The Expression of Genes Encoding Lipodepsipeptide Phytotoxins byPseudomonas syringaepv.syringaeIs Coordinated in Response to Plant Signal Molecules
Open Access
- 1 March 2006
- journal article
- Published by Scientific Societies in Molecular Plant-Microbe Interactions®
- Vol. 19 (3) , 257-269
- https://doi.org/10.1094/mpmi-19-0257
Abstract
Specific plant signal molecules are known to induce syringomycin production and expression of syrB1, a syringomycin synthetase gene, in Pseudomonas syringae pv. syringae. This report demonstrates that syringopeptin production likewise is activated by plant signal molecules and that the GacS, SalA, and SyrF regulatory pathway mediates transmission of plant signal molecules to the syr-syp biosynthesis apparatus. Syringopeptin production by BR132 was increased twofold by addition of arbutin (100 μM) and D-fructose (0.1%) to syringomycin minimal medium (SRM). Among 10 plant phenolic compounds tested, only the phenolic glucosides arbutin, salicin, and phenyl-β-D-glucopyranoside induced substantially the β-glucuronidase (GUS) activity of a sypA::uidA reporter from 242 U per 108CFU without plant signal molecules up to 419 U per 108CFU with plant signal molecules. Syringopeptin production was found to be controlled by the SalA/SyrF regulon because no toxin was detected from cultures of B301DSL7 (i.e., salA mutant) and B301DSL1 (i.e., syrF mutant), and the expression of sypA::uidA was decreased approximately 99 and 94% in salA (B301DSL30) and syrF (B301DNW31) mutant backgrounds, respectively. Subgenomic analysis of transcriptional expression with a 70-mer oligonucleotide microarray demonstrated that the syr-syp genes are induced 2.5- to 10.5-fold by addition of arbutin and D-fructose to SRM. This study establishes that plant signal molecules are transmitted through the GacS, SalA/SyrF pathway to activate the coordinated transcriptional expression of the syr-syp genes.Keywords
This publication has 88 references indexed in Scilit:
- Mutagenic DNA repair potential inPseudomonasspp., and characterization of therulABPcoperon from the highly mutable strainPseudomonas cichorii302959Canadian Journal of Microbiology, 2004
- Characterization of the argA Gene Requiredfor Arginine Biosynthesis and Syringomycin Production by Pseudomonas syringae pv.syringaeApplied and Environmental Microbiology, 2003
- Differential Roles of the Pseudomonas aeruginosa PA14 rpoN Gene in Pathogenicity in Plants, Nematodes, Insects, and MiceJournal of Bacteriology, 2001
- Regulatory Roles of the GacS/GacA Two-Component System in Plant-Associated and Other Gram-Negative BacteriaMolecular Plant-Microbe Interactions®, 2001
- A Physical Map of the Syringomycin and Syringopeptin Gene Clusters Localized to an Approximately 145-kb DNA Region of Pseudomonas syringae pv. syringae Strain B301DMolecular Plant-Microbe Interactions®, 2001
- Isolation and Characterization of the algD gene of Pseudomonas syringae pv. phaseolicola and its distribution among other Pseudomonads and related OrganismsJournal of Phytopathology, 2001
- Identification of Tomato Leaf Factors that Activate Toxin Gene Expression inPseudomonas syringaepv.tomatoDC3000Phytopathology®, 1998
- Phytotoxin production byPseudomonas syringaepv.syringae: Syringopeptin production bysyrmutants defective in biosynthesis or secretion of syringomycinFEMS Microbiology Letters, 1996
- Construction of improved Escherichia-Pseudomonas shuttle vectors derived from pUC18/19 and sequence of the region required for their replication in Pseudomonas aeruginosaGene, 1994
- Transcriptional Organization and Expression of the LargehrpGene Cluster ofPseudomonas solanacearumMolecular Plant-Microbe Interactions®, 1992