YPR139c/LOA1encodes a novel lysophosphatidic acid acyltransferase associated with lipid droplets and involved in TAG homeostasis

Author:

Ayciriex Sophie12,Le Guédard Marina12,Camougrand Nadine3,Velours Gisèle3,Schoene Mario4,Leon Sebastien5,Wattelet-Boyer Valerie12,Dupuy Jean-William6,Shevchenko Andrej7,Schmitter Jean-Marie8,Lessire René12,Bessoule Jean-Jacques12,Testet Eric12

Affiliation:

1. Laboratoire de Biogenèse Membranaire, Université Bordeaux, UMR 5200, F-33000 Bordeaux, France

2. Laboratoire de Biogenèse Membranaire, CNRS, UMR 5200, F-33000 Bordeaux, France

3. Institut de Biochimie et de Génétique Cellulaires, Université Bordeaux, CNRS UMR 5095, F-33000 Bordeaux, France

4. LIMES Institute, University of Bonn, 53115 Bonn, Germany

5. Institut Jacques Monod, CNRS, UMR 7592, Université Paris Diderot, Sorbonne Paris Cité, F-75205 Paris, France

6. Plateforme Protéome, Centre de Génomique Fonctionnelle Bordeaux, Université de Bordeaux, F-33000 Bordeaux, France

7. Max Planck Institute of Molecular Cell Biology and Genetics, 01307 Dresden, Germany

8. Centre de Génomique Fonctionnelle Bordeaux, Université de Bordeaux, UMR 5248 CNRS, F-3000 Bordeaux, France

Abstract

For many years, lipid droplets (LDs) were considered to be an inert store of lipids. However, recent data showed that LDs are dynamic organelles playing an important role in storage and mobilization of neutral lipids. In this paper, we report the characterization of LOA1 (alias VPS66, alias YPR139c), a yeast member of the glycerolipid acyltransferase family. LOA1 mutants show abnormalities in LD morphology. As previously reported, cells lacking LOA1 contain more LDs. Conversely, we showed that overexpression results in fewer LDs. We then compared the lipidome of loa1Δ mutant and wild-type strains. Steady-state metabolic labeling of loa1Δ revealed a significant reduction in triacylglycerol content, while phospholipid (PL) composition remained unchanged. Interestingly, lipidomic analysis indicates that both PLs and glycerolipids are qualitatively affected by the mutation, suggesting that Loa1p is a lysophosphatidic acid acyltransferase (LPA AT) with a preference for oleoyl-CoA. This hypothesis was tested by in vitro assays using both membranes of Escherichia coli cells expressing LOA1 and purified proteins as enzyme sources. Our results from purification of subcellular compartments and proteomic studies show that Loa1p is associated with LD and active in this compartment. Loa1p is therefore a novel LPA AT and plays a role in LD formation.

Publisher

American Society for Cell Biology (ASCB)

Subject

Cell Biology,Molecular Biology

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