we reconstituted the Osh6:Ist2 complex within artificial ER-PM contact sites and demonstrated that the association of Osh6 with Ist2 allows for a fast and directed PS flux between the connected membranes. We identified the Ist2 binding site on the Osh6 surface by validating structural models using our functional assays. Finally, we found that the Osh6-mediated PS transfer can be coupled to the PS scramblase activity of Ist2. These data unveil new functional partnerships between an LTP and a membrane tethering/scramblase protein and point to the general advantage of localizing these processes to membrane contact sites to ensure their efficiency.

biochemistry↗

Characterization of atypical BAR domain-containing proteins coded by Toxoplasma gondii

Toxoplasma gondii, the causative agent of toxoplasmosis, infects cells and replicates inside via the secretion of factors stored in specialized organelles (rhoptries, micronemes, dense granules) and the capture of host materials. The genesis of the secretory organelles and the processes of secretion and endocytosis depend on vesicular trafficking events whose molecular bases remain poorly known. Notably, there is no characterization of the BAR (Bin/Amphiphysin/Rvs) domain-containing proteins expressed by T. gondii and other apicomplexans, although such proteins are known to play critical roles in vesicular trafficking in other eukaryotes. Here, by combining structural analyses with in vitro assays and cellular observations, we have characterized TgREMIND (REgulators of Membrane Interacting Domains), involved in the genesis of rhoptries and dense granules, and TgBAR2 found at the parasite cortex. We establish that TgREMIND comprises an F-BAR domain that can bind curved neutral membranes with no strict phosphoinositide requirement and exert a membrane remodeling activity. Next, we establish that TgREMIND contains a new structural domain called REMIND, which negatively regulates the membrane-binding capacities of the F-BAR domain. In parallel, we report that TgBAR2 contains a BAR domain with an extremely basic membrane-binding interface able to deform anionic membranes into very narrow tubules. Our data show that T. gondii codes for two atypical BAR domain-containing proteins with very contrasting membrane-binding properties, allowing them to function in two distinct regions of the parasite trafficking system.

biochemistry↗