Tps1 regulates the pentose phosphate pathway, nitrogen metabolism and fungal virulence

Trehalose fulfils a wide variety of functions in cells, acting as a stress protectant, storage carbohydrate and compatible solute. Recent evidence, however, indicates that trehalose metabolism may exert important regulatory roles in the development of multicellular eukaryotes. Here, we show that in...

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Veröffentlicht in:The EMBO journal 2007-08, Vol.26 (15), p.3673-3685
Hauptverfasser: Wilson, R.A, Jenkinson, J.M, Gibson, R.P, Littlechild, J.A, Wang, Z.Y, Talbot, N.J
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container_issue 15
container_start_page 3673
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creator Wilson, R.A
Jenkinson, J.M
Gibson, R.P
Littlechild, J.A
Wang, Z.Y
Talbot, N.J
description Trehalose fulfils a wide variety of functions in cells, acting as a stress protectant, storage carbohydrate and compatible solute. Recent evidence, however, indicates that trehalose metabolism may exert important regulatory roles in the development of multicellular eukaryotes. Here, we show that in the plant pathogenic fungus Magnaporthe grisea trehalose‐6‐phosphate (T6P) synthase (Tps1) is responsible for regulating the pentose phosphate pathway, intracellular levels of NADPH and fungal virulence. Tps1 integrates glucose‐6‐phosphate (G6P) metabolism with nitrogen source utilisation, and thereby regulates the activity of nitrate reductase. Activity of Tps1 requires an associated regulator protein Tps3, which is also necessary for pathogenicity. Tps1 controls expression of the nitrogen metabolite repressor gene, NMR1 , and is required for expression of virulence‐associated genes. Functional analysis of Tps1 indicates that its regulatory functions are associated with binding of G6P, but independent of Tps1 catalytic activity. Taken together, these results demonstrate that Tps1 is a central regulator for integration of carbon and nitrogen metabolism, and plays a pivotal role in the establishment of plant disease.
doi_str_mv 10.1038/sj.emboj.7601795
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source Springer Nature OA Free Journals
subjects Cellular biology
EMBO21
EMBO23
Fungi
Fungi - genetics
Fungi - metabolism
Fungi - pathogenicity
Genes, Fungal
glucose-6-phosphate
Glucosyltransferases - physiology
Metabolites
Microbiology
Molecular biology
NADP - metabolism
nitrate utilisation
Nitrogen
Nitrogen - metabolism
Pathogens
Pentose Phosphate Pathway
Phosphates
phytopathogen
Plant diseases
Pyricularia oryzae
rice blast
Virulence
title Tps1 regulates the pentose phosphate pathway, nitrogen metabolism and fungal virulence
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