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Inositol Depletion Restores Vesicle Transport in Yeast Phospholipid Flippase Mutants

In eukaryotic cells, type 4 P-type ATPases function as phospholipid flippases, which translocate phospholipids from the exoplasmic leaflet to the cytoplasmic leaflet of the lipid bilayer. Flippases function in the formation of transport vesicles, but the mechanism remains unknown. Here, we isolate a...

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Autores principales: Yamagami, Kanako, Yamamoto, Takaharu, Sakai, Shota, Mioka, Tetsuo, Sano, Takamitsu, Igarashi, Yasuyuki, Tanaka, Kazuma
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4363822/
https://www.ncbi.nlm.nih.gov/pubmed/25781026
http://dx.doi.org/10.1371/journal.pone.0120108
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author Yamagami, Kanako
Yamamoto, Takaharu
Sakai, Shota
Mioka, Tetsuo
Sano, Takamitsu
Igarashi, Yasuyuki
Tanaka, Kazuma
author_facet Yamagami, Kanako
Yamamoto, Takaharu
Sakai, Shota
Mioka, Tetsuo
Sano, Takamitsu
Igarashi, Yasuyuki
Tanaka, Kazuma
author_sort Yamagami, Kanako
collection PubMed
description In eukaryotic cells, type 4 P-type ATPases function as phospholipid flippases, which translocate phospholipids from the exoplasmic leaflet to the cytoplasmic leaflet of the lipid bilayer. Flippases function in the formation of transport vesicles, but the mechanism remains unknown. Here, we isolate an arrestin-related trafficking adaptor, ART5, as a multicopy suppressor of the growth and endocytic recycling defects of flippase mutants in budding yeast. Consistent with a previous report that Art5p downregulates the inositol transporter Itr1p by endocytosis, we found that flippase mutations were also suppressed by the disruption of ITR1, as well as by depletion of inositol from the culture medium. Interestingly, inositol depletion suppressed the defects in all five flippase mutants. Inositol depletion also partially restored the formation of secretory vesicles in a flippase mutant. Inositol depletion caused changes in lipid composition, including a decrease in phosphatidylinositol and an increase in phosphatidylserine. A reduction in phosphatidylinositol levels caused by partially depleting the phosphatidylinositol synthase Pis1p also suppressed a flippase mutation. These results suggest that inositol depletion changes the lipid composition of the endosomal/TGN membranes, which results in vesicle formation from these membranes in the absence of flippases.
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spelling pubmed-43638222015-03-23 Inositol Depletion Restores Vesicle Transport in Yeast Phospholipid Flippase Mutants Yamagami, Kanako Yamamoto, Takaharu Sakai, Shota Mioka, Tetsuo Sano, Takamitsu Igarashi, Yasuyuki Tanaka, Kazuma PLoS One Research Article In eukaryotic cells, type 4 P-type ATPases function as phospholipid flippases, which translocate phospholipids from the exoplasmic leaflet to the cytoplasmic leaflet of the lipid bilayer. Flippases function in the formation of transport vesicles, but the mechanism remains unknown. Here, we isolate an arrestin-related trafficking adaptor, ART5, as a multicopy suppressor of the growth and endocytic recycling defects of flippase mutants in budding yeast. Consistent with a previous report that Art5p downregulates the inositol transporter Itr1p by endocytosis, we found that flippase mutations were also suppressed by the disruption of ITR1, as well as by depletion of inositol from the culture medium. Interestingly, inositol depletion suppressed the defects in all five flippase mutants. Inositol depletion also partially restored the formation of secretory vesicles in a flippase mutant. Inositol depletion caused changes in lipid composition, including a decrease in phosphatidylinositol and an increase in phosphatidylserine. A reduction in phosphatidylinositol levels caused by partially depleting the phosphatidylinositol synthase Pis1p also suppressed a flippase mutation. These results suggest that inositol depletion changes the lipid composition of the endosomal/TGN membranes, which results in vesicle formation from these membranes in the absence of flippases. Public Library of Science 2015-03-17 /pmc/articles/PMC4363822/ /pubmed/25781026 http://dx.doi.org/10.1371/journal.pone.0120108 Text en © 2015 Yamagami et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Yamagami, Kanako
Yamamoto, Takaharu
Sakai, Shota
Mioka, Tetsuo
Sano, Takamitsu
Igarashi, Yasuyuki
Tanaka, Kazuma
Inositol Depletion Restores Vesicle Transport in Yeast Phospholipid Flippase Mutants
title Inositol Depletion Restores Vesicle Transport in Yeast Phospholipid Flippase Mutants
title_full Inositol Depletion Restores Vesicle Transport in Yeast Phospholipid Flippase Mutants
title_fullStr Inositol Depletion Restores Vesicle Transport in Yeast Phospholipid Flippase Mutants
title_full_unstemmed Inositol Depletion Restores Vesicle Transport in Yeast Phospholipid Flippase Mutants
title_short Inositol Depletion Restores Vesicle Transport in Yeast Phospholipid Flippase Mutants
title_sort inositol depletion restores vesicle transport in yeast phospholipid flippase mutants
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4363822/
https://www.ncbi.nlm.nih.gov/pubmed/25781026
http://dx.doi.org/10.1371/journal.pone.0120108
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