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Differential regulation of the Epr3 receptor coordinates membrane-restricted rhizobial colonization of root nodule primordia

  • Yasuyuki Kawaharada
  • , Mette W. Nielsen
  • , Simon Kelly
  • , Euan K. James
  • , Kasper R. Andersen
  • , Sheena R. Rasmussen
  • , Winnie Füchtbauer
  • , Lene H. Madsen
  • , Anne B. Heckmann
  • , Simona Radutoiu
  • , Jens Stougaard
  • Iwate University
  • Aarhus University
  • James Hutton Institute
  • Arla Foods

Research output: Contribution to journalJournal articleResearchpeer-review

Abstract

In Lotus japonicus, a LysM receptor kinase, EPR3, distinguishes compatible and incompatible rhizobial exopolysaccharides at the epidermis. However, the role of this recognition system in bacterial colonization of the root interior is unknown. Here we show that EPR3 advances the intracellular infection mechanism that mediates infection thread invasion of the root cortex and nodule primordia. At the cellular level, Epr3 expression delineates progression of infection threads into nodule primordia and cortical infection thread formation is impaired in epr3 mutants. Genetic dissection of this developmental coordination showed that Epr3 is integrated into the symbiosis signal transduction pathways. Further analysis showed differential expression of Epr3 in the epidermis and cortical primordia and identified key transcription factors controlling this tissue specificity. These results suggest that exopolysaccharide recognition is reiterated during the progressing infection and that EPR3 perception of compatible exopolysaccharide promotes an intracellular cortical infection mechanism maintaining bacteria enclosed in plant membranes.

Original languageEnglish
Article number14534
JournalNature Communications
Volume8
ISSN2041-1723
DOIs
Publication statusPublished - 23 Feb 2017
Externally publishedYes

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