Cargando…
The Sfp-Type 4′-Phosphopantetheinyl Transferase Ppt1 of Fusarium fujikuroi Controls Development, Secondary Metabolism and Pathogenicity
The heterothallic ascomycete Fusarium fujikuroi is a notorious rice pathogen causing super-elongation of plants due to the production of terpene-derived gibberellic acids (GAs) that function as natural plant hormones. Additionally, F. fujikuroi is able to produce a variety of polyketide- and non-rib...
Autores principales: | , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2012
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3360786/ https://www.ncbi.nlm.nih.gov/pubmed/22662164 http://dx.doi.org/10.1371/journal.pone.0037519 |
_version_ | 1782234054152683520 |
---|---|
author | Wiemann, Philipp Albermann, Sabine Niehaus, Eva-Maria Studt, Lena von Bargen, Katharina W. Brock, Nelson L. Humpf, Hans-Ulrich Dickschat, Jeroen S. Tudzynski, Bettina |
author_facet | Wiemann, Philipp Albermann, Sabine Niehaus, Eva-Maria Studt, Lena von Bargen, Katharina W. Brock, Nelson L. Humpf, Hans-Ulrich Dickschat, Jeroen S. Tudzynski, Bettina |
author_sort | Wiemann, Philipp |
collection | PubMed |
description | The heterothallic ascomycete Fusarium fujikuroi is a notorious rice pathogen causing super-elongation of plants due to the production of terpene-derived gibberellic acids (GAs) that function as natural plant hormones. Additionally, F. fujikuroi is able to produce a variety of polyketide- and non-ribosomal peptide-derived metabolites such as bikaverins, fusarubins and fusarins as well as metabolites from yet unidentified biosynthetic pathways, e.g. moniliformin. The key enzymes needed for their production belong to the family of polyketide synthases (PKSs) and non-ribosomal peptide synthases (NRPSs) that are generally known to be post-translationally modified by a Sfp-type 4′phosphopantetheinyl transferase (PPTase). In this study we provide evidence that the F. fujikuroi Sfp-type PPTase FfPpt1 is essentially involved in lysine biosynthesis and production of bikaverins, fusarubins and fusarins, but not moniliformin as shown by analytical methods. Concomitantly, targeted Ffppt1 deletion mutants reveal an enhancement of terpene-derived metabolites like GAs and volatile substances such as α-acorenol. Pathogenicity assays on rice roots using fluorescent labeled wild-type and Ffppt1 mutant strains indicate that lysine biosynthesis and iron acquisition but not PKS and NRPS metabolism is essential for establishment of primary infections of F. fujikuroi. Additionally, FfPpt1 is involved in conidiation and sexual mating recognition possibly by activating PKS- and/or NRPS-derived metabolites that could act as diffusible signals. Furthermore, the effect on iron acquisition of Ffppt1 mutants led us to identify a previously uncharacterized putative third reductive iron uptake system (FfFtr3/FfFet3) that is closely related to the FtrA/FetC system of A. fumigatus. Functional characterization provides evidence that both proteins are involved in iron acquisition and are liable to transcriptional repression of the homolog of the Aspergillus GATA-type transcription factor SreA under iron-replete conditions. Targeted deletion of the first Fusarium homolog of this GATA-type transcription factor-encoding gene, Ffsre1, strongly indicates its involvement in regulation of iron homeostasis and oxidative stress resistance. |
format | Online Article Text |
id | pubmed-3360786 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2012 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-33607862012-06-01 The Sfp-Type 4′-Phosphopantetheinyl Transferase Ppt1 of Fusarium fujikuroi Controls Development, Secondary Metabolism and Pathogenicity Wiemann, Philipp Albermann, Sabine Niehaus, Eva-Maria Studt, Lena von Bargen, Katharina W. Brock, Nelson L. Humpf, Hans-Ulrich Dickschat, Jeroen S. Tudzynski, Bettina PLoS One Research Article The heterothallic ascomycete Fusarium fujikuroi is a notorious rice pathogen causing super-elongation of plants due to the production of terpene-derived gibberellic acids (GAs) that function as natural plant hormones. Additionally, F. fujikuroi is able to produce a variety of polyketide- and non-ribosomal peptide-derived metabolites such as bikaverins, fusarubins and fusarins as well as metabolites from yet unidentified biosynthetic pathways, e.g. moniliformin. The key enzymes needed for their production belong to the family of polyketide synthases (PKSs) and non-ribosomal peptide synthases (NRPSs) that are generally known to be post-translationally