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Role of Phosphatidylserine in Phospholipid Flippase-mediated Vesicle Transport in Saccharomyces Cerevisiae

Overview
Journal Eukaryot Cell
Specialty Molecular Biology
Date 2014 Jan 7
PMID 24390140
Citations 15
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Abstract

Phospholipid flippases translocate phospholipids from the exoplasmic to the cytoplasmic leaflet of cell membranes to generate and maintain phospholipid asymmetry. The genome of budding yeast encodes four heteromeric flippases (Drs2p, Dnf1p, Dnf2p, and Dnf3p), which associate with the Cdc50 family noncatalytic subunit, and one monomeric flippase Neo1p. Flippases have been implicated in the formation of transport vesicles, but the underlying mechanisms are largely unknown. We show here that overexpression of the phosphatidylserine synthase gene CHO1 suppresses defects in the endocytic recycling pathway in flippase mutants. This suppression seems to be mediated by increased cellular phosphatidylserine. Two models can be envisioned for the suppression mechanism: (i) phosphatidylserine in the cytoplasmic leaflet recruits proteins for vesicle formation with its negative charge, and (ii) phosphatidylserine flipping to the cytoplasmic leaflet induces membrane curvature that supports vesicle formation. In a mutant depleted for flippases, a phosphatidylserine probe GFP-Lact-C2 was still localized to endosomal membranes, suggesting that the mere presence of phosphatidylserine in the cytoplasmic leaflet is not enough for vesicle formation. The CHO1 overexpression did not suppress the growth defect in a mutant depleted or mutated for all flippases, suggesting that the suppression was dependent on flippase-mediated phospholipid flipping. Endocytic recycling was not blocked in a mutant lacking phosphatidylserine or depleted in phosphatidylethanolamine, suggesting that a specific phospholipid is not required for vesicle formation. These results suggest that flippase-dependent vesicle formation is mediated by phospholipid flipping, not by flipped phospholipids.

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References
1.
Zhou X, Graham T . Reconstitution of phospholipid translocase activity with purified Drs2p, a type-IV P-type ATPase from budding yeast. Proc Natl Acad Sci U S A. 2009; 106(39):16586-91. PMC: 2757829. DOI: 10.1073/pnas.0904293106. View

2.
Botstein D, Falco S, Stewart S, Brennan M, Scherer S, Stinchcomb D . Sterile host yeasts (SHY): a eukaryotic system of biological containment for recombinant DNA experiments. Gene. 1979; 8(1):17-24. DOI: 10.1016/0378-1119(79)90004-0. View

3.
Trotter P, Pedretti J, Voelker D . Phosphatidylserine decarboxylase from Saccharomyces cerevisiae. Isolation of mutants, cloning of the gene, and creation of a null allele. J Biol Chem. 1993; 268(28):21416-24. View

4.
Takagi K, Iwamoto K, Kobayashi S, Horiuchi H, Fukuda R, Ohta A . Involvement of Golgi-associated retrograde protein complex in the recycling of the putative Dnf aminophospholipid flippases in yeast. Biochem Biophys Res Commun. 2011; 417(1):490-4. DOI: 10.1016/j.bbrc.2011.11.147. View

5.
Nakano K, Yamamoto T, Kishimoto T, Noji T, Tanaka K . Protein kinases Fpk1p and Fpk2p are novel regulators of phospholipid asymmetry. Mol Biol Cell. 2008; 19(4):1783-97. PMC: 2291408. DOI: 10.1091/mbc.e07-07-0646. View