TY - JOUR
T1 - Protective role of the HOG pathway against the growth defect caused by impaired biosynthesis of complex sphingolipids in yeast Saccharomyces cerevisiae
AU - Yamaguchi, Yutaro
AU - Katsuki, Yuka
AU - Tanaka, Seiya
AU - Kawaguchi, Ryotaro
AU - Denda, Hiroto
AU - Ikeda, Takuma
AU - Funato, Kouichi
AU - Tani, Motohiro
N1 - Funding Information:
We wish to thank Drs. O. Kuge, T. Ogishima and N. Miyata (Kyushu University) for the valuable suggestions regarding this study. This study was funded by a KAKENHI (26450127) from the Ministry of Education, Culture, Sports, Science, and Technology, Japan; and the Asahi Group Foundation, Japan.
Publisher Copyright:
© 2017 John Wiley & Sons Ltd
PY - 2018/2
Y1 - 2018/2
N2 - Complex sphingolipids play critical roles in various cellular events in the yeast Saccharomyces cerevisiae. To identify genes that are related to the growth defect caused by disruption of complex sphingolipid biosynthesis, we screened for suppressor mutations and multicopy suppressor genes that confer resistance against repression of AUR1 encoding inositol phosphorylceramide synthase. From the results of this screening, we found that the activation of high-osmolarity glycerol (HOG) pathway is involved in suppression of growth defect caused by impaired biosynthesis of complex sphingolipids. Furthermore, it was found that transcriptional regulation via Msn2, Msn4 and Sko1 is involved in the suppressive effect of the HOG pathway. Lack of the HOG pathway did not enhance the reductions in complex sphingolipid levels or the increase in ceramide level caused by the AUR1 repression, implying that the suppressive effect of the HOG pathway on the growth defect is not attributed to restoration of impaired biosynthesis of complex sphingolipids. On the contrary, the HOG pathway and Msn2/4-mediated transcriptional activation was involved in suppression of aberrant reactive oxygen species accumulation caused by the AUR1 repression. These results indicated that the HOG pathway plays pivotal roles in maintaining cell growth under impaired biosynthesis of complex sphingolipids.
AB - Complex sphingolipids play critical roles in various cellular events in the yeast Saccharomyces cerevisiae. To identify genes that are related to the growth defect caused by disruption of complex sphingolipid biosynthesis, we screened for suppressor mutations and multicopy suppressor genes that confer resistance against repression of AUR1 encoding inositol phosphorylceramide synthase. From the results of this screening, we found that the activation of high-osmolarity glycerol (HOG) pathway is involved in suppression of growth defect caused by impaired biosynthesis of complex sphingolipids. Furthermore, it was found that transcriptional regulation via Msn2, Msn4 and Sko1 is involved in the suppressive effect of the HOG pathway. Lack of the HOG pathway did not enhance the reductions in complex sphingolipid levels or the increase in ceramide level caused by the AUR1 repression, implying that the suppressive effect of the HOG pathway on the growth defect is not attributed to restoration of impaired biosynthesis of complex sphingolipids. On the contrary, the HOG pathway and Msn2/4-mediated transcriptional activation was involved in suppression of aberrant reactive oxygen species accumulation caused by the AUR1 repression. These results indicated that the HOG pathway plays pivotal roles in maintaining cell growth under impaired biosynthesis of complex sphingolipids.
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U2 - 10.1111/mmi.13886
DO - 10.1111/mmi.13886
M3 - Article
C2 - 29215176
AN - SCOPUS:85038866507
SN - 0950-382X
VL - 107
SP - 363
EP - 386
JO - Molecular Microbiology
JF - Molecular Microbiology
IS - 3
ER -