modified by a Sfp-type 4′phosphopantetheinyl transferase (PPTase). In this study we provide evidence that the F. fujikuroi Sfp-type PPTase FfPpt1 is essentially involved in lysine biosynthesis and production of bikaverins, fusarubins and fusarins, but not moniliformin as shown by analytical methods. Concomitantly, targeted Ffppt1 deletion mutants reveal an enhancement of terpene-derived metabolites like GAs and volatile substances such as α-acorenol. Pathogenicity assays on rice roots using fluorescent labeled wild-type and Ffppt1 mutant strains indicate that lysine biosynthesis and iron acquisition but not PKS and NRPS metabolism is essential for establishment of primary infections of F. fujikuroi. Additionally, FfPpt1 is involved in conidiation and sexual mating recognition possibly by activating PKS- and/or NRPS-derived metabolites that could act as diffusible signals. Furthermore, the effect on iron acquisition of Ffppt1 mutants led us to identify a previously uncharacterized putative third reductive iron uptake system (FfFtr3/FfFet3) that is closely related to the FtrA/FetC system of A. fumigatus. Functional characterization provides evidence that both proteins are involved in iron acquisition and are liable to transcriptional repression of the homolog of the Aspergillus GATA-type transcription factor SreA under iron-replete conditions. Targeted deletion of the first Fusarium homolog of this GATA-type transcription factor-encoding gene, Ffsre1, strongly indicates its involvement in regulation of iron homeostasis and oxidative stress resistance. Public Library of Science 2012-05-25 /pmc/articles/PMC3360786/ /pubmed/22662164 http://dx.doi.org/10.1371/journal.pone.0037519 Text en Wiemann et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article Wiemann, Philipp Albermann, Sabine Niehaus, Eva-Maria Studt, Lena von Bargen, Katharina W. Brock, Nelson L. Humpf, Hans-Ulrich Dickschat, Jeroen S. Tudzynski, Bettina The Sfp-Type 4′-Phosphopantetheinyl Transferase Ppt1 of Fusarium fujikuroi Controls Development, Secondary Metabolism and Pathogenicity |
title | The Sfp-Type 4′-Phosphopantetheinyl Transferase Ppt1 of Fusarium fujikuroi Controls Development, Secondary Metabolism and Pathogenicity |
title_full | The Sfp-Type 4′-Phosphopantetheinyl Transferase Ppt1 of Fusarium fujikuroi Controls Development, Secondary Metabolism and Pathogenicity |
title_fullStr | The Sfp-Type 4′-Phosphopantetheinyl Transferase Ppt1 of Fusarium fujikuroi Controls Development, Secondary Metabolism and Pathogenicity |
title_full_unstemmed | The Sfp-Type 4′-Phosphopantetheinyl Transferase Ppt1 of Fusarium fujikuroi Controls Development, Secondary Metabolism and Pathogenicity |
title_short | The Sfp-Type 4′-Phosphopantetheinyl Transferase Ppt1 of Fusarium fujikuroi Controls Development, Secondary Metabolism and Pathogenicity |
title_sort | sfp-type 4′-phosphopantetheinyl transferase ppt1 of fusarium fujikuroi controls development, secondary metabolism and pathogenicity |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3360786/ https://www.ncbi.nlm.nih.gov/pubmed/22662164 http://dx.doi.org/10.1371/journal.pone.0037519 |
work_keys_str_mv | AT wiemannphilipp thesfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT albermannsabine thesfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT niehausevamaria thesfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT studtlena thesfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT vonbargenkatharinaw thesfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT brocknelsonl thesfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT humpfhansulrich thesfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT dickschatjeroens thesfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT tudzynskibettina thesfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT wiemannphilipp sfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT albermannsabine sfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT niehausevamaria sfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT studtlena sfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT vonbargenkatharinaw sfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT brocknelsonl sfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT humpfhansulrich sfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT dickschatjeroens sfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity AT tudzynskibettina sfptype4phosphopantetheinyltransferaseppt1offusariumfujikuroicontrolsdevelopmentsecondarymetabolismandpathogenicity |