A role for phosphatidic acid in the formation of "supersized" lipid droplets.
Lipid droplets (LDs) are important cellular organelles that govern the storage and turnover of lipids. Little is known about how the size of LDs is controlled, although LDs of diverse sizes have been observed in different tissues and under different (patho)physiological conditions. Recent studies ha...
Main Authors: | , , , , , , , , , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Public Library of Science (PLoS)
2011-07-01
|
Series: | PLoS Genetics |
Online Access: | http://europepmc.org/articles/PMC3145623?pdf=render |
id |
doaj-cd621daf97d94406aba5e51e3e2aa63d |
---|---|
record_format |
Article |
spelling |
doaj-cd621daf97d94406aba5e51e3e2aa63d2020-11-25T02:12:46ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042011-07-0177e100220110.1371/journal.pgen.1002201A role for phosphatidic acid in the formation of "supersized" lipid droplets.Weihua FeiGuanghou ShuiYuxi ZhangNatalie KrahmerCharles FergusonTamar S KapterianRuby C LinIan W DawesAndrew J BrownPeng LiXun HuangRobert G PartonMarkus R WenkTobias C WaltherHongyuan YangLipid droplets (LDs) are important cellular organelles that govern the storage and turnover of lipids. Little is known about how the size of LDs is controlled, although LDs of diverse sizes have been observed in different tissues and under different (patho)physiological conditions. Recent studies have indicated that the size of LDs may influence adipogenesis, the rate of lipolysis and the oxidation of fatty acids. Here, a genome-wide screen identifies ten yeast mutants producing "supersized" LDs that are up to 50 times the volume of those in wild-type cells. The mutated genes include: FLD1, which encodes a homologue of mammalian seipin; five genes (CDS1, INO2, INO4, CHO2, and OPI3) that are known to regulate phospholipid metabolism; two genes (CKB1 and CKB2) encoding subunits of the casein kinase 2; and two genes (MRPS35 and RTC2) of unknown function. Biochemical and genetic analyses reveal that a common feature of these mutants is an increase in the level of cellular phosphatidic acid (PA). Results from in vivo and in vitro analyses indicate that PA may facilitate the coalescence of contacting LDs, resulting in the formation of "supersized" LDs. In summary, our results provide important insights into how the size of LDs is determined and identify novel gene products that regulate phospholipid metabolism.http://europepmc.org/articles/PMC3145623?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Weihua Fei Guanghou Shui Yuxi Zhang Natalie Krahmer Charles Ferguson Tamar S Kapterian Ruby C Lin Ian W Dawes Andrew J Brown Peng Li Xun Huang Robert G Parton Markus R Wenk Tobias C Walther Hongyuan Yang |
spellingShingle |
Weihua Fei Guanghou Shui Yuxi Zhang Natalie Krahmer Charles Ferguson Tamar S Kapterian Ruby C Lin Ian W Dawes Andrew J Brown Peng Li Xun Huang Robert G Parton Markus R Wenk Tobias C Walther Hongyuan Yang A role for phosphatidic acid in the formation of "supersized" lipid droplets. PLoS Genetics |
author_facet |
Weihua Fei Guanghou Shui Yuxi Zhang Natalie Krahmer Charles Ferguson Tamar S Kapterian Ruby C Lin Ian W Dawes Andrew J Brown Peng Li Xun Huang Robert G Parton Markus R Wenk Tobias C Walther Hongyuan Yang |
author_sort |
Weihua Fei |
title |
A role for phosphatidic acid in the formation of "supersized" lipid droplets. |
title_short |
A role for phosphatidic acid in the formation of "supersized" lipid droplets. |
title_full |
A role for phosphatidic acid in the formation of "supersized" lipid droplets. |
title_fullStr |
A role for phosphatidic acid in the formation of "supersized" lipid droplets. |
title_full_unstemmed |
A role for phosphatidic acid in the formation of "supersized" lipid droplets. |
title_sort |
role for phosphatidic acid in the formation of "supersized" lipid droplets. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Genetics |
issn |
1553-7390 1553-7404 |
publishDate |
2011-07-01 |
description |
Lipid droplets (LDs) are important cellular organelles that govern the storage and turnover of lipids. Little is known about how the size of LDs is controlled, although LDs of diverse sizes have been observed in different tissues and under different (patho)physiological conditions. Recent studies have indicated that the size of LDs may influence adipogenesis, the rate of lipolysis and the oxidation of fatty acids. Here, a genome-wide screen identifies ten yeast mutants producing "supersized" LDs that are up to 50 times the volume of those in wild-type cells. The mutated genes include: FLD1, which encodes a homologue of mammalian seipin; five genes (CDS1, INO2, INO4, CHO2, and OPI3) that are known to regulate phospholipid metabolism; two genes (CKB1 and CKB2) encoding subunits of the casein kinase 2; and two genes (MRPS35 and RTC2) of unknown function. Biochemical and genetic analyses reveal that a common feature of these mutants is an increase in the level of cellular phosphatidic acid (PA). Results from in vivo and in vitro analyses indicate that PA may facilitate the coalescence of contacting LDs, resulting in the formation of "supersized" LDs. In summary, our results provide important insights into how the size of LDs is determined and identify novel gene products that regulate phospholipid metabolism. |
url |
http://europepmc.org/articles/PMC3145623?pdf=render |
work_keys_str_mv |
AT weihuafei aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT guanghoushui aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT yuxizhang aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT nataliekrahmer aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT charlesferguson aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT tamarskapterian aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT rubyclin aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT ianwdawes aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT andrewjbrown aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT pengli aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT xunhuang aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT robertgparton aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT markusrwenk aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT tobiascwalther aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT hongyuanyang aroleforphosphatidicacidintheformationofsupersizedlipiddroplets AT weihuafei roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT guanghoushui roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT yuxizhang roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT nataliekrahmer roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT charlesferguson roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT tamarskapterian roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT rubyclin roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT ianwdawes roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT andrewjbrown roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT pengli roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT xunhuang roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT robertgparton roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT markusrwenk roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT tobiascwalther roleforphosphatidicacidintheformationofsupersizedlipiddroplets AT hongyuanyang roleforphosphatidicacidintheformationofsupersizedlipiddroplets |
_version_ |
1724908348739944448 |