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Sulfur deficiency–induced repressor proteins optimize glucosinolate biosynthesis in plants

Glucosinolates (GSLs) in the plant order of the Brassicales are sulfur-rich secondary metabolites that harbor antipathogenic and antiherbivory plant-protective functions and have medicinal properties, such as carcinopreventive and antibiotic activities. Plants repress GSL biosynthesis upon sulfur de...

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Autores principales: Aarabi, Fayezeh, Kusajima, Miyuki, Tohge, Takayuki, Konishi, Tomokazu, Gigolashvili, Tamara, Takamune, Makiko, Sasazaki, Yoko, Watanabe, Mutsumi, Nakashita, Hideo, Fernie, Alisdair R., Saito, Kazuki, Takahashi, Hideki, Hubberten, Hans-Michael, Hoefgen, Rainer, Maruyama-Nakashita, Akiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5055385/
https://www.ncbi.nlm.nih.gov/pubmed/27730214
http://dx.doi.org/10.1126/sciadv.1601087
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author Aarabi, Fayezeh
Kusajima, Miyuki
Tohge, Takayuki
Konishi, Tomokazu
Gigolashvili, Tamara
Takamune, Makiko
Sasazaki, Yoko
Watanabe, Mutsumi
Nakashita, Hideo
Fernie, Alisdair R.
Saito, Kazuki
Takahashi, Hideki
Hubberten, Hans-Michael
Hoefgen, Rainer
Maruyama-Nakashita, Akiko
author_facet Aarabi, Fayezeh
Kusajima, Miyuki
Tohge, Takayuki
Konishi, Tomokazu
Gigolashvili, Tamara
Takamune, Makiko
Sasazaki, Yoko
Watanabe, Mutsumi
Nakashita, Hideo
Fernie, Alisdair R.
Saito, Kazuki
Takahashi, Hideki
Hubberten, Hans-Michael
Hoefgen, Rainer
Maruyama-Nakashita, Akiko
author_sort Aarabi, Fayezeh
collection PubMed
description Glucosinolates (GSLs) in the plant order of the Brassicales are sulfur-rich secondary metabolites that harbor antipathogenic and antiherbivory plant-protective functions and have medicinal properties, such as carcinopreventive and antibiotic activities. Plants repress GSL biosynthesis upon sulfur deficiency (−S); hence, field performance and medicinal quality are impaired by inadequate sulfate supply. The molecular mechanism that links –S to GSL biosynthesis has remained understudied. We report here the identification of the –S marker genes sulfur deficiency induced 1 (SDI1) and SDI2 acting as major repressors controlling GSL biosynthesis in Arabidopsis under –S condition. SDI1 and SDI2 expression negatively correlated with GSL biosynthesis in both transcript and metabolite levels. Principal components analysis of transcriptome data indicated that SDI1 regulates aliphatic GSL biosynthesis as part of –S response. SDI1 was localized to the nucleus and interacted with MYB28, a major transcription factor that promotes aliphatic GSL biosynthesis, in both yeast and plant cells. SDI1 inhibited the transcription of aliphatic GSL biosynthetic genes by maintaining the DNA binding composition in the form of an SDI1-MYB28 complex, leading to down-regulation of GSL biosynthesis and prioritization of sulfate usage for primary metabolites under sulfur-deprived conditions.
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spelling pubmed-50553852016-10-11 Sulfur deficiency–induced repressor proteins optimize glucosinolate biosynthesis in plants Aarabi, Fayezeh Kusajima, Miyuki Tohge, Takayuki Konishi, Tomokazu Gigolashvili, Tamara Takamune, Makiko Sasazaki, Yoko Watanabe, Mutsumi Nakashita, Hideo Fernie, Alisdair R. Saito, Kazuki Takahashi, Hideki Hubberten, Hans-Michael Hoefgen, Rainer Maruyama-Nakashita, Akiko Sci Adv Research Articles Glucosinolates (GSLs) in the plant order of the Brassicales are sulfur-rich secondary metabolites that harbor antipathogenic and antiherbivory plant-protective functions and have medicinal properties, such as carcinopreventive and antibiotic activities. Plants repress GSL biosynthesis upon sulfur deficiency (−S); hence, field performance and medicinal quality are impaired by inadequate sulfate supply. The molecular mechanism that links –S to GSL biosynthesis has remained understudied. We report here the identification of the –S marker genes sulfur deficiency induced 1 (SDI1) and SDI2 acting as major repressors controlling GSL biosynthesis in Arabidopsis under –S condition. SDI1 and SDI2 expression negatively correlated with GSL biosynthesis in both transcript and metabolite levels. Principal components analysis of transcriptome data indicated that SDI1 regulates aliphatic GSL biosynthesis as part of –S response. SDI1 was localized to the nucleus and interacted with MYB28, a major transcription factor that promotes aliphatic GSL biosynthesis, in both yeast and plant cells. SDI1 inhibited the transcription of aliphatic GSL biosynthetic genes by maintaining the DNA binding composition in the form of an SDI1-MYB28 complex, leading to down-regulation of GSL biosynthesis and prioritization of sulfate usage for primary metabolites under sulfur-deprived conditions. American Association for the Advancement of Science 2016-10-07 /pmc/articles/PMC5055385/ /pubmed/27730214 http://dx.doi.org/10.1126/sciadv.1601087 Text en Copyright © 2016, The Authors http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (http://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Research Articles
Aarabi, Fayezeh
Kusajima, Miyuki
Tohge, Takayuki
Konishi, Tomokazu
Gigolashvili, Tamara
Takamune, Makiko
Sasazaki, Yoko
Watanabe, Mutsumi
Nakashita, Hideo
Fernie, Alisdair R.
Saito, Kazuki
Takahashi, Hideki
Hubberten, Hans-Michael
Hoefgen, Rainer
Maruyama-Nakashita, Akiko
Sulfur deficiency–induced repressor proteins optimize glucosinolate biosynthesis in plants
title Sulfur deficiency–induced repressor proteins optimize glucosinolate biosynthesis in plants
title_full Sulfur deficiency–induced repressor proteins optimize glucosinolate biosynthesis in plants
title_fullStr Sulfur deficiency–induced repressor proteins optimize glucosinolate biosynthesis in plants
title_full_unstemmed Sulfur deficiency–induced repressor proteins optimize glucosinolate biosynthesis in plants
title_short Sulfur deficiency–induced repressor proteins optimize glucosinolate biosynthesis in plants
title_sort sulfur deficiency–induced repressor proteins optimize glucosinolate biosynthesis in plants
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5055385/
https://www.ncbi.nlm.nih.gov/pubmed/27730214
http://dx.doi.org/10.1126/sciadv.1601087
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