The Pseudomonas fluorescens Siderophore Pyoverdine Weakens Arabidopsis thaliana Defense in Favor of Growth in Iron-Deficient Conditions

Plant Physiol. 2016 May;171(1):675-93. doi: 10.1104/pp.15.01537. Epub 2016 Mar 8.

Abstract

Pyoverdines are siderophores synthesized by fluorescent Pseudomonas spp. Under iron-limiting conditions, these high-affinity ferric iron chelators are excreted by bacteria in the soil to acquire iron. Pyoverdines produced by beneficial Pseudomonas spp. ameliorate plant growth. Here, we investigate the physiological incidence and mode of action of pyoverdine from Pseudomonas fluorescens C7R12 on Arabidopsis (Arabidopsis thaliana) plants grown under iron-sufficient or iron-deficient conditions. Pyoverdine was provided to the medium in its iron-free structure (apo-pyoverdine), thus mimicking a situation in which it is produced by bacteria. Remarkably, apo-pyoverdine abolished the iron-deficiency phenotype and restored the growth of plants maintained in the iron-deprived medium. In contrast to a P. fluorescens C7R12 strain impaired in apo-pyoverdine production, the wild-type C7R12 reduced the accumulation of anthocyanins in plants grown in iron-deficient conditions. Under this condition, apo-pyoverdine modulated the expression of around 2,000 genes. Notably, apo-pyoverdine positively regulated the expression of genes related to development and iron acquisition/redistribution while it repressed the expression of defense-related genes. Accordingly, the growth-promoting effect of apo-pyoverdine in plants grown under iron-deficient conditions was impaired in iron-regulated transporter1 and ferric chelate reductase2 knockout mutants and was prioritized over immunity, as highlighted by an increased susceptibility to Botrytis cinerea This process was accompanied by an overexpression of the transcription factor HBI1, a key node for the cross talk between growth and immunity. This study reveals an unprecedented mode of action of pyoverdine in Arabidopsis and demonstrates that its incidence on physiological traits depends on the plant iron status.

MeSH terms

  • Abscisic Acid / metabolism
  • Arabidopsis / drug effects
  • Arabidopsis / growth & development*
  • Arabidopsis / microbiology
  • Arabidopsis Proteins / genetics
  • Arabidopsis Proteins / metabolism
  • Cation Transport Proteins / genetics
  • Cation Transport Proteins / metabolism
  • Ethylenes / metabolism
  • FMN Reductase / genetics
  • FMN Reductase / metabolism
  • Gene Expression Profiling
  • Gene Expression Regulation, Plant
  • Homeostasis
  • Indoleacetic Acids / metabolism
  • Iron / metabolism*
  • Oligopeptides / metabolism
  • Oligopeptides / pharmacology*
  • Pseudomonas fluorescens / chemistry
  • Pseudomonas fluorescens / metabolism
  • Pseudomonas fluorescens / pathogenicity*
  • Salicylic Acid / metabolism
  • Siderophores / metabolism
  • Siderophores / pharmacology*

Substances

  • Arabidopsis Proteins
  • Cation Transport Proteins
  • Ethylenes
  • IRT1 protein, Arabidopsis
  • Indoleacetic Acids
  • Oligopeptides
  • Siderophores
  • indoleacetic acid
  • Abscisic Acid
  • pyoverdin
  • ethylene
  • Iron
  • FMN Reductase
  • ferric citrate iron reductase
  • Salicylic Acid