TY - JOUR
T1 - Regulation of sphingolipid biosynthesis in the endoplasmic reticulum via signals from the plasma membrane in budding yeast
AU - Ishino, Yuko
AU - Komatsu, Nao
AU - Sakata, Ken taro
AU - Yoshikawa, Daichi
AU - Tani, Motohiro
AU - Maeda, Tatsuya
AU - Morishige, Kanta
AU - Yoshizawa, Koushiro
AU - Tanaka, Naotaka
AU - Tabuchi, Mitsuaki
N1 - Funding Information:
We express our deep appreciation to Prof Scott D. Emr for generously providing plasmids and strains. We also thank Profs Isamu Kameshita and Noriyuki Sueyoshi for providing a λPPase‐expressing plasmid. We acknowledge the technical expertise of the DNA core facility of the Gene Research Center, Kagawa University. This work was supported by JSPS KAKENHI Grant Number JP19K05828 (to M. Tabuchi) and 20H03251 (to TM), 18H02139 (to M. Tani) and grants from Ohsumi Frontier Science Foundation and HUSM Grant‐in‐Aid (both to TM).
Funding Information:
We express our deep appreciation to Prof Scott D. Emr for generously providing plasmids and strains. We also thank Profs Isamu Kameshita and Noriyuki Sueyoshi for providing a ?PPase-expressing plasmid. We acknowledge the technical expertise of the DNA core facility of the Gene Research Center, Kagawa University. This work was supported by JSPS KAKENHI Grant Number JP19K05828 (to M. Tabuchi) and 20H03251 (to TM), 18H02139 (to M. Tani) and grants from Ohsumi Frontier Science Foundation and HUSM Grant-in-Aid (both to TM).
Publisher Copyright:
© 2021 Federation of European Biochemical Societies.
PY - 2022/1
Y1 - 2022/1
N2 - Saccharomyces cerevisiae LIP1 encodes a regulatory subunit that forms a complex with the ceramide synthase catalytic subunits, Lag1/Lac1, which is localized on the membrane of endoplasmic reticulum. To understand the underlying regulatory mechanism of sphingolipid biosynthesis, we generated strains upon replacing the chromosomal LIP1 promoter with a Tet-off promoter, which enables the expression in Dox-dependent manner. The lip1-1 strain, obtained through the promoter substitution, exhibits severe growth inhibition and remarkable decrease in sphingolipid synthesis in the presence of Dox. Using this strain, we investigated the effect of a decrease in ceramide synthesis on TOR complex 2 (TORC2)-Ypk1 signaling, which senses the complex sphingolipid level at the plasma membrane and promotes sphingolipid biosynthesis. In lip1-1 cells, Ypk1 was activated via both upstream kinases, TORC2 and yeast PDK1 homologues, Pkh1/2, thereby inducing hyperphosphorylation of Lag1, but not of another Ypk1-substrate, Orm1, which is a known negative regulator of the first step of sphingolipid metabolism, in the presence of Dox. Therefore, our data suggest that the metabolic enzyme activities at each step of the sphingolipid biosynthetic pathway are controlled through a fine regulatory mechanism.
AB - Saccharomyces cerevisiae LIP1 encodes a regulatory subunit that forms a complex with the ceramide synthase catalytic subunits, Lag1/Lac1, which is localized on the membrane of endoplasmic reticulum. To understand the underlying regulatory mechanism of sphingolipid biosynthesis, we generated strains upon replacing the chromosomal LIP1 promoter with a Tet-off promoter, which enables the expression in Dox-dependent manner. The lip1-1 strain, obtained through the promoter substitution, exhibits severe growth inhibition and remarkable decrease in sphingolipid synthesis in the presence of Dox. Using this strain, we investigated the effect of a decrease in ceramide synthesis on TOR complex 2 (TORC2)-Ypk1 signaling, which senses the complex sphingolipid level at the plasma membrane and promotes sphingolipid biosynthesis. In lip1-1 cells, Ypk1 was activated via both upstream kinases, TORC2 and yeast PDK1 homologues, Pkh1/2, thereby inducing hyperphosphorylation of Lag1, but not of another Ypk1-substrate, Orm1, which is a known negative regulator of the first step of sphingolipid metabolism, in the presence of Dox. Therefore, our data suggest that the metabolic enzyme activities at each step of the sphingolipid biosynthetic pathway are controlled through a fine regulatory mechanism.
UR - http://www.scopus.com/inward/record.url?scp=85115199051&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85115199051&partnerID=8YFLogxK
U2 - 10.1111/febs.16189
DO - 10.1111/febs.16189
M3 - Article
C2 - 34492164
AN - SCOPUS:85115199051
SN - 1742-464X
VL - 289
SP - 457
EP - 472
JO - FEBS Journal
JF - FEBS Journal
IS - 2
ER -