A systematic simulation of the effect of salicylic acid on sphingolipid metabolism

The phytohormone salicylic acid (SA) affects plant development and defense responses. Recent studies revealed that SA also participates in the regulation of sphingolipid metabolism, but the details of this regulation remain to be explored. Here, we use in silico Flux Balance Analysis (FBA) with publ...

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Main Authors: Chao eShi, Jian eYin, Zhe eLiu, Jian-xin eWu, Qi eZhao, Jian eRen, Nan eYao
Format: Article
Language:English
Published: Frontiers Media S.A. 2015-03-01
Series:Frontiers in Plant Science
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fpls.2015.00186/full
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spelling doaj-71d4a56258f940a9b9c695b36d3085d82020-11-24T20:49:17ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2015-03-01610.3389/fpls.2015.00186127344A systematic simulation of the effect of salicylic acid on sphingolipid metabolismChao eShi0Jian eYin1Zhe eLiu2Jian-xin eWu3Qi eZhao4Jian eRen5Nan eYao6Sun Yat-sen UniversitySun Yat-sen UniversitySun Yat-sen UniversitySun Yat-sen UniversitySun Yat-sen UniversitySun Yat-sen UniversitySun Yat-sen UniversityThe phytohormone salicylic acid (SA) affects plant development and defense responses. Recent studies revealed that SA also participates in the regulation of sphingolipid metabolism, but the details of this regulation remain to be explored. Here, we use in silico Flux Balance Analysis (FBA) with published microarray data to construct a whole-cell simulation model, including 23 pathways, 259 reactions, and 172 metabolites, to predict the alterations in flux of major sphingolipid species after treatment with exogenous SA. This model predicts significant changes in fluxes of certain sphingolipid species after SA treatment, changes that likely trigger downstream physiological and phenotypic effects. To validate the simulation, we used 15N-labeled metabolic turnover analysis to measure sphingolipid contents and turnover rate in Arabidopsis thaliana seedlings treated with SA or the SA analog benzothiadiazole (BTH). The results show that both SA and BTH affect sphingolipid metabolism, altering the concentrations of certain species and also changing the optimal flux distribution and turnover rate of sphingolipids. Our strategy allows us to estimate sphingolipid fluxes on a short time scale and gives us a systemic view of the effect of SA on sphingolipid homeostasis.http://journal.frontiersin.org/Journal/10.3389/fpls.2015.00186/fullCeramidesSalicylic AcidSphingolipidsFlux balance analysisArabidopsis thaliana
collection DOAJ
language English
format Article
sources DOAJ
author Chao eShi
Jian eYin
Zhe eLiu
Jian-xin eWu
Qi eZhao
Jian eRen
Nan eYao
spellingShingle Chao eShi
Jian eYin
Zhe eLiu
Jian-xin eWu
Qi eZhao
Jian eRen
Nan eYao
A systematic simulation of the effect of salicylic acid on sphingolipid metabolism
Frontiers in Plant Science
Ceramides
Salicylic Acid
Sphingolipids
Flux balance analysis
Arabidopsis thaliana
author_facet Chao eShi
Jian eYin
Zhe eLiu
Jian-xin eWu
Qi eZhao
Jian eRen
Nan eYao
author_sort Chao eShi
title A systematic simulation of the effect of salicylic acid on sphingolipid metabolism
title_short A systematic simulation of the effect of salicylic acid on sphingolipid metabolism
title_full A systematic simulation of the effect of salicylic acid on sphingolipid metabolism
title_fullStr A systematic simulation of the effect of salicylic acid on sphingolipid metabolism
title_full_unstemmed A systematic simulation of the effect of salicylic acid on sphingolipid metabolism
title_sort systematic simulation of the effect of salicylic acid on sphingolipid metabolism
publisher Frontiers Media S.A.
series Frontiers in Plant Science
issn 1664-462X
publishDate 2015-03-01
description The phytohormone salicylic acid (SA) affects plant development and defense responses. Recent studies revealed that SA also participates in the regulation of sphingolipid metabolism, but the details of this regulation remain to be explored. Here, we use in silico Flux Balance Analysis (FBA) with published microarray data to construct a whole-cell simulation model, including 23 pathways, 259 reactions, and 172 metabolites, to predict the alterations in flux of major sphingolipid species after treatment with exogenous SA. This model predicts significant changes in fluxes of certain sphingolipid species after SA treatment, changes that likely trigger downstream physiological and phenotypic effects. To validate the simulation, we used 15N-labeled metabolic turnover analysis to measure sphingolipid contents and turnover rate in Arabidopsis thaliana seedlings treated with SA or the SA analog benzothiadiazole (BTH). The results show that both SA and BTH affect sphingolipid metabolism, altering the concentrations of certain species and also changing the optimal flux distribution and turnover rate of sphingolipids. Our strategy allows us to estimate sphingolipid fluxes on a short time scale and gives us a systemic view of the effect of SA on sphingolipid homeostasis.
topic Ceramides
Salicylic Acid
Sphingolipids
Flux balance analysis
Arabidopsis thaliana
url http://journal.frontiersin.org/Journal/10.3389/fpls.2015.00186/full
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