Literature DB >> 11056159

Role for de novo sphingoid base biosynthesis in the heat-induced transient cell cycle arrest of Saccharomyces cerevisiae.

G M Jenkins1, Y A Hannun.   

Abstract

The recent findings of sphingolipids as potential mediators of yeast heat stress responses led us to investigate their possible role in the heat-induced cell cycle arrest and subsequent recovery. The sphingolipid-deficient yeast strain 7R4 was found to lack the cell cycle arrest seen in the isogenic wild type. Furthermore, strain lcb1-100, which harbors a temperature-sensitive serine palmitoyltransferase, lacked increased de novo generated sphingoid bases upon heat stress. Importantly, this strain was found to lack the transient heat-induced G0/G1 arrest. These results indicate a role for sphingolipids and specifically those generated in the de novo pathway in the cell cycle arrest response to heat. To determine the bioactive sphingolipid regulating this response, an analysis of key mutants in the sphingolipid biosynthetic and degradation pathways was performed. Strains deleted in sphingoid base kinases, sphingoid phosphate phosphatase, lyase, or dihydrosphingosine hydroxylase were found to display the cell cycle arrest. Also, the knockout of a fatty acyl elongation enzyme, which severely attenuates ceramide production, displayed the arrest. These experiments suggested that the active species for cell cycle arrest were the sphingoid bases. In further support of these findings, exogenous phytosphingosine (10 microM) was found to induce transient arrest. Stearylamine did not induce an arrest, demonstrating chemical specificity, and L-erythro- was not as potent as D-erythro-dihydrosphingosine showing stereospecificity. To investigate a possible arrest mechanism, we studied the hyperstable Cln3 (Cln3-1) strain LDW6A that has been previously shown to be resistant to heat stress-induced cell cycle arrest. The strain containing Cln3-1 was found to be resistant to cell cycle arrest induced by exogenous phytosphingosine, indicating that Cln3 acts downstream of the sphingoid bases in this response. Interestingly, cell cycle recovery from the transient arrest was found to be dependent upon the sphingoid base kinases (LCB4, LCB5). Overall, this combination of genetic and pharmacologic results demonstrates a role for de novo sphingoid base biosynthesis by serine palmitoyltransferase in the transient G0/G1 arrest mediated through Cln3 via a novel mechanism.

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Year:  2000        PMID: 11056159     DOI: 10.1074/jbc.M007425200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  41 in total

1.  Increased ubiquitin-dependent degradation can replace the essential requirement for heat shock protein induction.

Authors:  Sylvie Friant; Karsten D Meier; Howard Riezman
Journal:  EMBO J       Date:  2003-08-01       Impact factor: 11.598

2.  Sphingoid bases and the serine catabolic enzyme CHA1 define a novel feedforward/feedback mechanism in the response to serine availability.

Authors:  David J Montefusco; Benjamin Newcomb; Jason L Gandy; Sarah E Brice; Nabil Matmati; L Ashley Cowart; Yusuf A Hannun
Journal:  J Biol Chem       Date:  2012-01-25       Impact factor: 5.157

3.  Sir-dependent downregulation of various aging processes.

Authors:  Jacques Daniel
Journal:  Mol Genet Genomics       Date:  2005-10-01       Impact factor: 3.291

4.  Distinct signaling roles of ceramide species in yeast revealed through systematic perturbation and systems biology analyses.

Authors:  David J Montefusco; Lujia Chen; Nabil Matmati; Songjian Lu; Benjamin Newcomb; Gregory F Cooper; Yusuf A Hannun; Xinghua Lu
Journal:  Sci Signal       Date:  2013-10-29       Impact factor: 8.192

5.  Distinct roles for de novo versus hydrolytic pathways of sphingolipid biosynthesis in Saccharomyces cerevisiae.

Authors:  L Ashley Cowart; Yasuo Okamoto; Xinghua Lu; Yusuf A Hannun
Journal:  Biochem J       Date:  2006-02-01       Impact factor: 3.857

6.  Induction of apoptosis by sphingoid long-chain bases in Aspergillus nidulans.

Authors:  Jijun Cheng; Tae-Sik Park; Li-Chun Chio; Anthony S Fischl; Xiang S Ye
Journal:  Mol Cell Biol       Date:  2003-01       Impact factor: 4.272

Review 7.  Extracellular and intracellular actions of sphingosine-1-phosphate.

Authors:  Graham M Strub; Michael Maceyka; Nitai C Hait; Sheldon Milstien; Sarah Spiegel
Journal:  Adv Exp Med Biol       Date:  2010       Impact factor: 2.622

Review 8.  The dynamics and role of sphingolipids in eukaryotic organisms upon thermal adaptation.

Authors:  João Henrique Tadini Marilhano Fabri; Nivea Pereira de Sá; Iran Malavazi; Maurizio Del Poeta
Journal:  Prog Lipid Res       Date:  2020-09-02       Impact factor: 16.195

9.  Revealing a signaling role of phytosphingosine-1-phosphate in yeast.

Authors:  L Ashley Cowart; Matthew Shotwell; Mitchell L Worley; Adam J Richards; David J Montefusco; Yusuf A Hannun; Xinghua Lu
Journal:  Mol Syst Biol       Date:  2010-02-16       Impact factor: 11.429

10.  Following the flux of long-chain bases through the sphingolipid pathway in vivo using mass spectrometry.

Authors:  Fernando Martínez-Montañés; Roger Schneiter
Journal:  J Lipid Res       Date:  2016-03-14       Impact factor: 5.922

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