A transient decrease in reactive oxygen species in roots leads to root hair deformation in the legume-rhizobia symbiosis

Dasharath Prasad Lohar, Sajeet Haridas, Steve Gantt, Kathryn A. VandenBosch

Research output: Contribution to journalArticlepeer-review

98 Scopus citations

Abstract

• A possible role for reactive oxygen species (ROS) in root hair deformation in response to Nod factor (NF) was investigated using Medicago truncatula nodulation mutants, and an inhibitor and precursors of ROS. • In wild-type roots, ROS efflux transiently decreased approximately 1 h after NF treatment. Transcript accumulation of two NADPH oxidase homologs, respiratory burst oxidase homolog 2 (MtRBOH2) and MtRBOH3, also transiently decreased at 1 h. However, in the nonnodulating mutant Nod factor perception (nfp), transcript accumulation did not change. • Exogenous application of ROS prevented root hair swelling and branching induced by NF. When accumulation of ROS was prevented by diphenylene iodonium (DPI), NF did not induce root hair branching. Root treatment with DPI alone reduced ROS efflux and induced root hair tip swelling. Transient treatment of roots with DPI mimicked NF treatment and resulted in root hair branching in the absence of NF. A transient DPI treatment did not induce root hair branching in the nonlegumes Arabidopsis thaliana and tomato (Lycopersicon esculentum). • The results suggest a role for the transient reduction of ROS accumulation in governing NF-induced root hair deformation in legumes.

Original languageEnglish (US)
Pages (from-to)39-49
Number of pages11
JournalNew Phytologist
Volume173
Issue number1
DOIs
StatePublished - Jan 2007

Keywords

  • Lotus japonicus
  • Medicago truncatula
  • Oxidative burst
  • Polar growth
  • Reactive oxygen species
  • Respiratory burst oxidase
  • Root hair deformation
  • Symbiosis

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