Microbe-associated molecular patterns-triggered root responses mediate beneficial rhizobacterial recruitment in

Venkatachalam Lakshmanan1, Sherry L Kitto, Jeffrey L Caplan

  • 1Department of Plant and Soil Sciences, Delaware Biotechnology Institute, University of Delaware, Newark, Delaware 19711, USA.

Plant Physiology
|September 14, 2012
PubMed

Insights

Pathogen-derived signals recruit beneficial bacteria by increasing malic acid in plant roots, enhancing plant immunity. Beneficial bacteria, in turn, suppress plant defenses for colonization, revealing a complex plant-microbe interaction.

Area of Science:

  • Plant-microbe interactions
  • Plant immunity
  • Rhizosphere biology

Background:

  • Foliar pathogens induce root responses, but the role of microbe-associated molecular patterns (MAMPs) in belowground microbial communities is unclear.
  • Pathogen-derived MAMPs can suppress root immunity, potentially aiding pathogenicity.
  • Beneficial rhizobacteria recruit beneficial microbes to enhance plant defense.

Purpose of the Study:

  • To investigate if pathogen-derived MAMPs can trigger shoot-to-root signals for beneficial rhizobacteria recruitment.
  • To understand MAMPs' role in regulating root immune responses and belowground microbial communities.
  • To elucidate the mechanisms by which beneficial rhizobacteria interact with plant immune pathways.

Main Methods:

  • Arabidopsis thaliana treated with Pseudomonas syringae pv tomato DC3000, flagellin22 (flg22), and coronatine (COR).
  • Measurement of malic acid (MA) transporter (ALUMINUM-ACTIVATED MALATE TRANSPORTER1 [ALMT1]) expression and MA titers.
  • Micrografting experiments using mutant lines (coi1, fls2) and reporter lines (ALMT1(pro)::β-glucuronidase).
  • Analysis of Bacillus subtilis FB17 (FB17) cell culture filtrate and biofilm formation effects on plant immune responses.

Main Results:

  • Foliar infection and MAMPs (flg22, COR) induced ALMT1 expression and MA secretion, recruiting FB17.
  • COR and flg22 require a graft-transmissible signal for FB17 recruitment, independent of salicylic acid and JASMONIC ACID RESISTANT1 (JAR1)/JASMONATE INSENSITIVE1 (JIN1)/MYC2.
  • FB17 suppressed MAMPs-activated root defense, a mechanism negated by biofilm formation and dependent on JAR1/JIN1/MYC2.

Conclusions:

  • Pathogen-derived MAMPs can induce intraplant signals to recruit beneficial rhizobacteria, enhancing plant immunity.
  • Beneficial rhizobacteria like FB17 employ strategies, including suppressing host defenses, for efficient root colonization.
  • Understanding these interactions is crucial for developing strategies to enhance plant health and mutualistic associations.

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